xref: /linux/arch/powerpc/kvm/book3s_hv.c (revision 546b928da0427b0d6c663cbb992bd7bfa9ac7971)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright 2011 Paul Mackerras, IBM Corp. <paulus@au1.ibm.com>
4  * Copyright (C) 2009. SUSE Linux Products GmbH. All rights reserved.
5  *
6  * Authors:
7  *    Paul Mackerras <paulus@au1.ibm.com>
8  *    Alexander Graf <agraf@suse.de>
9  *    Kevin Wolf <mail@kevin-wolf.de>
10  *
11  * Description: KVM functions specific to running on Book 3S
12  * processors in hypervisor mode (specifically POWER7 and later).
13  *
14  * This file is derived from arch/powerpc/kvm/book3s.c,
15  * by Alexander Graf <agraf@suse.de>.
16  */
17 
18 #include <linux/kvm_host.h>
19 #include <linux/kernel.h>
20 #include <linux/err.h>
21 #include <linux/slab.h>
22 #include <linux/preempt.h>
23 #include <linux/sched/signal.h>
24 #include <linux/sched/stat.h>
25 #include <linux/delay.h>
26 #include <linux/export.h>
27 #include <linux/fs.h>
28 #include <linux/anon_inodes.h>
29 #include <linux/cpu.h>
30 #include <linux/cpumask.h>
31 #include <linux/spinlock.h>
32 #include <linux/page-flags.h>
33 #include <linux/srcu.h>
34 #include <linux/miscdevice.h>
35 #include <linux/debugfs.h>
36 #include <linux/gfp.h>
37 #include <linux/vmalloc.h>
38 #include <linux/highmem.h>
39 #include <linux/kvm_irqfd.h>
40 #include <linux/irqbypass.h>
41 #include <linux/module.h>
42 #include <linux/compiler.h>
43 #include <linux/of.h>
44 #include <linux/irqdomain.h>
45 #include <linux/smp.h>
46 
47 #include <asm/ftrace.h>
48 #include <asm/reg.h>
49 #include <asm/ppc-opcode.h>
50 #include <asm/asm-prototypes.h>
51 #include <asm/archrandom.h>
52 #include <asm/debug.h>
53 #include <asm/disassemble.h>
54 #include <asm/cputable.h>
55 #include <asm/cacheflush.h>
56 #include <linux/uaccess.h>
57 #include <asm/interrupt.h>
58 #include <asm/io.h>
59 #include <asm/kvm_ppc.h>
60 #include <asm/kvm_book3s.h>
61 #include <asm/mmu_context.h>
62 #include <asm/lppaca.h>
63 #include <asm/pmc.h>
64 #include <asm/processor.h>
65 #include <asm/cputhreads.h>
66 #include <asm/page.h>
67 #include <asm/hvcall.h>
68 #include <asm/switch_to.h>
69 #include <asm/smp.h>
70 #include <asm/dbell.h>
71 #include <asm/hmi.h>
72 #include <asm/pnv-pci.h>
73 #include <asm/mmu.h>
74 #include <asm/opal.h>
75 #include <asm/xics.h>
76 #include <asm/xive.h>
77 #include <asm/hw_breakpoint.h>
78 #include <asm/kvm_book3s_uvmem.h>
79 #include <asm/ultravisor.h>
80 #include <asm/dtl.h>
81 #include <asm/plpar_wrappers.h>
82 
83 #include <trace/events/ipi.h>
84 
85 #include "book3s.h"
86 #include "book3s_hv.h"
87 
88 #define CREATE_TRACE_POINTS
89 #include "trace_hv.h"
90 
91 /* #define EXIT_DEBUG */
92 /* #define EXIT_DEBUG_SIMPLE */
93 /* #define EXIT_DEBUG_INT */
94 
95 /* Used to indicate that a guest page fault needs to be handled */
96 #define RESUME_PAGE_FAULT	(RESUME_GUEST | RESUME_FLAG_ARCH1)
97 /* Used to indicate that a guest passthrough interrupt needs to be handled */
98 #define RESUME_PASSTHROUGH	(RESUME_GUEST | RESUME_FLAG_ARCH2)
99 
100 /* Used as a "null" value for timebase values */
101 #define TB_NIL	(~(u64)0)
102 
103 static DECLARE_BITMAP(default_enabled_hcalls, MAX_HCALL_OPCODE/4 + 1);
104 
105 static int dynamic_mt_modes = 6;
106 module_param(dynamic_mt_modes, int, 0644);
107 MODULE_PARM_DESC(dynamic_mt_modes, "Set of allowed dynamic micro-threading modes: 0 (= none), 2, 4, or 6 (= 2 or 4)");
108 static int target_smt_mode;
109 module_param(target_smt_mode, int, 0644);
110 MODULE_PARM_DESC(target_smt_mode, "Target threads per core (0 = max)");
111 
112 static bool one_vm_per_core;
113 module_param(one_vm_per_core, bool, S_IRUGO | S_IWUSR);
114 MODULE_PARM_DESC(one_vm_per_core, "Only run vCPUs from the same VM on a core (requires POWER8 or older)");
115 
116 #ifdef CONFIG_KVM_XICS
117 static const struct kernel_param_ops module_param_ops = {
118 	.set = param_set_int,
119 	.get = param_get_int,
120 };
121 
122 module_param_cb(kvm_irq_bypass, &module_param_ops, &kvm_irq_bypass, 0644);
123 MODULE_PARM_DESC(kvm_irq_bypass, "Bypass passthrough interrupt optimization");
124 
125 module_param_cb(h_ipi_redirect, &module_param_ops, &h_ipi_redirect, 0644);
126 MODULE_PARM_DESC(h_ipi_redirect, "Redirect H_IPI wakeup to a free host core");
127 #endif
128 
129 /* If set, guests are allowed to create and control nested guests */
130 static bool nested = true;
131 module_param(nested, bool, S_IRUGO | S_IWUSR);
132 MODULE_PARM_DESC(nested, "Enable nested virtualization (only on POWER9)");
133 
134 static int kvmppc_hv_setup_htab_rma(struct kvm_vcpu *vcpu);
135 
136 /*
137  * RWMR values for POWER8.  These control the rate at which PURR
138  * and SPURR count and should be set according to the number of
139  * online threads in the vcore being run.
140  */
141 #define RWMR_RPA_P8_1THREAD	0x164520C62609AECAUL
142 #define RWMR_RPA_P8_2THREAD	0x7FFF2908450D8DA9UL
143 #define RWMR_RPA_P8_3THREAD	0x164520C62609AECAUL
144 #define RWMR_RPA_P8_4THREAD	0x199A421245058DA9UL
145 #define RWMR_RPA_P8_5THREAD	0x164520C62609AECAUL
146 #define RWMR_RPA_P8_6THREAD	0x164520C62609AECAUL
147 #define RWMR_RPA_P8_7THREAD	0x164520C62609AECAUL
148 #define RWMR_RPA_P8_8THREAD	0x164520C62609AECAUL
149 
150 static unsigned long p8_rwmr_values[MAX_SMT_THREADS + 1] = {
151 	RWMR_RPA_P8_1THREAD,
152 	RWMR_RPA_P8_1THREAD,
153 	RWMR_RPA_P8_2THREAD,
154 	RWMR_RPA_P8_3THREAD,
155 	RWMR_RPA_P8_4THREAD,
156 	RWMR_RPA_P8_5THREAD,
157 	RWMR_RPA_P8_6THREAD,
158 	RWMR_RPA_P8_7THREAD,
159 	RWMR_RPA_P8_8THREAD,
160 };
161 
next_runnable_thread(struct kvmppc_vcore * vc,int * ip)162 static inline struct kvm_vcpu *next_runnable_thread(struct kvmppc_vcore *vc,
163 		int *ip)
164 {
165 	int i = *ip;
166 	struct kvm_vcpu *vcpu;
167 
168 	while (++i < MAX_SMT_THREADS) {
169 		vcpu = READ_ONCE(vc->runnable_threads[i]);
170 		if (vcpu) {
171 			*ip = i;
172 			return vcpu;
173 		}
174 	}
175 	return NULL;
176 }
177 
178 /* Used to traverse the list of runnable threads for a given vcore */
179 #define for_each_runnable_thread(i, vcpu, vc) \
180 	for (i = -1; (vcpu = next_runnable_thread(vc, &i)); )
181 
kvmppc_ipi_thread(int cpu)182 static bool kvmppc_ipi_thread(int cpu)
183 {
184 	unsigned long msg = PPC_DBELL_TYPE(PPC_DBELL_SERVER);
185 
186 	/* If we're a nested hypervisor, fall back to ordinary IPIs for now */
187 	if (kvmhv_on_pseries())
188 		return false;
189 
190 	/* On POWER9 we can use msgsnd to IPI any cpu */
191 	if (cpu_has_feature(CPU_FTR_ARCH_300)) {
192 		msg |= get_hard_smp_processor_id(cpu);
193 		smp_mb();
194 		__asm__ __volatile__ (PPC_MSGSND(%0) : : "r" (msg));
195 		return true;
196 	}
197 
198 	/* On POWER8 for IPIs to threads in the same core, use msgsnd */
199 	if (cpu_has_feature(CPU_FTR_ARCH_207S)) {
200 		preempt_disable();
201 		if (cpu_first_thread_sibling(cpu) ==
202 		    cpu_first_thread_sibling(smp_processor_id())) {
203 			msg |= cpu_thread_in_core(cpu);
204 			smp_mb();
205 			__asm__ __volatile__ (PPC_MSGSND(%0) : : "r" (msg));
206 			preempt_enable();
207 			return true;
208 		}
209 		preempt_enable();
210 	}
211 
212 #if defined(CONFIG_PPC_ICP_NATIVE) && defined(CONFIG_SMP)
213 	if (cpu >= 0 && cpu < nr_cpu_ids) {
214 		if (paca_ptrs[cpu]->kvm_hstate.xics_phys) {
215 			xics_wake_cpu(cpu);
216 			return true;
217 		}
218 		opal_int_set_mfrr(get_hard_smp_processor_id(cpu), IPI_PRIORITY);
219 		return true;
220 	}
221 #endif
222 
223 	return false;
224 }
225 
kvmppc_fast_vcpu_kick_hv(struct kvm_vcpu * vcpu)226 static void kvmppc_fast_vcpu_kick_hv(struct kvm_vcpu *vcpu)
227 {
228 	int cpu;
229 	struct rcuwait *waitp;
230 
231 	/*
232 	 * rcuwait_wake_up contains smp_mb() which orders prior stores that
233 	 * create pending work vs below loads of cpu fields. The other side
234 	 * is the barrier in vcpu run that orders setting the cpu fields vs
235 	 * testing for pending work.
236 	 */
237 
238 	waitp = kvm_arch_vcpu_get_wait(vcpu);
239 	if (rcuwait_wake_up(waitp))
240 		++vcpu->stat.generic.halt_wakeup;
241 
242 	cpu = READ_ONCE(vcpu->arch.thread_cpu);
243 	if (cpu >= 0 && kvmppc_ipi_thread(cpu))
244 		return;
245 
246 	/* CPU points to the first thread of the core */
247 	cpu = vcpu->cpu;
248 	if (cpu >= 0 && cpu < nr_cpu_ids && cpu_online(cpu))
249 		smp_send_reschedule(cpu);
250 }
251 
252 /*
253  * We use the vcpu_load/put functions to measure stolen time.
254  *
255  * Stolen time is counted as time when either the vcpu is able to
256  * run as part of a virtual core, but the task running the vcore
257  * is preempted or sleeping, or when the vcpu needs something done
258  * in the kernel by the task running the vcpu, but that task is
259  * preempted or sleeping.  Those two things have to be counted
260  * separately, since one of the vcpu tasks will take on the job
261  * of running the core, and the other vcpu tasks in the vcore will
262  * sleep waiting for it to do that, but that sleep shouldn't count
263  * as stolen time.
264  *
265  * Hence we accumulate stolen time when the vcpu can run as part of
266  * a vcore using vc->stolen_tb, and the stolen time when the vcpu
267  * needs its task to do other things in the kernel (for example,
268  * service a page fault) in busy_stolen.  We don't accumulate
269  * stolen time for a vcore when it is inactive, or for a vcpu
270  * when it is in state RUNNING or NOTREADY.  NOTREADY is a bit of
271  * a misnomer; it means that the vcpu task is not executing in
272  * the KVM_VCPU_RUN ioctl, i.e. it is in userspace or elsewhere in
273  * the kernel.  We don't have any way of dividing up that time
274  * between time that the vcpu is genuinely stopped, time that
275  * the task is actively working on behalf of the vcpu, and time
276  * that the task is preempted, so we don't count any of it as
277  * stolen.
278  *
279  * Updates to busy_stolen are protected by arch.tbacct_lock;
280  * updates to vc->stolen_tb are protected by the vcore->stoltb_lock
281  * lock.  The stolen times are measured in units of timebase ticks.
282  * (Note that the != TB_NIL checks below are purely defensive;
283  * they should never fail.)
284  *
285  * The POWER9 path is simpler, one vcpu per virtual core so the
286  * former case does not exist. If a vcpu is preempted when it is
287  * BUSY_IN_HOST and not ceded or otherwise blocked, then accumulate
288  * the stolen cycles in busy_stolen. RUNNING is not a preemptible
289  * state in the P9 path.
290  */
291 
kvmppc_core_start_stolen(struct kvmppc_vcore * vc,u64 tb)292 static void kvmppc_core_start_stolen(struct kvmppc_vcore *vc, u64 tb)
293 {
294 	unsigned long flags;
295 
296 	WARN_ON_ONCE(cpu_has_feature(CPU_FTR_ARCH_300));
297 
298 	spin_lock_irqsave(&vc->stoltb_lock, flags);
299 	vc->preempt_tb = tb;
300 	spin_unlock_irqrestore(&vc->stoltb_lock, flags);
301 }
302 
kvmppc_core_end_stolen(struct kvmppc_vcore * vc,u64 tb)303 static void kvmppc_core_end_stolen(struct kvmppc_vcore *vc, u64 tb)
304 {
305 	unsigned long flags;
306 
307 	WARN_ON_ONCE(cpu_has_feature(CPU_FTR_ARCH_300));
308 
309 	spin_lock_irqsave(&vc->stoltb_lock, flags);
310 	if (vc->preempt_tb != TB_NIL) {
311 		vc->stolen_tb += tb - vc->preempt_tb;
312 		vc->preempt_tb = TB_NIL;
313 	}
314 	spin_unlock_irqrestore(&vc->stoltb_lock, flags);
315 }
316 
kvmppc_core_vcpu_load_hv(struct kvm_vcpu * vcpu,int cpu)317 static void kvmppc_core_vcpu_load_hv(struct kvm_vcpu *vcpu, int cpu)
318 {
319 	struct kvmppc_vcore *vc = vcpu->arch.vcore;
320 	unsigned long flags;
321 	u64 now;
322 
323 	if (cpu_has_feature(CPU_FTR_ARCH_300)) {
324 		if (vcpu->arch.busy_preempt != TB_NIL) {
325 			WARN_ON_ONCE(vcpu->arch.state != KVMPPC_VCPU_BUSY_IN_HOST);
326 			vc->stolen_tb += mftb() - vcpu->arch.busy_preempt;
327 			vcpu->arch.busy_preempt = TB_NIL;
328 		}
329 		return;
330 	}
331 
332 	now = mftb();
333 
334 	/*
335 	 * We can test vc->runner without taking the vcore lock,
336 	 * because only this task ever sets vc->runner to this
337 	 * vcpu, and once it is set to this vcpu, only this task
338 	 * ever sets it to NULL.
339 	 */
340 	if (vc->runner == vcpu && vc->vcore_state >= VCORE_SLEEPING)
341 		kvmppc_core_end_stolen(vc, now);
342 
343 	spin_lock_irqsave(&vcpu->arch.tbacct_lock, flags);
344 	if (vcpu->arch.state == KVMPPC_VCPU_BUSY_IN_HOST &&
345 	    vcpu->arch.busy_preempt != TB_NIL) {
346 		vcpu->arch.busy_stolen += now - vcpu->arch.busy_preempt;
347 		vcpu->arch.busy_preempt = TB_NIL;
348 	}
349 	spin_unlock_irqrestore(&vcpu->arch.tbacct_lock, flags);
350 }
351 
kvmppc_core_vcpu_put_hv(struct kvm_vcpu * vcpu)352 static void kvmppc_core_vcpu_put_hv(struct kvm_vcpu *vcpu)
353 {
354 	struct kvmppc_vcore *vc = vcpu->arch.vcore;
355 	unsigned long flags;
356 	u64 now;
357 
358 	if (cpu_has_feature(CPU_FTR_ARCH_300)) {
359 		/*
360 		 * In the P9 path, RUNNABLE is not preemptible
361 		 * (nor takes host interrupts)
362 		 */
363 		WARN_ON_ONCE(vcpu->arch.state == KVMPPC_VCPU_RUNNABLE);
364 		/*
365 		 * Account stolen time when preempted while the vcpu task is
366 		 * running in the kernel (but not in qemu, which is INACTIVE).
367 		 */
368 		if (task_is_running(current) &&
369 				vcpu->arch.state == KVMPPC_VCPU_BUSY_IN_HOST)
370 			vcpu->arch.busy_preempt = mftb();
371 		return;
372 	}
373 
374 	now = mftb();
375 
376 	if (vc->runner == vcpu && vc->vcore_state >= VCORE_SLEEPING)
377 		kvmppc_core_start_stolen(vc, now);
378 
379 	spin_lock_irqsave(&vcpu->arch.tbacct_lock, flags);
380 	if (vcpu->arch.state == KVMPPC_VCPU_BUSY_IN_HOST)
381 		vcpu->arch.busy_preempt = now;
382 	spin_unlock_irqrestore(&vcpu->arch.tbacct_lock, flags);
383 }
384 
kvmppc_set_pvr_hv(struct kvm_vcpu * vcpu,u32 pvr)385 static void kvmppc_set_pvr_hv(struct kvm_vcpu *vcpu, u32 pvr)
386 {
387 	vcpu->arch.pvr = pvr;
388 }
389 
390 /* Dummy value used in computing PCR value below */
391 #define PCR_ARCH_32	(PCR_ARCH_31 << 1)
392 
map_pcr_to_cap(unsigned long pcr)393 static inline unsigned long map_pcr_to_cap(unsigned long pcr)
394 {
395 	unsigned long cap = 0;
396 
397 	switch (pcr) {
398 	case PCR_ARCH_300:
399 		cap = H_GUEST_CAP_POWER9;
400 		break;
401 	case PCR_ARCH_31:
402 		if (cpu_has_feature(CPU_FTR_P11_PVR))
403 			cap = H_GUEST_CAP_POWER11;
404 		else
405 			cap = H_GUEST_CAP_POWER10;
406 		break;
407 	default:
408 		break;
409 	}
410 
411 	return cap;
412 }
413 
kvmppc_set_arch_compat(struct kvm_vcpu * vcpu,u32 arch_compat)414 static int kvmppc_set_arch_compat(struct kvm_vcpu *vcpu, u32 arch_compat)
415 {
416 	unsigned long host_pcr_bit = 0, guest_pcr_bit = 0, cap = 0;
417 	struct kvmppc_vcore *vc = vcpu->arch.vcore;
418 
419 	/* We can (emulate) our own architecture version and anything older */
420 	if (cpu_has_feature(CPU_FTR_ARCH_32))
421 		host_pcr_bit = PCR_ARCH_32;
422 	else if (cpu_has_feature(CPU_FTR_P11_PVR) || cpu_has_feature(CPU_FTR_ARCH_31))
423 		host_pcr_bit = PCR_ARCH_31;
424 	else if (cpu_has_feature(CPU_FTR_ARCH_300))
425 		host_pcr_bit = PCR_ARCH_300;
426 	else if (cpu_has_feature(CPU_FTR_ARCH_207S))
427 		host_pcr_bit = PCR_ARCH_207;
428 	else if (cpu_has_feature(CPU_FTR_ARCH_206))
429 		host_pcr_bit = PCR_ARCH_206;
430 	else
431 		host_pcr_bit = PCR_ARCH_205;
432 
433 	/* Determine lowest PCR bit needed to run guest in given PVR level */
434 	guest_pcr_bit = host_pcr_bit;
435 	if (arch_compat) {
436 		switch (arch_compat) {
437 		case PVR_ARCH_205:
438 			guest_pcr_bit = PCR_ARCH_205;
439 			break;
440 		case PVR_ARCH_206:
441 		case PVR_ARCH_206p:
442 			guest_pcr_bit = PCR_ARCH_206;
443 			break;
444 		case PVR_ARCH_207:
445 			guest_pcr_bit = PCR_ARCH_207;
446 			break;
447 		case PVR_ARCH_300:
448 			guest_pcr_bit = PCR_ARCH_300;
449 			break;
450 		case PVR_ARCH_31:
451 			guest_pcr_bit = PCR_ARCH_31;
452 			break;
453 		case PVR_ARCH_31_P11:
454 			/*
455 			 * Need to check this for ISA 3.1, as Power10 and
456 			 * Power11 share the same PCR. For any subsequent ISA
457 			 * versions, this will be taken care of by the guest vs
458 			 * host PCR comparison below.
459 			 */
460 			if (!cpu_has_feature(CPU_FTR_P11_PVR)) {
461 				arch_compat = PVR_ARCH_INVALID;
462 				goto out;
463 			}
464 			guest_pcr_bit = PCR_ARCH_31;
465 			break;
466 		case PVR_ARCH_32:
467 			guest_pcr_bit = PCR_ARCH_32;
468 			break;
469 		default:
470 			return -EINVAL;
471 		}
472 	}
473 
474 	/* Check requested PCR bits don't exceed our capabilities */
475 	if (guest_pcr_bit > host_pcr_bit)
476 		return -EINVAL;
477 
478 	if (kvmhv_on_pseries() && kvmhv_is_nestedv2()) {
479 		/*
480 		 * 'arch_compat == 0' would mean the guest should default to
481 		 * L1's compatibility. In this case, the guest would pick
482 		 * host's PCR and evaluate the corresponding capabilities.
483 		 */
484 		cap = map_pcr_to_cap(guest_pcr_bit);
485 		if (!(cap & nested_capabilities))
486 			return -EINVAL;
487 	}
488 
489 out:
490 	spin_lock(&vc->lock);
491 	vc->arch_compat = arch_compat;
492 	kvmhv_nestedv2_mark_dirty(vcpu, KVMPPC_GSID_LOGICAL_PVR);
493 	/*
494 	 * Set all PCR bits for which guest_pcr_bit <= bit < host_pcr_bit
495 	 * Also set all reserved PCR bits
496 	 */
497 	vc->pcr = (host_pcr_bit - guest_pcr_bit) | PCR_MASK;
498 	spin_unlock(&vc->lock);
499 
500 	return kvmppc_sanity_check(vcpu);
501 }
502 
kvmppc_dump_regs(struct kvm_vcpu * vcpu)503 static void kvmppc_dump_regs(struct kvm_vcpu *vcpu)
504 {
505 	int r;
506 
507 	pr_err("vcpu %p (%d):\n", vcpu, vcpu->vcpu_id);
508 	pr_err("pc  = %.16lx  msr = %.16llx  trap = %x\n",
509 	       vcpu->arch.regs.nip, vcpu->arch.shregs.msr, vcpu->arch.trap);
510 	for (r = 0; r < 16; ++r)
511 		pr_err("r%2d = %.16lx  r%d = %.16lx\n",
512 		       r, kvmppc_get_gpr(vcpu, r),
513 		       r+16, kvmppc_get_gpr(vcpu, r+16));
514 	pr_err("ctr = %.16lx  lr  = %.16lx\n",
515 	       vcpu->arch.regs.ctr, vcpu->arch.regs.link);
516 	pr_err("srr0 = %.16llx srr1 = %.16llx\n",
517 	       vcpu->arch.shregs.srr0, vcpu->arch.shregs.srr1);
518 	pr_err("sprg0 = %.16llx sprg1 = %.16llx\n",
519 	       vcpu->arch.shregs.sprg0, vcpu->arch.shregs.sprg1);
520 	pr_err("sprg2 = %.16llx sprg3 = %.16llx\n",
521 	       vcpu->arch.shregs.sprg2, vcpu->arch.shregs.sprg3);
522 	pr_err("cr = %.8lx  xer = %.16lx  dsisr = %.8x\n",
523 	       vcpu->arch.regs.ccr, vcpu->arch.regs.xer, vcpu->arch.shregs.dsisr);
524 	pr_err("dar = %.16llx\n", vcpu->arch.shregs.dar);
525 	pr_err("fault dar = %.16lx dsisr = %.8x\n",
526 	       vcpu->arch.fault_dar, vcpu->arch.fault_dsisr);
527 	pr_err("SLB (%d entries):\n", vcpu->arch.slb_max);
528 	for (r = 0; r < vcpu->arch.slb_max; ++r)
529 		pr_err("  ESID = %.16llx VSID = %.16llx\n",
530 		       vcpu->arch.slb[r].orige, vcpu->arch.slb[r].origv);
531 	pr_err("lpcr = %.16lx sdr1 = %.16lx last_inst = %.16lx\n",
532 	       vcpu->arch.vcore->lpcr, vcpu->kvm->arch.sdr1,
533 	       vcpu->arch.last_inst);
534 }
535 
kvmppc_find_vcpu(struct kvm * kvm,int id)536 static struct kvm_vcpu *kvmppc_find_vcpu(struct kvm *kvm, int id)
537 {
538 	return kvm_get_vcpu_by_id(kvm, id);
539 }
540 
init_vpa(struct kvm_vcpu * vcpu,struct lppaca * vpa)541 static void init_vpa(struct kvm_vcpu *vcpu, struct lppaca *vpa)
542 {
543 	vpa->__old_status |= LPPACA_OLD_SHARED_PROC;
544 	vpa->yield_count = cpu_to_be32(1);
545 }
546 
set_vpa(struct kvm_vcpu * vcpu,struct kvmppc_vpa * v,unsigned long addr,unsigned long len)547 static int set_vpa(struct kvm_vcpu *vcpu, struct kvmppc_vpa *v,
548 		   unsigned long addr, unsigned long len)
549 {
550 	/* check address is cacheline aligned */
551 	if (addr & (L1_CACHE_BYTES - 1))
552 		return -EINVAL;
553 	spin_lock(&vcpu->arch.vpa_update_lock);
554 	if (v->next_gpa != addr || v->len != len) {
555 		v->next_gpa = addr;
556 		v->len = addr ? len : 0;
557 		v->update_pending = 1;
558 	}
559 	spin_unlock(&vcpu->arch.vpa_update_lock);
560 	return 0;
561 }
562 
563 /* Length for a per-processor buffer is passed in at offset 4 in the buffer */
564 struct reg_vpa {
565 	u32 dummy;
566 	union {
567 		__be16 hword;
568 		__be32 word;
569 	} length;
570 };
571 
vpa_is_registered(struct kvmppc_vpa * vpap)572 static int vpa_is_registered(struct kvmppc_vpa *vpap)
573 {
574 	if (vpap->update_pending)
575 		return vpap->next_gpa != 0;
576 	return vpap->pinned_addr != NULL;
577 }
578 
do_h_register_vpa(struct kvm_vcpu * vcpu,unsigned long flags,unsigned long vcpuid,unsigned long vpa)579 static unsigned long do_h_register_vpa(struct kvm_vcpu *vcpu,
580 				       unsigned long flags,
581 				       unsigned long vcpuid, unsigned long vpa)
582 {
583 	struct kvm *kvm = vcpu->kvm;
584 	unsigned long len, nb;
585 	void *va;
586 	struct kvm_vcpu *tvcpu;
587 	int err;
588 	int subfunc;
589 	struct kvmppc_vpa *vpap;
590 
591 	tvcpu = kvmppc_find_vcpu(kvm, vcpuid);
592 	if (!tvcpu)
593 		return H_PARAMETER;
594 
595 	subfunc = (flags >> H_VPA_FUNC_SHIFT) & H_VPA_FUNC_MASK;
596 	if (subfunc == H_VPA_REG_VPA || subfunc == H_VPA_REG_DTL ||
597 	    subfunc == H_VPA_REG_SLB) {
598 		/* Registering new area - address must be cache-line aligned */
599 		if ((vpa & (L1_CACHE_BYTES - 1)) || !vpa)
600 			return H_PARAMETER;
601 
602 		/* convert logical addr to kernel addr and read length */
603 		va = kvmppc_pin_guest_page(kvm, vpa, &nb);
604 		if (va == NULL)
605 			return H_PARAMETER;
606 		if (subfunc == H_VPA_REG_VPA)
607 			len = be16_to_cpu(((struct reg_vpa *)va)->length.hword);
608 		else
609 			len = be32_to_cpu(((struct reg_vpa *)va)->length.word);
610 		kvmppc_unpin_guest_page(kvm, va, vpa, false);
611 
612 		/* Check length */
613 		if (len > nb || len < sizeof(struct reg_vpa))
614 			return H_PARAMETER;
615 	} else {
616 		vpa = 0;
617 		len = 0;
618 	}
619 
620 	err = H_PARAMETER;
621 	vpap = NULL;
622 	spin_lock(&tvcpu->arch.vpa_update_lock);
623 
624 	switch (subfunc) {
625 	case H_VPA_REG_VPA:		/* register VPA */
626 		/*
627 		 * The size of our lppaca is 1kB because of the way we align
628 		 * it for the guest to avoid crossing a 4kB boundary. We only
629 		 * use 640 bytes of the structure though, so we should accept
630 		 * clients that set a size of 640.
631 		 */
632 		BUILD_BUG_ON(sizeof(struct lppaca) != 640);
633 		if (len < sizeof(struct lppaca))
634 			break;
635 		vpap = &tvcpu->arch.vpa;
636 		err = 0;
637 		break;
638 
639 	case H_VPA_REG_DTL:		/* register DTL */
640 		if (len < sizeof(struct dtl_entry))
641 			break;
642 		len -= len % sizeof(struct dtl_entry);
643 
644 		/* Check that they have previously registered a VPA */
645 		err = H_RESOURCE;
646 		if (!vpa_is_registered(&tvcpu->arch.vpa))
647 			break;
648 
649 		vpap = &tvcpu->arch.dtl;
650 		err = 0;
651 		break;
652 
653 	case H_VPA_REG_SLB:		/* register SLB shadow buffer */
654 		/* Check that they have previously registered a VPA */
655 		err = H_RESOURCE;
656 		if (!vpa_is_registered(&tvcpu->arch.vpa))
657 			break;
658 
659 		vpap = &tvcpu->arch.slb_shadow;
660 		err = 0;
661 		break;
662 
663 	case H_VPA_DEREG_VPA:		/* deregister VPA */
664 		/* Check they don't still have a DTL or SLB buf registered */
665 		err = H_RESOURCE;
666 		if (vpa_is_registered(&tvcpu->arch.dtl) ||
667 		    vpa_is_registered(&tvcpu->arch.slb_shadow))
668 			break;
669 
670 		vpap = &tvcpu->arch.vpa;
671 		err = 0;
672 		break;
673 
674 	case H_VPA_DEREG_DTL:		/* deregister DTL */
675 		vpap = &tvcpu->arch.dtl;
676 		err = 0;
677 		break;
678 
679 	case H_VPA_DEREG_SLB:		/* deregister SLB shadow buffer */
680 		vpap = &tvcpu->arch.slb_shadow;
681 		err = 0;
682 		break;
683 	}
684 
685 	if (vpap) {
686 		vpap->next_gpa = vpa;
687 		vpap->len = len;
688 		vpap->update_pending = 1;
689 	}
690 
691 	spin_unlock(&tvcpu->arch.vpa_update_lock);
692 
693 	return err;
694 }
695 
kvmppc_update_vpa(struct kvm_vcpu * vcpu,struct kvmppc_vpa * vpap,struct kvmppc_vpa * old_vpap)696 static void kvmppc_update_vpa(struct kvm_vcpu *vcpu, struct kvmppc_vpa *vpap,
697 			       struct kvmppc_vpa *old_vpap)
698 {
699 	struct kvm *kvm = vcpu->kvm;
700 	void *va;
701 	unsigned long nb;
702 	unsigned long gpa;
703 
704 	/*
705 	 * We need to pin the page pointed to by vpap->next_gpa,
706 	 * but we can't call kvmppc_pin_guest_page under the lock
707 	 * as it does get_user_pages() and down_read().  So we
708 	 * have to drop the lock, pin the page, then get the lock
709 	 * again and check that a new area didn't get registered
710 	 * in the meantime.
711 	 */
712 	for (;;) {
713 		gpa = vpap->next_gpa;
714 		spin_unlock(&vcpu->arch.vpa_update_lock);
715 		va = NULL;
716 		nb = 0;
717 		if (gpa)
718 			va = kvmppc_pin_guest_page(kvm, gpa, &nb);
719 		spin_lock(&vcpu->arch.vpa_update_lock);
720 		if (gpa == vpap->next_gpa)
721 			break;
722 		/* sigh... unpin that one and try again */
723 		if (va)
724 			kvmppc_unpin_guest_page(kvm, va, gpa, false);
725 	}
726 
727 	vpap->update_pending = 0;
728 	if (va && nb < vpap->len) {
729 		/*
730 		 * If it's now too short, it must be that userspace
731 		 * has changed the mappings underlying guest memory,
732 		 * so unregister the region.
733 		 */
734 		kvmppc_unpin_guest_page(kvm, va, gpa, false);
735 		va = NULL;
736 	}
737 	*old_vpap = *vpap;
738 
739 	vpap->gpa = gpa;
740 	vpap->pinned_addr = va;
741 	vpap->dirty = false;
742 	if (va)
743 		vpap->pinned_end = va + vpap->len;
744 }
745 
kvmppc_update_vpas(struct kvm_vcpu * vcpu)746 static void kvmppc_update_vpas(struct kvm_vcpu *vcpu)
747 {
748 	struct kvm *kvm = vcpu->kvm;
749 	struct kvmppc_vpa old_vpa = { 0 };
750 
751 	if (!(vcpu->arch.vpa.update_pending ||
752 	      vcpu->arch.slb_shadow.update_pending ||
753 	      vcpu->arch.dtl.update_pending))
754 		return;
755 
756 	spin_lock(&vcpu->arch.vpa_update_lock);
757 	if (vcpu->arch.vpa.update_pending) {
758 		kvmppc_update_vpa(vcpu, &vcpu->arch.vpa, &old_vpa);
759 		if (old_vpa.pinned_addr) {
760 			if (kvmhv_is_nestedv2())
761 				kvmhv_nestedv2_set_vpa(vcpu, ~0ull);
762 			kvmppc_unpin_guest_page(kvm, old_vpa.pinned_addr, old_vpa.gpa,
763 						old_vpa.dirty);
764 		}
765 		if (vcpu->arch.vpa.pinned_addr) {
766 			init_vpa(vcpu, vcpu->arch.vpa.pinned_addr);
767 			if (kvmhv_is_nestedv2())
768 				kvmhv_nestedv2_set_vpa(vcpu, __pa(vcpu->arch.vpa.pinned_addr));
769 		}
770 	}
771 	if (vcpu->arch.dtl.update_pending) {
772 		kvmppc_update_vpa(vcpu, &vcpu->arch.dtl, &old_vpa);
773 		if (old_vpa.pinned_addr)
774 			kvmppc_unpin_guest_page(kvm, old_vpa.pinned_addr, old_vpa.gpa,
775 						old_vpa.dirty);
776 		vcpu->arch.dtl_ptr = vcpu->arch.dtl.pinned_addr;
777 		vcpu->arch.dtl_index = 0;
778 	}
779 	if (vcpu->arch.slb_shadow.update_pending) {
780 		kvmppc_update_vpa(vcpu, &vcpu->arch.slb_shadow, &old_vpa);
781 		if (old_vpa.pinned_addr)
782 			kvmppc_unpin_guest_page(kvm, old_vpa.pinned_addr, old_vpa.gpa,
783 						old_vpa.dirty);
784 	}
785 
786 	spin_unlock(&vcpu->arch.vpa_update_lock);
787 }
788 
789 /*
790  * Return the accumulated stolen time for the vcore up until `now'.
791  * The caller should hold the vcore lock.
792  */
vcore_stolen_time(struct kvmppc_vcore * vc,u64 now)793 static u64 vcore_stolen_time(struct kvmppc_vcore *vc, u64 now)
794 {
795 	u64 p;
796 	unsigned long flags;
797 
798 	WARN_ON_ONCE(cpu_has_feature(CPU_FTR_ARCH_300));
799 
800 	spin_lock_irqsave(&vc->stoltb_lock, flags);
801 	p = vc->stolen_tb;
802 	if (vc->vcore_state != VCORE_INACTIVE &&
803 	    vc->preempt_tb != TB_NIL)
804 		p += now - vc->preempt_tb;
805 	spin_unlock_irqrestore(&vc->stoltb_lock, flags);
806 	return p;
807 }
808 
__kvmppc_create_dtl_entry(struct kvm_vcpu * vcpu,struct lppaca * vpa,unsigned int pcpu,u64 now,unsigned long stolen)809 static void __kvmppc_create_dtl_entry(struct kvm_vcpu *vcpu,
810 					struct lppaca *vpa,
811 					unsigned int pcpu, u64 now,
812 					unsigned long stolen)
813 {
814 	struct dtl_entry *dt;
815 
816 	dt = vcpu->arch.dtl_ptr;
817 
818 	if (!dt)
819 		return;
820 
821 	dt->dispatch_reason = 7;
822 	dt->preempt_reason = 0;
823 	dt->processor_id = cpu_to_be16(pcpu + vcpu->arch.ptid);
824 	dt->enqueue_to_dispatch_time = cpu_to_be32(stolen);
825 	dt->ready_to_enqueue_time = 0;
826 	dt->waiting_to_ready_time = 0;
827 	dt->timebase = cpu_to_be64(now);
828 	dt->fault_addr = 0;
829 	dt->srr0 = cpu_to_be64(kvmppc_get_pc(vcpu));
830 	dt->srr1 = cpu_to_be64(vcpu->arch.shregs.msr);
831 
832 	++dt;
833 	if (dt == vcpu->arch.dtl.pinned_end)
834 		dt = vcpu->arch.dtl.pinned_addr;
835 	vcpu->arch.dtl_ptr = dt;
836 	/* order writing *dt vs. writing vpa->dtl_idx */
837 	smp_wmb();
838 	vpa->dtl_idx = cpu_to_be64(++vcpu->arch.dtl_index);
839 
840 	/* vcpu->arch.dtl.dirty is set by the caller */
841 }
842 
kvmppc_update_vpa_dispatch(struct kvm_vcpu * vcpu,struct kvmppc_vcore * vc)843 static void kvmppc_update_vpa_dispatch(struct kvm_vcpu *vcpu,
844 				       struct kvmppc_vcore *vc)
845 {
846 	struct lppaca *vpa;
847 	unsigned long stolen;
848 	unsigned long core_stolen;
849 	u64 now;
850 	unsigned long flags;
851 
852 	vpa = vcpu->arch.vpa.pinned_addr;
853 	if (!vpa)
854 		return;
855 
856 	now = mftb();
857 
858 	core_stolen = vcore_stolen_time(vc, now);
859 	stolen = core_stolen - vcpu->arch.stolen_logged;
860 	vcpu->arch.stolen_logged = core_stolen;
861 	spin_lock_irqsave(&vcpu->arch.tbacct_lock, flags);
862 	stolen += vcpu->arch.busy_stolen;
863 	vcpu->arch.busy_stolen = 0;
864 	spin_unlock_irqrestore(&vcpu->arch.tbacct_lock, flags);
865 
866 	vpa->enqueue_dispatch_tb = cpu_to_be64(be64_to_cpu(vpa->enqueue_dispatch_tb) + stolen);
867 
868 	__kvmppc_create_dtl_entry(vcpu, vpa, vc->pcpu, now + kvmppc_get_tb_offset(vcpu), stolen);
869 
870 	vcpu->arch.vpa.dirty = true;
871 }
872 
kvmppc_update_vpa_dispatch_p9(struct kvm_vcpu * vcpu,struct kvmppc_vcore * vc,u64 now)873 static void kvmppc_update_vpa_dispatch_p9(struct kvm_vcpu *vcpu,
874 				       struct kvmppc_vcore *vc,
875 				       u64 now)
876 {
877 	struct lppaca *vpa;
878 	unsigned long stolen;
879 	unsigned long stolen_delta;
880 
881 	vpa = vcpu->arch.vpa.pinned_addr;
882 	if (!vpa)
883 		return;
884 
885 	stolen = vc->stolen_tb;
886 	stolen_delta = stolen - vcpu->arch.stolen_logged;
887 	vcpu->arch.stolen_logged = stolen;
888 
889 	vpa->enqueue_dispatch_tb = cpu_to_be64(stolen);
890 
891 	__kvmppc_create_dtl_entry(vcpu, vpa, vc->pcpu, now, stolen_delta);
892 
893 	vcpu->arch.vpa.dirty = true;
894 }
895 
896 /* See if there is a doorbell interrupt pending for a vcpu */
kvmppc_doorbell_pending(struct kvm_vcpu * vcpu)897 static bool kvmppc_doorbell_pending(struct kvm_vcpu *vcpu)
898 {
899 	int thr;
900 	struct kvmppc_vcore *vc;
901 
902 	if (vcpu->arch.doorbell_request)
903 		return true;
904 	if (cpu_has_feature(CPU_FTR_ARCH_300))
905 		return false;
906 	/*
907 	 * Ensure that the read of vcore->dpdes comes after the read
908 	 * of vcpu->doorbell_request.  This barrier matches the
909 	 * smp_wmb() in kvmppc_guest_entry_inject().
910 	 */
911 	smp_rmb();
912 	vc = vcpu->arch.vcore;
913 	thr = vcpu->vcpu_id - vc->first_vcpuid;
914 	return !!(vc->dpdes & (1 << thr));
915 }
916 
kvmppc_power8_compatible(struct kvm_vcpu * vcpu)917 static bool kvmppc_power8_compatible(struct kvm_vcpu *vcpu)
918 {
919 	if (kvmppc_get_arch_compat(vcpu) >= PVR_ARCH_207)
920 		return true;
921 	if ((!kvmppc_get_arch_compat(vcpu)) &&
922 	    cpu_has_feature(CPU_FTR_ARCH_207S))
923 		return true;
924 	return false;
925 }
926 
kvmppc_h_set_mode(struct kvm_vcpu * vcpu,unsigned long mflags,unsigned long resource,unsigned long value1,unsigned long value2)927 static int kvmppc_h_set_mode(struct kvm_vcpu *vcpu, unsigned long mflags,
928 			     unsigned long resource, unsigned long value1,
929 			     unsigned long value2)
930 {
931 	switch (resource) {
932 	case H_SET_MODE_RESOURCE_SET_CIABR:
933 		if (!kvmppc_power8_compatible(vcpu))
934 			return H_P2;
935 		if (value2)
936 			return H_P4;
937 		if (mflags)
938 			return H_UNSUPPORTED_FLAG_START;
939 		/* Guests can't breakpoint the hypervisor */
940 		if ((value1 & CIABR_PRIV) == CIABR_PRIV_HYPER)
941 			return H_P3;
942 		kvmppc_set_ciabr_hv(vcpu, value1);
943 		return H_SUCCESS;
944 	case H_SET_MODE_RESOURCE_SET_DAWR0:
945 		if (!kvmppc_power8_compatible(vcpu))
946 			return H_P2;
947 		if (!ppc_breakpoint_available())
948 			return H_P2;
949 		if (mflags)
950 			return H_UNSUPPORTED_FLAG_START;
951 		if (value2 & DABRX_HYP)
952 			return H_P4;
953 		kvmppc_set_dawr0_hv(vcpu, value1);
954 		kvmppc_set_dawrx0_hv(vcpu, value2);
955 		return H_SUCCESS;
956 	case H_SET_MODE_RESOURCE_SET_DAWR1:
957 		if (!kvmppc_power8_compatible(vcpu))
958 			return H_P2;
959 		if (!ppc_breakpoint_available())
960 			return H_P2;
961 		if (!cpu_has_feature(CPU_FTR_DAWR1))
962 			return H_P2;
963 		if (!vcpu->kvm->arch.dawr1_enabled)
964 			return H_FUNCTION;
965 		if (mflags)
966 			return H_UNSUPPORTED_FLAG_START;
967 		if (value2 & DABRX_HYP)
968 			return H_P4;
969 		kvmppc_set_dawr1_hv(vcpu, value1);
970 		kvmppc_set_dawrx1_hv(vcpu, value2);
971 		return H_SUCCESS;
972 	case H_SET_MODE_RESOURCE_ADDR_TRANS_MODE:
973 		/*
974 		 * KVM does not support mflags=2 (AIL=2) and AIL=1 is reserved.
975 		 * Keep this in synch with kvmppc_filter_guest_lpcr_hv.
976 		 */
977 		if (cpu_has_feature(CPU_FTR_P9_RADIX_PREFETCH_BUG) &&
978 				kvmhv_vcpu_is_radix(vcpu) && mflags == 3)
979 			return H_UNSUPPORTED_FLAG_START;
980 		return H_TOO_HARD;
981 	default:
982 		return H_TOO_HARD;
983 	}
984 }
985 
986 /* Copy guest memory in place - must reside within a single memslot */
kvmppc_copy_guest(struct kvm * kvm,gpa_t to,gpa_t from,unsigned long len)987 static int kvmppc_copy_guest(struct kvm *kvm, gpa_t to, gpa_t from,
988 				  unsigned long len)
989 {
990 	struct kvm_memory_slot *to_memslot = NULL;
991 	struct kvm_memory_slot *from_memslot = NULL;
992 	unsigned long to_addr, from_addr;
993 	int r;
994 
995 	/* Get HPA for from address */
996 	from_memslot = gfn_to_memslot(kvm, from >> PAGE_SHIFT);
997 	if (!from_memslot)
998 		return -EFAULT;
999 	if ((from + len) >= ((from_memslot->base_gfn + from_memslot->npages)
1000 			     << PAGE_SHIFT))
1001 		return -EINVAL;
1002 	from_addr = gfn_to_hva_memslot(from_memslot, from >> PAGE_SHIFT);
1003 	if (kvm_is_error_hva(from_addr))
1004 		return -EFAULT;
1005 	from_addr |= (from & (PAGE_SIZE - 1));
1006 
1007 	/* Get HPA for to address */
1008 	to_memslot = gfn_to_memslot(kvm, to >> PAGE_SHIFT);
1009 	if (!to_memslot)
1010 		return -EFAULT;
1011 	if ((to + len) >= ((to_memslot->base_gfn + to_memslot->npages)
1012 			   << PAGE_SHIFT))
1013 		return -EINVAL;
1014 	to_addr = gfn_to_hva_memslot(to_memslot, to >> PAGE_SHIFT);
1015 	if (kvm_is_error_hva(to_addr))
1016 		return -EFAULT;
1017 	to_addr |= (to & (PAGE_SIZE - 1));
1018 
1019 	/* Perform copy */
1020 	r = raw_copy_in_user((void __user *)to_addr, (void __user *)from_addr,
1021 			     len);
1022 	if (r)
1023 		return -EFAULT;
1024 	mark_page_dirty(kvm, to >> PAGE_SHIFT);
1025 	return 0;
1026 }
1027 
kvmppc_h_page_init(struct kvm_vcpu * vcpu,unsigned long flags,unsigned long dest,unsigned long src)1028 static long kvmppc_h_page_init(struct kvm_vcpu *vcpu, unsigned long flags,
1029 			       unsigned long dest, unsigned long src)
1030 {
1031 	u64 pg_sz = SZ_4K;		/* 4K page size */
1032 	u64 pg_mask = SZ_4K - 1;
1033 	int ret;
1034 
1035 	/* Check for invalid flags (H_PAGE_SET_LOANED covers all CMO flags) */
1036 	if (flags & ~(H_ICACHE_INVALIDATE | H_ICACHE_SYNCHRONIZE |
1037 		      H_ZERO_PAGE | H_COPY_PAGE | H_PAGE_SET_LOANED))
1038 		return H_PARAMETER;
1039 
1040 	/* dest (and src if copy_page flag set) must be page aligned */
1041 	if ((dest & pg_mask) || ((flags & H_COPY_PAGE) && (src & pg_mask)))
1042 		return H_PARAMETER;
1043 
1044 	/* zero and/or copy the page as determined by the flags */
1045 	if (flags & H_COPY_PAGE) {
1046 		ret = kvmppc_copy_guest(vcpu->kvm, dest, src, pg_sz);
1047 		if (ret < 0)
1048 			return H_PARAMETER;
1049 	} else if (flags & H_ZERO_PAGE) {
1050 		ret = kvm_clear_guest(vcpu->kvm, dest, pg_sz);
1051 		if (ret < 0)
1052 			return H_PARAMETER;
1053 	}
1054 
1055 	/* We can ignore the remaining flags */
1056 
1057 	return H_SUCCESS;
1058 }
1059 
kvm_arch_vcpu_yield_to(struct kvm_vcpu * target)1060 static int kvm_arch_vcpu_yield_to(struct kvm_vcpu *target)
1061 {
1062 	struct kvmppc_vcore *vcore = target->arch.vcore;
1063 
1064 	/*
1065 	 * We expect to have been called by the real mode handler
1066 	 * (kvmppc_rm_h_confer()) which would have directly returned
1067 	 * H_SUCCESS if the source vcore wasn't idle (e.g. if it may
1068 	 * have useful work to do and should not confer) so we don't
1069 	 * recheck that here.
1070 	 *
1071 	 * In the case of the P9 single vcpu per vcore case, the real
1072 	 * mode handler is not called but no other threads are in the
1073 	 * source vcore.
1074 	 */
1075 	if (!cpu_has_feature(CPU_FTR_ARCH_300)) {
1076 		spin_lock(&vcore->lock);
1077 		if (target->arch.state == KVMPPC_VCPU_RUNNABLE &&
1078 		    vcore->vcore_state != VCORE_INACTIVE &&
1079 		    vcore->runner)
1080 			target = vcore->runner;
1081 		spin_unlock(&vcore->lock);
1082 	}
1083 
1084 	return kvm_vcpu_yield_to(target);
1085 }
1086 
kvmppc_get_yield_count(struct kvm_vcpu * vcpu)1087 static int kvmppc_get_yield_count(struct kvm_vcpu *vcpu)
1088 {
1089 	int yield_count = 0;
1090 	struct lppaca *lppaca;
1091 
1092 	spin_lock(&vcpu->arch.vpa_update_lock);
1093 	lppaca = (struct lppaca *)vcpu->arch.vpa.pinned_addr;
1094 	if (lppaca)
1095 		yield_count = be32_to_cpu(lppaca->yield_count);
1096 	spin_unlock(&vcpu->arch.vpa_update_lock);
1097 	return yield_count;
1098 }
1099 
1100 /*
1101  * H_RPT_INVALIDATE hcall handler for nested guests.
1102  *
1103  * Handles only nested process-scoped invalidation requests in L0.
1104  */
kvmppc_nested_h_rpt_invalidate(struct kvm_vcpu * vcpu)1105 static int kvmppc_nested_h_rpt_invalidate(struct kvm_vcpu *vcpu)
1106 {
1107 	unsigned long type = kvmppc_get_gpr(vcpu, 6);
1108 	unsigned long pid, pg_sizes, start, end;
1109 
1110 	/*
1111 	 * The partition-scoped invalidations aren't handled here in L0.
1112 	 */
1113 	if (type & H_RPTI_TYPE_NESTED)
1114 		return RESUME_HOST;
1115 
1116 	pid = kvmppc_get_gpr(vcpu, 4);
1117 	pg_sizes = kvmppc_get_gpr(vcpu, 7);
1118 	start = kvmppc_get_gpr(vcpu, 8);
1119 	end = kvmppc_get_gpr(vcpu, 9);
1120 
1121 	do_h_rpt_invalidate_prt(pid, vcpu->arch.nested->shadow_lpid,
1122 				type, pg_sizes, start, end);
1123 
1124 	kvmppc_set_gpr(vcpu, 3, H_SUCCESS);
1125 	return RESUME_GUEST;
1126 }
1127 
kvmppc_h_rpt_invalidate(struct kvm_vcpu * vcpu,unsigned long id,unsigned long target,unsigned long type,unsigned long pg_sizes,unsigned long start,unsigned long end)1128 static long kvmppc_h_rpt_invalidate(struct kvm_vcpu *vcpu,
1129 				    unsigned long id, unsigned long target,
1130 				    unsigned long type, unsigned long pg_sizes,
1131 				    unsigned long start, unsigned long end)
1132 {
1133 	if (!kvm_is_radix(vcpu->kvm))
1134 		return H_UNSUPPORTED;
1135 
1136 	if (end < start)
1137 		return H_P5;
1138 
1139 	/*
1140 	 * Partition-scoped invalidation for nested guests.
1141 	 */
1142 	if (type & H_RPTI_TYPE_NESTED) {
1143 		if (!nesting_enabled(vcpu->kvm))
1144 			return H_FUNCTION;
1145 
1146 		/* Support only cores as target */
1147 		if (target != H_RPTI_TARGET_CMMU)
1148 			return H_P2;
1149 
1150 		return do_h_rpt_invalidate_pat(vcpu, id, type, pg_sizes,
1151 					       start, end);
1152 	}
1153 
1154 	/*
1155 	 * Process-scoped invalidation for L1 guests.
1156 	 */
1157 	do_h_rpt_invalidate_prt(id, vcpu->kvm->arch.lpid,
1158 				type, pg_sizes, start, end);
1159 	return H_SUCCESS;
1160 }
1161 
kvmppc_pseries_do_hcall(struct kvm_vcpu * vcpu)1162 int kvmppc_pseries_do_hcall(struct kvm_vcpu *vcpu)
1163 {
1164 	struct kvm *kvm = vcpu->kvm;
1165 	unsigned long req = kvmppc_get_gpr(vcpu, 3);
1166 	unsigned long target, ret = H_SUCCESS;
1167 	int yield_count;
1168 	struct kvm_vcpu *tvcpu;
1169 	int idx, rc;
1170 
1171 	if (req <= MAX_HCALL_OPCODE &&
1172 	    !test_bit(req/4, vcpu->kvm->arch.enabled_hcalls))
1173 		return RESUME_HOST;
1174 
1175 	switch (req) {
1176 	case H_REMOVE:
1177 		ret = kvmppc_h_remove(vcpu, kvmppc_get_gpr(vcpu, 4),
1178 					kvmppc_get_gpr(vcpu, 5),
1179 					kvmppc_get_gpr(vcpu, 6));
1180 		if (ret == H_TOO_HARD)
1181 			return RESUME_HOST;
1182 		break;
1183 	case H_ENTER:
1184 		ret = kvmppc_h_enter(vcpu, kvmppc_get_gpr(vcpu, 4),
1185 					kvmppc_get_gpr(vcpu, 5),
1186 					kvmppc_get_gpr(vcpu, 6),
1187 					kvmppc_get_gpr(vcpu, 7));
1188 		if (ret == H_TOO_HARD)
1189 			return RESUME_HOST;
1190 		break;
1191 	case H_READ:
1192 		ret = kvmppc_h_read(vcpu, kvmppc_get_gpr(vcpu, 4),
1193 					kvmppc_get_gpr(vcpu, 5));
1194 		if (ret == H_TOO_HARD)
1195 			return RESUME_HOST;
1196 		break;
1197 	case H_CLEAR_MOD:
1198 		ret = kvmppc_h_clear_mod(vcpu, kvmppc_get_gpr(vcpu, 4),
1199 					kvmppc_get_gpr(vcpu, 5));
1200 		if (ret == H_TOO_HARD)
1201 			return RESUME_HOST;
1202 		break;
1203 	case H_CLEAR_REF:
1204 		ret = kvmppc_h_clear_ref(vcpu, kvmppc_get_gpr(vcpu, 4),
1205 					kvmppc_get_gpr(vcpu, 5));
1206 		if (ret == H_TOO_HARD)
1207 			return RESUME_HOST;
1208 		break;
1209 	case H_PROTECT:
1210 		ret = kvmppc_h_protect(vcpu, kvmppc_get_gpr(vcpu, 4),
1211 					kvmppc_get_gpr(vcpu, 5),
1212 					kvmppc_get_gpr(vcpu, 6));
1213 		if (ret == H_TOO_HARD)
1214 			return RESUME_HOST;
1215 		break;
1216 	case H_BULK_REMOVE:
1217 		ret = kvmppc_h_bulk_remove(vcpu);
1218 		if (ret == H_TOO_HARD)
1219 			return RESUME_HOST;
1220 		break;
1221 
1222 	case H_CEDE:
1223 		break;
1224 	case H_PROD:
1225 		target = kvmppc_get_gpr(vcpu, 4);
1226 		tvcpu = kvmppc_find_vcpu(kvm, target);
1227 		if (!tvcpu) {
1228 			ret = H_PARAMETER;
1229 			break;
1230 		}
1231 		tvcpu->arch.prodded = 1;
1232 		smp_mb(); /* This orders prodded store vs ceded load */
1233 		if (tvcpu->arch.ceded)
1234 			kvmppc_fast_vcpu_kick_hv(tvcpu);
1235 		break;
1236 	case H_CONFER:
1237 		target = kvmppc_get_gpr(vcpu, 4);
1238 		if (target == -1)
1239 			break;
1240 		tvcpu = kvmppc_find_vcpu(kvm, target);
1241 		if (!tvcpu) {
1242 			ret = H_PARAMETER;
1243 			break;
1244 		}
1245 		yield_count = kvmppc_get_gpr(vcpu, 5);
1246 		if (kvmppc_get_yield_count(tvcpu) != yield_count)
1247 			break;
1248 		kvm_arch_vcpu_yield_to(tvcpu);
1249 		break;
1250 	case H_REGISTER_VPA:
1251 		ret = do_h_register_vpa(vcpu, kvmppc_get_gpr(vcpu, 4),
1252 					kvmppc_get_gpr(vcpu, 5),
1253 					kvmppc_get_gpr(vcpu, 6));
1254 		break;
1255 	case H_RTAS:
1256 		if (list_empty(&kvm->arch.rtas_tokens))
1257 			return RESUME_HOST;
1258 
1259 		idx = srcu_read_lock(&kvm->srcu);
1260 		rc = kvmppc_rtas_hcall(vcpu);
1261 		srcu_read_unlock(&kvm->srcu, idx);
1262 
1263 		if (rc == -ENOENT)
1264 			return RESUME_HOST;
1265 		else if (rc == 0)
1266 			break;
1267 
1268 		/* Send the error out to userspace via KVM_RUN */
1269 		return rc;
1270 	case H_LOGICAL_CI_LOAD:
1271 		ret = kvmppc_h_logical_ci_load(vcpu);
1272 		if (ret == H_TOO_HARD)
1273 			return RESUME_HOST;
1274 		break;
1275 	case H_LOGICAL_CI_STORE:
1276 		ret = kvmppc_h_logical_ci_store(vcpu);
1277 		if (ret == H_TOO_HARD)
1278 			return RESUME_HOST;
1279 		break;
1280 	case H_SET_MODE:
1281 		ret = kvmppc_h_set_mode(vcpu, kvmppc_get_gpr(vcpu, 4),
1282 					kvmppc_get_gpr(vcpu, 5),
1283 					kvmppc_get_gpr(vcpu, 6),
1284 					kvmppc_get_gpr(vcpu, 7));
1285 		if (ret == H_TOO_HARD)
1286 			return RESUME_HOST;
1287 		break;
1288 	case H_XIRR:
1289 	case H_CPPR:
1290 	case H_EOI:
1291 	case H_IPI:
1292 	case H_IPOLL:
1293 	case H_XIRR_X:
1294 		if (kvmppc_xics_enabled(vcpu)) {
1295 			if (xics_on_xive()) {
1296 				ret = H_NOT_AVAILABLE;
1297 				return RESUME_GUEST;
1298 			}
1299 			ret = kvmppc_xics_hcall(vcpu, req);
1300 			break;
1301 		}
1302 		return RESUME_HOST;
1303 	case H_SET_DABR:
1304 		ret = kvmppc_h_set_dabr(vcpu, kvmppc_get_gpr(vcpu, 4));
1305 		break;
1306 	case H_SET_XDABR:
1307 		ret = kvmppc_h_set_xdabr(vcpu, kvmppc_get_gpr(vcpu, 4),
1308 						kvmppc_get_gpr(vcpu, 5));
1309 		break;
1310 #ifdef CONFIG_SPAPR_TCE_IOMMU
1311 	case H_GET_TCE:
1312 		ret = kvmppc_h_get_tce(vcpu, kvmppc_get_gpr(vcpu, 4),
1313 						kvmppc_get_gpr(vcpu, 5));
1314 		if (ret == H_TOO_HARD)
1315 			return RESUME_HOST;
1316 		break;
1317 	case H_PUT_TCE:
1318 		ret = kvmppc_h_put_tce(vcpu, kvmppc_get_gpr(vcpu, 4),
1319 						kvmppc_get_gpr(vcpu, 5),
1320 						kvmppc_get_gpr(vcpu, 6));
1321 		if (ret == H_TOO_HARD)
1322 			return RESUME_HOST;
1323 		break;
1324 	case H_PUT_TCE_INDIRECT:
1325 		ret = kvmppc_h_put_tce_indirect(vcpu, kvmppc_get_gpr(vcpu, 4),
1326 						kvmppc_get_gpr(vcpu, 5),
1327 						kvmppc_get_gpr(vcpu, 6),
1328 						kvmppc_get_gpr(vcpu, 7));
1329 		if (ret == H_TOO_HARD)
1330 			return RESUME_HOST;
1331 		break;
1332 	case H_STUFF_TCE:
1333 		ret = kvmppc_h_stuff_tce(vcpu, kvmppc_get_gpr(vcpu, 4),
1334 						kvmppc_get_gpr(vcpu, 5),
1335 						kvmppc_get_gpr(vcpu, 6),
1336 						kvmppc_get_gpr(vcpu, 7));
1337 		if (ret == H_TOO_HARD)
1338 			return RESUME_HOST;
1339 		break;
1340 #endif
1341 	case H_RANDOM: {
1342 		unsigned long rand;
1343 
1344 		if (!arch_get_random_seed_longs(&rand, 1))
1345 			ret = H_HARDWARE;
1346 		kvmppc_set_gpr(vcpu, 4, rand);
1347 		break;
1348 	}
1349 	case H_RPT_INVALIDATE:
1350 		ret = kvmppc_h_rpt_invalidate(vcpu, kvmppc_get_gpr(vcpu, 4),
1351 					      kvmppc_get_gpr(vcpu, 5),
1352 					      kvmppc_get_gpr(vcpu, 6),
1353 					      kvmppc_get_gpr(vcpu, 7),
1354 					      kvmppc_get_gpr(vcpu, 8),
1355 					      kvmppc_get_gpr(vcpu, 9));
1356 		break;
1357 
1358 	case H_SET_PARTITION_TABLE:
1359 		ret = H_FUNCTION;
1360 		if (nesting_enabled(kvm))
1361 			ret = kvmhv_set_partition_table(vcpu);
1362 		break;
1363 	case H_ENTER_NESTED:
1364 		ret = H_FUNCTION;
1365 		if (!nesting_enabled(kvm))
1366 			break;
1367 		ret = kvmhv_enter_nested_guest(vcpu);
1368 		if (ret == H_INTERRUPT) {
1369 			kvmppc_set_gpr(vcpu, 3, 0);
1370 			vcpu->arch.hcall_needed = 0;
1371 			return -EINTR;
1372 		} else if (ret == H_TOO_HARD) {
1373 			kvmppc_set_gpr(vcpu, 3, 0);
1374 			vcpu->arch.hcall_needed = 0;
1375 			return RESUME_HOST;
1376 		}
1377 		break;
1378 	case H_TLB_INVALIDATE:
1379 		ret = H_FUNCTION;
1380 		if (nesting_enabled(kvm))
1381 			ret = kvmhv_do_nested_tlbie(vcpu);
1382 		break;
1383 	case H_COPY_TOFROM_GUEST:
1384 		ret = H_FUNCTION;
1385 		if (nesting_enabled(kvm))
1386 			ret = kvmhv_copy_tofrom_guest_nested(vcpu);
1387 		break;
1388 	case H_PAGE_INIT:
1389 		ret = kvmppc_h_page_init(vcpu, kvmppc_get_gpr(vcpu, 4),
1390 					 kvmppc_get_gpr(vcpu, 5),
1391 					 kvmppc_get_gpr(vcpu, 6));
1392 		break;
1393 	case H_SVM_PAGE_IN:
1394 		ret = H_UNSUPPORTED;
1395 		if (kvmppc_get_srr1(vcpu) & MSR_S)
1396 			ret = kvmppc_h_svm_page_in(kvm,
1397 						   kvmppc_get_gpr(vcpu, 4),
1398 						   kvmppc_get_gpr(vcpu, 5),
1399 						   kvmppc_get_gpr(vcpu, 6));
1400 		break;
1401 	case H_SVM_PAGE_OUT:
1402 		ret = H_UNSUPPORTED;
1403 		if (kvmppc_get_srr1(vcpu) & MSR_S)
1404 			ret = kvmppc_h_svm_page_out(kvm,
1405 						    kvmppc_get_gpr(vcpu, 4),
1406 						    kvmppc_get_gpr(vcpu, 5),
1407 						    kvmppc_get_gpr(vcpu, 6));
1408 		break;
1409 	case H_SVM_INIT_START:
1410 		ret = H_UNSUPPORTED;
1411 		if (kvmppc_get_srr1(vcpu) & MSR_S)
1412 			ret = kvmppc_h_svm_init_start(kvm);
1413 		break;
1414 	case H_SVM_INIT_DONE:
1415 		ret = H_UNSUPPORTED;
1416 		if (kvmppc_get_srr1(vcpu) & MSR_S)
1417 			ret = kvmppc_h_svm_init_done(kvm);
1418 		break;
1419 	case H_SVM_INIT_ABORT:
1420 		/*
1421 		 * Even if that call is made by the Ultravisor, the SSR1 value
1422 		 * is the guest context one, with the secure bit clear as it has
1423 		 * not yet been secured. So we can't check it here.
1424 		 * Instead the kvm->arch.secure_guest flag is checked inside
1425 		 * kvmppc_h_svm_init_abort().
1426 		 */
1427 		ret = kvmppc_h_svm_init_abort(kvm);
1428 		break;
1429 
1430 	default:
1431 		return RESUME_HOST;
1432 	}
1433 	WARN_ON_ONCE(ret == H_TOO_HARD);
1434 	kvmppc_set_gpr(vcpu, 3, ret);
1435 	vcpu->arch.hcall_needed = 0;
1436 	return RESUME_GUEST;
1437 }
1438 
1439 /*
1440  * Handle H_CEDE in the P9 path where we don't call the real-mode hcall
1441  * handlers in book3s_hv_rmhandlers.S.
1442  *
1443  * This has to be done early, not in kvmppc_pseries_do_hcall(), so
1444  * that the cede logic in kvmppc_run_single_vcpu() works properly.
1445  */
kvmppc_cede(struct kvm_vcpu * vcpu)1446 static void kvmppc_cede(struct kvm_vcpu *vcpu)
1447 {
1448 	__kvmppc_set_msr_hv(vcpu, __kvmppc_get_msr_hv(vcpu) | MSR_EE);
1449 	vcpu->arch.ceded = 1;
1450 	smp_mb();
1451 	if (vcpu->arch.prodded) {
1452 		vcpu->arch.prodded = 0;
1453 		smp_mb();
1454 		vcpu->arch.ceded = 0;
1455 	}
1456 }
1457 
kvmppc_hcall_impl_hv(unsigned long cmd)1458 static int kvmppc_hcall_impl_hv(unsigned long cmd)
1459 {
1460 	switch (cmd) {
1461 	case H_CEDE:
1462 	case H_PROD:
1463 	case H_CONFER:
1464 	case H_REGISTER_VPA:
1465 	case H_SET_MODE:
1466 #ifdef CONFIG_SPAPR_TCE_IOMMU
1467 	case H_GET_TCE:
1468 	case H_PUT_TCE:
1469 	case H_PUT_TCE_INDIRECT:
1470 	case H_STUFF_TCE:
1471 #endif
1472 	case H_LOGICAL_CI_LOAD:
1473 	case H_LOGICAL_CI_STORE:
1474 #ifdef CONFIG_KVM_XICS
1475 	case H_XIRR:
1476 	case H_CPPR:
1477 	case H_EOI:
1478 	case H_IPI:
1479 	case H_IPOLL:
1480 	case H_XIRR_X:
1481 #endif
1482 	case H_PAGE_INIT:
1483 	case H_RPT_INVALIDATE:
1484 		return 1;
1485 	}
1486 
1487 	/* See if it's in the real-mode table */
1488 	return kvmppc_hcall_impl_hv_realmode(cmd);
1489 }
1490 
kvmppc_emulate_debug_inst(struct kvm_vcpu * vcpu)1491 static int kvmppc_emulate_debug_inst(struct kvm_vcpu *vcpu)
1492 {
1493 	ppc_inst_t last_inst;
1494 
1495 	if (kvmppc_get_last_inst(vcpu, INST_GENERIC, &last_inst) !=
1496 					EMULATE_DONE) {
1497 		/*
1498 		 * Fetch failed, so return to guest and
1499 		 * try executing it again.
1500 		 */
1501 		return RESUME_GUEST;
1502 	}
1503 
1504 	if (ppc_inst_val(last_inst) == KVMPPC_INST_SW_BREAKPOINT) {
1505 		vcpu->run->exit_reason = KVM_EXIT_DEBUG;
1506 		vcpu->run->debug.arch.address = kvmppc_get_pc(vcpu);
1507 		return RESUME_HOST;
1508 	} else {
1509 		kvmppc_core_queue_program(vcpu, SRR1_PROGILL |
1510 				(kvmppc_get_msr(vcpu) & SRR1_PREFIXED));
1511 		return RESUME_GUEST;
1512 	}
1513 }
1514 
do_nothing(void * x)1515 static void do_nothing(void *x)
1516 {
1517 }
1518 
kvmppc_read_dpdes(struct kvm_vcpu * vcpu)1519 static unsigned long kvmppc_read_dpdes(struct kvm_vcpu *vcpu)
1520 {
1521 	int thr, cpu, pcpu, nthreads;
1522 	struct kvm_vcpu *v;
1523 	unsigned long dpdes;
1524 
1525 	nthreads = vcpu->kvm->arch.emul_smt_mode;
1526 	dpdes = 0;
1527 	cpu = vcpu->vcpu_id & ~(nthreads - 1);
1528 	for (thr = 0; thr < nthreads; ++thr, ++cpu) {
1529 		v = kvmppc_find_vcpu(vcpu->kvm, cpu);
1530 		if (!v)
1531 			continue;
1532 		/*
1533 		 * If the vcpu is currently running on a physical cpu thread,
1534 		 * interrupt it in order to pull it out of the guest briefly,
1535 		 * which will update its vcore->dpdes value.
1536 		 */
1537 		pcpu = READ_ONCE(v->cpu);
1538 		if (pcpu >= 0)
1539 			smp_call_function_single(pcpu, do_nothing, NULL, 1);
1540 		if (kvmppc_doorbell_pending(v))
1541 			dpdes |= 1 << thr;
1542 	}
1543 	return dpdes;
1544 }
1545 
1546 /*
1547  * On POWER9, emulate doorbell-related instructions in order to
1548  * give the guest the illusion of running on a multi-threaded core.
1549  * The instructions emulated are msgsndp, msgclrp, mfspr TIR,
1550  * and mfspr DPDES.
1551  */
kvmppc_emulate_doorbell_instr(struct kvm_vcpu * vcpu)1552 static int kvmppc_emulate_doorbell_instr(struct kvm_vcpu *vcpu)
1553 {
1554 	u32 inst, rb, thr;
1555 	unsigned long arg;
1556 	struct kvm *kvm = vcpu->kvm;
1557 	struct kvm_vcpu *tvcpu;
1558 	ppc_inst_t pinst;
1559 
1560 	if (kvmppc_get_last_inst(vcpu, INST_GENERIC, &pinst) != EMULATE_DONE)
1561 		return RESUME_GUEST;
1562 	inst = ppc_inst_val(pinst);
1563 	if (get_op(inst) != 31)
1564 		return EMULATE_FAIL;
1565 	rb = get_rb(inst);
1566 	thr = vcpu->vcpu_id & (kvm->arch.emul_smt_mode - 1);
1567 	switch (get_xop(inst)) {
1568 	case OP_31_XOP_MSGSNDP:
1569 		arg = kvmppc_get_gpr(vcpu, rb);
1570 		if (((arg >> 27) & 0x1f) != PPC_DBELL_SERVER)
1571 			break;
1572 		arg &= 0x7f;
1573 		if (arg >= kvm->arch.emul_smt_mode)
1574 			break;
1575 		tvcpu = kvmppc_find_vcpu(kvm, vcpu->vcpu_id - thr + arg);
1576 		if (!tvcpu)
1577 			break;
1578 		if (!tvcpu->arch.doorbell_request) {
1579 			tvcpu->arch.doorbell_request = 1;
1580 			kvmppc_fast_vcpu_kick_hv(tvcpu);
1581 		}
1582 		break;
1583 	case OP_31_XOP_MSGCLRP:
1584 		arg = kvmppc_get_gpr(vcpu, rb);
1585 		if (((arg >> 27) & 0x1f) != PPC_DBELL_SERVER)
1586 			break;
1587 		vcpu->arch.vcore->dpdes = 0;
1588 		vcpu->arch.doorbell_request = 0;
1589 		break;
1590 	case OP_31_XOP_MFSPR:
1591 		switch (get_sprn(inst)) {
1592 		case SPRN_TIR:
1593 			arg = thr;
1594 			break;
1595 		case SPRN_DPDES:
1596 			arg = kvmppc_read_dpdes(vcpu);
1597 			break;
1598 		default:
1599 			return EMULATE_FAIL;
1600 		}
1601 		kvmppc_set_gpr(vcpu, get_rt(inst), arg);
1602 		break;
1603 	default:
1604 		return EMULATE_FAIL;
1605 	}
1606 	kvmppc_set_pc(vcpu, kvmppc_get_pc(vcpu) + 4);
1607 	return RESUME_GUEST;
1608 }
1609 
1610 /*
1611  * If the lppaca had pmcregs_in_use clear when we exited the guest, then
1612  * HFSCR_PM is cleared for next entry. If the guest then tries to access
1613  * the PMU SPRs, we get this facility unavailable interrupt. Putting HFSCR_PM
1614  * back in the guest HFSCR will cause the next entry to load the PMU SPRs and
1615  * allow the guest access to continue.
1616  */
kvmppc_pmu_unavailable(struct kvm_vcpu * vcpu)1617 static int kvmppc_pmu_unavailable(struct kvm_vcpu *vcpu)
1618 {
1619 	if (!(vcpu->arch.hfscr_permitted & HFSCR_PM))
1620 		return EMULATE_FAIL;
1621 
1622 	kvmppc_set_hfscr_hv(vcpu, kvmppc_get_hfscr_hv(vcpu) | HFSCR_PM);
1623 
1624 	return RESUME_GUEST;
1625 }
1626 
kvmppc_ebb_unavailable(struct kvm_vcpu * vcpu)1627 static int kvmppc_ebb_unavailable(struct kvm_vcpu *vcpu)
1628 {
1629 	if (!(vcpu->arch.hfscr_permitted & HFSCR_EBB))
1630 		return EMULATE_FAIL;
1631 
1632 	kvmppc_set_hfscr_hv(vcpu, kvmppc_get_hfscr_hv(vcpu) | HFSCR_EBB);
1633 
1634 	return RESUME_GUEST;
1635 }
1636 
kvmppc_tm_unavailable(struct kvm_vcpu * vcpu)1637 static int kvmppc_tm_unavailable(struct kvm_vcpu *vcpu)
1638 {
1639 	if (!(vcpu->arch.hfscr_permitted & HFSCR_TM))
1640 		return EMULATE_FAIL;
1641 
1642 	kvmppc_set_hfscr_hv(vcpu, kvmppc_get_hfscr_hv(vcpu) | HFSCR_TM);
1643 
1644 	return RESUME_GUEST;
1645 }
1646 
kvmppc_handle_exit_hv(struct kvm_vcpu * vcpu,struct task_struct * tsk)1647 static int kvmppc_handle_exit_hv(struct kvm_vcpu *vcpu,
1648 				 struct task_struct *tsk)
1649 {
1650 	struct kvm_run *run = vcpu->run;
1651 	int r = RESUME_HOST;
1652 
1653 	vcpu->stat.sum_exits++;
1654 
1655 	/*
1656 	 * This can happen if an interrupt occurs in the last stages
1657 	 * of guest entry or the first stages of guest exit (i.e. after
1658 	 * setting paca->kvm_hstate.in_guest to KVM_GUEST_MODE_GUEST_HV
1659 	 * and before setting it to KVM_GUEST_MODE_HOST_HV).
1660 	 * That can happen due to a bug, or due to a machine check
1661 	 * occurring at just the wrong time.
1662 	 */
1663 	if (!kvmhv_is_nestedv2() && (__kvmppc_get_msr_hv(vcpu) & MSR_HV)) {
1664 		printk(KERN_EMERG "KVM trap in HV mode!\n");
1665 		printk(KERN_EMERG "trap=0x%x | pc=0x%lx | msr=0x%llx\n",
1666 			vcpu->arch.trap, kvmppc_get_pc(vcpu),
1667 			vcpu->arch.shregs.msr);
1668 		kvmppc_dump_regs(vcpu);
1669 		run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
1670 		run->hw.hardware_exit_reason = vcpu->arch.trap;
1671 		return RESUME_HOST;
1672 	}
1673 	run->exit_reason = KVM_EXIT_UNKNOWN;
1674 	run->ready_for_interrupt_injection = 1;
1675 	switch (vcpu->arch.trap) {
1676 	/* We're good on these - the host merely wanted to get our attention */
1677 	case BOOK3S_INTERRUPT_NESTED_HV_DECREMENTER:
1678 		WARN_ON_ONCE(1); /* Should never happen */
1679 		vcpu->arch.trap = BOOK3S_INTERRUPT_HV_DECREMENTER;
1680 		fallthrough;
1681 	case BOOK3S_INTERRUPT_HV_DECREMENTER:
1682 		vcpu->stat.dec_exits++;
1683 		r = RESUME_GUEST;
1684 		break;
1685 	case BOOK3S_INTERRUPT_EXTERNAL:
1686 	case BOOK3S_INTERRUPT_H_DOORBELL:
1687 	case BOOK3S_INTERRUPT_H_VIRT:
1688 		vcpu->stat.ext_intr_exits++;
1689 		r = RESUME_GUEST;
1690 		break;
1691 	/* SR/HMI/PMI are HV interrupts that host has handled. Resume guest.*/
1692 	case BOOK3S_INTERRUPT_HMI:
1693 	case BOOK3S_INTERRUPT_PERFMON:
1694 	case BOOK3S_INTERRUPT_SYSTEM_RESET:
1695 		r = RESUME_GUEST;
1696 		break;
1697 	case BOOK3S_INTERRUPT_MACHINE_CHECK: {
1698 		static DEFINE_RATELIMIT_STATE(rs, DEFAULT_RATELIMIT_INTERVAL,
1699 					      DEFAULT_RATELIMIT_BURST);
1700 		/*
1701 		 * Print the MCE event to host console. Ratelimit so the guest
1702 		 * can't flood the host log.
1703 		 */
1704 		if (__ratelimit(&rs))
1705 			machine_check_print_event_info(&vcpu->arch.mce_evt,false, true);
1706 
1707 		/*
1708 		 * If the guest can do FWNMI, exit to userspace so it can
1709 		 * deliver a FWNMI to the guest.
1710 		 * Otherwise we synthesize a machine check for the guest
1711 		 * so that it knows that the machine check occurred.
1712 		 */
1713 		if (!vcpu->kvm->arch.fwnmi_enabled) {
1714 			ulong flags = (__kvmppc_get_msr_hv(vcpu) & 0x083c0000) |
1715 					(kvmppc_get_msr(vcpu) & SRR1_PREFIXED);
1716 			kvmppc_core_queue_machine_check(vcpu, flags);
1717 			r = RESUME_GUEST;
1718 			break;
1719 		}
1720 
1721 		/* Exit to guest with KVM_EXIT_NMI as exit reason */
1722 		run->exit_reason = KVM_EXIT_NMI;
1723 		run->hw.hardware_exit_reason = vcpu->arch.trap;
1724 		/* Clear out the old NMI status from run->flags */
1725 		run->flags &= ~KVM_RUN_PPC_NMI_DISP_MASK;
1726 		/* Now set the NMI status */
1727 		if (vcpu->arch.mce_evt.disposition == MCE_DISPOSITION_RECOVERED)
1728 			run->flags |= KVM_RUN_PPC_NMI_DISP_FULLY_RECOV;
1729 		else
1730 			run->flags |= KVM_RUN_PPC_NMI_DISP_NOT_RECOV;
1731 
1732 		r = RESUME_HOST;
1733 		break;
1734 	}
1735 	case BOOK3S_INTERRUPT_PROGRAM:
1736 	{
1737 		ulong flags;
1738 		/*
1739 		 * Normally program interrupts are delivered directly
1740 		 * to the guest by the hardware, but we can get here
1741 		 * as a result of a hypervisor emulation interrupt
1742 		 * (e40) getting turned into a 700 by BML RTAS.
1743 		 */
1744 		flags = (__kvmppc_get_msr_hv(vcpu) & 0x1f0000ull) |
1745 			(kvmppc_get_msr(vcpu) & SRR1_PREFIXED);
1746 		kvmppc_core_queue_program(vcpu, flags);
1747 		r = RESUME_GUEST;
1748 		break;
1749 	}
1750 	case BOOK3S_INTERRUPT_SYSCALL:
1751 	{
1752 		int i;
1753 
1754 		if (!kvmhv_is_nestedv2() && unlikely(__kvmppc_get_msr_hv(vcpu) & MSR_PR)) {
1755 			/*
1756 			 * Guest userspace executed sc 1. This can only be
1757 			 * reached by the P9 path because the old path
1758 			 * handles this case in realmode hcall handlers.
1759 			 */
1760 			if (!kvmhv_vcpu_is_radix(vcpu)) {
1761 				/*
1762 				 * A guest could be running PR KVM, so this
1763 				 * may be a PR KVM hcall. It must be reflected
1764 				 * to the guest kernel as a sc interrupt.
1765 				 */
1766 				kvmppc_core_queue_syscall(vcpu);
1767 			} else {
1768 				/*
1769 				 * Radix guests can not run PR KVM or nested HV
1770 				 * hash guests which might run PR KVM, so this
1771 				 * is always a privilege fault. Send a program
1772 				 * check to guest kernel.
1773 				 */
1774 				kvmppc_core_queue_program(vcpu, SRR1_PROGPRIV);
1775 			}
1776 			r = RESUME_GUEST;
1777 			break;
1778 		}
1779 
1780 		/*
1781 		 * hcall - gather args and set exit_reason. This will next be
1782 		 * handled by kvmppc_pseries_do_hcall which may be able to deal
1783 		 * with it and resume guest, or may punt to userspace.
1784 		 */
1785 		run->papr_hcall.nr = kvmppc_get_gpr(vcpu, 3);
1786 		for (i = 0; i < 9; ++i)
1787 			run->papr_hcall.args[i] = kvmppc_get_gpr(vcpu, 4 + i);
1788 		run->exit_reason = KVM_EXIT_PAPR_HCALL;
1789 		vcpu->arch.hcall_needed = 1;
1790 		r = RESUME_HOST;
1791 		break;
1792 	}
1793 	/*
1794 	 * We get these next two if the guest accesses a page which it thinks
1795 	 * it has mapped but which is not actually present, either because
1796 	 * it is for an emulated I/O device or because the corresonding
1797 	 * host page has been paged out.
1798 	 *
1799 	 * Any other HDSI/HISI interrupts have been handled already for P7/8
1800 	 * guests. For POWER9 hash guests not using rmhandlers, basic hash
1801 	 * fault handling is done here.
1802 	 */
1803 	case BOOK3S_INTERRUPT_H_DATA_STORAGE: {
1804 		unsigned long vsid;
1805 		long err;
1806 
1807 		if (cpu_has_feature(CPU_FTR_P9_RADIX_PREFETCH_BUG) &&
1808 		    unlikely(vcpu->arch.fault_dsisr == HDSISR_CANARY)) {
1809 			r = RESUME_GUEST; /* Just retry if it's the canary */
1810 			break;
1811 		}
1812 
1813 		if (kvm_is_radix(vcpu->kvm) || !cpu_has_feature(CPU_FTR_ARCH_300)) {
1814 			/*
1815 			 * Radix doesn't require anything, and pre-ISAv3.0 hash
1816 			 * already attempted to handle this in rmhandlers. The
1817 			 * hash fault handling below is v3 only (it uses ASDR
1818 			 * via fault_gpa).
1819 			 */
1820 			r = RESUME_PAGE_FAULT;
1821 			break;
1822 		}
1823 
1824 		if (!(vcpu->arch.fault_dsisr & (DSISR_NOHPTE | DSISR_PROTFAULT))) {
1825 			kvmppc_core_queue_data_storage(vcpu,
1826 				kvmppc_get_msr(vcpu) & SRR1_PREFIXED,
1827 				vcpu->arch.fault_dar, vcpu->arch.fault_dsisr);
1828 			r = RESUME_GUEST;
1829 			break;
1830 		}
1831 
1832 		if (!(__kvmppc_get_msr_hv(vcpu) & MSR_DR))
1833 			vsid = vcpu->kvm->arch.vrma_slb_v;
1834 		else
1835 			vsid = vcpu->arch.fault_gpa;
1836 
1837 		err = kvmppc_hpte_hv_fault(vcpu, vcpu->arch.fault_dar,
1838 				vsid, vcpu->arch.fault_dsisr, true);
1839 		if (err == 0) {
1840 			r = RESUME_GUEST;
1841 		} else if (err == -1 || err == -2) {
1842 			r = RESUME_PAGE_FAULT;
1843 		} else {
1844 			kvmppc_core_queue_data_storage(vcpu,
1845 				kvmppc_get_msr(vcpu) & SRR1_PREFIXED,
1846 				vcpu->arch.fault_dar, err);
1847 			r = RESUME_GUEST;
1848 		}
1849 		break;
1850 	}
1851 	case BOOK3S_INTERRUPT_H_INST_STORAGE: {
1852 		unsigned long vsid;
1853 		long err;
1854 
1855 		vcpu->arch.fault_dar = kvmppc_get_pc(vcpu);
1856 		vcpu->arch.fault_dsisr = __kvmppc_get_msr_hv(vcpu) &
1857 			DSISR_SRR1_MATCH_64S;
1858 		if (kvm_is_radix(vcpu->kvm) || !cpu_has_feature(CPU_FTR_ARCH_300)) {
1859 			/*
1860 			 * Radix doesn't require anything, and pre-ISAv3.0 hash
1861 			 * already attempted to handle this in rmhandlers. The
1862 			 * hash fault handling below is v3 only (it uses ASDR
1863 			 * via fault_gpa).
1864 			 */
1865 			if (__kvmppc_get_msr_hv(vcpu) & HSRR1_HISI_WRITE)
1866 				vcpu->arch.fault_dsisr |= DSISR_ISSTORE;
1867 			r = RESUME_PAGE_FAULT;
1868 			break;
1869 		}
1870 
1871 		if (!(vcpu->arch.fault_dsisr & SRR1_ISI_NOPT)) {
1872 			kvmppc_core_queue_inst_storage(vcpu,
1873 				vcpu->arch.fault_dsisr |
1874 				(kvmppc_get_msr(vcpu) & SRR1_PREFIXED));
1875 			r = RESUME_GUEST;
1876 			break;
1877 		}
1878 
1879 		if (!(__kvmppc_get_msr_hv(vcpu) & MSR_IR))
1880 			vsid = vcpu->kvm->arch.vrma_slb_v;
1881 		else
1882 			vsid = vcpu->arch.fault_gpa;
1883 
1884 		err = kvmppc_hpte_hv_fault(vcpu, vcpu->arch.fault_dar,
1885 				vsid, vcpu->arch.fault_dsisr, false);
1886 		if (err == 0) {
1887 			r = RESUME_GUEST;
1888 		} else if (err == -1) {
1889 			r = RESUME_PAGE_FAULT;
1890 		} else {
1891 			kvmppc_core_queue_inst_storage(vcpu,
1892 				err | (kvmppc_get_msr(vcpu) & SRR1_PREFIXED));
1893 			r = RESUME_GUEST;
1894 		}
1895 		break;
1896 	}
1897 
1898 	/*
1899 	 * This occurs if the guest executes an illegal instruction.
1900 	 * If the guest debug is disabled, generate a program interrupt
1901 	 * to the guest. If guest debug is enabled, we need to check
1902 	 * whether the instruction is a software breakpoint instruction.
1903 	 * Accordingly return to Guest or Host.
1904 	 */
1905 	case BOOK3S_INTERRUPT_H_EMUL_ASSIST:
1906 		if (vcpu->arch.emul_inst != KVM_INST_FETCH_FAILED)
1907 			vcpu->arch.last_inst = kvmppc_need_byteswap(vcpu) ?
1908 				swab32(vcpu->arch.emul_inst) :
1909 				vcpu->arch.emul_inst;
1910 		if (vcpu->guest_debug & KVM_GUESTDBG_USE_SW_BP) {
1911 			r = kvmppc_emulate_debug_inst(vcpu);
1912 		} else {
1913 			kvmppc_core_queue_program(vcpu, SRR1_PROGILL |
1914 				(kvmppc_get_msr(vcpu) & SRR1_PREFIXED));
1915 			r = RESUME_GUEST;
1916 		}
1917 		break;
1918 
1919 #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
1920 	case BOOK3S_INTERRUPT_HV_SOFTPATCH:
1921 		/*
1922 		 * This occurs for various TM-related instructions that
1923 		 * we need to emulate on POWER9 DD2.2.  We have already
1924 		 * handled the cases where the guest was in real-suspend
1925 		 * mode and was transitioning to transactional state.
1926 		 */
1927 		r = kvmhv_p9_tm_emulation(vcpu);
1928 		if (r != -1)
1929 			break;
1930 		fallthrough; /* go to facility unavailable handler */
1931 #endif
1932 
1933 	/*
1934 	 * This occurs if the guest (kernel or userspace), does something that
1935 	 * is prohibited by HFSCR.
1936 	 * On POWER9, this could be a doorbell instruction that we need
1937 	 * to emulate.
1938 	 * Otherwise, we just generate a program interrupt to the guest.
1939 	 */
1940 	case BOOK3S_INTERRUPT_H_FAC_UNAVAIL: {
1941 		u64 cause = kvmppc_get_hfscr_hv(vcpu) >> 56;
1942 
1943 		r = EMULATE_FAIL;
1944 		if (cpu_has_feature(CPU_FTR_ARCH_300)) {
1945 			switch (cause) {
1946 			case FSCR_MSGP_LG:
1947 				r = kvmppc_emulate_doorbell_instr(vcpu);
1948 				break;
1949 			case FSCR_PM_LG:
1950 				r = kvmppc_pmu_unavailable(vcpu);
1951 				break;
1952 			case FSCR_EBB_LG:
1953 				r = kvmppc_ebb_unavailable(vcpu);
1954 				break;
1955 			case FSCR_TM_LG:
1956 				r = kvmppc_tm_unavailable(vcpu);
1957 				break;
1958 			default:
1959 				break;
1960 			}
1961 		}
1962 		if (r == EMULATE_FAIL) {
1963 			kvmppc_core_queue_program(vcpu, SRR1_PROGILL |
1964 				(kvmppc_get_msr(vcpu) & SRR1_PREFIXED));
1965 			r = RESUME_GUEST;
1966 		}
1967 		break;
1968 	}
1969 
1970 	case BOOK3S_INTERRUPT_HV_RM_HARD:
1971 		r = RESUME_PASSTHROUGH;
1972 		break;
1973 	default:
1974 		kvmppc_dump_regs(vcpu);
1975 		printk(KERN_EMERG "trap=0x%x | pc=0x%lx | msr=0x%llx\n",
1976 			vcpu->arch.trap, kvmppc_get_pc(vcpu),
1977 			__kvmppc_get_msr_hv(vcpu));
1978 		run->hw.hardware_exit_reason = vcpu->arch.trap;
1979 		r = RESUME_HOST;
1980 		break;
1981 	}
1982 
1983 	return r;
1984 }
1985 
kvmppc_handle_nested_exit(struct kvm_vcpu * vcpu)1986 static int kvmppc_handle_nested_exit(struct kvm_vcpu *vcpu)
1987 {
1988 	int r;
1989 	int srcu_idx;
1990 
1991 	vcpu->stat.sum_exits++;
1992 
1993 	/*
1994 	 * This can happen if an interrupt occurs in the last stages
1995 	 * of guest entry or the first stages of guest exit (i.e. after
1996 	 * setting paca->kvm_hstate.in_guest to KVM_GUEST_MODE_GUEST_HV
1997 	 * and before setting it to KVM_GUEST_MODE_HOST_HV).
1998 	 * That can happen due to a bug, or due to a machine check
1999 	 * occurring at just the wrong time.
2000 	 */
2001 	if (__kvmppc_get_msr_hv(vcpu) & MSR_HV) {
2002 		pr_emerg("KVM trap in HV mode while nested!\n");
2003 		pr_emerg("trap=0x%x | pc=0x%lx | msr=0x%llx\n",
2004 			 vcpu->arch.trap, kvmppc_get_pc(vcpu),
2005 			 __kvmppc_get_msr_hv(vcpu));
2006 		kvmppc_dump_regs(vcpu);
2007 		return RESUME_HOST;
2008 	}
2009 	switch (vcpu->arch.trap) {
2010 	/* We're good on these - the host merely wanted to get our attention */
2011 	case BOOK3S_INTERRUPT_HV_DECREMENTER:
2012 		vcpu->stat.dec_exits++;
2013 		r = RESUME_GUEST;
2014 		break;
2015 	case BOOK3S_INTERRUPT_EXTERNAL:
2016 		vcpu->stat.ext_intr_exits++;
2017 		r = RESUME_HOST;
2018 		break;
2019 	case BOOK3S_INTERRUPT_H_DOORBELL:
2020 	case BOOK3S_INTERRUPT_H_VIRT:
2021 		vcpu->stat.ext_intr_exits++;
2022 		r = RESUME_GUEST;
2023 		break;
2024 	/* These need to go to the nested HV */
2025 	case BOOK3S_INTERRUPT_NESTED_HV_DECREMENTER:
2026 		vcpu->arch.trap = BOOK3S_INTERRUPT_HV_DECREMENTER;
2027 		vcpu->stat.dec_exits++;
2028 		r = RESUME_HOST;
2029 		break;
2030 	/* SR/HMI/PMI are HV interrupts that host has handled. Resume guest.*/
2031 	case BOOK3S_INTERRUPT_HMI:
2032 	case BOOK3S_INTERRUPT_PERFMON:
2033 	case BOOK3S_INTERRUPT_SYSTEM_RESET:
2034 		r = RESUME_GUEST;
2035 		break;
2036 	case BOOK3S_INTERRUPT_MACHINE_CHECK:
2037 	{
2038 		static DEFINE_RATELIMIT_STATE(rs, DEFAULT_RATELIMIT_INTERVAL,
2039 					      DEFAULT_RATELIMIT_BURST);
2040 		/* Pass the machine check to the L1 guest */
2041 		r = RESUME_HOST;
2042 		/* Print the MCE event to host console. */
2043 		if (__ratelimit(&rs))
2044 			machine_check_print_event_info(&vcpu->arch.mce_evt, false, true);
2045 		break;
2046 	}
2047 	/*
2048 	 * We get these next two if the guest accesses a page which it thinks
2049 	 * it has mapped but which is not actually present, either because
2050 	 * it is for an emulated I/O device or because the corresonding
2051 	 * host page has been paged out.
2052 	 */
2053 	case BOOK3S_INTERRUPT_H_DATA_STORAGE:
2054 		srcu_idx = srcu_read_lock(&vcpu->kvm->srcu);
2055 		r = kvmhv_nested_page_fault(vcpu);
2056 		srcu_read_unlock(&vcpu->kvm->srcu, srcu_idx);
2057 		break;
2058 	case BOOK3S_INTERRUPT_H_INST_STORAGE:
2059 		vcpu->arch.fault_dar = kvmppc_get_pc(vcpu);
2060 		vcpu->arch.fault_dsisr = kvmppc_get_msr(vcpu) &
2061 					 DSISR_SRR1_MATCH_64S;
2062 		if (__kvmppc_get_msr_hv(vcpu) & HSRR1_HISI_WRITE)
2063 			vcpu->arch.fault_dsisr |= DSISR_ISSTORE;
2064 		srcu_idx = srcu_read_lock(&vcpu->kvm->srcu);
2065 		r = kvmhv_nested_page_fault(vcpu);
2066 		srcu_read_unlock(&vcpu->kvm->srcu, srcu_idx);
2067 		break;
2068 
2069 #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
2070 	case BOOK3S_INTERRUPT_HV_SOFTPATCH:
2071 		/*
2072 		 * This occurs for various TM-related instructions that
2073 		 * we need to emulate on POWER9 DD2.2.  We have already
2074 		 * handled the cases where the guest was in real-suspend
2075 		 * mode and was transitioning to transactional state.
2076 		 */
2077 		r = kvmhv_p9_tm_emulation(vcpu);
2078 		if (r != -1)
2079 			break;
2080 		fallthrough; /* go to facility unavailable handler */
2081 #endif
2082 
2083 	case BOOK3S_INTERRUPT_H_FAC_UNAVAIL:
2084 		r = RESUME_HOST;
2085 		break;
2086 
2087 	case BOOK3S_INTERRUPT_HV_RM_HARD:
2088 		vcpu->arch.trap = 0;
2089 		r = RESUME_GUEST;
2090 		if (!xics_on_xive())
2091 			kvmppc_xics_rm_complete(vcpu, 0);
2092 		break;
2093 	case BOOK3S_INTERRUPT_SYSCALL:
2094 	{
2095 		unsigned long req = kvmppc_get_gpr(vcpu, 3);
2096 
2097 		/*
2098 		 * The H_RPT_INVALIDATE hcalls issued by nested
2099 		 * guests for process-scoped invalidations when
2100 		 * GTSE=0, are handled here in L0.
2101 		 */
2102 		if (req == H_RPT_INVALIDATE) {
2103 			r = kvmppc_nested_h_rpt_invalidate(vcpu);
2104 			break;
2105 		}
2106 
2107 		r = RESUME_HOST;
2108 		break;
2109 	}
2110 	default:
2111 		r = RESUME_HOST;
2112 		break;
2113 	}
2114 
2115 	return r;
2116 }
2117 
kvm_arch_vcpu_ioctl_get_sregs_hv(struct kvm_vcpu * vcpu,struct kvm_sregs * sregs)2118 static int kvm_arch_vcpu_ioctl_get_sregs_hv(struct kvm_vcpu *vcpu,
2119 					    struct kvm_sregs *sregs)
2120 {
2121 	int i;
2122 
2123 	memset(sregs, 0, sizeof(struct kvm_sregs));
2124 	sregs->pvr = vcpu->arch.pvr;
2125 	for (i = 0; i < vcpu->arch.slb_max; i++) {
2126 		sregs->u.s.ppc64.slb[i].slbe = vcpu->arch.slb[i].orige;
2127 		sregs->u.s.ppc64.slb[i].slbv = vcpu->arch.slb[i].origv;
2128 	}
2129 
2130 	return 0;
2131 }
2132 
kvm_arch_vcpu_ioctl_set_sregs_hv(struct kvm_vcpu * vcpu,struct kvm_sregs * sregs)2133 static int kvm_arch_vcpu_ioctl_set_sregs_hv(struct kvm_vcpu *vcpu,
2134 					    struct kvm_sregs *sregs)
2135 {
2136 	int i, j;
2137 
2138 	/* Only accept the same PVR as the host's, since we can't spoof it */
2139 	if (sregs->pvr != vcpu->arch.pvr)
2140 		return -EINVAL;
2141 
2142 	j = 0;
2143 	for (i = 0; i < vcpu->arch.slb_nr; i++) {
2144 		if (sregs->u.s.ppc64.slb[i].slbe & SLB_ESID_V) {
2145 			vcpu->arch.slb[j].orige = sregs->u.s.ppc64.slb[i].slbe;
2146 			vcpu->arch.slb[j].origv = sregs->u.s.ppc64.slb[i].slbv;
2147 			++j;
2148 		}
2149 	}
2150 	vcpu->arch.slb_max = j;
2151 
2152 	return 0;
2153 }
2154 
2155 /*
2156  * Enforce limits on guest LPCR values based on hardware availability,
2157  * guest configuration, and possibly hypervisor support and security
2158  * concerns.
2159  */
kvmppc_filter_lpcr_hv(struct kvm * kvm,unsigned long lpcr)2160 unsigned long kvmppc_filter_lpcr_hv(struct kvm *kvm, unsigned long lpcr)
2161 {
2162 	/* LPCR_TC only applies to HPT guests */
2163 	if (kvm_is_radix(kvm))
2164 		lpcr &= ~LPCR_TC;
2165 
2166 	/* On POWER8 and above, userspace can modify AIL */
2167 	if (!cpu_has_feature(CPU_FTR_ARCH_207S))
2168 		lpcr &= ~LPCR_AIL;
2169 	if ((lpcr & LPCR_AIL) != LPCR_AIL_3)
2170 		lpcr &= ~LPCR_AIL; /* LPCR[AIL]=1/2 is disallowed */
2171 	/*
2172 	 * On some POWER9s we force AIL off for radix guests to prevent
2173 	 * executing in MSR[HV]=1 mode with the MMU enabled and PIDR set to
2174 	 * guest, which can result in Q0 translations with LPID=0 PID=PIDR to
2175 	 * be cached, which the host TLB management does not expect.
2176 	 */
2177 	if (kvm_is_radix(kvm) && cpu_has_feature(CPU_FTR_P9_RADIX_PREFETCH_BUG))
2178 		lpcr &= ~LPCR_AIL;
2179 
2180 	/*
2181 	 * On POWER9, allow userspace to enable large decrementer for the
2182 	 * guest, whether or not the host has it enabled.
2183 	 */
2184 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
2185 		lpcr &= ~LPCR_LD;
2186 
2187 	return lpcr;
2188 }
2189 
verify_lpcr(struct kvm * kvm,unsigned long lpcr)2190 static void verify_lpcr(struct kvm *kvm, unsigned long lpcr)
2191 {
2192 	if (lpcr != kvmppc_filter_lpcr_hv(kvm, lpcr)) {
2193 		WARN_ONCE(1, "lpcr 0x%lx differs from filtered 0x%lx\n",
2194 			  lpcr, kvmppc_filter_lpcr_hv(kvm, lpcr));
2195 	}
2196 }
2197 
kvmppc_set_lpcr(struct kvm_vcpu * vcpu,u64 new_lpcr,bool preserve_top32)2198 static void kvmppc_set_lpcr(struct kvm_vcpu *vcpu, u64 new_lpcr,
2199 		bool preserve_top32)
2200 {
2201 	struct kvm *kvm = vcpu->kvm;
2202 	struct kvmppc_vcore *vc = vcpu->arch.vcore;
2203 	u64 mask;
2204 
2205 	spin_lock(&vc->lock);
2206 
2207 	/*
2208 	 * Userspace can only modify
2209 	 * DPFD (default prefetch depth), ILE (interrupt little-endian),
2210 	 * TC (translation control), AIL (alternate interrupt location),
2211 	 * LD (large decrementer).
2212 	 * These are subject to restrictions from kvmppc_filter_lcpr_hv().
2213 	 */
2214 	mask = LPCR_DPFD | LPCR_ILE | LPCR_TC | LPCR_AIL | LPCR_LD;
2215 
2216 	/* Broken 32-bit version of LPCR must not clear top bits */
2217 	if (preserve_top32)
2218 		mask &= 0xFFFFFFFF;
2219 
2220 	new_lpcr = kvmppc_filter_lpcr_hv(kvm,
2221 			(vc->lpcr & ~mask) | (new_lpcr & mask));
2222 
2223 	/*
2224 	 * If ILE (interrupt little-endian) has changed, update the
2225 	 * MSR_LE bit in the intr_msr for each vcpu in this vcore.
2226 	 */
2227 	if ((new_lpcr & LPCR_ILE) != (vc->lpcr & LPCR_ILE)) {
2228 		struct kvm_vcpu *vcpu;
2229 		unsigned long i;
2230 
2231 		kvm_for_each_vcpu(i, vcpu, kvm) {
2232 			if (vcpu->arch.vcore != vc)
2233 				continue;
2234 			if (new_lpcr & LPCR_ILE)
2235 				vcpu->arch.intr_msr |= MSR_LE;
2236 			else
2237 				vcpu->arch.intr_msr &= ~MSR_LE;
2238 		}
2239 	}
2240 
2241 	vc->lpcr = new_lpcr;
2242 	kvmhv_nestedv2_mark_dirty(vcpu, KVMPPC_GSID_LPCR);
2243 
2244 	spin_unlock(&vc->lock);
2245 }
2246 
kvmppc_get_one_reg_hv(struct kvm_vcpu * vcpu,u64 id,union kvmppc_one_reg * val)2247 static int kvmppc_get_one_reg_hv(struct kvm_vcpu *vcpu, u64 id,
2248 				 union kvmppc_one_reg *val)
2249 {
2250 	int r = 0;
2251 	long int i;
2252 
2253 	switch (id) {
2254 	case KVM_REG_PPC_DEBUG_INST:
2255 		*val = get_reg_val(id, KVMPPC_INST_SW_BREAKPOINT);
2256 		break;
2257 	case KVM_REG_PPC_HIOR:
2258 		*val = get_reg_val(id, 0);
2259 		break;
2260 	case KVM_REG_PPC_DABR:
2261 		*val = get_reg_val(id, vcpu->arch.dabr);
2262 		break;
2263 	case KVM_REG_PPC_DABRX:
2264 		*val = get_reg_val(id, vcpu->arch.dabrx);
2265 		break;
2266 	case KVM_REG_PPC_DSCR:
2267 		*val = get_reg_val(id, kvmppc_get_dscr_hv(vcpu));
2268 		break;
2269 	case KVM_REG_PPC_PURR:
2270 		*val = get_reg_val(id, kvmppc_get_purr_hv(vcpu));
2271 		break;
2272 	case KVM_REG_PPC_SPURR:
2273 		*val = get_reg_val(id, kvmppc_get_spurr_hv(vcpu));
2274 		break;
2275 	case KVM_REG_PPC_AMR:
2276 		*val = get_reg_val(id, kvmppc_get_amr_hv(vcpu));
2277 		break;
2278 	case KVM_REG_PPC_UAMOR:
2279 		*val = get_reg_val(id, kvmppc_get_uamor_hv(vcpu));
2280 		break;
2281 	case KVM_REG_PPC_MMCR0 ... KVM_REG_PPC_MMCR1:
2282 		i = id - KVM_REG_PPC_MMCR0;
2283 		*val = get_reg_val(id, kvmppc_get_mmcr_hv(vcpu, i));
2284 		break;
2285 	case KVM_REG_PPC_MMCR2:
2286 		*val = get_reg_val(id, kvmppc_get_mmcr_hv(vcpu, 2));
2287 		break;
2288 	case KVM_REG_PPC_MMCRA:
2289 		*val = get_reg_val(id, kvmppc_get_mmcra_hv(vcpu));
2290 		break;
2291 	case KVM_REG_PPC_MMCRS:
2292 		*val = get_reg_val(id, vcpu->arch.mmcrs);
2293 		break;
2294 	case KVM_REG_PPC_MMCR3:
2295 		*val = get_reg_val(id, kvmppc_get_mmcr_hv(vcpu, 3));
2296 		break;
2297 	case KVM_REG_PPC_PMC1 ... KVM_REG_PPC_PMC8:
2298 		i = id - KVM_REG_PPC_PMC1;
2299 		*val = get_reg_val(id, kvmppc_get_pmc_hv(vcpu, i));
2300 		break;
2301 	case KVM_REG_PPC_SPMC1 ... KVM_REG_PPC_SPMC2:
2302 		i = id - KVM_REG_PPC_SPMC1;
2303 		*val = get_reg_val(id, vcpu->arch.spmc[i]);
2304 		break;
2305 	case KVM_REG_PPC_SIAR:
2306 		*val = get_reg_val(id, kvmppc_get_siar_hv(vcpu));
2307 		break;
2308 	case KVM_REG_PPC_SDAR:
2309 		*val = get_reg_val(id, kvmppc_get_sdar_hv(vcpu));
2310 		break;
2311 	case KVM_REG_PPC_SIER:
2312 		*val = get_reg_val(id, kvmppc_get_sier_hv(vcpu, 0));
2313 		break;
2314 	case KVM_REG_PPC_SIER2:
2315 		*val = get_reg_val(id, kvmppc_get_sier_hv(vcpu, 1));
2316 		break;
2317 	case KVM_REG_PPC_SIER3:
2318 		*val = get_reg_val(id, kvmppc_get_sier_hv(vcpu, 2));
2319 		break;
2320 	case KVM_REG_PPC_IAMR:
2321 		*val = get_reg_val(id, kvmppc_get_iamr_hv(vcpu));
2322 		break;
2323 	case KVM_REG_PPC_PSPB:
2324 		*val = get_reg_val(id, kvmppc_get_pspb_hv(vcpu));
2325 		break;
2326 	case KVM_REG_PPC_DPDES:
2327 		/*
2328 		 * On POWER9, where we are emulating msgsndp etc.,
2329 		 * we return 1 bit for each vcpu, which can come from
2330 		 * either vcore->dpdes or doorbell_request.
2331 		 * On POWER8, doorbell_request is 0.
2332 		 */
2333 		if (cpu_has_feature(CPU_FTR_ARCH_300))
2334 			*val = get_reg_val(id, vcpu->arch.doorbell_request);
2335 		else
2336 			*val = get_reg_val(id, vcpu->arch.vcore->dpdes);
2337 		break;
2338 	case KVM_REG_PPC_VTB:
2339 		*val = get_reg_val(id, kvmppc_get_vtb(vcpu));
2340 		break;
2341 	case KVM_REG_PPC_DAWR:
2342 		*val = get_reg_val(id, kvmppc_get_dawr0_hv(vcpu));
2343 		break;
2344 	case KVM_REG_PPC_DAWRX:
2345 		*val = get_reg_val(id, kvmppc_get_dawrx0_hv(vcpu));
2346 		break;
2347 	case KVM_REG_PPC_DAWR1:
2348 		*val = get_reg_val(id, kvmppc_get_dawr1_hv(vcpu));
2349 		break;
2350 	case KVM_REG_PPC_DAWRX1:
2351 		*val = get_reg_val(id, kvmppc_get_dawrx1_hv(vcpu));
2352 		break;
2353 	case KVM_REG_PPC_DEXCR:
2354 		*val = get_reg_val(id, kvmppc_get_dexcr_hv(vcpu));
2355 		break;
2356 	case KVM_REG_PPC_HASHKEYR:
2357 		*val = get_reg_val(id, kvmppc_get_hashkeyr_hv(vcpu));
2358 		break;
2359 	case KVM_REG_PPC_HASHPKEYR:
2360 		*val = get_reg_val(id, kvmppc_get_hashpkeyr_hv(vcpu));
2361 		break;
2362 	case KVM_REG_PPC_CIABR:
2363 		*val = get_reg_val(id, kvmppc_get_ciabr_hv(vcpu));
2364 		break;
2365 	case KVM_REG_PPC_CSIGR:
2366 		*val = get_reg_val(id, vcpu->arch.csigr);
2367 		break;
2368 	case KVM_REG_PPC_TACR:
2369 		*val = get_reg_val(id, vcpu->arch.tacr);
2370 		break;
2371 	case KVM_REG_PPC_TCSCR:
2372 		*val = get_reg_val(id, vcpu->arch.tcscr);
2373 		break;
2374 	case KVM_REG_PPC_PID:
2375 		*val = get_reg_val(id, kvmppc_get_pid(vcpu));
2376 		break;
2377 	case KVM_REG_PPC_ACOP:
2378 		*val = get_reg_val(id, vcpu->arch.acop);
2379 		break;
2380 	case KVM_REG_PPC_WORT:
2381 		*val = get_reg_val(id, kvmppc_get_wort_hv(vcpu));
2382 		break;
2383 	case KVM_REG_PPC_TIDR:
2384 		*val = get_reg_val(id, vcpu->arch.tid);
2385 		break;
2386 	case KVM_REG_PPC_PSSCR:
2387 		*val = get_reg_val(id, vcpu->arch.psscr);
2388 		break;
2389 	case KVM_REG_PPC_VPA_ADDR:
2390 		spin_lock(&vcpu->arch.vpa_update_lock);
2391 		*val = get_reg_val(id, vcpu->arch.vpa.next_gpa);
2392 		spin_unlock(&vcpu->arch.vpa_update_lock);
2393 		break;
2394 	case KVM_REG_PPC_VPA_SLB:
2395 		spin_lock(&vcpu->arch.vpa_update_lock);
2396 		val->vpaval.addr = vcpu->arch.slb_shadow.next_gpa;
2397 		val->vpaval.length = vcpu->arch.slb_shadow.len;
2398 		spin_unlock(&vcpu->arch.vpa_update_lock);
2399 		break;
2400 	case KVM_REG_PPC_VPA_DTL:
2401 		spin_lock(&vcpu->arch.vpa_update_lock);
2402 		val->vpaval.addr = vcpu->arch.dtl.next_gpa;
2403 		val->vpaval.length = vcpu->arch.dtl.len;
2404 		spin_unlock(&vcpu->arch.vpa_update_lock);
2405 		break;
2406 	case KVM_REG_PPC_TB_OFFSET:
2407 		*val = get_reg_val(id, kvmppc_get_tb_offset(vcpu));
2408 		break;
2409 	case KVM_REG_PPC_LPCR:
2410 	case KVM_REG_PPC_LPCR_64:
2411 		*val = get_reg_val(id, kvmppc_get_lpcr(vcpu));
2412 		break;
2413 	case KVM_REG_PPC_PPR:
2414 		*val = get_reg_val(id, kvmppc_get_ppr_hv(vcpu));
2415 		break;
2416 #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
2417 	case KVM_REG_PPC_TFHAR:
2418 		*val = get_reg_val(id, vcpu->arch.tfhar);
2419 		break;
2420 	case KVM_REG_PPC_TFIAR:
2421 		*val = get_reg_val(id, vcpu->arch.tfiar);
2422 		break;
2423 	case KVM_REG_PPC_TEXASR:
2424 		*val = get_reg_val(id, vcpu->arch.texasr);
2425 		break;
2426 	case KVM_REG_PPC_TM_GPR0 ... KVM_REG_PPC_TM_GPR31:
2427 		i = id - KVM_REG_PPC_TM_GPR0;
2428 		*val = get_reg_val(id, vcpu->arch.gpr_tm[i]);
2429 		break;
2430 	case KVM_REG_PPC_TM_VSR0 ... KVM_REG_PPC_TM_VSR63:
2431 	{
2432 		int j;
2433 		i = id - KVM_REG_PPC_TM_VSR0;
2434 		if (i < 32)
2435 			for (j = 0; j < TS_FPRWIDTH; j++)
2436 				val->vsxval[j] = vcpu->arch.fp_tm.fpr[i][j];
2437 		else {
2438 			if (cpu_has_feature(CPU_FTR_ALTIVEC))
2439 				val->vval = vcpu->arch.vr_tm.vr[i-32];
2440 			else
2441 				r = -ENXIO;
2442 		}
2443 		break;
2444 	}
2445 	case KVM_REG_PPC_TM_CR:
2446 		*val = get_reg_val(id, vcpu->arch.cr_tm);
2447 		break;
2448 	case KVM_REG_PPC_TM_XER:
2449 		*val = get_reg_val(id, vcpu->arch.xer_tm);
2450 		break;
2451 	case KVM_REG_PPC_TM_LR:
2452 		*val = get_reg_val(id, vcpu->arch.lr_tm);
2453 		break;
2454 	case KVM_REG_PPC_TM_CTR:
2455 		*val = get_reg_val(id, vcpu->arch.ctr_tm);
2456 		break;
2457 	case KVM_REG_PPC_TM_FPSCR:
2458 		*val = get_reg_val(id, vcpu->arch.fp_tm.fpscr);
2459 		break;
2460 	case KVM_REG_PPC_TM_AMR:
2461 		*val = get_reg_val(id, vcpu->arch.amr_tm);
2462 		break;
2463 	case KVM_REG_PPC_TM_PPR:
2464 		*val = get_reg_val(id, vcpu->arch.ppr_tm);
2465 		break;
2466 	case KVM_REG_PPC_TM_VRSAVE:
2467 		*val = get_reg_val(id, vcpu->arch.vrsave_tm);
2468 		break;
2469 	case KVM_REG_PPC_TM_VSCR:
2470 		if (cpu_has_feature(CPU_FTR_ALTIVEC))
2471 			*val = get_reg_val(id, vcpu->arch.vr_tm.vscr.u[3]);
2472 		else
2473 			r = -ENXIO;
2474 		break;
2475 	case KVM_REG_PPC_TM_DSCR:
2476 		*val = get_reg_val(id, vcpu->arch.dscr_tm);
2477 		break;
2478 	case KVM_REG_PPC_TM_TAR:
2479 		*val = get_reg_val(id, vcpu->arch.tar_tm);
2480 		break;
2481 #endif
2482 	case KVM_REG_PPC_ARCH_COMPAT:
2483 		*val = get_reg_val(id, kvmppc_get_arch_compat(vcpu));
2484 		break;
2485 	case KVM_REG_PPC_DEC_EXPIRY:
2486 		*val = get_reg_val(id, kvmppc_get_dec_expires(vcpu));
2487 		break;
2488 	case KVM_REG_PPC_ONLINE:
2489 		*val = get_reg_val(id, vcpu->arch.online);
2490 		break;
2491 	case KVM_REG_PPC_PTCR:
2492 		*val = get_reg_val(id, vcpu->kvm->arch.l1_ptcr);
2493 		break;
2494 	case KVM_REG_PPC_FSCR:
2495 		*val = get_reg_val(id, kvmppc_get_fscr_hv(vcpu));
2496 		break;
2497 	default:
2498 		r = -EINVAL;
2499 		break;
2500 	}
2501 
2502 	return r;
2503 }
2504 
kvmppc_set_one_reg_hv(struct kvm_vcpu * vcpu,u64 id,union kvmppc_one_reg * val)2505 static int kvmppc_set_one_reg_hv(struct kvm_vcpu *vcpu, u64 id,
2506 				 union kvmppc_one_reg *val)
2507 {
2508 	int r = 0;
2509 	long int i;
2510 	unsigned long addr, len;
2511 
2512 	switch (id) {
2513 	case KVM_REG_PPC_HIOR:
2514 		/* Only allow this to be set to zero */
2515 		if (set_reg_val(id, *val))
2516 			r = -EINVAL;
2517 		break;
2518 	case KVM_REG_PPC_DABR:
2519 		vcpu->arch.dabr = set_reg_val(id, *val);
2520 		break;
2521 	case KVM_REG_PPC_DABRX:
2522 		vcpu->arch.dabrx = set_reg_val(id, *val) & ~DABRX_HYP;
2523 		break;
2524 	case KVM_REG_PPC_DSCR:
2525 		kvmppc_set_dscr_hv(vcpu, set_reg_val(id, *val));
2526 		break;
2527 	case KVM_REG_PPC_PURR:
2528 		kvmppc_set_purr_hv(vcpu, set_reg_val(id, *val));
2529 		break;
2530 	case KVM_REG_PPC_SPURR:
2531 		kvmppc_set_spurr_hv(vcpu, set_reg_val(id, *val));
2532 		break;
2533 	case KVM_REG_PPC_AMR:
2534 		kvmppc_set_amr_hv(vcpu, set_reg_val(id, *val));
2535 		break;
2536 	case KVM_REG_PPC_UAMOR:
2537 		kvmppc_set_uamor_hv(vcpu, set_reg_val(id, *val));
2538 		break;
2539 	case KVM_REG_PPC_MMCR0 ... KVM_REG_PPC_MMCR1:
2540 		i = id - KVM_REG_PPC_MMCR0;
2541 		kvmppc_set_mmcr_hv(vcpu, i, set_reg_val(id, *val));
2542 		break;
2543 	case KVM_REG_PPC_MMCR2:
2544 		kvmppc_set_mmcr_hv(vcpu, 2, set_reg_val(id, *val));
2545 		break;
2546 	case KVM_REG_PPC_MMCRA:
2547 		kvmppc_set_mmcra_hv(vcpu, set_reg_val(id, *val));
2548 		break;
2549 	case KVM_REG_PPC_MMCRS:
2550 		vcpu->arch.mmcrs = set_reg_val(id, *val);
2551 		break;
2552 	case KVM_REG_PPC_MMCR3:
2553 		kvmppc_set_mmcr_hv(vcpu, 3, set_reg_val(id, *val));
2554 		break;
2555 	case KVM_REG_PPC_PMC1 ... KVM_REG_PPC_PMC8:
2556 		i = id - KVM_REG_PPC_PMC1;
2557 		kvmppc_set_pmc_hv(vcpu, i, set_reg_val(id, *val));
2558 		break;
2559 	case KVM_REG_PPC_SPMC1 ... KVM_REG_PPC_SPMC2:
2560 		i = id - KVM_REG_PPC_SPMC1;
2561 		vcpu->arch.spmc[i] = set_reg_val(id, *val);
2562 		break;
2563 	case KVM_REG_PPC_SIAR:
2564 		kvmppc_set_siar_hv(vcpu, set_reg_val(id, *val));
2565 		break;
2566 	case KVM_REG_PPC_SDAR:
2567 		kvmppc_set_sdar_hv(vcpu, set_reg_val(id, *val));
2568 		break;
2569 	case KVM_REG_PPC_SIER:
2570 		kvmppc_set_sier_hv(vcpu, 0, set_reg_val(id, *val));
2571 		break;
2572 	case KVM_REG_PPC_SIER2:
2573 		kvmppc_set_sier_hv(vcpu, 1, set_reg_val(id, *val));
2574 		break;
2575 	case KVM_REG_PPC_SIER3:
2576 		kvmppc_set_sier_hv(vcpu, 2, set_reg_val(id, *val));
2577 		break;
2578 	case KVM_REG_PPC_IAMR:
2579 		kvmppc_set_iamr_hv(vcpu, set_reg_val(id, *val));
2580 		break;
2581 	case KVM_REG_PPC_PSPB:
2582 		kvmppc_set_pspb_hv(vcpu, set_reg_val(id, *val));
2583 		break;
2584 	case KVM_REG_PPC_DPDES:
2585 		if (cpu_has_feature(CPU_FTR_ARCH_300))
2586 			vcpu->arch.doorbell_request = set_reg_val(id, *val) & 1;
2587 		else
2588 			vcpu->arch.vcore->dpdes = set_reg_val(id, *val);
2589 		break;
2590 	case KVM_REG_PPC_VTB:
2591 		kvmppc_set_vtb(vcpu, set_reg_val(id, *val));
2592 		break;
2593 	case KVM_REG_PPC_DAWR:
2594 		kvmppc_set_dawr0_hv(vcpu, set_reg_val(id, *val));
2595 		break;
2596 	case KVM_REG_PPC_DAWRX:
2597 		kvmppc_set_dawrx0_hv(vcpu, set_reg_val(id, *val) & ~DAWRX_HYP);
2598 		break;
2599 	case KVM_REG_PPC_DAWR1:
2600 		kvmppc_set_dawr1_hv(vcpu, set_reg_val(id, *val));
2601 		break;
2602 	case KVM_REG_PPC_DAWRX1:
2603 		kvmppc_set_dawrx1_hv(vcpu, set_reg_val(id, *val) & ~DAWRX_HYP);
2604 		break;
2605 	case KVM_REG_PPC_DEXCR:
2606 		kvmppc_set_dexcr_hv(vcpu, set_reg_val(id, *val));
2607 		break;
2608 	case KVM_REG_PPC_HASHKEYR:
2609 		kvmppc_set_hashkeyr_hv(vcpu, set_reg_val(id, *val));
2610 		break;
2611 	case KVM_REG_PPC_HASHPKEYR:
2612 		kvmppc_set_hashpkeyr_hv(vcpu, set_reg_val(id, *val));
2613 		break;
2614 	case KVM_REG_PPC_CIABR:
2615 		kvmppc_set_ciabr_hv(vcpu, set_reg_val(id, *val));
2616 		/* Don't allow setting breakpoints in hypervisor code */
2617 		if ((kvmppc_get_ciabr_hv(vcpu) & CIABR_PRIV) == CIABR_PRIV_HYPER)
2618 			kvmppc_set_ciabr_hv(vcpu, kvmppc_get_ciabr_hv(vcpu) & ~CIABR_PRIV);
2619 		break;
2620 	case KVM_REG_PPC_CSIGR:
2621 		vcpu->arch.csigr = set_reg_val(id, *val);
2622 		break;
2623 	case KVM_REG_PPC_TACR:
2624 		vcpu->arch.tacr = set_reg_val(id, *val);
2625 		break;
2626 	case KVM_REG_PPC_TCSCR:
2627 		vcpu->arch.tcscr = set_reg_val(id, *val);
2628 		break;
2629 	case KVM_REG_PPC_PID:
2630 		kvmppc_set_pid(vcpu, set_reg_val(id, *val));
2631 		break;
2632 	case KVM_REG_PPC_ACOP:
2633 		vcpu->arch.acop = set_reg_val(id, *val);
2634 		break;
2635 	case KVM_REG_PPC_WORT:
2636 		kvmppc_set_wort_hv(vcpu, set_reg_val(id, *val));
2637 		break;
2638 	case KVM_REG_PPC_TIDR:
2639 		vcpu->arch.tid = set_reg_val(id, *val);
2640 		break;
2641 	case KVM_REG_PPC_PSSCR:
2642 		vcpu->arch.psscr = set_reg_val(id, *val) & PSSCR_GUEST_VIS;
2643 		break;
2644 	case KVM_REG_PPC_VPA_ADDR:
2645 		addr = set_reg_val(id, *val);
2646 		r = -EINVAL;
2647 		if (!addr && (vcpu->arch.slb_shadow.next_gpa ||
2648 			      vcpu->arch.dtl.next_gpa))
2649 			break;
2650 		r = set_vpa(vcpu, &vcpu->arch.vpa, addr, sizeof(struct lppaca));
2651 		break;
2652 	case KVM_REG_PPC_VPA_SLB:
2653 		addr = val->vpaval.addr;
2654 		len = val->vpaval.length;
2655 		r = -EINVAL;
2656 		if (addr && !vcpu->arch.vpa.next_gpa)
2657 			break;
2658 		r = set_vpa(vcpu, &vcpu->arch.slb_shadow, addr, len);
2659 		break;
2660 	case KVM_REG_PPC_VPA_DTL:
2661 		addr = val->vpaval.addr;
2662 		len = val->vpaval.length;
2663 		r = -EINVAL;
2664 		if (addr && (len < sizeof(struct dtl_entry) ||
2665 			     !vcpu->arch.vpa.next_gpa))
2666 			break;
2667 		len -= len % sizeof(struct dtl_entry);
2668 		r = set_vpa(vcpu, &vcpu->arch.dtl, addr, len);
2669 		break;
2670 	case KVM_REG_PPC_TB_OFFSET:
2671 	{
2672 		/* round up to multiple of 2^24 */
2673 		u64 tb_offset = ALIGN(set_reg_val(id, *val), 1UL << 24);
2674 
2675 		/*
2676 		 * Now that we know the timebase offset, update the
2677 		 * decrementer expiry with a guest timebase value. If
2678 		 * the userspace does not set DEC_EXPIRY, this ensures
2679 		 * a migrated vcpu at least starts with an expired
2680 		 * decrementer, which is better than a large one that
2681 		 * causes a hang.
2682 		 */
2683 		kvmppc_set_tb_offset(vcpu, tb_offset);
2684 		if (!kvmppc_get_dec_expires(vcpu) && tb_offset)
2685 			kvmppc_set_dec_expires(vcpu, get_tb() + tb_offset);
2686 
2687 		kvmppc_set_tb_offset(vcpu, tb_offset);
2688 		break;
2689 	}
2690 	case KVM_REG_PPC_LPCR:
2691 		kvmppc_set_lpcr(vcpu, set_reg_val(id, *val), true);
2692 		break;
2693 	case KVM_REG_PPC_LPCR_64:
2694 		kvmppc_set_lpcr(vcpu, set_reg_val(id, *val), false);
2695 		break;
2696 	case KVM_REG_PPC_PPR:
2697 		kvmppc_set_ppr_hv(vcpu, set_reg_val(id, *val));
2698 		break;
2699 #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
2700 	case KVM_REG_PPC_TFHAR:
2701 		vcpu->arch.tfhar = set_reg_val(id, *val);
2702 		break;
2703 	case KVM_REG_PPC_TFIAR:
2704 		vcpu->arch.tfiar = set_reg_val(id, *val);
2705 		break;
2706 	case KVM_REG_PPC_TEXASR:
2707 		vcpu->arch.texasr = set_reg_val(id, *val);
2708 		break;
2709 	case KVM_REG_PPC_TM_GPR0 ... KVM_REG_PPC_TM_GPR31:
2710 		i = id - KVM_REG_PPC_TM_GPR0;
2711 		vcpu->arch.gpr_tm[i] = set_reg_val(id, *val);
2712 		break;
2713 	case KVM_REG_PPC_TM_VSR0 ... KVM_REG_PPC_TM_VSR63:
2714 	{
2715 		int j;
2716 		i = id - KVM_REG_PPC_TM_VSR0;
2717 		if (i < 32)
2718 			for (j = 0; j < TS_FPRWIDTH; j++)
2719 				vcpu->arch.fp_tm.fpr[i][j] = val->vsxval[j];
2720 		else
2721 			if (cpu_has_feature(CPU_FTR_ALTIVEC))
2722 				vcpu->arch.vr_tm.vr[i-32] = val->vval;
2723 			else
2724 				r = -ENXIO;
2725 		break;
2726 	}
2727 	case KVM_REG_PPC_TM_CR:
2728 		vcpu->arch.cr_tm = set_reg_val(id, *val);
2729 		break;
2730 	case KVM_REG_PPC_TM_XER:
2731 		vcpu->arch.xer_tm = set_reg_val(id, *val);
2732 		break;
2733 	case KVM_REG_PPC_TM_LR:
2734 		vcpu->arch.lr_tm = set_reg_val(id, *val);
2735 		break;
2736 	case KVM_REG_PPC_TM_CTR:
2737 		vcpu->arch.ctr_tm = set_reg_val(id, *val);
2738 		break;
2739 	case KVM_REG_PPC_TM_FPSCR:
2740 		vcpu->arch.fp_tm.fpscr = set_reg_val(id, *val);
2741 		break;
2742 	case KVM_REG_PPC_TM_AMR:
2743 		vcpu->arch.amr_tm = set_reg_val(id, *val);
2744 		break;
2745 	case KVM_REG_PPC_TM_PPR:
2746 		vcpu->arch.ppr_tm = set_reg_val(id, *val);
2747 		break;
2748 	case KVM_REG_PPC_TM_VRSAVE:
2749 		vcpu->arch.vrsave_tm = set_reg_val(id, *val);
2750 		break;
2751 	case KVM_REG_PPC_TM_VSCR:
2752 		if (cpu_has_feature(CPU_FTR_ALTIVEC))
2753 			vcpu->arch.vr.vscr.u[3] = set_reg_val(id, *val);
2754 		else
2755 			r = - ENXIO;
2756 		break;
2757 	case KVM_REG_PPC_TM_DSCR:
2758 		vcpu->arch.dscr_tm = set_reg_val(id, *val);
2759 		break;
2760 	case KVM_REG_PPC_TM_TAR:
2761 		vcpu->arch.tar_tm = set_reg_val(id, *val);
2762 		break;
2763 #endif
2764 	case KVM_REG_PPC_ARCH_COMPAT:
2765 		r = kvmppc_set_arch_compat(vcpu, set_reg_val(id, *val));
2766 		break;
2767 	case KVM_REG_PPC_DEC_EXPIRY:
2768 		kvmppc_set_dec_expires(vcpu, set_reg_val(id, *val));
2769 		break;
2770 	case KVM_REG_PPC_ONLINE:
2771 		i = set_reg_val(id, *val);
2772 		if (i && !vcpu->arch.online)
2773 			atomic_inc(&vcpu->arch.vcore->online_count);
2774 		else if (!i && vcpu->arch.online)
2775 			atomic_dec(&vcpu->arch.vcore->online_count);
2776 		vcpu->arch.online = i;
2777 		break;
2778 	case KVM_REG_PPC_PTCR:
2779 		vcpu->kvm->arch.l1_ptcr = set_reg_val(id, *val);
2780 		break;
2781 	case KVM_REG_PPC_FSCR:
2782 		kvmppc_set_fscr_hv(vcpu, set_reg_val(id, *val));
2783 		break;
2784 	default:
2785 		r = -EINVAL;
2786 		break;
2787 	}
2788 
2789 	return r;
2790 }
2791 
2792 /*
2793  * On POWER9, threads are independent and can be in different partitions.
2794  * Therefore we consider each thread to be a subcore.
2795  * There is a restriction that all threads have to be in the same
2796  * MMU mode (radix or HPT), unfortunately, but since we only support
2797  * HPT guests on a HPT host so far, that isn't an impediment yet.
2798  */
threads_per_vcore(struct kvm * kvm)2799 static int threads_per_vcore(struct kvm *kvm)
2800 {
2801 	if (cpu_has_feature(CPU_FTR_ARCH_300))
2802 		return 1;
2803 	return threads_per_subcore;
2804 }
2805 
kvmppc_vcore_create(struct kvm * kvm,int id)2806 static struct kvmppc_vcore *kvmppc_vcore_create(struct kvm *kvm, int id)
2807 {
2808 	struct kvmppc_vcore *vcore;
2809 
2810 	vcore = kzalloc_obj(struct kvmppc_vcore);
2811 
2812 	if (vcore == NULL)
2813 		return NULL;
2814 
2815 	spin_lock_init(&vcore->lock);
2816 	spin_lock_init(&vcore->stoltb_lock);
2817 	rcuwait_init(&vcore->wait);
2818 	vcore->preempt_tb = TB_NIL;
2819 	vcore->lpcr = kvm->arch.lpcr;
2820 	vcore->first_vcpuid = id;
2821 	vcore->kvm = kvm;
2822 	INIT_LIST_HEAD(&vcore->preempt_list);
2823 
2824 	return vcore;
2825 }
2826 
2827 #ifdef CONFIG_KVM_BOOK3S_HV_EXIT_TIMING
2828 static struct debugfs_timings_element {
2829 	const char *name;
2830 	size_t offset;
2831 } timings[] = {
2832 #ifdef CONFIG_KVM_BOOK3S_HV_P9_TIMING
2833 	{"vcpu_entry",	offsetof(struct kvm_vcpu, arch.vcpu_entry)},
2834 	{"guest_entry",	offsetof(struct kvm_vcpu, arch.guest_entry)},
2835 	{"in_guest",	offsetof(struct kvm_vcpu, arch.in_guest)},
2836 	{"guest_exit",	offsetof(struct kvm_vcpu, arch.guest_exit)},
2837 	{"vcpu_exit",	offsetof(struct kvm_vcpu, arch.vcpu_exit)},
2838 	{"hypercall",	offsetof(struct kvm_vcpu, arch.hcall)},
2839 	{"page_fault",	offsetof(struct kvm_vcpu, arch.pg_fault)},
2840 #else
2841 	{"rm_entry",	offsetof(struct kvm_vcpu, arch.rm_entry)},
2842 	{"rm_intr",	offsetof(struct kvm_vcpu, arch.rm_intr)},
2843 	{"rm_exit",	offsetof(struct kvm_vcpu, arch.rm_exit)},
2844 	{"guest",	offsetof(struct kvm_vcpu, arch.guest_time)},
2845 	{"cede",	offsetof(struct kvm_vcpu, arch.cede_time)},
2846 #endif
2847 };
2848 
2849 #define N_TIMINGS	(ARRAY_SIZE(timings))
2850 
2851 struct debugfs_timings_state {
2852 	struct kvm_vcpu	*vcpu;
2853 	unsigned int	buflen;
2854 	char		buf[N_TIMINGS * 100];
2855 };
2856 
debugfs_timings_open(struct inode * inode,struct file * file)2857 static int debugfs_timings_open(struct inode *inode, struct file *file)
2858 {
2859 	struct kvm_vcpu *vcpu = inode->i_private;
2860 	struct debugfs_timings_state *p;
2861 
2862 	p = kzalloc_obj(*p);
2863 	if (!p)
2864 		return -ENOMEM;
2865 
2866 	kvm_get_kvm(vcpu->kvm);
2867 	p->vcpu = vcpu;
2868 	file->private_data = p;
2869 
2870 	return nonseekable_open(inode, file);
2871 }
2872 
debugfs_timings_release(struct inode * inode,struct file * file)2873 static int debugfs_timings_release(struct inode *inode, struct file *file)
2874 {
2875 	struct debugfs_timings_state *p = file->private_data;
2876 
2877 	kvm_put_kvm(p->vcpu->kvm);
2878 	kfree(p);
2879 	return 0;
2880 }
2881 
debugfs_timings_read(struct file * file,char __user * buf,size_t len,loff_t * ppos)2882 static ssize_t debugfs_timings_read(struct file *file, char __user *buf,
2883 				    size_t len, loff_t *ppos)
2884 {
2885 	struct debugfs_timings_state *p = file->private_data;
2886 	struct kvm_vcpu *vcpu = p->vcpu;
2887 	char *s, *buf_end;
2888 	struct kvmhv_tb_accumulator tb;
2889 	u64 count;
2890 	loff_t pos;
2891 	ssize_t n;
2892 	int i, loops;
2893 	bool ok;
2894 
2895 	if (!p->buflen) {
2896 		s = p->buf;
2897 		buf_end = s + sizeof(p->buf);
2898 		for (i = 0; i < N_TIMINGS; ++i) {
2899 			struct kvmhv_tb_accumulator *acc;
2900 
2901 			acc = (struct kvmhv_tb_accumulator *)
2902 				((unsigned long)vcpu + timings[i].offset);
2903 			ok = false;
2904 			for (loops = 0; loops < 1000; ++loops) {
2905 				count = acc->seqcount;
2906 				if (!(count & 1)) {
2907 					smp_rmb();
2908 					tb = *acc;
2909 					smp_rmb();
2910 					if (count == acc->seqcount) {
2911 						ok = true;
2912 						break;
2913 					}
2914 				}
2915 				udelay(1);
2916 			}
2917 			if (!ok)
2918 				snprintf(s, buf_end - s, "%s: stuck\n",
2919 					timings[i].name);
2920 			else
2921 				snprintf(s, buf_end - s,
2922 					"%s: %llu %llu %llu %llu\n",
2923 					timings[i].name, count / 2,
2924 					tb_to_ns(tb.tb_total),
2925 					tb_to_ns(tb.tb_min),
2926 					tb_to_ns(tb.tb_max));
2927 			s += strlen(s);
2928 		}
2929 		p->buflen = s - p->buf;
2930 	}
2931 
2932 	pos = *ppos;
2933 	if (pos >= p->buflen)
2934 		return 0;
2935 	if (len > p->buflen - pos)
2936 		len = p->buflen - pos;
2937 	n = copy_to_user(buf, p->buf + pos, len);
2938 	if (n) {
2939 		if (n == len)
2940 			return -EFAULT;
2941 		len -= n;
2942 	}
2943 	*ppos = pos + len;
2944 	return len;
2945 }
2946 
debugfs_timings_write(struct file * file,const char __user * buf,size_t len,loff_t * ppos)2947 static ssize_t debugfs_timings_write(struct file *file, const char __user *buf,
2948 				     size_t len, loff_t *ppos)
2949 {
2950 	return -EACCES;
2951 }
2952 
2953 static const struct file_operations debugfs_timings_ops = {
2954 	.owner	 = THIS_MODULE,
2955 	.open	 = debugfs_timings_open,
2956 	.release = debugfs_timings_release,
2957 	.read	 = debugfs_timings_read,
2958 	.write	 = debugfs_timings_write,
2959 	.llseek	 = generic_file_llseek,
2960 };
2961 
2962 /* Create a debugfs directory for the vcpu */
kvmppc_arch_create_vcpu_debugfs_hv(struct kvm_vcpu * vcpu,struct dentry * debugfs_dentry)2963 static int kvmppc_arch_create_vcpu_debugfs_hv(struct kvm_vcpu *vcpu, struct dentry *debugfs_dentry)
2964 {
2965 	if (cpu_has_feature(CPU_FTR_ARCH_300) == IS_ENABLED(CONFIG_KVM_BOOK3S_HV_P9_TIMING))
2966 		debugfs_create_file("timings", 0444, debugfs_dentry, vcpu,
2967 				    &debugfs_timings_ops);
2968 	return 0;
2969 }
2970 
2971 #else /* CONFIG_KVM_BOOK3S_HV_EXIT_TIMING */
kvmppc_arch_create_vcpu_debugfs_hv(struct kvm_vcpu * vcpu,struct dentry * debugfs_dentry)2972 static int kvmppc_arch_create_vcpu_debugfs_hv(struct kvm_vcpu *vcpu, struct dentry *debugfs_dentry)
2973 {
2974 	return 0;
2975 }
2976 #endif /* CONFIG_KVM_BOOK3S_HV_EXIT_TIMING */
2977 
kvmppc_core_vcpu_create_hv(struct kvm_vcpu * vcpu)2978 static int kvmppc_core_vcpu_create_hv(struct kvm_vcpu *vcpu)
2979 {
2980 	int err;
2981 	int core;
2982 	struct kvmppc_vcore *vcore;
2983 	struct kvm *kvm;
2984 	unsigned int id;
2985 
2986 	kvm = vcpu->kvm;
2987 	id = vcpu->vcpu_id;
2988 
2989 	vcpu->arch.shared = &vcpu->arch.shregs;
2990 #ifdef CONFIG_KVM_BOOK3S_PR_POSSIBLE
2991 	/*
2992 	 * The shared struct is never shared on HV,
2993 	 * so we can always use host endianness
2994 	 */
2995 #ifdef __BIG_ENDIAN__
2996 	vcpu->arch.shared_big_endian = true;
2997 #else
2998 	vcpu->arch.shared_big_endian = false;
2999 #endif
3000 #endif
3001 
3002 	if (kvmhv_is_nestedv2()) {
3003 		err = kvmhv_nestedv2_vcpu_create(vcpu, &vcpu->arch.nestedv2_io);
3004 		if (err < 0)
3005 			return err;
3006 	}
3007 
3008 	kvmppc_set_mmcr_hv(vcpu, 0, MMCR0_FC);
3009 	if (cpu_has_feature(CPU_FTR_ARCH_31)) {
3010 		kvmppc_set_mmcr_hv(vcpu, 0, kvmppc_get_mmcr_hv(vcpu, 0) | MMCR0_PMCCEXT);
3011 		kvmppc_set_mmcra_hv(vcpu, MMCRA_BHRB_DISABLE);
3012 	}
3013 
3014 	kvmppc_set_ctrl_hv(vcpu, CTRL_RUNLATCH);
3015 	/* default to host PVR, since we can't spoof it */
3016 	kvmppc_set_pvr_hv(vcpu, mfspr(SPRN_PVR));
3017 	spin_lock_init(&vcpu->arch.vpa_update_lock);
3018 	spin_lock_init(&vcpu->arch.tbacct_lock);
3019 	vcpu->arch.busy_preempt = TB_NIL;
3020 	__kvmppc_set_msr_hv(vcpu, MSR_ME);
3021 	vcpu->arch.intr_msr = MSR_SF | MSR_ME;
3022 
3023 	/*
3024 	 * Set the default HFSCR for the guest from the host value.
3025 	 * This value is only used on POWER9 and later.
3026 	 * On >= POWER9, we want to virtualize the doorbell facility, so we
3027 	 * don't set the HFSCR_MSGP bit, and that causes those instructions
3028 	 * to trap and then we emulate them.
3029 	 */
3030 	kvmppc_set_hfscr_hv(vcpu, HFSCR_TAR | HFSCR_EBB | HFSCR_PM | HFSCR_BHRB |
3031 			    HFSCR_DSCR | HFSCR_VECVSX | HFSCR_FP);
3032 
3033 	/* On POWER10 and later, allow prefixed instructions */
3034 	if (cpu_has_feature(CPU_FTR_ARCH_31))
3035 		kvmppc_set_hfscr_hv(vcpu, kvmppc_get_hfscr_hv(vcpu) | HFSCR_PREFIX);
3036 
3037 	if (cpu_has_feature(CPU_FTR_HVMODE)) {
3038 		kvmppc_set_hfscr_hv(vcpu, kvmppc_get_hfscr_hv(vcpu) & mfspr(SPRN_HFSCR));
3039 
3040 #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
3041 		if (cpu_has_feature(CPU_FTR_P9_TM_HV_ASSIST))
3042 			kvmppc_set_hfscr_hv(vcpu, kvmppc_get_hfscr_hv(vcpu) | HFSCR_TM);
3043 #endif
3044 	}
3045 	if (cpu_has_feature(CPU_FTR_TM_COMP))
3046 		vcpu->arch.hfscr |= HFSCR_TM;
3047 
3048 	vcpu->arch.hfscr_permitted = kvmppc_get_hfscr_hv(vcpu);
3049 
3050 	/*
3051 	 * PM, EBB, TM are demand-faulted so start with it clear.
3052 	 */
3053 	kvmppc_set_hfscr_hv(vcpu, kvmppc_get_hfscr_hv(vcpu) & ~(HFSCR_PM | HFSCR_EBB | HFSCR_TM));
3054 
3055 	kvmppc_mmu_book3s_hv_init(vcpu);
3056 
3057 	vcpu->arch.state = KVMPPC_VCPU_NOTREADY;
3058 
3059 	init_waitqueue_head(&vcpu->arch.cpu_run);
3060 
3061 	mutex_lock(&kvm->lock);
3062 	vcore = NULL;
3063 	err = -EINVAL;
3064 	if (cpu_has_feature(CPU_FTR_ARCH_300)) {
3065 		if (id >= (KVM_MAX_VCPUS * kvm->arch.emul_smt_mode)) {
3066 			pr_devel("KVM: VCPU ID too high\n");
3067 			core = KVM_MAX_VCORES;
3068 		} else {
3069 			BUG_ON(kvm->arch.smt_mode != 1);
3070 			core = kvmppc_pack_vcpu_id(kvm, id);
3071 		}
3072 	} else {
3073 		core = id / kvm->arch.smt_mode;
3074 	}
3075 	if (core < KVM_MAX_VCORES) {
3076 		vcore = kvm->arch.vcores[core];
3077 		if (vcore && cpu_has_feature(CPU_FTR_ARCH_300)) {
3078 			pr_devel("KVM: collision on id %u", id);
3079 			vcore = NULL;
3080 		} else if (!vcore) {
3081 			/*
3082 			 * Take mmu_setup_lock for mutual exclusion
3083 			 * with kvmppc_update_lpcr().
3084 			 */
3085 			err = -ENOMEM;
3086 			vcore = kvmppc_vcore_create(kvm,
3087 					id & ~(kvm->arch.smt_mode - 1));
3088 			mutex_lock(&kvm->arch.mmu_setup_lock);
3089 			kvm->arch.vcores[core] = vcore;
3090 			kvm->arch.online_vcores++;
3091 			mutex_unlock(&kvm->arch.mmu_setup_lock);
3092 		}
3093 	}
3094 	mutex_unlock(&kvm->lock);
3095 
3096 	if (!vcore)
3097 		return err;
3098 
3099 	spin_lock(&vcore->lock);
3100 	++vcore->num_threads;
3101 	spin_unlock(&vcore->lock);
3102 	vcpu->arch.vcore = vcore;
3103 	vcpu->arch.ptid = vcpu->vcpu_id - vcore->first_vcpuid;
3104 	vcpu->arch.thread_cpu = -1;
3105 	vcpu->arch.prev_cpu = -1;
3106 
3107 	vcpu->arch.cpu_type = KVM_CPU_3S_64;
3108 	kvmppc_sanity_check(vcpu);
3109 
3110 	return 0;
3111 }
3112 
kvmhv_set_smt_mode(struct kvm * kvm,unsigned long smt_mode,unsigned long flags)3113 static int kvmhv_set_smt_mode(struct kvm *kvm, unsigned long smt_mode,
3114 			      unsigned long flags)
3115 {
3116 	int err;
3117 	int esmt = 0;
3118 
3119 	if (flags)
3120 		return -EINVAL;
3121 	if (smt_mode > MAX_SMT_THREADS || !is_power_of_2(smt_mode))
3122 		return -EINVAL;
3123 	if (!cpu_has_feature(CPU_FTR_ARCH_300)) {
3124 		/*
3125 		 * On POWER8 (or POWER7), the threading mode is "strict",
3126 		 * so we pack smt_mode vcpus per vcore.
3127 		 */
3128 		if (smt_mode > threads_per_subcore)
3129 			return -EINVAL;
3130 	} else {
3131 		/*
3132 		 * On POWER9, the threading mode is "loose",
3133 		 * so each vcpu gets its own vcore.
3134 		 */
3135 		esmt = smt_mode;
3136 		smt_mode = 1;
3137 	}
3138 	mutex_lock(&kvm->lock);
3139 	err = -EBUSY;
3140 	if (!kvm->arch.online_vcores) {
3141 		kvm->arch.smt_mode = smt_mode;
3142 		kvm->arch.emul_smt_mode = esmt;
3143 		err = 0;
3144 	}
3145 	mutex_unlock(&kvm->lock);
3146 
3147 	return err;
3148 }
3149 
unpin_vpa(struct kvm * kvm,struct kvmppc_vpa * vpa)3150 static void unpin_vpa(struct kvm *kvm, struct kvmppc_vpa *vpa)
3151 {
3152 	if (vpa->pinned_addr)
3153 		kvmppc_unpin_guest_page(kvm, vpa->pinned_addr, vpa->gpa,
3154 					vpa->dirty);
3155 }
3156 
kvmppc_core_vcpu_free_hv(struct kvm_vcpu * vcpu)3157 static void kvmppc_core_vcpu_free_hv(struct kvm_vcpu *vcpu)
3158 {
3159 	spin_lock(&vcpu->arch.vpa_update_lock);
3160 	unpin_vpa(vcpu->kvm, &vcpu->arch.dtl);
3161 	unpin_vpa(vcpu->kvm, &vcpu->arch.slb_shadow);
3162 	unpin_vpa(vcpu->kvm, &vcpu->arch.vpa);
3163 	spin_unlock(&vcpu->arch.vpa_update_lock);
3164 	if (kvmhv_is_nestedv2())
3165 		kvmhv_nestedv2_vcpu_free(vcpu, &vcpu->arch.nestedv2_io);
3166 }
3167 
kvmppc_core_check_requests_hv(struct kvm_vcpu * vcpu)3168 static int kvmppc_core_check_requests_hv(struct kvm_vcpu *vcpu)
3169 {
3170 	/* Indicate we want to get back into the guest */
3171 	return 1;
3172 }
3173 
kvmppc_set_timer(struct kvm_vcpu * vcpu)3174 static void kvmppc_set_timer(struct kvm_vcpu *vcpu)
3175 {
3176 	unsigned long dec_nsec, now;
3177 
3178 	now = get_tb();
3179 	if (now > kvmppc_dec_expires_host_tb(vcpu)) {
3180 		/* decrementer has already gone negative */
3181 		kvmppc_core_queue_dec(vcpu);
3182 		kvmppc_core_prepare_to_enter(vcpu);
3183 		return;
3184 	}
3185 	dec_nsec = tb_to_ns(kvmppc_dec_expires_host_tb(vcpu) - now);
3186 	hrtimer_start(&vcpu->arch.dec_timer, dec_nsec, HRTIMER_MODE_REL);
3187 	vcpu->arch.timer_running = 1;
3188 }
3189 
3190 extern int __kvmppc_vcore_entry(void);
3191 
kvmppc_remove_runnable(struct kvmppc_vcore * vc,struct kvm_vcpu * vcpu,u64 tb)3192 static void kvmppc_remove_runnable(struct kvmppc_vcore *vc,
3193 				   struct kvm_vcpu *vcpu, u64 tb)
3194 {
3195 	u64 now;
3196 
3197 	if (vcpu->arch.state != KVMPPC_VCPU_RUNNABLE)
3198 		return;
3199 	spin_lock_irq(&vcpu->arch.tbacct_lock);
3200 	now = tb;
3201 	vcpu->arch.busy_stolen += vcore_stolen_time(vc, now) -
3202 		vcpu->arch.stolen_logged;
3203 	vcpu->arch.busy_preempt = now;
3204 	vcpu->arch.state = KVMPPC_VCPU_BUSY_IN_HOST;
3205 	spin_unlock_irq(&vcpu->arch.tbacct_lock);
3206 	--vc->n_runnable;
3207 	WRITE_ONCE(vc->runnable_threads[vcpu->arch.ptid], NULL);
3208 }
3209 
kvmppc_grab_hwthread(int cpu)3210 static int kvmppc_grab_hwthread(int cpu)
3211 {
3212 	struct paca_struct *tpaca;
3213 	long timeout = 10000;
3214 
3215 	tpaca = paca_ptrs[cpu];
3216 
3217 	/* Ensure the thread won't go into the kernel if it wakes */
3218 	tpaca->kvm_hstate.kvm_vcpu = NULL;
3219 	tpaca->kvm_hstate.kvm_vcore = NULL;
3220 	tpaca->kvm_hstate.napping = 0;
3221 	smp_wmb();
3222 	tpaca->kvm_hstate.hwthread_req = 1;
3223 
3224 	/*
3225 	 * If the thread is already executing in the kernel (e.g. handling
3226 	 * a stray interrupt), wait for it to get back to nap mode.
3227 	 * The smp_mb() is to ensure that our setting of hwthread_req
3228 	 * is visible before we look at hwthread_state, so if this
3229 	 * races with the code at system_reset_pSeries and the thread
3230 	 * misses our setting of hwthread_req, we are sure to see its
3231 	 * setting of hwthread_state, and vice versa.
3232 	 */
3233 	smp_mb();
3234 	while (tpaca->kvm_hstate.hwthread_state == KVM_HWTHREAD_IN_KERNEL) {
3235 		if (--timeout <= 0) {
3236 			pr_err("KVM: couldn't grab cpu %d\n", cpu);
3237 			return -EBUSY;
3238 		}
3239 		udelay(1);
3240 	}
3241 	return 0;
3242 }
3243 
kvmppc_release_hwthread(int cpu)3244 static void kvmppc_release_hwthread(int cpu)
3245 {
3246 	struct paca_struct *tpaca;
3247 
3248 	tpaca = paca_ptrs[cpu];
3249 	tpaca->kvm_hstate.hwthread_req = 0;
3250 	tpaca->kvm_hstate.kvm_vcpu = NULL;
3251 	tpaca->kvm_hstate.kvm_vcore = NULL;
3252 	tpaca->kvm_hstate.kvm_split_mode = NULL;
3253 }
3254 
3255 static DEFINE_PER_CPU(struct kvm *, cpu_in_guest);
3256 
radix_flush_cpu(struct kvm * kvm,int cpu,struct kvm_vcpu * vcpu)3257 static void radix_flush_cpu(struct kvm *kvm, int cpu, struct kvm_vcpu *vcpu)
3258 {
3259 	struct kvm_nested_guest *nested = vcpu->arch.nested;
3260 	cpumask_t *need_tlb_flush;
3261 	int i;
3262 
3263 	if (nested)
3264 		need_tlb_flush = &nested->need_tlb_flush;
3265 	else
3266 		need_tlb_flush = &kvm->arch.need_tlb_flush;
3267 
3268 	cpu = cpu_first_tlb_thread_sibling(cpu);
3269 	for (i = cpu; i <= cpu_last_tlb_thread_sibling(cpu);
3270 					i += cpu_tlb_thread_sibling_step())
3271 		cpumask_set_cpu(i, need_tlb_flush);
3272 
3273 	/*
3274 	 * Make sure setting of bit in need_tlb_flush precedes testing of
3275 	 * cpu_in_guest. The matching barrier on the other side is hwsync
3276 	 * when switching to guest MMU mode, which happens between
3277 	 * cpu_in_guest being set to the guest kvm, and need_tlb_flush bit
3278 	 * being tested.
3279 	 */
3280 	smp_mb();
3281 
3282 	for (i = cpu; i <= cpu_last_tlb_thread_sibling(cpu);
3283 					i += cpu_tlb_thread_sibling_step()) {
3284 		struct kvm *running = *per_cpu_ptr(&cpu_in_guest, i);
3285 
3286 		if (running == kvm)
3287 			smp_call_function_single(i, do_nothing, NULL, 1);
3288 	}
3289 }
3290 
do_migrate_away_vcpu(void * arg)3291 static void do_migrate_away_vcpu(void *arg)
3292 {
3293 	struct kvm_vcpu *vcpu = arg;
3294 	struct kvm *kvm = vcpu->kvm;
3295 
3296 	/*
3297 	 * If the guest has GTSE, it may execute tlbie, so do a eieio; tlbsync;
3298 	 * ptesync sequence on the old CPU before migrating to a new one, in
3299 	 * case we interrupted the guest between a tlbie ; eieio ;
3300 	 * tlbsync; ptesync sequence.
3301 	 *
3302 	 * Otherwise, ptesync is sufficient for ordering tlbiel sequences.
3303 	 */
3304 	if (kvm->arch.lpcr & LPCR_GTSE)
3305 		asm volatile("eieio; tlbsync; ptesync");
3306 	else
3307 		asm volatile("ptesync");
3308 }
3309 
kvmppc_prepare_radix_vcpu(struct kvm_vcpu * vcpu,int pcpu)3310 static void kvmppc_prepare_radix_vcpu(struct kvm_vcpu *vcpu, int pcpu)
3311 {
3312 	struct kvm_nested_guest *nested = vcpu->arch.nested;
3313 	struct kvm *kvm = vcpu->kvm;
3314 	int prev_cpu;
3315 
3316 	if (!cpu_has_feature(CPU_FTR_HVMODE))
3317 		return;
3318 
3319 	if (nested)
3320 		prev_cpu = nested->prev_cpu[vcpu->arch.nested_vcpu_id];
3321 	else
3322 		prev_cpu = vcpu->arch.prev_cpu;
3323 
3324 	/*
3325 	 * With radix, the guest can do TLB invalidations itself,
3326 	 * and it could choose to use the local form (tlbiel) if
3327 	 * it is invalidating a translation that has only ever been
3328 	 * used on one vcpu.  However, that doesn't mean it has
3329 	 * only ever been used on one physical cpu, since vcpus
3330 	 * can move around between pcpus.  To cope with this, when
3331 	 * a vcpu moves from one pcpu to another, we need to tell
3332 	 * any vcpus running on the same core as this vcpu previously
3333 	 * ran to flush the TLB.
3334 	 */
3335 	if (prev_cpu != pcpu) {
3336 		if (prev_cpu >= 0) {
3337 			if (cpu_first_tlb_thread_sibling(prev_cpu) !=
3338 			    cpu_first_tlb_thread_sibling(pcpu))
3339 				radix_flush_cpu(kvm, prev_cpu, vcpu);
3340 
3341 			smp_call_function_single(prev_cpu,
3342 					do_migrate_away_vcpu, vcpu, 1);
3343 		}
3344 		if (nested)
3345 			nested->prev_cpu[vcpu->arch.nested_vcpu_id] = pcpu;
3346 		else
3347 			vcpu->arch.prev_cpu = pcpu;
3348 	}
3349 }
3350 
kvmppc_start_thread(struct kvm_vcpu * vcpu,struct kvmppc_vcore * vc)3351 static void kvmppc_start_thread(struct kvm_vcpu *vcpu, struct kvmppc_vcore *vc)
3352 {
3353 	int cpu;
3354 	struct paca_struct *tpaca;
3355 
3356 	cpu = vc->pcpu;
3357 	if (vcpu) {
3358 		if (vcpu->arch.timer_running) {
3359 			hrtimer_try_to_cancel(&vcpu->arch.dec_timer);
3360 			vcpu->arch.timer_running = 0;
3361 		}
3362 		cpu += vcpu->arch.ptid;
3363 		vcpu->cpu = vc->pcpu;
3364 		vcpu->arch.thread_cpu = cpu;
3365 	}
3366 	tpaca = paca_ptrs[cpu];
3367 	tpaca->kvm_hstate.kvm_vcpu = vcpu;
3368 	tpaca->kvm_hstate.ptid = cpu - vc->pcpu;
3369 	tpaca->kvm_hstate.fake_suspend = 0;
3370 	/* Order stores to hstate.kvm_vcpu etc. before store to kvm_vcore */
3371 	smp_wmb();
3372 	tpaca->kvm_hstate.kvm_vcore = vc;
3373 	if (cpu != smp_processor_id())
3374 		kvmppc_ipi_thread(cpu);
3375 }
3376 
kvmppc_wait_for_nap(int n_threads)3377 static void kvmppc_wait_for_nap(int n_threads)
3378 {
3379 	int cpu = smp_processor_id();
3380 	int i, loops;
3381 
3382 	if (n_threads <= 1)
3383 		return;
3384 	for (loops = 0; loops < 1000000; ++loops) {
3385 		/*
3386 		 * Check if all threads are finished.
3387 		 * We set the vcore pointer when starting a thread
3388 		 * and the thread clears it when finished, so we look
3389 		 * for any threads that still have a non-NULL vcore ptr.
3390 		 */
3391 		for (i = 1; i < n_threads; ++i)
3392 			if (paca_ptrs[cpu + i]->kvm_hstate.kvm_vcore)
3393 				break;
3394 		if (i == n_threads) {
3395 			HMT_medium();
3396 			return;
3397 		}
3398 		HMT_low();
3399 	}
3400 	HMT_medium();
3401 	for (i = 1; i < n_threads; ++i)
3402 		if (paca_ptrs[cpu + i]->kvm_hstate.kvm_vcore)
3403 			pr_err("KVM: CPU %d seems to be stuck\n", cpu + i);
3404 }
3405 
3406 /*
3407  * Check that we are on thread 0 and that any other threads in
3408  * this core are off-line.  Then grab the threads so they can't
3409  * enter the kernel.
3410  */
on_primary_thread(void)3411 static int on_primary_thread(void)
3412 {
3413 	int cpu = smp_processor_id();
3414 	int thr;
3415 
3416 	/* Are we on a primary subcore? */
3417 	if (cpu_thread_in_subcore(cpu))
3418 		return 0;
3419 
3420 	thr = 0;
3421 	while (++thr < threads_per_subcore)
3422 		if (cpu_online(cpu + thr))
3423 			return 0;
3424 
3425 	/* Grab all hw threads so they can't go into the kernel */
3426 	for (thr = 1; thr < threads_per_subcore; ++thr) {
3427 		if (kvmppc_grab_hwthread(cpu + thr)) {
3428 			/* Couldn't grab one; let the others go */
3429 			do {
3430 				kvmppc_release_hwthread(cpu + thr);
3431 			} while (--thr > 0);
3432 			return 0;
3433 		}
3434 	}
3435 	return 1;
3436 }
3437 
3438 /*
3439  * A list of virtual cores for each physical CPU.
3440  * These are vcores that could run but their runner VCPU tasks are
3441  * (or may be) preempted.
3442  */
3443 struct preempted_vcore_list {
3444 	struct list_head	list;
3445 	spinlock_t		lock;
3446 };
3447 
3448 static DEFINE_PER_CPU(struct preempted_vcore_list, preempted_vcores);
3449 
init_vcore_lists(void)3450 static void init_vcore_lists(void)
3451 {
3452 	int cpu;
3453 
3454 	for_each_possible_cpu(cpu) {
3455 		struct preempted_vcore_list *lp = &per_cpu(preempted_vcores, cpu);
3456 		spin_lock_init(&lp->lock);
3457 		INIT_LIST_HEAD(&lp->list);
3458 	}
3459 }
3460 
kvmppc_vcore_preempt(struct kvmppc_vcore * vc)3461 static void kvmppc_vcore_preempt(struct kvmppc_vcore *vc)
3462 {
3463 	struct preempted_vcore_list *lp = this_cpu_ptr(&preempted_vcores);
3464 
3465 	WARN_ON_ONCE(cpu_has_feature(CPU_FTR_ARCH_300));
3466 
3467 	vc->vcore_state = VCORE_PREEMPT;
3468 	vc->pcpu = smp_processor_id();
3469 	if (vc->num_threads < threads_per_vcore(vc->kvm)) {
3470 		spin_lock(&lp->lock);
3471 		list_add_tail(&vc->preempt_list, &lp->list);
3472 		spin_unlock(&lp->lock);
3473 	}
3474 
3475 	/* Start accumulating stolen time */
3476 	kvmppc_core_start_stolen(vc, mftb());
3477 }
3478 
kvmppc_vcore_end_preempt(struct kvmppc_vcore * vc)3479 static void kvmppc_vcore_end_preempt(struct kvmppc_vcore *vc)
3480 {
3481 	struct preempted_vcore_list *lp;
3482 
3483 	WARN_ON_ONCE(cpu_has_feature(CPU_FTR_ARCH_300));
3484 
3485 	kvmppc_core_end_stolen(vc, mftb());
3486 	if (!list_empty(&vc->preempt_list)) {
3487 		lp = &per_cpu(preempted_vcores, vc->pcpu);
3488 		spin_lock(&lp->lock);
3489 		list_del_init(&vc->preempt_list);
3490 		spin_unlock(&lp->lock);
3491 	}
3492 	vc->vcore_state = VCORE_INACTIVE;
3493 }
3494 
3495 /*
3496  * This stores information about the virtual cores currently
3497  * assigned to a physical core.
3498  */
3499 struct core_info {
3500 	int		n_subcores;
3501 	int		max_subcore_threads;
3502 	int		total_threads;
3503 	int		subcore_threads[MAX_SUBCORES];
3504 	struct kvmppc_vcore *vc[MAX_SUBCORES];
3505 };
3506 
3507 /*
3508  * This mapping means subcores 0 and 1 can use threads 0-3 and 4-7
3509  * respectively in 2-way micro-threading (split-core) mode on POWER8.
3510  */
3511 static int subcore_thread_map[MAX_SUBCORES] = { 0, 4, 2, 6 };
3512 
init_core_info(struct core_info * cip,struct kvmppc_vcore * vc)3513 static void init_core_info(struct core_info *cip, struct kvmppc_vcore *vc)
3514 {
3515 	memset(cip, 0, sizeof(*cip));
3516 	cip->n_subcores = 1;
3517 	cip->max_subcore_threads = vc->num_threads;
3518 	cip->total_threads = vc->num_threads;
3519 	cip->subcore_threads[0] = vc->num_threads;
3520 	cip->vc[0] = vc;
3521 }
3522 
subcore_config_ok(int n_subcores,int n_threads)3523 static bool subcore_config_ok(int n_subcores, int n_threads)
3524 {
3525 	/*
3526 	 * POWER9 "SMT4" cores are permanently in what is effectively a 4-way
3527 	 * split-core mode, with one thread per subcore.
3528 	 */
3529 	if (cpu_has_feature(CPU_FTR_ARCH_300))
3530 		return n_subcores <= 4 && n_threads == 1;
3531 
3532 	/* On POWER8, can only dynamically split if unsplit to begin with */
3533 	if (n_subcores > 1 && threads_per_subcore < MAX_SMT_THREADS)
3534 		return false;
3535 	if (n_subcores > MAX_SUBCORES)
3536 		return false;
3537 	if (n_subcores > 1) {
3538 		if (!(dynamic_mt_modes & 2))
3539 			n_subcores = 4;
3540 		if (n_subcores > 2 && !(dynamic_mt_modes & 4))
3541 			return false;
3542 	}
3543 
3544 	return n_subcores * roundup_pow_of_two(n_threads) <= MAX_SMT_THREADS;
3545 }
3546 
init_vcore_to_run(struct kvmppc_vcore * vc)3547 static void init_vcore_to_run(struct kvmppc_vcore *vc)
3548 {
3549 	vc->entry_exit_map = 0;
3550 	vc->in_guest = 0;
3551 	vc->napping_threads = 0;
3552 	vc->conferring_threads = 0;
3553 	vc->tb_offset_applied = 0;
3554 }
3555 
can_dynamic_split(struct kvmppc_vcore * vc,struct core_info * cip)3556 static bool can_dynamic_split(struct kvmppc_vcore *vc, struct core_info *cip)
3557 {
3558 	int n_threads = vc->num_threads;
3559 	int sub;
3560 
3561 	if (!cpu_has_feature(CPU_FTR_ARCH_207S))
3562 		return false;
3563 
3564 	/* In one_vm_per_core mode, require all vcores to be from the same vm */
3565 	if (one_vm_per_core && vc->kvm != cip->vc[0]->kvm)
3566 		return false;
3567 
3568 	if (n_threads < cip->max_subcore_threads)
3569 		n_threads = cip->max_subcore_threads;
3570 	if (!subcore_config_ok(cip->n_subcores + 1, n_threads))
3571 		return false;
3572 	cip->max_subcore_threads = n_threads;
3573 
3574 	sub = cip->n_subcores;
3575 	++cip->n_subcores;
3576 	cip->total_threads += vc->num_threads;
3577 	cip->subcore_threads[sub] = vc->num_threads;
3578 	cip->vc[sub] = vc;
3579 	init_vcore_to_run(vc);
3580 	list_del_init(&vc->preempt_list);
3581 
3582 	return true;
3583 }
3584 
3585 /*
3586  * Work out whether it is possible to piggyback the execution of
3587  * vcore *pvc onto the execution of the other vcores described in *cip.
3588  */
can_piggyback(struct kvmppc_vcore * pvc,struct core_info * cip,int target_threads)3589 static bool can_piggyback(struct kvmppc_vcore *pvc, struct core_info *cip,
3590 			  int target_threads)
3591 {
3592 	if (cip->total_threads + pvc->num_threads > target_threads)
3593 		return false;
3594 
3595 	return can_dynamic_split(pvc, cip);
3596 }
3597 
prepare_threads(struct kvmppc_vcore * vc)3598 static void prepare_threads(struct kvmppc_vcore *vc)
3599 {
3600 	int i;
3601 	struct kvm_vcpu *vcpu;
3602 
3603 	for_each_runnable_thread(i, vcpu, vc) {
3604 		if (signal_pending(vcpu->arch.run_task))
3605 			vcpu->arch.ret = -EINTR;
3606 		else if (vcpu->arch.vpa.update_pending ||
3607 			 vcpu->arch.slb_shadow.update_pending ||
3608 			 vcpu->arch.dtl.update_pending)
3609 			vcpu->arch.ret = RESUME_GUEST;
3610 		else
3611 			continue;
3612 		kvmppc_remove_runnable(vc, vcpu, mftb());
3613 		wake_up(&vcpu->arch.cpu_run);
3614 	}
3615 }
3616 
collect_piggybacks(struct core_info * cip,int target_threads)3617 static void collect_piggybacks(struct core_info *cip, int target_threads)
3618 {
3619 	struct preempted_vcore_list *lp = this_cpu_ptr(&preempted_vcores);
3620 	struct kvmppc_vcore *pvc, *vcnext;
3621 
3622 	spin_lock(&lp->lock);
3623 	list_for_each_entry_safe(pvc, vcnext, &lp->list, preempt_list) {
3624 		if (!spin_trylock(&pvc->lock))
3625 			continue;
3626 		prepare_threads(pvc);
3627 		if (!pvc->n_runnable || !pvc->kvm->arch.mmu_ready) {
3628 			list_del_init(&pvc->preempt_list);
3629 			if (pvc->runner == NULL) {
3630 				pvc->vcore_state = VCORE_INACTIVE;
3631 				kvmppc_core_end_stolen(pvc, mftb());
3632 			}
3633 			spin_unlock(&pvc->lock);
3634 			continue;
3635 		}
3636 		if (!can_piggyback(pvc, cip, target_threads)) {
3637 			spin_unlock(&pvc->lock);
3638 			continue;
3639 		}
3640 		kvmppc_core_end_stolen(pvc, mftb());
3641 		pvc->vcore_state = VCORE_PIGGYBACK;
3642 		if (cip->total_threads >= target_threads)
3643 			break;
3644 	}
3645 	spin_unlock(&lp->lock);
3646 }
3647 
recheck_signals_and_mmu(struct core_info * cip)3648 static bool recheck_signals_and_mmu(struct core_info *cip)
3649 {
3650 	int sub, i;
3651 	struct kvm_vcpu *vcpu;
3652 	struct kvmppc_vcore *vc;
3653 
3654 	for (sub = 0; sub < cip->n_subcores; ++sub) {
3655 		vc = cip->vc[sub];
3656 		if (!vc->kvm->arch.mmu_ready)
3657 			return true;
3658 		for_each_runnable_thread(i, vcpu, vc)
3659 			if (signal_pending(vcpu->arch.run_task))
3660 				return true;
3661 	}
3662 	return false;
3663 }
3664 
post_guest_process(struct kvmppc_vcore * vc,bool is_master)3665 static void post_guest_process(struct kvmppc_vcore *vc, bool is_master)
3666 {
3667 	int still_running = 0, i;
3668 	u64 now;
3669 	long ret;
3670 	struct kvm_vcpu *vcpu;
3671 
3672 	spin_lock(&vc->lock);
3673 	now = get_tb();
3674 	for_each_runnable_thread(i, vcpu, vc) {
3675 		/*
3676 		 * It's safe to unlock the vcore in the loop here, because
3677 		 * for_each_runnable_thread() is safe against removal of
3678 		 * the vcpu, and the vcore state is VCORE_EXITING here,
3679 		 * so any vcpus becoming runnable will have their arch.trap
3680 		 * set to zero and can't actually run in the guest.
3681 		 */
3682 		spin_unlock(&vc->lock);
3683 		/* cancel pending dec exception if dec is positive */
3684 		if (now < kvmppc_dec_expires_host_tb(vcpu) &&
3685 		    kvmppc_core_pending_dec(vcpu))
3686 			kvmppc_core_dequeue_dec(vcpu);
3687 
3688 		trace_kvm_guest_exit(vcpu);
3689 
3690 		ret = RESUME_GUEST;
3691 		if (vcpu->arch.trap)
3692 			ret = kvmppc_handle_exit_hv(vcpu,
3693 						    vcpu->arch.run_task);
3694 
3695 		vcpu->arch.ret = ret;
3696 		vcpu->arch.trap = 0;
3697 
3698 		spin_lock(&vc->lock);
3699 		if (is_kvmppc_resume_guest(vcpu->arch.ret)) {
3700 			if (vcpu->arch.pending_exceptions)
3701 				kvmppc_core_prepare_to_enter(vcpu);
3702 			if (vcpu->arch.ceded)
3703 				kvmppc_set_timer(vcpu);
3704 			else
3705 				++still_running;
3706 		} else {
3707 			kvmppc_remove_runnable(vc, vcpu, mftb());
3708 			wake_up(&vcpu->arch.cpu_run);
3709 		}
3710 	}
3711 	if (!is_master) {
3712 		if (still_running > 0) {
3713 			kvmppc_vcore_preempt(vc);
3714 		} else if (vc->runner) {
3715 			vc->vcore_state = VCORE_PREEMPT;
3716 			kvmppc_core_start_stolen(vc, mftb());
3717 		} else {
3718 			vc->vcore_state = VCORE_INACTIVE;
3719 		}
3720 		if (vc->n_runnable > 0 && vc->runner == NULL) {
3721 			/* make sure there's a candidate runner awake */
3722 			i = -1;
3723 			vcpu = next_runnable_thread(vc, &i);
3724 			wake_up(&vcpu->arch.cpu_run);
3725 		}
3726 	}
3727 	spin_unlock(&vc->lock);
3728 }
3729 
3730 /*
3731  * Clear core from the list of active host cores as we are about to
3732  * enter the guest. Only do this if it is the primary thread of the
3733  * core (not if a subcore) that is entering the guest.
3734  */
kvmppc_clear_host_core(unsigned int cpu)3735 static inline int kvmppc_clear_host_core(unsigned int cpu)
3736 {
3737 	int core;
3738 
3739 	if (!kvmppc_host_rm_ops_hv || cpu_thread_in_core(cpu))
3740 		return 0;
3741 	/*
3742 	 * Memory barrier can be omitted here as we will do a smp_wmb()
3743 	 * later in kvmppc_start_thread and we need ensure that state is
3744 	 * visible to other CPUs only after we enter guest.
3745 	 */
3746 	core = cpu >> threads_shift;
3747 	kvmppc_host_rm_ops_hv->rm_core[core].rm_state.in_host = 0;
3748 	return 0;
3749 }
3750 
3751 /*
3752  * Advertise this core as an active host core since we exited the guest
3753  * Only need to do this if it is the primary thread of the core that is
3754  * exiting.
3755  */
kvmppc_set_host_core(unsigned int cpu)3756 static inline int kvmppc_set_host_core(unsigned int cpu)
3757 {
3758 	int core;
3759 
3760 	if (!kvmppc_host_rm_ops_hv || cpu_thread_in_core(cpu))
3761 		return 0;
3762 
3763 	/*
3764 	 * Memory barrier can be omitted here because we do a spin_unlock
3765 	 * immediately after this which provides the memory barrier.
3766 	 */
3767 	core = cpu >> threads_shift;
3768 	kvmppc_host_rm_ops_hv->rm_core[core].rm_state.in_host = 1;
3769 	return 0;
3770 }
3771 
set_irq_happened(int trap)3772 static void set_irq_happened(int trap)
3773 {
3774 	switch (trap) {
3775 	case BOOK3S_INTERRUPT_EXTERNAL:
3776 		local_paca->irq_happened |= PACA_IRQ_EE;
3777 		break;
3778 	case BOOK3S_INTERRUPT_H_DOORBELL:
3779 		local_paca->irq_happened |= PACA_IRQ_DBELL;
3780 		break;
3781 	case BOOK3S_INTERRUPT_HMI:
3782 		local_paca->irq_happened |= PACA_IRQ_HMI;
3783 		break;
3784 	case BOOK3S_INTERRUPT_SYSTEM_RESET:
3785 		replay_system_reset();
3786 		break;
3787 	}
3788 }
3789 
3790 /*
3791  * Run a set of guest threads on a physical core.
3792  * Called with vc->lock held.
3793  */
kvmppc_run_core(struct kvmppc_vcore * vc)3794 static noinline void kvmppc_run_core(struct kvmppc_vcore *vc)
3795 {
3796 	struct kvm_vcpu *vcpu;
3797 	int i;
3798 	int srcu_idx;
3799 	struct core_info core_info;
3800 	struct kvmppc_vcore *pvc;
3801 	struct kvm_split_mode split_info, *sip;
3802 	int split, subcore_size, active;
3803 	int sub;
3804 	bool thr0_done;
3805 	unsigned long cmd_bit, stat_bit;
3806 	int pcpu, thr;
3807 	int target_threads;
3808 	int controlled_threads;
3809 	int trap;
3810 	bool is_power8;
3811 
3812 	if (WARN_ON_ONCE(cpu_has_feature(CPU_FTR_ARCH_300)))
3813 		return;
3814 
3815 	/*
3816 	 * Remove from the list any threads that have a signal pending
3817 	 * or need a VPA update done
3818 	 */
3819 	prepare_threads(vc);
3820 
3821 	/* if the runner is no longer runnable, let the caller pick a new one */
3822 	if (vc->runner->arch.state != KVMPPC_VCPU_RUNNABLE)
3823 		return;
3824 
3825 	/*
3826 	 * Initialize *vc.
3827 	 */
3828 	init_vcore_to_run(vc);
3829 	vc->preempt_tb = TB_NIL;
3830 
3831 	/*
3832 	 * Number of threads that we will be controlling: the same as
3833 	 * the number of threads per subcore, except on POWER9,
3834 	 * where it's 1 because the threads are (mostly) independent.
3835 	 */
3836 	controlled_threads = threads_per_vcore(vc->kvm);
3837 
3838 	/*
3839 	 * Make sure we are running on primary threads, and that secondary
3840 	 * threads are offline.  Also check if the number of threads in this
3841 	 * guest are greater than the current system threads per guest.
3842 	 */
3843 	if ((controlled_threads > 1) &&
3844 	    ((vc->num_threads > threads_per_subcore) || !on_primary_thread())) {
3845 		for_each_runnable_thread(i, vcpu, vc) {
3846 			vcpu->arch.ret = -EBUSY;
3847 			kvmppc_remove_runnable(vc, vcpu, mftb());
3848 			wake_up(&vcpu->arch.cpu_run);
3849 		}
3850 		goto out;
3851 	}
3852 
3853 	/*
3854 	 * See if we could run any other vcores on the physical core
3855 	 * along with this one.
3856 	 */
3857 	init_core_info(&core_info, vc);
3858 	pcpu = smp_processor_id();
3859 	target_threads = controlled_threads;
3860 	if (target_smt_mode && target_smt_mode < target_threads)
3861 		target_threads = target_smt_mode;
3862 	if (vc->num_threads < target_threads)
3863 		collect_piggybacks(&core_info, target_threads);
3864 
3865 	/*
3866 	 * Hard-disable interrupts, and check resched flag and signals.
3867 	 * If we need to reschedule or deliver a signal, clean up
3868 	 * and return without going into the guest(s).
3869 	 * If the mmu_ready flag has been cleared, don't go into the
3870 	 * guest because that means a HPT resize operation is in progress.
3871 	 */
3872 	local_irq_disable();
3873 	hard_irq_disable();
3874 	xfer_to_guest_mode_prepare();
3875 	if (lazy_irq_pending() || xfer_to_guest_mode_work_pending() ||
3876 	    recheck_signals_and_mmu(&core_info)) {
3877 		local_irq_enable();
3878 		vc->vcore_state = VCORE_INACTIVE;
3879 		/* Unlock all except the primary vcore */
3880 		for (sub = 1; sub < core_info.n_subcores; ++sub) {
3881 			pvc = core_info.vc[sub];
3882 			/* Put back on to the preempted vcores list */
3883 			kvmppc_vcore_preempt(pvc);
3884 			spin_unlock(&pvc->lock);
3885 		}
3886 		for (i = 0; i < controlled_threads; ++i)
3887 			kvmppc_release_hwthread(pcpu + i);
3888 		return;
3889 	}
3890 
3891 	kvmppc_clear_host_core(pcpu);
3892 
3893 	/* Decide on micro-threading (split-core) mode */
3894 	subcore_size = threads_per_subcore;
3895 	cmd_bit = stat_bit = 0;
3896 	split = core_info.n_subcores;
3897 	sip = NULL;
3898 	is_power8 = cpu_has_feature(CPU_FTR_ARCH_207S);
3899 
3900 	if (split > 1) {
3901 		sip = &split_info;
3902 		memset(&split_info, 0, sizeof(split_info));
3903 		for (sub = 0; sub < core_info.n_subcores; ++sub)
3904 			split_info.vc[sub] = core_info.vc[sub];
3905 
3906 		if (is_power8) {
3907 			if (split == 2 && (dynamic_mt_modes & 2)) {
3908 				cmd_bit = HID0_POWER8_1TO2LPAR;
3909 				stat_bit = HID0_POWER8_2LPARMODE;
3910 			} else {
3911 				split = 4;
3912 				cmd_bit = HID0_POWER8_1TO4LPAR;
3913 				stat_bit = HID0_POWER8_4LPARMODE;
3914 			}
3915 			subcore_size = MAX_SMT_THREADS / split;
3916 			split_info.rpr = mfspr(SPRN_RPR);
3917 			split_info.pmmar = mfspr(SPRN_PMMAR);
3918 			split_info.ldbar = mfspr(SPRN_LDBAR);
3919 			split_info.subcore_size = subcore_size;
3920 		} else {
3921 			split_info.subcore_size = 1;
3922 		}
3923 
3924 		/* order writes to split_info before kvm_split_mode pointer */
3925 		smp_wmb();
3926 	}
3927 
3928 	for (thr = 0; thr < controlled_threads; ++thr) {
3929 		struct paca_struct *paca = paca_ptrs[pcpu + thr];
3930 
3931 		paca->kvm_hstate.napping = 0;
3932 		paca->kvm_hstate.kvm_split_mode = sip;
3933 	}
3934 
3935 	/* Initiate micro-threading (split-core) on POWER8 if required */
3936 	if (cmd_bit) {
3937 		unsigned long hid0 = mfspr(SPRN_HID0);
3938 
3939 		hid0 |= cmd_bit | HID0_POWER8_DYNLPARDIS;
3940 		mb();
3941 		mtspr(SPRN_HID0, hid0);
3942 		isync();
3943 		for (;;) {
3944 			hid0 = mfspr(SPRN_HID0);
3945 			if (hid0 & stat_bit)
3946 				break;
3947 			cpu_relax();
3948 		}
3949 	}
3950 
3951 	/*
3952 	 * On POWER8, set RWMR register.
3953 	 * Since it only affects PURR and SPURR, it doesn't affect
3954 	 * the host, so we don't save/restore the host value.
3955 	 */
3956 	if (is_power8) {
3957 		unsigned long rwmr_val = RWMR_RPA_P8_8THREAD;
3958 		int n_online = atomic_read(&vc->online_count);
3959 
3960 		/*
3961 		 * Use the 8-thread value if we're doing split-core
3962 		 * or if the vcore's online count looks bogus.
3963 		 */
3964 		if (split == 1 && threads_per_subcore == MAX_SMT_THREADS &&
3965 		    n_online >= 1 && n_online <= MAX_SMT_THREADS)
3966 			rwmr_val = p8_rwmr_values[n_online];
3967 		mtspr(SPRN_RWMR, rwmr_val);
3968 	}
3969 
3970 	/* Start all the threads */
3971 	active = 0;
3972 	for (sub = 0; sub < core_info.n_subcores; ++sub) {
3973 		thr = is_power8 ? subcore_thread_map[sub] : sub;
3974 		thr0_done = false;
3975 		active |= 1 << thr;
3976 		pvc = core_info.vc[sub];
3977 		pvc->pcpu = pcpu + thr;
3978 		for_each_runnable_thread(i, vcpu, pvc) {
3979 			/*
3980 			 * XXX: is kvmppc_start_thread called too late here?
3981 			 * It updates vcpu->cpu and vcpu->arch.thread_cpu
3982 			 * which are used by kvmppc_fast_vcpu_kick_hv(), but
3983 			 * kick is called after new exceptions become available
3984 			 * and exceptions are checked earlier than here, by
3985 			 * kvmppc_core_prepare_to_enter.
3986 			 */
3987 			kvmppc_start_thread(vcpu, pvc);
3988 			kvmppc_update_vpa_dispatch(vcpu, pvc);
3989 			trace_kvm_guest_enter(vcpu);
3990 			if (!vcpu->arch.ptid)
3991 				thr0_done = true;
3992 			active |= 1 << (thr + vcpu->arch.ptid);
3993 		}
3994 		/*
3995 		 * We need to start the first thread of each subcore
3996 		 * even if it doesn't have a vcpu.
3997 		 */
3998 		if (!thr0_done)
3999 			kvmppc_start_thread(NULL, pvc);
4000 	}
4001 
4002 	/*
4003 	 * Ensure that split_info.do_nap is set after setting
4004 	 * the vcore pointer in the PACA of the secondaries.
4005 	 */
4006 	smp_mb();
4007 
4008 	/*
4009 	 * When doing micro-threading, poke the inactive threads as well.
4010 	 * This gets them to the nap instruction after kvm_do_nap,
4011 	 * which reduces the time taken to unsplit later.
4012 	 */
4013 	if (cmd_bit) {
4014 		split_info.do_nap = 1;	/* ask secondaries to nap when done */
4015 		for (thr = 1; thr < threads_per_subcore; ++thr)
4016 			if (!(active & (1 << thr)))
4017 				kvmppc_ipi_thread(pcpu + thr);
4018 	}
4019 
4020 	vc->vcore_state = VCORE_RUNNING;
4021 	preempt_disable();
4022 
4023 	trace_kvmppc_run_core(vc, 0);
4024 
4025 	for (sub = 0; sub < core_info.n_subcores; ++sub)
4026 		spin_unlock(&core_info.vc[sub]->lock);
4027 
4028 	guest_timing_enter_irqoff();
4029 
4030 	srcu_idx = srcu_read_lock(&vc->kvm->srcu);
4031 
4032 	guest_state_enter_irqoff();
4033 	this_cpu_disable_ftrace();
4034 
4035 	trap = __kvmppc_vcore_entry();
4036 
4037 	this_cpu_enable_ftrace();
4038 	guest_state_exit_irqoff();
4039 
4040 	srcu_read_unlock(&vc->kvm->srcu, srcu_idx);
4041 
4042 	set_irq_happened(trap);
4043 
4044 	spin_lock(&vc->lock);
4045 	/* prevent other vcpu threads from doing kvmppc_start_thread() now */
4046 	vc->vcore_state = VCORE_EXITING;
4047 
4048 	/* wait for secondary threads to finish writing their state to memory */
4049 	kvmppc_wait_for_nap(controlled_threads);
4050 
4051 	/* Return to whole-core mode if we split the core earlier */
4052 	if (cmd_bit) {
4053 		unsigned long hid0 = mfspr(SPRN_HID0);
4054 
4055 		hid0 &= ~HID0_POWER8_DYNLPARDIS;
4056 		stat_bit = HID0_POWER8_2LPARMODE | HID0_POWER8_4LPARMODE;
4057 		mb();
4058 		mtspr(SPRN_HID0, hid0);
4059 		isync();
4060 		for (;;) {
4061 			hid0 = mfspr(SPRN_HID0);
4062 			if (!(hid0 & stat_bit))
4063 				break;
4064 			cpu_relax();
4065 		}
4066 		split_info.do_nap = 0;
4067 	}
4068 
4069 	kvmppc_set_host_core(pcpu);
4070 
4071 	if (!vtime_accounting_enabled_this_cpu()) {
4072 		local_irq_enable();
4073 		/*
4074 		 * Service IRQs here before guest_timing_exit_irqoff() so any
4075 		 * ticks that occurred while running the guest are accounted to
4076 		 * the guest. If vtime accounting is enabled, accounting uses
4077 		 * TB rather than ticks, so it can be done without enabling
4078 		 * interrupts here, which has the problem that it accounts
4079 		 * interrupt processing overhead to the host.
4080 		 */
4081 		local_irq_disable();
4082 	}
4083 	guest_timing_exit_irqoff();
4084 
4085 	local_irq_enable();
4086 
4087 	/* Let secondaries go back to the offline loop */
4088 	for (i = 0; i < controlled_threads; ++i) {
4089 		kvmppc_release_hwthread(pcpu + i);
4090 		if (sip && sip->napped[i])
4091 			kvmppc_ipi_thread(pcpu + i);
4092 	}
4093 
4094 	spin_unlock(&vc->lock);
4095 
4096 	/* make sure updates to secondary vcpu structs are visible now */
4097 	smp_mb();
4098 
4099 	preempt_enable();
4100 
4101 	for (sub = 0; sub < core_info.n_subcores; ++sub) {
4102 		pvc = core_info.vc[sub];
4103 		post_guest_process(pvc, pvc == vc);
4104 	}
4105 
4106 	spin_lock(&vc->lock);
4107 
4108  out:
4109 	vc->vcore_state = VCORE_INACTIVE;
4110 	trace_kvmppc_run_core(vc, 1);
4111 }
4112 
hcall_is_xics(unsigned long req)4113 static inline bool hcall_is_xics(unsigned long req)
4114 {
4115 	return req == H_EOI || req == H_CPPR || req == H_IPI ||
4116 		req == H_IPOLL || req == H_XIRR || req == H_XIRR_X;
4117 }
4118 
vcpu_vpa_increment_dispatch(struct kvm_vcpu * vcpu)4119 static void vcpu_vpa_increment_dispatch(struct kvm_vcpu *vcpu)
4120 {
4121 	struct lppaca *lp = vcpu->arch.vpa.pinned_addr;
4122 	if (lp) {
4123 		u32 yield_count = be32_to_cpu(lp->yield_count) + 1;
4124 		lp->yield_count = cpu_to_be32(yield_count);
4125 		vcpu->arch.vpa.dirty = 1;
4126 	}
4127 }
4128 
4129 /* Helper functions for reading L2's stats from L1's VPA */
4130 #ifdef CONFIG_PPC_PSERIES
4131 static DEFINE_PER_CPU(u64, l1_to_l2_cs);
4132 static DEFINE_PER_CPU(u64, l2_to_l1_cs);
4133 static DEFINE_PER_CPU(u64, l2_runtime_agg);
4134 
kvmhv_get_l2_counters_status(void)4135 int kvmhv_get_l2_counters_status(void)
4136 {
4137 	return firmware_has_feature(FW_FEATURE_LPAR) &&
4138 		get_lppaca()->l2_counters_enable;
4139 }
4140 
kvmhv_set_l2_counters_status(int cpu,bool status)4141 void kvmhv_set_l2_counters_status(int cpu, bool status)
4142 {
4143 	if (!firmware_has_feature(FW_FEATURE_LPAR))
4144 		return;
4145 	if (status)
4146 		lppaca_of(cpu).l2_counters_enable = 1;
4147 	else
4148 		lppaca_of(cpu).l2_counters_enable = 0;
4149 }
4150 EXPORT_SYMBOL(kvmhv_set_l2_counters_status);
4151 
kvmhv_counters_tracepoint_regfunc(void)4152 int kvmhv_counters_tracepoint_regfunc(void)
4153 {
4154 	int cpu;
4155 
4156 	for_each_present_cpu(cpu) {
4157 		kvmhv_set_l2_counters_status(cpu, true);
4158 	}
4159 	return 0;
4160 }
4161 
kvmhv_counters_tracepoint_unregfunc(void)4162 void kvmhv_counters_tracepoint_unregfunc(void)
4163 {
4164 	int cpu;
4165 
4166 	for_each_present_cpu(cpu) {
4167 		kvmhv_set_l2_counters_status(cpu, false);
4168 	}
4169 }
4170 
do_trace_nested_cs_time(struct kvm_vcpu * vcpu)4171 static void do_trace_nested_cs_time(struct kvm_vcpu *vcpu)
4172 {
4173 	struct lppaca *lp = get_lppaca();
4174 	u64 l1_to_l2_ns, l2_to_l1_ns, l2_runtime_ns;
4175 	u64 *l1_to_l2_cs_ptr = this_cpu_ptr(&l1_to_l2_cs);
4176 	u64 *l2_to_l1_cs_ptr = this_cpu_ptr(&l2_to_l1_cs);
4177 	u64 *l2_runtime_agg_ptr = this_cpu_ptr(&l2_runtime_agg);
4178 
4179 	l1_to_l2_ns = tb_to_ns(be64_to_cpu(lp->l1_to_l2_cs_tb));
4180 	l2_to_l1_ns = tb_to_ns(be64_to_cpu(lp->l2_to_l1_cs_tb));
4181 	l2_runtime_ns = tb_to_ns(be64_to_cpu(lp->l2_runtime_tb));
4182 	trace_kvmppc_vcpu_stats(vcpu, l1_to_l2_ns - *l1_to_l2_cs_ptr,
4183 					l2_to_l1_ns - *l2_to_l1_cs_ptr,
4184 					l2_runtime_ns - *l2_runtime_agg_ptr);
4185 	*l1_to_l2_cs_ptr = l1_to_l2_ns;
4186 	*l2_to_l1_cs_ptr = l2_to_l1_ns;
4187 	*l2_runtime_agg_ptr = l2_runtime_ns;
4188 	vcpu->arch.l1_to_l2_cs = l1_to_l2_ns;
4189 	vcpu->arch.l2_to_l1_cs = l2_to_l1_ns;
4190 	vcpu->arch.l2_runtime_agg = l2_runtime_ns;
4191 }
4192 
kvmhv_get_l1_to_l2_cs_time(void)4193 u64 kvmhv_get_l1_to_l2_cs_time(void)
4194 {
4195 	return tb_to_ns(be64_to_cpu(get_lppaca()->l1_to_l2_cs_tb));
4196 }
4197 EXPORT_SYMBOL(kvmhv_get_l1_to_l2_cs_time);
4198 
kvmhv_get_l2_to_l1_cs_time(void)4199 u64 kvmhv_get_l2_to_l1_cs_time(void)
4200 {
4201 	return tb_to_ns(be64_to_cpu(get_lppaca()->l2_to_l1_cs_tb));
4202 }
4203 EXPORT_SYMBOL(kvmhv_get_l2_to_l1_cs_time);
4204 
kvmhv_get_l2_runtime_agg(void)4205 u64 kvmhv_get_l2_runtime_agg(void)
4206 {
4207 	return tb_to_ns(be64_to_cpu(get_lppaca()->l2_runtime_tb));
4208 }
4209 EXPORT_SYMBOL(kvmhv_get_l2_runtime_agg);
4210 
kvmhv_get_l1_to_l2_cs_time_vcpu(void)4211 u64 kvmhv_get_l1_to_l2_cs_time_vcpu(void)
4212 {
4213 	struct kvm_vcpu *vcpu;
4214 	struct kvm_vcpu_arch *arch;
4215 
4216 	vcpu = local_paca->kvm_hstate.kvm_vcpu;
4217 	if (vcpu) {
4218 		arch = &vcpu->arch;
4219 		return arch->l1_to_l2_cs;
4220 	} else {
4221 		return 0;
4222 	}
4223 }
4224 EXPORT_SYMBOL(kvmhv_get_l1_to_l2_cs_time_vcpu);
4225 
kvmhv_get_l2_to_l1_cs_time_vcpu(void)4226 u64 kvmhv_get_l2_to_l1_cs_time_vcpu(void)
4227 {
4228 	struct kvm_vcpu *vcpu;
4229 	struct kvm_vcpu_arch *arch;
4230 
4231 	vcpu = local_paca->kvm_hstate.kvm_vcpu;
4232 	if (vcpu) {
4233 		arch = &vcpu->arch;
4234 		return arch->l2_to_l1_cs;
4235 	} else {
4236 		return 0;
4237 	}
4238 }
4239 EXPORT_SYMBOL(kvmhv_get_l2_to_l1_cs_time_vcpu);
4240 
kvmhv_get_l2_runtime_agg_vcpu(void)4241 u64 kvmhv_get_l2_runtime_agg_vcpu(void)
4242 {
4243 	struct kvm_vcpu *vcpu;
4244 	struct kvm_vcpu_arch *arch;
4245 
4246 	vcpu = local_paca->kvm_hstate.kvm_vcpu;
4247 	if (vcpu) {
4248 		arch = &vcpu->arch;
4249 		return arch->l2_runtime_agg;
4250 	} else {
4251 		return 0;
4252 	}
4253 }
4254 EXPORT_SYMBOL(kvmhv_get_l2_runtime_agg_vcpu);
4255 
4256 #else
kvmhv_get_l2_counters_status(void)4257 int kvmhv_get_l2_counters_status(void)
4258 {
4259 	return 0;
4260 }
4261 
do_trace_nested_cs_time(struct kvm_vcpu * vcpu)4262 static void do_trace_nested_cs_time(struct kvm_vcpu *vcpu)
4263 {
4264 }
4265 #endif
4266 
kvmhv_vcpu_entry_nestedv2(struct kvm_vcpu * vcpu,u64 time_limit,unsigned long lpcr,u64 * tb)4267 static int kvmhv_vcpu_entry_nestedv2(struct kvm_vcpu *vcpu, u64 time_limit,
4268 				     unsigned long lpcr, u64 *tb)
4269 {
4270 	struct kvmhv_nestedv2_io *io;
4271 	unsigned long msr, i;
4272 	int trap;
4273 	long rc;
4274 
4275 	if (vcpu->arch.doorbell_request) {
4276 		vcpu->arch.doorbell_request = 0;
4277 		kvmppc_set_dpdes(vcpu, 1);
4278 	}
4279 
4280 	io = &vcpu->arch.nestedv2_io;
4281 
4282 	msr = mfmsr();
4283 	kvmppc_msr_hard_disable_set_facilities(vcpu, msr);
4284 	if (lazy_irq_pending())
4285 		return 0;
4286 
4287 	rc = kvmhv_nestedv2_flush_vcpu(vcpu, time_limit);
4288 	if (rc < 0)
4289 		return -EINVAL;
4290 
4291 	kvmppc_gse_put_u64(io->vcpu_run_input, KVMPPC_GSID_LPCR, lpcr);
4292 
4293 	accumulate_time(vcpu, &vcpu->arch.in_guest);
4294 	rc = plpar_guest_run_vcpu(0, vcpu->kvm->arch.lpid, vcpu->vcpu_id,
4295 				  &trap, &i);
4296 
4297 	if (rc != H_SUCCESS) {
4298 		pr_err("KVM Guest Run VCPU hcall failed\n");
4299 		if (rc == H_INVALID_ELEMENT_ID)
4300 			pr_err("KVM: Guest Run VCPU invalid element id at %ld\n", i);
4301 		else if (rc == H_INVALID_ELEMENT_SIZE)
4302 			pr_err("KVM: Guest Run VCPU invalid element size at %ld\n", i);
4303 		else if (rc == H_INVALID_ELEMENT_VALUE)
4304 			pr_err("KVM: Guest Run VCPU invalid element value at %ld\n", i);
4305 		return -EINVAL;
4306 	}
4307 	accumulate_time(vcpu, &vcpu->arch.guest_exit);
4308 
4309 	*tb = mftb();
4310 	kvmppc_gsm_reset(io->vcpu_message);
4311 	kvmppc_gsm_reset(io->vcore_message);
4312 	kvmppc_gsbm_zero(&io->valids);
4313 
4314 	rc = kvmhv_nestedv2_parse_output(vcpu);
4315 	if (rc < 0)
4316 		return -EINVAL;
4317 
4318 	timer_rearm_host_dec(*tb);
4319 
4320 	/* Record context switch and guest_run_time data */
4321 	if (kvmhv_get_l2_counters_status())
4322 		do_trace_nested_cs_time(vcpu);
4323 
4324 	return trap;
4325 }
4326 
4327 /* call our hypervisor to load up HV regs and go */
kvmhv_vcpu_entry_p9_nested(struct kvm_vcpu * vcpu,u64 time_limit,unsigned long lpcr,u64 * tb)4328 static int kvmhv_vcpu_entry_p9_nested(struct kvm_vcpu *vcpu, u64 time_limit, unsigned long lpcr, u64 *tb)
4329 {
4330 	unsigned long host_psscr;
4331 	unsigned long msr;
4332 	struct hv_guest_state hvregs;
4333 	struct p9_host_os_sprs host_os_sprs;
4334 	s64 dec;
4335 	int trap;
4336 
4337 	msr = mfmsr();
4338 
4339 	save_p9_host_os_sprs(&host_os_sprs);
4340 
4341 	/*
4342 	 * We need to save and restore the guest visible part of the
4343 	 * psscr (i.e. using SPRN_PSSCR_PR) since the hypervisor
4344 	 * doesn't do this for us. Note only required if pseries since
4345 	 * this is done in kvmhv_vcpu_entry_p9() below otherwise.
4346 	 */
4347 	host_psscr = mfspr(SPRN_PSSCR_PR);
4348 
4349 	kvmppc_msr_hard_disable_set_facilities(vcpu, msr);
4350 	if (lazy_irq_pending())
4351 		return 0;
4352 
4353 	if (unlikely(load_vcpu_state(vcpu, &host_os_sprs)))
4354 		msr = mfmsr(); /* TM restore can update msr */
4355 
4356 	if (vcpu->arch.psscr != host_psscr)
4357 		mtspr(SPRN_PSSCR_PR, vcpu->arch.psscr);
4358 
4359 	kvmhv_save_hv_regs(vcpu, &hvregs);
4360 	hvregs.lpcr = lpcr;
4361 	hvregs.amor = ~0;
4362 	vcpu->arch.regs.msr = vcpu->arch.shregs.msr;
4363 	hvregs.version = HV_GUEST_STATE_VERSION;
4364 	if (vcpu->arch.nested) {
4365 		hvregs.lpid = vcpu->arch.nested->shadow_lpid;
4366 		hvregs.vcpu_token = vcpu->arch.nested_vcpu_id;
4367 	} else {
4368 		hvregs.lpid = vcpu->kvm->arch.lpid;
4369 		hvregs.vcpu_token = vcpu->vcpu_id;
4370 	}
4371 	hvregs.hdec_expiry = time_limit;
4372 
4373 	/*
4374 	 * hvregs has the doorbell status, so zero it here which
4375 	 * enables us to receive doorbells when H_ENTER_NESTED is
4376 	 * in progress for this vCPU
4377 	 */
4378 
4379 	if (vcpu->arch.doorbell_request)
4380 		vcpu->arch.doorbell_request = 0;
4381 
4382 	/*
4383 	 * When setting DEC, we must always deal with irq_work_raise
4384 	 * via NMI vs setting DEC. The problem occurs right as we
4385 	 * switch into guest mode if a NMI hits and sets pending work
4386 	 * and sets DEC, then that will apply to the guest and not
4387 	 * bring us back to the host.
4388 	 *
4389 	 * irq_work_raise could check a flag (or possibly LPCR[HDICE]
4390 	 * for example) and set HDEC to 1? That wouldn't solve the
4391 	 * nested hv case which needs to abort the hcall or zero the
4392 	 * time limit.
4393 	 *
4394 	 * XXX: Another day's problem.
4395 	 */
4396 	mtspr(SPRN_DEC, kvmppc_dec_expires_host_tb(vcpu) - *tb);
4397 
4398 	mtspr(SPRN_DAR, vcpu->arch.shregs.dar);
4399 	mtspr(SPRN_DSISR, vcpu->arch.shregs.dsisr);
4400 	switch_pmu_to_guest(vcpu, &host_os_sprs);
4401 	accumulate_time(vcpu, &vcpu->arch.in_guest);
4402 	trap = plpar_hcall_norets(H_ENTER_NESTED, __pa(&hvregs),
4403 				  __pa(&vcpu->arch.regs));
4404 	accumulate_time(vcpu, &vcpu->arch.guest_exit);
4405 	kvmhv_restore_hv_return_state(vcpu, &hvregs);
4406 	switch_pmu_to_host(vcpu, &host_os_sprs);
4407 	vcpu->arch.shregs.msr = vcpu->arch.regs.msr;
4408 	vcpu->arch.shregs.dar = mfspr(SPRN_DAR);
4409 	vcpu->arch.shregs.dsisr = mfspr(SPRN_DSISR);
4410 	vcpu->arch.psscr = mfspr(SPRN_PSSCR_PR);
4411 
4412 	store_vcpu_state(vcpu);
4413 
4414 	dec = mfspr(SPRN_DEC);
4415 	if (!(lpcr & LPCR_LD)) /* Sign extend if not using large decrementer */
4416 		dec = (s32) dec;
4417 	*tb = mftb();
4418 	vcpu->arch.dec_expires = dec + (*tb + kvmppc_get_tb_offset(vcpu));
4419 
4420 	timer_rearm_host_dec(*tb);
4421 
4422 	restore_p9_host_os_sprs(vcpu, &host_os_sprs);
4423 	if (vcpu->arch.psscr != host_psscr)
4424 		mtspr(SPRN_PSSCR_PR, host_psscr);
4425 
4426 	return trap;
4427 }
4428 
4429 /*
4430  * Guest entry for POWER9 and later CPUs.
4431  */
kvmhv_p9_guest_entry(struct kvm_vcpu * vcpu,u64 time_limit,unsigned long lpcr,u64 * tb)4432 static int kvmhv_p9_guest_entry(struct kvm_vcpu *vcpu, u64 time_limit,
4433 			 unsigned long lpcr, u64 *tb)
4434 {
4435 	struct kvm *kvm = vcpu->kvm;
4436 	struct kvm_nested_guest *nested = vcpu->arch.nested;
4437 	u64 next_timer;
4438 	int trap;
4439 
4440 	next_timer = timer_get_next_tb();
4441 	if (*tb >= next_timer)
4442 		return BOOK3S_INTERRUPT_HV_DECREMENTER;
4443 	if (next_timer < time_limit)
4444 		time_limit = next_timer;
4445 	else if (*tb >= time_limit) /* nested time limit */
4446 		return BOOK3S_INTERRUPT_NESTED_HV_DECREMENTER;
4447 
4448 	vcpu->arch.ceded = 0;
4449 
4450 	vcpu_vpa_increment_dispatch(vcpu);
4451 
4452 	if (kvmhv_on_pseries()) {
4453 		if (kvmhv_is_nestedv1())
4454 			trap = kvmhv_vcpu_entry_p9_nested(vcpu, time_limit, lpcr, tb);
4455 		else
4456 			trap = kvmhv_vcpu_entry_nestedv2(vcpu, time_limit, lpcr, tb);
4457 
4458 		/* H_CEDE has to be handled now, not later */
4459 		if (trap == BOOK3S_INTERRUPT_SYSCALL && !nested &&
4460 		    kvmppc_get_gpr(vcpu, 3) == H_CEDE) {
4461 			kvmppc_cede(vcpu);
4462 			kvmppc_set_gpr(vcpu, 3, 0);
4463 			trap = 0;
4464 		}
4465 
4466 	} else if (nested) {
4467 		__this_cpu_write(cpu_in_guest, kvm);
4468 		trap = kvmhv_vcpu_entry_p9(vcpu, time_limit, lpcr, tb);
4469 		__this_cpu_write(cpu_in_guest, NULL);
4470 
4471 	} else {
4472 		kvmppc_xive_push_vcpu(vcpu);
4473 
4474 		__this_cpu_write(cpu_in_guest, kvm);
4475 		trap = kvmhv_vcpu_entry_p9(vcpu, time_limit, lpcr, tb);
4476 		__this_cpu_write(cpu_in_guest, NULL);
4477 
4478 		if (trap == BOOK3S_INTERRUPT_SYSCALL &&
4479 		    !(__kvmppc_get_msr_hv(vcpu) & MSR_PR)) {
4480 			unsigned long req = kvmppc_get_gpr(vcpu, 3);
4481 
4482 			/*
4483 			 * XIVE rearm and XICS hcalls must be handled
4484 			 * before xive context is pulled (is this
4485 			 * true?)
4486 			 */
4487 			if (req == H_CEDE) {
4488 				/* H_CEDE has to be handled now */
4489 				kvmppc_cede(vcpu);
4490 				if (!kvmppc_xive_rearm_escalation(vcpu)) {
4491 					/*
4492 					 * Pending escalation so abort
4493 					 * the cede.
4494 					 */
4495 					vcpu->arch.ceded = 0;
4496 				}
4497 				kvmppc_set_gpr(vcpu, 3, 0);
4498 				trap = 0;
4499 
4500 			} else if (req == H_ENTER_NESTED) {
4501 				/*
4502 				 * L2 should not run with the L1
4503 				 * context so rearm and pull it.
4504 				 */
4505 				if (!kvmppc_xive_rearm_escalation(vcpu)) {
4506 					/*
4507 					 * Pending escalation so abort
4508 					 * H_ENTER_NESTED.
4509 					 */
4510 					kvmppc_set_gpr(vcpu, 3, 0);
4511 					trap = 0;
4512 				}
4513 
4514 			} else if (hcall_is_xics(req)) {
4515 				int ret;
4516 
4517 				ret = kvmppc_xive_xics_hcall(vcpu, req);
4518 				if (ret != H_TOO_HARD) {
4519 					kvmppc_set_gpr(vcpu, 3, ret);
4520 					trap = 0;
4521 				}
4522 			}
4523 		}
4524 		kvmppc_xive_pull_vcpu(vcpu);
4525 
4526 		if (kvm_is_radix(kvm))
4527 			vcpu->arch.slb_max = 0;
4528 	}
4529 
4530 	vcpu_vpa_increment_dispatch(vcpu);
4531 
4532 	return trap;
4533 }
4534 
4535 /*
4536  * Wait for some other vcpu thread to execute us, and
4537  * wake us up when we need to handle something in the host.
4538  */
kvmppc_wait_for_exec(struct kvmppc_vcore * vc,struct kvm_vcpu * vcpu,int wait_state)4539 static void kvmppc_wait_for_exec(struct kvmppc_vcore *vc,
4540 				 struct kvm_vcpu *vcpu, int wait_state)
4541 {
4542 	DEFINE_WAIT(wait);
4543 
4544 	prepare_to_wait(&vcpu->arch.cpu_run, &wait, wait_state);
4545 	if (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE) {
4546 		spin_unlock(&vc->lock);
4547 		schedule();
4548 		spin_lock(&vc->lock);
4549 	}
4550 	finish_wait(&vcpu->arch.cpu_run, &wait);
4551 }
4552 
grow_halt_poll_ns(struct kvmppc_vcore * vc)4553 static void grow_halt_poll_ns(struct kvmppc_vcore *vc)
4554 {
4555 	if (!halt_poll_ns_grow)
4556 		return;
4557 
4558 	vc->halt_poll_ns *= halt_poll_ns_grow;
4559 	if (vc->halt_poll_ns < halt_poll_ns_grow_start)
4560 		vc->halt_poll_ns = halt_poll_ns_grow_start;
4561 }
4562 
shrink_halt_poll_ns(struct kvmppc_vcore * vc)4563 static void shrink_halt_poll_ns(struct kvmppc_vcore *vc)
4564 {
4565 	if (halt_poll_ns_shrink == 0)
4566 		vc->halt_poll_ns = 0;
4567 	else
4568 		vc->halt_poll_ns /= halt_poll_ns_shrink;
4569 }
4570 
4571 #ifdef CONFIG_KVM_XICS
xive_interrupt_pending(struct kvm_vcpu * vcpu)4572 static inline bool xive_interrupt_pending(struct kvm_vcpu *vcpu)
4573 {
4574 	if (!xics_on_xive())
4575 		return false;
4576 	return vcpu->arch.irq_pending || vcpu->arch.xive_saved_state.pipr <
4577 		vcpu->arch.xive_saved_state.cppr;
4578 }
4579 #else
xive_interrupt_pending(struct kvm_vcpu * vcpu)4580 static inline bool xive_interrupt_pending(struct kvm_vcpu *vcpu)
4581 {
4582 	return false;
4583 }
4584 #endif /* CONFIG_KVM_XICS */
4585 
kvmppc_vcpu_woken(struct kvm_vcpu * vcpu)4586 static bool kvmppc_vcpu_woken(struct kvm_vcpu *vcpu)
4587 {
4588 	if (vcpu->arch.pending_exceptions || vcpu->arch.prodded ||
4589 	    kvmppc_doorbell_pending(vcpu) || xive_interrupt_pending(vcpu))
4590 		return true;
4591 
4592 	return false;
4593 }
4594 
kvmppc_vcpu_check_block(struct kvm_vcpu * vcpu)4595 static bool kvmppc_vcpu_check_block(struct kvm_vcpu *vcpu)
4596 {
4597 	if (!vcpu->arch.ceded || kvmppc_vcpu_woken(vcpu))
4598 		return true;
4599 	return false;
4600 }
4601 
4602 /*
4603  * Check to see if any of the runnable vcpus on the vcore have pending
4604  * exceptions or are no longer ceded
4605  */
kvmppc_vcore_check_block(struct kvmppc_vcore * vc)4606 static int kvmppc_vcore_check_block(struct kvmppc_vcore *vc)
4607 {
4608 	struct kvm_vcpu *vcpu;
4609 	int i;
4610 
4611 	for_each_runnable_thread(i, vcpu, vc) {
4612 		if (kvmppc_vcpu_check_block(vcpu))
4613 			return 1;
4614 	}
4615 
4616 	return 0;
4617 }
4618 
4619 /*
4620  * All the vcpus in this vcore are idle, so wait for a decrementer
4621  * or external interrupt to one of the vcpus.  vc->lock is held.
4622  */
kvmppc_vcore_blocked(struct kvmppc_vcore * vc)4623 static void kvmppc_vcore_blocked(struct kvmppc_vcore *vc)
4624 {
4625 	ktime_t cur, start_poll, start_wait;
4626 	int do_sleep = 1;
4627 	u64 block_ns;
4628 
4629 	WARN_ON_ONCE(cpu_has_feature(CPU_FTR_ARCH_300));
4630 
4631 	/* Poll for pending exceptions and ceded state */
4632 	cur = start_poll = ktime_get();
4633 	if (vc->halt_poll_ns) {
4634 		ktime_t stop = ktime_add_ns(start_poll, vc->halt_poll_ns);
4635 		++vc->runner->stat.generic.halt_attempted_poll;
4636 
4637 		vc->vcore_state = VCORE_POLLING;
4638 		spin_unlock(&vc->lock);
4639 
4640 		do {
4641 			if (kvmppc_vcore_check_block(vc)) {
4642 				do_sleep = 0;
4643 				break;
4644 			}
4645 			cur = ktime_get();
4646 		} while (kvm_vcpu_can_poll(cur, stop));
4647 
4648 		spin_lock(&vc->lock);
4649 		vc->vcore_state = VCORE_INACTIVE;
4650 
4651 		if (!do_sleep) {
4652 			++vc->runner->stat.generic.halt_successful_poll;
4653 			goto out;
4654 		}
4655 	}
4656 
4657 	prepare_to_rcuwait(&vc->wait);
4658 	set_current_state(TASK_INTERRUPTIBLE);
4659 	if (kvmppc_vcore_check_block(vc)) {
4660 		finish_rcuwait(&vc->wait);
4661 		do_sleep = 0;
4662 		/* If we polled, count this as a successful poll */
4663 		if (vc->halt_poll_ns)
4664 			++vc->runner->stat.generic.halt_successful_poll;
4665 		goto out;
4666 	}
4667 
4668 	start_wait = ktime_get();
4669 
4670 	vc->vcore_state = VCORE_SLEEPING;
4671 	trace_kvmppc_vcore_blocked(vc->runner, 0);
4672 	spin_unlock(&vc->lock);
4673 	schedule();
4674 	finish_rcuwait(&vc->wait);
4675 	spin_lock(&vc->lock);
4676 	vc->vcore_state = VCORE_INACTIVE;
4677 	trace_kvmppc_vcore_blocked(vc->runner, 1);
4678 	++vc->runner->stat.halt_successful_wait;
4679 
4680 	cur = ktime_get();
4681 
4682 out:
4683 	block_ns = ktime_to_ns(cur) - ktime_to_ns(start_poll);
4684 
4685 	/* Attribute wait time */
4686 	if (do_sleep) {
4687 		vc->runner->stat.generic.halt_wait_ns +=
4688 			ktime_to_ns(cur) - ktime_to_ns(start_wait);
4689 		KVM_STATS_LOG_HIST_UPDATE(
4690 				vc->runner->stat.generic.halt_wait_hist,
4691 				ktime_to_ns(cur) - ktime_to_ns(start_wait));
4692 		/* Attribute failed poll time */
4693 		if (vc->halt_poll_ns) {
4694 			vc->runner->stat.generic.halt_poll_fail_ns +=
4695 				ktime_to_ns(start_wait) -
4696 				ktime_to_ns(start_poll);
4697 			KVM_STATS_LOG_HIST_UPDATE(
4698 				vc->runner->stat.generic.halt_poll_fail_hist,
4699 				ktime_to_ns(start_wait) -
4700 				ktime_to_ns(start_poll));
4701 		}
4702 	} else {
4703 		/* Attribute successful poll time */
4704 		if (vc->halt_poll_ns) {
4705 			vc->runner->stat.generic.halt_poll_success_ns +=
4706 				ktime_to_ns(cur) -
4707 				ktime_to_ns(start_poll);
4708 			KVM_STATS_LOG_HIST_UPDATE(
4709 				vc->runner->stat.generic.halt_poll_success_hist,
4710 				ktime_to_ns(cur) - ktime_to_ns(start_poll));
4711 		}
4712 	}
4713 
4714 	/* Adjust poll time */
4715 	if (halt_poll_ns) {
4716 		if (block_ns <= vc->halt_poll_ns)
4717 			;
4718 		/* We slept and blocked for longer than the max halt time */
4719 		else if (vc->halt_poll_ns && block_ns > halt_poll_ns)
4720 			shrink_halt_poll_ns(vc);
4721 		/* We slept and our poll time is too small */
4722 		else if (vc->halt_poll_ns < halt_poll_ns &&
4723 				block_ns < halt_poll_ns)
4724 			grow_halt_poll_ns(vc);
4725 		if (vc->halt_poll_ns > halt_poll_ns)
4726 			vc->halt_poll_ns = halt_poll_ns;
4727 	} else
4728 		vc->halt_poll_ns = 0;
4729 
4730 	trace_kvmppc_vcore_wakeup(do_sleep, block_ns);
4731 }
4732 
4733 /*
4734  * This never fails for a radix guest, as none of the operations it does
4735  * for a radix guest can fail or have a way to report failure.
4736  */
kvmhv_setup_mmu(struct kvm_vcpu * vcpu)4737 static int kvmhv_setup_mmu(struct kvm_vcpu *vcpu)
4738 {
4739 	int r = 0;
4740 	struct kvm *kvm = vcpu->kvm;
4741 
4742 	mutex_lock(&kvm->arch.mmu_setup_lock);
4743 	if (!kvm->arch.mmu_ready) {
4744 		if (!kvm_is_radix(kvm))
4745 			r = kvmppc_hv_setup_htab_rma(vcpu);
4746 		if (!r) {
4747 			if (cpu_has_feature(CPU_FTR_ARCH_300))
4748 				kvmppc_setup_partition_table(kvm);
4749 			kvm->arch.mmu_ready = 1;
4750 		}
4751 	}
4752 	mutex_unlock(&kvm->arch.mmu_setup_lock);
4753 	return r;
4754 }
4755 
kvmppc_run_vcpu(struct kvm_vcpu * vcpu)4756 static int kvmppc_run_vcpu(struct kvm_vcpu *vcpu)
4757 {
4758 	struct kvm_run *run = vcpu->run;
4759 	int n_ceded, i, r;
4760 	struct kvmppc_vcore *vc;
4761 	struct kvm_vcpu *v;
4762 
4763 	trace_kvmppc_run_vcpu_enter(vcpu);
4764 
4765 	run->exit_reason = 0;
4766 	vcpu->arch.ret = RESUME_GUEST;
4767 	vcpu->arch.trap = 0;
4768 	kvmppc_update_vpas(vcpu);
4769 
4770 	/*
4771 	 * Synchronize with other threads in this virtual core
4772 	 */
4773 	vc = vcpu->arch.vcore;
4774 	spin_lock(&vc->lock);
4775 	vcpu->arch.ceded = 0;
4776 	vcpu->arch.run_task = current;
4777 	vcpu->arch.stolen_logged = vcore_stolen_time(vc, mftb());
4778 	vcpu->arch.state = KVMPPC_VCPU_RUNNABLE;
4779 	vcpu->arch.busy_preempt = TB_NIL;
4780 	WRITE_ONCE(vc->runnable_threads[vcpu->arch.ptid], vcpu);
4781 	++vc->n_runnable;
4782 
4783 	/*
4784 	 * This happens the first time this is called for a vcpu.
4785 	 * If the vcore is already running, we may be able to start
4786 	 * this thread straight away and have it join in.
4787 	 */
4788 	if (!signal_pending(current)) {
4789 		if ((vc->vcore_state == VCORE_PIGGYBACK ||
4790 		     vc->vcore_state == VCORE_RUNNING) &&
4791 			   !VCORE_IS_EXITING(vc)) {
4792 			kvmppc_update_vpa_dispatch(vcpu, vc);
4793 			kvmppc_start_thread(vcpu, vc);
4794 			trace_kvm_guest_enter(vcpu);
4795 		} else if (vc->vcore_state == VCORE_SLEEPING) {
4796 		        rcuwait_wake_up(&vc->wait);
4797 		}
4798 
4799 	}
4800 
4801 	while (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE &&
4802 	       !signal_pending(current)) {
4803 		/* See if the MMU is ready to go */
4804 		if (!vcpu->kvm->arch.mmu_ready) {
4805 			spin_unlock(&vc->lock);
4806 			r = kvmhv_setup_mmu(vcpu);
4807 			spin_lock(&vc->lock);
4808 			if (r) {
4809 				run->exit_reason = KVM_EXIT_FAIL_ENTRY;
4810 				run->fail_entry.
4811 					hardware_entry_failure_reason = 0;
4812 				vcpu->arch.ret = r;
4813 				break;
4814 			}
4815 		}
4816 
4817 		if (vc->vcore_state == VCORE_PREEMPT && vc->runner == NULL)
4818 			kvmppc_vcore_end_preempt(vc);
4819 
4820 		if (vc->vcore_state != VCORE_INACTIVE) {
4821 			kvmppc_wait_for_exec(vc, vcpu, TASK_INTERRUPTIBLE);
4822 			continue;
4823 		}
4824 		for_each_runnable_thread(i, v, vc) {
4825 			kvmppc_core_prepare_to_enter(v);
4826 			if (signal_pending(v->arch.run_task)) {
4827 				kvmppc_remove_runnable(vc, v, mftb());
4828 				v->stat.signal_exits++;
4829 				v->run->exit_reason = KVM_EXIT_INTR;
4830 				v->arch.ret = -EINTR;
4831 				wake_up(&v->arch.cpu_run);
4832 			}
4833 		}
4834 		if (!vc->n_runnable || vcpu->arch.state != KVMPPC_VCPU_RUNNABLE)
4835 			break;
4836 		n_ceded = 0;
4837 		for_each_runnable_thread(i, v, vc) {
4838 			if (!kvmppc_vcpu_woken(v))
4839 				n_ceded += v->arch.ceded;
4840 			else
4841 				v->arch.ceded = 0;
4842 		}
4843 		vc->runner = vcpu;
4844 		if (n_ceded == vc->n_runnable) {
4845 			kvmppc_vcore_blocked(vc);
4846 		} else if (__xfer_to_guest_mode_work_pending()) {
4847 			kvmppc_vcore_preempt(vc);
4848 			/*
4849 			 * Let something else run. The raw helper is used as
4850 			 * signal exits are accounted by this path already;
4851 			 * it may schedule(), so drop the vcore lock.
4852 			 */
4853 			spin_unlock(&vc->lock);
4854 			xfer_to_guest_mode_handle_work();
4855 			spin_lock(&vc->lock);
4856 			if (vc->vcore_state == VCORE_PREEMPT)
4857 				kvmppc_vcore_end_preempt(vc);
4858 		} else {
4859 			kvmppc_run_core(vc);
4860 		}
4861 		vc->runner = NULL;
4862 	}
4863 
4864 	while (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE &&
4865 	       (vc->vcore_state == VCORE_RUNNING ||
4866 		vc->vcore_state == VCORE_EXITING ||
4867 		vc->vcore_state == VCORE_PIGGYBACK))
4868 		kvmppc_wait_for_exec(vc, vcpu, TASK_UNINTERRUPTIBLE);
4869 
4870 	if (vc->vcore_state == VCORE_PREEMPT && vc->runner == NULL)
4871 		kvmppc_vcore_end_preempt(vc);
4872 
4873 	if (vcpu->arch.state == KVMPPC_VCPU_RUNNABLE) {
4874 		kvmppc_remove_runnable(vc, vcpu, mftb());
4875 		vcpu->stat.signal_exits++;
4876 		run->exit_reason = KVM_EXIT_INTR;
4877 		vcpu->arch.ret = -EINTR;
4878 	}
4879 
4880 	if (vc->n_runnable && vc->vcore_state == VCORE_INACTIVE) {
4881 		/* Wake up some vcpu to run the core */
4882 		i = -1;
4883 		v = next_runnable_thread(vc, &i);
4884 		wake_up(&v->arch.cpu_run);
4885 	}
4886 
4887 	trace_kvmppc_run_vcpu_exit(vcpu);
4888 	spin_unlock(&vc->lock);
4889 	return vcpu->arch.ret;
4890 }
4891 
kvmhv_run_single_vcpu(struct kvm_vcpu * vcpu,u64 time_limit,unsigned long lpcr)4892 int kvmhv_run_single_vcpu(struct kvm_vcpu *vcpu, u64 time_limit,
4893 			  unsigned long lpcr)
4894 {
4895 	struct rcuwait *wait = kvm_arch_vcpu_get_wait(vcpu);
4896 	struct kvm_run *run = vcpu->run;
4897 	int trap, r, pcpu;
4898 	int srcu_idx;
4899 	struct kvmppc_vcore *vc;
4900 	struct kvm *kvm = vcpu->kvm;
4901 	struct kvm_nested_guest *nested = vcpu->arch.nested;
4902 	unsigned long flags;
4903 	u64 tb;
4904 
4905 	trace_kvmppc_run_vcpu_enter(vcpu);
4906 
4907 	run->exit_reason = 0;
4908 	vcpu->arch.ret = RESUME_GUEST;
4909 	vcpu->arch.trap = 0;
4910 
4911 	vc = vcpu->arch.vcore;
4912 	vcpu->arch.ceded = 0;
4913 	vcpu->arch.run_task = current;
4914 	vcpu->arch.last_inst = KVM_INST_FETCH_FAILED;
4915 
4916 	/* See if the MMU is ready to go */
4917 	if (unlikely(!kvm->arch.mmu_ready)) {
4918 		r = kvmhv_setup_mmu(vcpu);
4919 		if (r) {
4920 			run->exit_reason = KVM_EXIT_FAIL_ENTRY;
4921 			run->fail_entry.hardware_entry_failure_reason = 0;
4922 			vcpu->arch.ret = r;
4923 			goto done;
4924 		}
4925 	}
4926 
4927 	r = kvm_xfer_to_guest_mode_handle_work(vcpu);
4928 	if (r) {
4929 		/* -EINTR: signal pending, exit to userspace (KVM_EXIT_INTR) */
4930 		vcpu->arch.ret = r;
4931 		goto done;
4932 	}
4933 
4934 	kvmppc_update_vpas(vcpu);
4935 
4936 	preempt_disable();
4937 	pcpu = smp_processor_id();
4938 	if (kvm_is_radix(kvm))
4939 		kvmppc_prepare_radix_vcpu(vcpu, pcpu);
4940 
4941 	/* flags save not required, but irq_pmu has no disable/enable API */
4942 	powerpc_local_irq_pmu_save(flags);
4943 
4944 	vcpu->arch.state = KVMPPC_VCPU_RUNNABLE;
4945 
4946 	xfer_to_guest_mode_prepare();
4947 
4948 	/*
4949 	 * IRQs are disabled here, so on pending work bail to the outer loop,
4950 	 * which handles it via kvm_xfer_to_guest_mode_handle_work() above.
4951 	 */
4952 	if (xfer_to_guest_mode_work_pending() || !kvm->arch.mmu_ready)
4953 		goto out;
4954 
4955 	vcpu->cpu = pcpu;
4956 	vcpu->arch.thread_cpu = pcpu;
4957 	vc->pcpu = pcpu;
4958 	local_paca->kvm_hstate.kvm_vcpu = vcpu;
4959 	local_paca->kvm_hstate.ptid = 0;
4960 	local_paca->kvm_hstate.fake_suspend = 0;
4961 
4962 	/*
4963 	 * Orders set cpu/thread_cpu vs testing for pending interrupts and
4964 	 * doorbells below. The other side is when these fields are set vs
4965 	 * kvmppc_fast_vcpu_kick_hv reading the cpu/thread_cpu fields to
4966 	 * kick a vCPU to notice the pending interrupt.
4967 	 */
4968 	smp_mb();
4969 
4970 	if (!nested) {
4971 		kvmppc_core_prepare_to_enter(vcpu);
4972 		if (test_bit(BOOK3S_IRQPRIO_EXTERNAL,
4973 			     &vcpu->arch.pending_exceptions) ||
4974 		    xive_interrupt_pending(vcpu)) {
4975 			/*
4976 			 * For nested HV, don't synthesize but always pass MER,
4977 			 * the L0 will be able to optimise that more
4978 			 * effectively than manipulating registers directly.
4979 			 */
4980 			if (!kvmhv_on_pseries() && (__kvmppc_get_msr_hv(vcpu) & MSR_EE))
4981 				kvmppc_inject_interrupt_hv(vcpu,
4982 							   BOOK3S_INTERRUPT_EXTERNAL, 0);
4983 			else
4984 				lpcr |= LPCR_MER;
4985 		} else {
4986 			/*
4987 			 * L1's copy of L2's LPCR (vcpu->arch.vcore->lpcr) can get its MER bit
4988 			 * unexpectedly set - for e.g. during NMI handling when all register
4989 			 * states are synchronized from L0 to L1. L1 needs to inform L0 about
4990 			 * MER=1 only when there are pending external interrupts.
4991 			 * In the above if check, MER bit is set if there are pending
4992 			 * external interrupts. Hence, explicitly mask off MER bit
4993 			 * here as otherwise it may generate spurious interrupts in L2 KVM
4994 			 * causing an endless loop, which results in L2 guest getting hung.
4995 			 */
4996 			lpcr &= ~LPCR_MER;
4997 		}
4998 	} else if (vcpu->arch.pending_exceptions ||
4999 		   xive_interrupt_pending(vcpu)) {
5000 		vcpu->arch.ret = RESUME_HOST;
5001 		goto out;
5002 	}
5003 
5004 	if (vcpu->arch.timer_running) {
5005 		hrtimer_try_to_cancel(&vcpu->arch.dec_timer);
5006 		vcpu->arch.timer_running = 0;
5007 	}
5008 
5009 	tb = mftb();
5010 
5011 	kvmppc_update_vpa_dispatch_p9(vcpu, vc, tb + kvmppc_get_tb_offset(vcpu));
5012 
5013 	trace_kvm_guest_enter(vcpu);
5014 
5015 	guest_timing_enter_irqoff();
5016 
5017 	srcu_idx = srcu_read_lock(&kvm->srcu);
5018 
5019 	guest_state_enter_irqoff();
5020 	this_cpu_disable_ftrace();
5021 
5022 	trap = kvmhv_p9_guest_entry(vcpu, time_limit, lpcr, &tb);
5023 	vcpu->arch.trap = trap;
5024 
5025 	this_cpu_enable_ftrace();
5026 	guest_state_exit_irqoff();
5027 
5028 	srcu_read_unlock(&kvm->srcu, srcu_idx);
5029 
5030 	set_irq_happened(trap);
5031 
5032 	vcpu->cpu = -1;
5033 	vcpu->arch.thread_cpu = -1;
5034 	vcpu->arch.state = KVMPPC_VCPU_BUSY_IN_HOST;
5035 
5036 	if (!vtime_accounting_enabled_this_cpu()) {
5037 		powerpc_local_irq_pmu_restore(flags);
5038 		/*
5039 		 * Service IRQs here before guest_timing_exit_irqoff() so any
5040 		 * ticks that occurred while running the guest are accounted to
5041 		 * the guest. If vtime accounting is enabled, accounting uses
5042 		 * TB rather than ticks, so it can be done without enabling
5043 		 * interrupts here, which has the problem that it accounts
5044 		 * interrupt processing overhead to the host.
5045 		 */
5046 		powerpc_local_irq_pmu_save(flags);
5047 	}
5048 	guest_timing_exit_irqoff();
5049 
5050 	powerpc_local_irq_pmu_restore(flags);
5051 
5052 	preempt_enable();
5053 
5054 	/*
5055 	 * cancel pending decrementer exception if DEC is now positive, or if
5056 	 * entering a nested guest in which case the decrementer is now owned
5057 	 * by L2 and the L1 decrementer is provided in hdec_expires
5058 	 */
5059 	if (kvmppc_core_pending_dec(vcpu) &&
5060 			((tb < kvmppc_dec_expires_host_tb(vcpu)) ||
5061 			 (trap == BOOK3S_INTERRUPT_SYSCALL &&
5062 			  kvmppc_get_gpr(vcpu, 3) == H_ENTER_NESTED)))
5063 		kvmppc_core_dequeue_dec(vcpu);
5064 
5065 	trace_kvm_guest_exit(vcpu);
5066 	r = RESUME_GUEST;
5067 	if (trap) {
5068 		if (!nested)
5069 			r = kvmppc_handle_exit_hv(vcpu, current);
5070 		else
5071 			r = kvmppc_handle_nested_exit(vcpu);
5072 	}
5073 	vcpu->arch.ret = r;
5074 
5075 	if (is_kvmppc_resume_guest(r) && !kvmppc_vcpu_check_block(vcpu)) {
5076 		kvmppc_set_timer(vcpu);
5077 
5078 		prepare_to_rcuwait(wait);
5079 		for (;;) {
5080 			set_current_state(TASK_INTERRUPTIBLE);
5081 			if (signal_pending(current)) {
5082 				vcpu->stat.signal_exits++;
5083 				run->exit_reason = KVM_EXIT_INTR;
5084 				vcpu->arch.ret = -EINTR;
5085 				break;
5086 			}
5087 
5088 			if (kvmppc_vcpu_check_block(vcpu))
5089 				break;
5090 
5091 			trace_kvmppc_vcore_blocked(vcpu, 0);
5092 			schedule();
5093 			trace_kvmppc_vcore_blocked(vcpu, 1);
5094 		}
5095 		finish_rcuwait(wait);
5096 	}
5097 	vcpu->arch.ceded = 0;
5098 
5099  done:
5100 	trace_kvmppc_run_vcpu_exit(vcpu);
5101 
5102 	return vcpu->arch.ret;
5103 
5104  out:
5105 	vcpu->cpu = -1;
5106 	vcpu->arch.thread_cpu = -1;
5107 	vcpu->arch.state = KVMPPC_VCPU_BUSY_IN_HOST;
5108 	powerpc_local_irq_pmu_restore(flags);
5109 	preempt_enable();
5110 	goto done;
5111 }
5112 
kvmppc_vcpu_run_hv(struct kvm_vcpu * vcpu)5113 static int kvmppc_vcpu_run_hv(struct kvm_vcpu *vcpu)
5114 {
5115 	struct kvm_run *run = vcpu->run;
5116 	int r;
5117 	int srcu_idx;
5118 	struct kvm *kvm;
5119 	unsigned long msr;
5120 
5121 	start_timing(vcpu, &vcpu->arch.vcpu_entry);
5122 
5123 	if (!vcpu->arch.sane) {
5124 		run->exit_reason = KVM_EXIT_INTERNAL_ERROR;
5125 		return -EINVAL;
5126 	}
5127 
5128 	/* No need to go into the guest when all we'll do is come back out */
5129 	if (signal_pending(current)) {
5130 		run->exit_reason = KVM_EXIT_INTR;
5131 		return -EINTR;
5132 	}
5133 
5134 #ifdef CONFIG_PPC_TRANSACTIONAL_MEM
5135 	/*
5136 	 * Don't allow entry with a suspended transaction, because
5137 	 * the guest entry/exit code will lose it.
5138 	 */
5139 	if (cpu_has_feature(CPU_FTR_TM) && current->thread.regs &&
5140 	    (current->thread.regs->msr & MSR_TM)) {
5141 		if (MSR_TM_ACTIVE(current->thread.regs->msr)) {
5142 			run->exit_reason = KVM_EXIT_FAIL_ENTRY;
5143 			run->fail_entry.hardware_entry_failure_reason = 0;
5144 			return -EINVAL;
5145 		}
5146 	}
5147 #endif
5148 
5149 	/*
5150 	 * Force online to 1 for the sake of old userspace which doesn't
5151 	 * set it.
5152 	 */
5153 	if (!vcpu->arch.online) {
5154 		atomic_inc(&vcpu->arch.vcore->online_count);
5155 		vcpu->arch.online = 1;
5156 	}
5157 
5158 	kvmppc_core_prepare_to_enter(vcpu);
5159 
5160 	kvm = vcpu->kvm;
5161 	atomic_inc(&kvm->arch.vcpus_running);
5162 	/* Order vcpus_running vs. mmu_ready, see kvmppc_alloc_reset_hpt */
5163 	smp_mb();
5164 
5165 	msr = 0;
5166 	if (IS_ENABLED(CONFIG_PPC_FPU))
5167 		msr |= MSR_FP;
5168 	if (cpu_has_feature(CPU_FTR_ALTIVEC))
5169 		msr |= MSR_VEC;
5170 	if (cpu_has_feature(CPU_FTR_VSX))
5171 		msr |= MSR_VSX;
5172 	if ((cpu_has_feature(CPU_FTR_TM) ||
5173 	    cpu_has_feature(CPU_FTR_P9_TM_HV_ASSIST)) &&
5174 			(kvmppc_get_hfscr_hv(vcpu) & HFSCR_TM))
5175 		msr |= MSR_TM;
5176 	msr = msr_check_and_set(msr);
5177 
5178 	kvmppc_save_user_regs();
5179 
5180 	kvmppc_save_current_sprs();
5181 
5182 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
5183 		vcpu->arch.waitp = &vcpu->arch.vcore->wait;
5184 	vcpu->arch.pgdir = kvm->mm->pgd;
5185 	vcpu->arch.state = KVMPPC_VCPU_BUSY_IN_HOST;
5186 
5187 	do {
5188 		accumulate_time(vcpu, &vcpu->arch.guest_entry);
5189 		if (cpu_has_feature(CPU_FTR_ARCH_300))
5190 			r = kvmhv_run_single_vcpu(vcpu, ~(u64)0,
5191 						  vcpu->arch.vcore->lpcr);
5192 		else
5193 			r = kvmppc_run_vcpu(vcpu);
5194 
5195 		if (run->exit_reason == KVM_EXIT_PAPR_HCALL) {
5196 			accumulate_time(vcpu, &vcpu->arch.hcall);
5197 
5198 			if (!kvmhv_is_nestedv2() && WARN_ON_ONCE(__kvmppc_get_msr_hv(vcpu) & MSR_PR)) {
5199 				/*
5200 				 * These should have been caught reflected
5201 				 * into the guest by now. Final sanity check:
5202 				 * don't allow userspace to execute hcalls in
5203 				 * the hypervisor.
5204 				 */
5205 				r = RESUME_GUEST;
5206 				continue;
5207 			}
5208 			trace_kvm_hcall_enter(vcpu);
5209 			r = kvmppc_pseries_do_hcall(vcpu);
5210 			trace_kvm_hcall_exit(vcpu, r);
5211 			kvmppc_core_prepare_to_enter(vcpu);
5212 		} else if (r == RESUME_PAGE_FAULT) {
5213 			accumulate_time(vcpu, &vcpu->arch.pg_fault);
5214 			srcu_idx = srcu_read_lock(&kvm->srcu);
5215 			r = kvmppc_book3s_hv_page_fault(vcpu,
5216 				vcpu->arch.fault_dar, vcpu->arch.fault_dsisr);
5217 			srcu_read_unlock(&kvm->srcu, srcu_idx);
5218 		} else if (r == RESUME_PASSTHROUGH) {
5219 			if (WARN_ON(xics_on_xive()))
5220 				r = H_SUCCESS;
5221 			else
5222 				r = kvmppc_xics_rm_complete(vcpu, 0);
5223 		}
5224 	} while (is_kvmppc_resume_guest(r));
5225 	accumulate_time(vcpu, &vcpu->arch.vcpu_exit);
5226 
5227 	vcpu->arch.state = KVMPPC_VCPU_NOTREADY;
5228 	atomic_dec(&kvm->arch.vcpus_running);
5229 
5230 	srr_regs_clobbered();
5231 
5232 	end_timing(vcpu);
5233 
5234 	return r;
5235 }
5236 
kvmppc_add_seg_page_size(struct kvm_ppc_one_seg_page_size ** sps,int shift,int sllp)5237 static void kvmppc_add_seg_page_size(struct kvm_ppc_one_seg_page_size **sps,
5238 				     int shift, int sllp)
5239 {
5240 	(*sps)->page_shift = shift;
5241 	(*sps)->slb_enc = sllp;
5242 	(*sps)->enc[0].page_shift = shift;
5243 	(*sps)->enc[0].pte_enc = kvmppc_pgsize_lp_encoding(shift, shift);
5244 	/*
5245 	 * Add 16MB MPSS support (may get filtered out by userspace)
5246 	 */
5247 	if (shift != 24) {
5248 		int penc = kvmppc_pgsize_lp_encoding(shift, 24);
5249 		if (penc != -1) {
5250 			(*sps)->enc[1].page_shift = 24;
5251 			(*sps)->enc[1].pte_enc = penc;
5252 		}
5253 	}
5254 	(*sps)++;
5255 }
5256 
kvm_vm_ioctl_get_smmu_info_hv(struct kvm * kvm,struct kvm_ppc_smmu_info * info)5257 static int kvm_vm_ioctl_get_smmu_info_hv(struct kvm *kvm,
5258 					 struct kvm_ppc_smmu_info *info)
5259 {
5260 	struct kvm_ppc_one_seg_page_size *sps;
5261 
5262 	/*
5263 	 * POWER7, POWER8 and POWER9 all support 32 storage keys for data.
5264 	 * POWER7 doesn't support keys for instruction accesses,
5265 	 * POWER8 and POWER9 do.
5266 	 */
5267 	info->data_keys = 32;
5268 	info->instr_keys = cpu_has_feature(CPU_FTR_ARCH_207S) ? 32 : 0;
5269 
5270 	/* POWER7, 8 and 9 all have 1T segments and 32-entry SLB */
5271 	info->flags = KVM_PPC_PAGE_SIZES_REAL | KVM_PPC_1T_SEGMENTS;
5272 	info->slb_size = 32;
5273 
5274 	/* We only support these sizes for now, and no muti-size segments */
5275 	sps = &info->sps[0];
5276 	kvmppc_add_seg_page_size(&sps, 12, 0);
5277 	kvmppc_add_seg_page_size(&sps, 16, SLB_VSID_L | SLB_VSID_LP_01);
5278 	kvmppc_add_seg_page_size(&sps, 24, SLB_VSID_L);
5279 
5280 	/* If running as a nested hypervisor, we don't support HPT guests */
5281 	if (kvmhv_on_pseries())
5282 		info->flags |= KVM_PPC_NO_HASH;
5283 
5284 	return 0;
5285 }
5286 
5287 /*
5288  * Get (and clear) the dirty memory log for a memory slot.
5289  */
kvm_vm_ioctl_get_dirty_log_hv(struct kvm * kvm,struct kvm_dirty_log * log)5290 static int kvm_vm_ioctl_get_dirty_log_hv(struct kvm *kvm,
5291 					 struct kvm_dirty_log *log)
5292 {
5293 	struct kvm_memslots *slots;
5294 	struct kvm_memory_slot *memslot;
5295 	int r;
5296 	unsigned long n, i;
5297 	unsigned long *buf, *p;
5298 	struct kvm_vcpu *vcpu;
5299 
5300 	mutex_lock(&kvm->slots_lock);
5301 
5302 	r = -EINVAL;
5303 	if (log->slot >= KVM_USER_MEM_SLOTS)
5304 		goto out;
5305 
5306 	slots = kvm_memslots(kvm);
5307 	memslot = id_to_memslot(slots, log->slot);
5308 	r = -ENOENT;
5309 	if (!memslot || !memslot->dirty_bitmap)
5310 		goto out;
5311 
5312 	/*
5313 	 * Use second half of bitmap area because both HPT and radix
5314 	 * accumulate bits in the first half.
5315 	 */
5316 	n = kvm_dirty_bitmap_bytes(memslot);
5317 	buf = memslot->dirty_bitmap + n / sizeof(long);
5318 	memset(buf, 0, n);
5319 
5320 	if (kvm_is_radix(kvm))
5321 		r = kvmppc_hv_get_dirty_log_radix(kvm, memslot, buf);
5322 	else
5323 		r = kvmppc_hv_get_dirty_log_hpt(kvm, memslot, buf);
5324 	if (r)
5325 		goto out;
5326 
5327 	/*
5328 	 * We accumulate dirty bits in the first half of the
5329 	 * memslot's dirty_bitmap area, for when pages are paged
5330 	 * out or modified by the host directly.  Pick up these
5331 	 * bits and add them to the map.
5332 	 */
5333 	p = memslot->dirty_bitmap;
5334 	for (i = 0; i < n / sizeof(long); ++i)
5335 		buf[i] |= xchg(&p[i], 0);
5336 
5337 	/* Harvest dirty bits from VPA and DTL updates */
5338 	/* Note: we never modify the SLB shadow buffer areas */
5339 	kvm_for_each_vcpu(i, vcpu, kvm) {
5340 		spin_lock(&vcpu->arch.vpa_update_lock);
5341 		kvmppc_harvest_vpa_dirty(&vcpu->arch.vpa, memslot, buf);
5342 		kvmppc_harvest_vpa_dirty(&vcpu->arch.dtl, memslot, buf);
5343 		spin_unlock(&vcpu->arch.vpa_update_lock);
5344 	}
5345 
5346 	r = -EFAULT;
5347 	if (copy_to_user(log->dirty_bitmap, buf, n))
5348 		goto out;
5349 
5350 	r = 0;
5351 out:
5352 	mutex_unlock(&kvm->slots_lock);
5353 	return r;
5354 }
5355 
kvmppc_core_free_memslot_hv(struct kvm_memory_slot * slot)5356 static void kvmppc_core_free_memslot_hv(struct kvm_memory_slot *slot)
5357 {
5358 	vfree(slot->arch.rmap);
5359 	slot->arch.rmap = NULL;
5360 }
5361 
kvmppc_core_prepare_memory_region_hv(struct kvm * kvm,const struct kvm_memory_slot * old,struct kvm_memory_slot * new,enum kvm_mr_change change)5362 static int kvmppc_core_prepare_memory_region_hv(struct kvm *kvm,
5363 				const struct kvm_memory_slot *old,
5364 				struct kvm_memory_slot *new,
5365 				enum kvm_mr_change change)
5366 {
5367 	if (change == KVM_MR_CREATE) {
5368 		unsigned long size = array_size(new->npages, sizeof(*new->arch.rmap));
5369 
5370 		if ((size >> PAGE_SHIFT) > totalram_pages())
5371 			return -ENOMEM;
5372 
5373 		new->arch.rmap = vzalloc(size);
5374 		if (!new->arch.rmap)
5375 			return -ENOMEM;
5376 	} else if (change != KVM_MR_DELETE) {
5377 		new->arch.rmap = old->arch.rmap;
5378 	}
5379 
5380 	return 0;
5381 }
5382 
kvmppc_core_commit_memory_region_hv(struct kvm * kvm,struct kvm_memory_slot * old,const struct kvm_memory_slot * new,enum kvm_mr_change change)5383 static void kvmppc_core_commit_memory_region_hv(struct kvm *kvm,
5384 				struct kvm_memory_slot *old,
5385 				const struct kvm_memory_slot *new,
5386 				enum kvm_mr_change change)
5387 {
5388 	/*
5389 	 * If we are creating or modifying a memslot, it might make
5390 	 * some address that was previously cached as emulated
5391 	 * MMIO be no longer emulated MMIO, so invalidate
5392 	 * all the caches of emulated MMIO translations.
5393 	 */
5394 	if (change != KVM_MR_DELETE)
5395 		atomic64_inc(&kvm->arch.mmio_update);
5396 
5397 	/*
5398 	 * For change == KVM_MR_MOVE or KVM_MR_DELETE, higher levels
5399 	 * have already called kvm_arch_flush_shadow_memslot() to
5400 	 * flush shadow mappings.  For KVM_MR_CREATE we have no
5401 	 * previous mappings.  So the only case to handle is
5402 	 * KVM_MR_FLAGS_ONLY when the KVM_MEM_LOG_DIRTY_PAGES bit
5403 	 * has been changed.
5404 	 * For radix guests, we flush on setting KVM_MEM_LOG_DIRTY_PAGES
5405 	 * to get rid of any THP PTEs in the partition-scoped page tables
5406 	 * so we can track dirtiness at the page level; we flush when
5407 	 * clearing KVM_MEM_LOG_DIRTY_PAGES so that we can go back to
5408 	 * using THP PTEs.
5409 	 */
5410 	if (change == KVM_MR_FLAGS_ONLY && kvm_is_radix(kvm) &&
5411 	    ((new->flags ^ old->flags) & KVM_MEM_LOG_DIRTY_PAGES))
5412 		kvmppc_radix_flush_memslot(kvm, old);
5413 	/*
5414 	 * If UV hasn't yet called H_SVM_INIT_START, don't register memslots.
5415 	 */
5416 	if (!kvm->arch.secure_guest)
5417 		return;
5418 
5419 	switch (change) {
5420 	case KVM_MR_CREATE:
5421 		/*
5422 		 * @TODO kvmppc_uvmem_memslot_create() can fail and
5423 		 * return error. Fix this.
5424 		 */
5425 		kvmppc_uvmem_memslot_create(kvm, new);
5426 		break;
5427 	case KVM_MR_DELETE:
5428 		kvmppc_uvmem_memslot_delete(kvm, old);
5429 		break;
5430 	default:
5431 		/* TODO: Handle KVM_MR_MOVE */
5432 		break;
5433 	}
5434 }
5435 
5436 /*
5437  * Update LPCR values in kvm->arch and in vcores.
5438  * Caller must hold kvm->arch.mmu_setup_lock (for mutual exclusion
5439  * of kvm->arch.lpcr update).
5440  */
kvmppc_update_lpcr(struct kvm * kvm,unsigned long lpcr,unsigned long mask)5441 void kvmppc_update_lpcr(struct kvm *kvm, unsigned long lpcr, unsigned long mask)
5442 {
5443 	long int i;
5444 	u32 cores_done = 0;
5445 
5446 	if ((kvm->arch.lpcr & mask) == lpcr)
5447 		return;
5448 
5449 	kvm->arch.lpcr = (kvm->arch.lpcr & ~mask) | lpcr;
5450 
5451 	for (i = 0; i < KVM_MAX_VCORES; ++i) {
5452 		struct kvmppc_vcore *vc = kvm->arch.vcores[i];
5453 		if (!vc)
5454 			continue;
5455 
5456 		spin_lock(&vc->lock);
5457 		vc->lpcr = (vc->lpcr & ~mask) | lpcr;
5458 		verify_lpcr(kvm, vc->lpcr);
5459 		spin_unlock(&vc->lock);
5460 		if (++cores_done >= kvm->arch.online_vcores)
5461 			break;
5462 	}
5463 
5464 	if (kvmhv_is_nestedv2()) {
5465 		struct kvm_vcpu *vcpu;
5466 
5467 		kvm_for_each_vcpu(i, vcpu, kvm) {
5468 			kvmhv_nestedv2_mark_dirty(vcpu, KVMPPC_GSID_LPCR);
5469 		}
5470 	}
5471 }
5472 
kvmppc_setup_partition_table(struct kvm * kvm)5473 void kvmppc_setup_partition_table(struct kvm *kvm)
5474 {
5475 	unsigned long dw0, dw1;
5476 
5477 	if (!kvm_is_radix(kvm)) {
5478 		/* PS field - page size for VRMA */
5479 		dw0 = ((kvm->arch.vrma_slb_v & SLB_VSID_L) >> 1) |
5480 			((kvm->arch.vrma_slb_v & SLB_VSID_LP) << 1);
5481 		/* HTABSIZE and HTABORG fields */
5482 		dw0 |= kvm->arch.sdr1;
5483 
5484 		/* Second dword as set by userspace */
5485 		dw1 = kvm->arch.process_table;
5486 	} else {
5487 		dw0 = PATB_HR | radix__get_tree_size() |
5488 			__pa(kvm->arch.pgtable) | RADIX_PGD_INDEX_SIZE;
5489 		dw1 = PATB_GR | kvm->arch.process_table;
5490 	}
5491 	kvmhv_set_ptbl_entry(kvm->arch.lpid, dw0, dw1);
5492 }
5493 
5494 /*
5495  * Set up HPT (hashed page table) and RMA (real-mode area).
5496  * Must be called with kvm->arch.mmu_setup_lock held.
5497  */
kvmppc_hv_setup_htab_rma(struct kvm_vcpu * vcpu)5498 static int kvmppc_hv_setup_htab_rma(struct kvm_vcpu *vcpu)
5499 {
5500 	int err = 0;
5501 	struct kvm *kvm = vcpu->kvm;
5502 	unsigned long hva;
5503 	struct kvm_memory_slot *memslot;
5504 	struct vm_area_struct *vma;
5505 	unsigned long lpcr = 0, senc;
5506 	unsigned long psize, porder;
5507 	int srcu_idx;
5508 
5509 	/* Allocate hashed page table (if not done already) and reset it */
5510 	if (!kvm->arch.hpt.virt) {
5511 		int order = KVM_DEFAULT_HPT_ORDER;
5512 		struct kvm_hpt_info info;
5513 
5514 		err = kvmppc_allocate_hpt(&info, order);
5515 		/* If we get here, it means userspace didn't specify a
5516 		 * size explicitly.  So, try successively smaller
5517 		 * sizes if the default failed. */
5518 		while ((err == -ENOMEM) && --order >= PPC_MIN_HPT_ORDER)
5519 			err  = kvmppc_allocate_hpt(&info, order);
5520 
5521 		if (err < 0) {
5522 			pr_err("KVM: Couldn't alloc HPT\n");
5523 			goto out;
5524 		}
5525 
5526 		kvmppc_set_hpt(kvm, &info);
5527 	}
5528 
5529 	/* Look up the memslot for guest physical address 0 */
5530 	srcu_idx = srcu_read_lock(&kvm->srcu);
5531 	memslot = gfn_to_memslot(kvm, 0);
5532 
5533 	/* We must have some memory at 0 by now */
5534 	err = -EINVAL;
5535 	if (!memslot || (memslot->flags & KVM_MEMSLOT_INVALID))
5536 		goto out_srcu;
5537 
5538 	/* Look up the VMA for the start of this memory slot */
5539 	hva = memslot->userspace_addr;
5540 	mmap_read_lock(kvm->mm);
5541 	vma = vma_lookup(kvm->mm, hva);
5542 	if (!vma || (vma->vm_flags & VM_IO))
5543 		goto up_out;
5544 
5545 	psize = vma_kernel_pagesize(vma);
5546 
5547 	mmap_read_unlock(kvm->mm);
5548 
5549 	/* We can handle 4k, 64k or 16M pages in the VRMA */
5550 	if (psize >= 0x1000000)
5551 		psize = 0x1000000;
5552 	else if (psize >= 0x10000)
5553 		psize = 0x10000;
5554 	else
5555 		psize = 0x1000;
5556 	porder = __ilog2(psize);
5557 
5558 	senc = slb_pgsize_encoding(psize);
5559 	kvm->arch.vrma_slb_v = senc | SLB_VSID_B_1T |
5560 		(VRMA_VSID << SLB_VSID_SHIFT_1T);
5561 	/* Create HPTEs in the hash page table for the VRMA */
5562 	kvmppc_map_vrma(vcpu, memslot, porder);
5563 
5564 	/* Update VRMASD field in the LPCR */
5565 	if (!cpu_has_feature(CPU_FTR_ARCH_300)) {
5566 		/* the -4 is to account for senc values starting at 0x10 */
5567 		lpcr = senc << (LPCR_VRMASD_SH - 4);
5568 		kvmppc_update_lpcr(kvm, lpcr, LPCR_VRMASD);
5569 	}
5570 
5571 	/* Order updates to kvm->arch.lpcr etc. vs. mmu_ready */
5572 	smp_wmb();
5573 	err = 0;
5574  out_srcu:
5575 	srcu_read_unlock(&kvm->srcu, srcu_idx);
5576  out:
5577 	return err;
5578 
5579  up_out:
5580 	mmap_read_unlock(kvm->mm);
5581 	goto out_srcu;
5582 }
5583 
5584 /*
5585  * Must be called with kvm->arch.mmu_setup_lock held and
5586  * mmu_ready = 0 and no vcpus running.
5587  */
kvmppc_switch_mmu_to_hpt(struct kvm * kvm)5588 int kvmppc_switch_mmu_to_hpt(struct kvm *kvm)
5589 {
5590 	unsigned long lpcr, lpcr_mask;
5591 
5592 	if (nesting_enabled(kvm))
5593 		kvmhv_release_all_nested(kvm);
5594 	kvmppc_rmap_reset(kvm);
5595 	kvm->arch.process_table = 0;
5596 	/* Mutual exclusion with kvm_unmap_gfn_range etc. */
5597 	spin_lock(&kvm->mmu_lock);
5598 	kvm->arch.radix = 0;
5599 	spin_unlock(&kvm->mmu_lock);
5600 	kvmppc_free_radix(kvm);
5601 
5602 	lpcr = LPCR_VPM1;
5603 	lpcr_mask = LPCR_VPM1 | LPCR_UPRT | LPCR_GTSE | LPCR_HR;
5604 	if (cpu_has_feature(CPU_FTR_ARCH_31))
5605 		lpcr_mask |= LPCR_HAIL;
5606 	kvmppc_update_lpcr(kvm, lpcr, lpcr_mask);
5607 
5608 	return 0;
5609 }
5610 
5611 /*
5612  * Must be called with kvm->arch.mmu_setup_lock held and
5613  * mmu_ready = 0 and no vcpus running.
5614  */
kvmppc_switch_mmu_to_radix(struct kvm * kvm)5615 int kvmppc_switch_mmu_to_radix(struct kvm *kvm)
5616 {
5617 	unsigned long lpcr, lpcr_mask;
5618 	int err;
5619 
5620 	err = kvmppc_init_vm_radix(kvm);
5621 	if (err)
5622 		return err;
5623 	kvmppc_rmap_reset(kvm);
5624 	/* Mutual exclusion with kvm_unmap_gfn_range etc. */
5625 	spin_lock(&kvm->mmu_lock);
5626 	kvm->arch.radix = 1;
5627 	spin_unlock(&kvm->mmu_lock);
5628 	kvmppc_free_hpt(&kvm->arch.hpt);
5629 
5630 	lpcr = LPCR_UPRT | LPCR_GTSE | LPCR_HR;
5631 	lpcr_mask = LPCR_VPM1 | LPCR_UPRT | LPCR_GTSE | LPCR_HR;
5632 	if (cpu_has_feature(CPU_FTR_ARCH_31)) {
5633 		lpcr_mask |= LPCR_HAIL;
5634 		if (cpu_has_feature(CPU_FTR_HVMODE) &&
5635 				(kvm->arch.host_lpcr & LPCR_HAIL))
5636 			lpcr |= LPCR_HAIL;
5637 	}
5638 	kvmppc_update_lpcr(kvm, lpcr, lpcr_mask);
5639 
5640 	return 0;
5641 }
5642 
5643 #ifdef CONFIG_KVM_XICS
5644 /*
5645  * Allocate a per-core structure for managing state about which cores are
5646  * running in the host versus the guest and for exchanging data between
5647  * real mode KVM and CPU running in the host.
5648  * This is only done for the first VM.
5649  * The allocated structure stays even if all VMs have stopped.
5650  * It is only freed when the kvm-hv module is unloaded.
5651  * It's OK for this routine to fail, we just don't support host
5652  * core operations like redirecting H_IPI wakeups.
5653  */
kvmppc_alloc_host_rm_ops(void)5654 void kvmppc_alloc_host_rm_ops(void)
5655 {
5656 	struct kvmppc_host_rm_ops *ops;
5657 	unsigned long l_ops;
5658 	int cpu, core;
5659 	int size;
5660 
5661 	if (cpu_has_feature(CPU_FTR_ARCH_300))
5662 		return;
5663 
5664 	/* Not the first time here ? */
5665 	if (kvmppc_host_rm_ops_hv != NULL)
5666 		return;
5667 
5668 	ops = kzalloc_obj(struct kvmppc_host_rm_ops);
5669 	if (!ops)
5670 		return;
5671 
5672 	size = cpu_nr_cores() * sizeof(struct kvmppc_host_rm_core);
5673 	ops->rm_core = kzalloc(size, GFP_KERNEL);
5674 
5675 	if (!ops->rm_core) {
5676 		kfree(ops);
5677 		return;
5678 	}
5679 
5680 	cpus_read_lock();
5681 
5682 	for (cpu = 0; cpu < nr_cpu_ids; cpu += threads_per_core) {
5683 		if (!cpu_online(cpu))
5684 			continue;
5685 
5686 		core = cpu >> threads_shift;
5687 		ops->rm_core[core].rm_state.in_host = 1;
5688 	}
5689 
5690 	ops->vcpu_kick = kvmppc_fast_vcpu_kick_hv;
5691 
5692 	/*
5693 	 * Make the contents of the kvmppc_host_rm_ops structure visible
5694 	 * to other CPUs before we assign it to the global variable.
5695 	 * Do an atomic assignment (no locks used here), but if someone
5696 	 * beats us to it, just free our copy and return.
5697 	 */
5698 	smp_wmb();
5699 	l_ops = (unsigned long) ops;
5700 
5701 	if (cmpxchg64((unsigned long *)&kvmppc_host_rm_ops_hv, 0, l_ops)) {
5702 		cpus_read_unlock();
5703 		kfree(ops->rm_core);
5704 		kfree(ops);
5705 		return;
5706 	}
5707 
5708 	cpuhp_setup_state_nocalls_cpuslocked(CPUHP_KVM_PPC_BOOK3S_PREPARE,
5709 					     "ppc/kvm_book3s:prepare",
5710 					     kvmppc_set_host_core,
5711 					     kvmppc_clear_host_core);
5712 	cpus_read_unlock();
5713 }
5714 
kvmppc_free_host_rm_ops(void)5715 void kvmppc_free_host_rm_ops(void)
5716 {
5717 	if (kvmppc_host_rm_ops_hv) {
5718 		cpuhp_remove_state_nocalls(CPUHP_KVM_PPC_BOOK3S_PREPARE);
5719 		kfree(kvmppc_host_rm_ops_hv->rm_core);
5720 		kfree(kvmppc_host_rm_ops_hv);
5721 		kvmppc_host_rm_ops_hv = NULL;
5722 	}
5723 }
5724 #endif
5725 
kvmppc_core_init_vm_hv(struct kvm * kvm)5726 static int kvmppc_core_init_vm_hv(struct kvm *kvm)
5727 {
5728 	unsigned long lpcr, lpid;
5729 	int ret;
5730 
5731 	mutex_init(&kvm->arch.uvmem_lock);
5732 	INIT_LIST_HEAD(&kvm->arch.uvmem_pfns);
5733 	mutex_init(&kvm->arch.mmu_setup_lock);
5734 
5735 	/* Allocate the guest's logical partition ID */
5736 
5737 	if (!kvmhv_is_nestedv2()) {
5738 		lpid = kvmppc_alloc_lpid();
5739 		if ((long)lpid < 0)
5740 			return -ENOMEM;
5741 		kvm->arch.lpid = lpid;
5742 	}
5743 
5744 	kvmppc_alloc_host_rm_ops();
5745 
5746 	kvmhv_vm_nested_init(kvm);
5747 
5748 	if (kvmhv_is_nestedv2()) {
5749 		long rc;
5750 		unsigned long guest_id;
5751 
5752 		rc = plpar_guest_create(0, &guest_id);
5753 
5754 		if (rc != H_SUCCESS)
5755 			pr_err("KVM: Create Guest hcall failed, rc=%ld\n", rc);
5756 
5757 		switch (rc) {
5758 		case H_PARAMETER:
5759 		case H_FUNCTION:
5760 		case H_STATE:
5761 			return -EINVAL;
5762 		case H_NOT_ENOUGH_RESOURCES:
5763 		case H_ABORTED:
5764 			return -ENOMEM;
5765 		case H_AUTHORITY:
5766 			return -EPERM;
5767 		case H_NOT_AVAILABLE:
5768 			return -EBUSY;
5769 		}
5770 		kvm->arch.lpid = guest_id;
5771 	}
5772 
5773 
5774 	/*
5775 	 * Since we don't flush the TLB when tearing down a VM,
5776 	 * and this lpid might have previously been used,
5777 	 * make sure we flush on each core before running the new VM.
5778 	 * On POWER9, the tlbie in mmu_partition_table_set_entry()
5779 	 * does this flush for us.
5780 	 */
5781 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
5782 		cpumask_setall(&kvm->arch.need_tlb_flush);
5783 
5784 	/* Start out with the default set of hcalls enabled */
5785 	memcpy(kvm->arch.enabled_hcalls, default_enabled_hcalls,
5786 	       sizeof(kvm->arch.enabled_hcalls));
5787 
5788 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
5789 		kvm->arch.host_sdr1 = mfspr(SPRN_SDR1);
5790 
5791 	/* Init LPCR for virtual RMA mode */
5792 	if (cpu_has_feature(CPU_FTR_HVMODE)) {
5793 		kvm->arch.host_lpid = mfspr(SPRN_LPID);
5794 		kvm->arch.host_lpcr = lpcr = mfspr(SPRN_LPCR);
5795 		lpcr &= LPCR_PECE | LPCR_LPES;
5796 	} else {
5797 		/*
5798 		 * The L2 LPES mode will be set by the L0 according to whether
5799 		 * or not it needs to take external interrupts in HV mode.
5800 		 */
5801 		lpcr = 0;
5802 	}
5803 	lpcr |= (4UL << LPCR_DPFD_SH) | LPCR_HDICE |
5804 		LPCR_VPM0 | LPCR_VPM1;
5805 	kvm->arch.vrma_slb_v = SLB_VSID_B_1T |
5806 		(VRMA_VSID << SLB_VSID_SHIFT_1T);
5807 	/* On POWER8 turn on online bit to enable PURR/SPURR */
5808 	if (cpu_has_feature(CPU_FTR_ARCH_207S))
5809 		lpcr |= LPCR_ONL;
5810 	/*
5811 	 * On POWER9, VPM0 bit is reserved (VPM0=1 behaviour is assumed)
5812 	 * Set HVICE bit to enable hypervisor virtualization interrupts.
5813 	 * Set HEIC to prevent OS interrupts to go to hypervisor (should
5814 	 * be unnecessary but better safe than sorry in case we re-enable
5815 	 * EE in HV mode with this LPCR still set)
5816 	 */
5817 	if (cpu_has_feature(CPU_FTR_ARCH_300)) {
5818 		lpcr &= ~LPCR_VPM0;
5819 		lpcr |= LPCR_HVICE | LPCR_HEIC;
5820 
5821 		/*
5822 		 * If xive is enabled, we route 0x500 interrupts directly
5823 		 * to the guest.
5824 		 */
5825 		if (xics_on_xive())
5826 			lpcr |= LPCR_LPES;
5827 	}
5828 
5829 	/*
5830 	 * If the host uses radix, the guest starts out as radix.
5831 	 */
5832 	if (radix_enabled()) {
5833 		kvm->arch.radix = 1;
5834 		kvm->arch.mmu_ready = 1;
5835 		lpcr &= ~LPCR_VPM1;
5836 		lpcr |= LPCR_UPRT | LPCR_GTSE | LPCR_HR;
5837 		if (cpu_has_feature(CPU_FTR_HVMODE) &&
5838 		    cpu_has_feature(CPU_FTR_ARCH_31) &&
5839 		    (kvm->arch.host_lpcr & LPCR_HAIL))
5840 			lpcr |= LPCR_HAIL;
5841 		ret = kvmppc_init_vm_radix(kvm);
5842 		if (ret) {
5843 			if (kvmhv_is_nestedv2())
5844 				plpar_guest_delete(0, kvm->arch.lpid);
5845 			else
5846 				kvmppc_free_lpid(kvm->arch.lpid);
5847 			return ret;
5848 		}
5849 		kvmppc_setup_partition_table(kvm);
5850 	}
5851 
5852 	verify_lpcr(kvm, lpcr);
5853 	kvm->arch.lpcr = lpcr;
5854 
5855 	/* Initialization for future HPT resizes */
5856 	kvm->arch.resize_hpt = NULL;
5857 
5858 	/*
5859 	 * Work out how many sets the TLB has, for the use of
5860 	 * the TLB invalidation loop in book3s_hv_rmhandlers.S.
5861 	 */
5862 	if (cpu_has_feature(CPU_FTR_ARCH_31)) {
5863 		/*
5864 		 * P10 will flush all the congruence class with a single tlbiel
5865 		 */
5866 		kvm->arch.tlb_sets = 1;
5867 	} else if (radix_enabled())
5868 		kvm->arch.tlb_sets = POWER9_TLB_SETS_RADIX;	/* 128 */
5869 	else if (cpu_has_feature(CPU_FTR_ARCH_300))
5870 		kvm->arch.tlb_sets = POWER9_TLB_SETS_HASH;	/* 256 */
5871 	else if (cpu_has_feature(CPU_FTR_ARCH_207S))
5872 		kvm->arch.tlb_sets = POWER8_TLB_SETS;		/* 512 */
5873 	else
5874 		kvm->arch.tlb_sets = POWER7_TLB_SETS;		/* 128 */
5875 
5876 	/*
5877 	 * Track that we now have a HV mode VM active. This blocks secondary
5878 	 * CPU threads from coming online.
5879 	 */
5880 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
5881 		kvm_hv_vm_activated();
5882 
5883 	/*
5884 	 * Initialize smt_mode depending on processor.
5885 	 * POWER8 and earlier have to use "strict" threading, where
5886 	 * all vCPUs in a vcore have to run on the same (sub)core,
5887 	 * whereas on POWER9 the threads can each run a different
5888 	 * guest.
5889 	 */
5890 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
5891 		kvm->arch.smt_mode = threads_per_subcore;
5892 	else
5893 		kvm->arch.smt_mode = 1;
5894 	kvm->arch.emul_smt_mode = 1;
5895 
5896 	return 0;
5897 }
5898 
kvmppc_arch_create_vm_debugfs_hv(struct kvm * kvm)5899 static int kvmppc_arch_create_vm_debugfs_hv(struct kvm *kvm)
5900 {
5901 	kvmppc_mmu_debugfs_init(kvm);
5902 	if (radix_enabled())
5903 		kvmhv_radix_debugfs_init(kvm);
5904 	return 0;
5905 }
5906 
kvmppc_free_vcores(struct kvm * kvm)5907 static void kvmppc_free_vcores(struct kvm *kvm)
5908 {
5909 	long int i;
5910 
5911 	for (i = 0; i < KVM_MAX_VCORES; ++i)
5912 		kfree(kvm->arch.vcores[i]);
5913 	kvm->arch.online_vcores = 0;
5914 }
5915 
kvmppc_core_destroy_vm_hv(struct kvm * kvm)5916 static void kvmppc_core_destroy_vm_hv(struct kvm *kvm)
5917 {
5918 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
5919 		kvm_hv_vm_deactivated();
5920 
5921 	kvmppc_free_vcores(kvm);
5922 
5923 
5924 	if (kvm_is_radix(kvm))
5925 		kvmppc_free_radix(kvm);
5926 	else
5927 		kvmppc_free_hpt(&kvm->arch.hpt);
5928 
5929 	/* Perform global invalidation and return lpid to the pool */
5930 	if (cpu_has_feature(CPU_FTR_ARCH_300)) {
5931 		if (nesting_enabled(kvm))
5932 			kvmhv_release_all_nested(kvm);
5933 		kvm->arch.process_table = 0;
5934 		if (kvm->arch.secure_guest)
5935 			uv_svm_terminate(kvm->arch.lpid);
5936 		if (!kvmhv_is_nestedv2())
5937 			kvmhv_set_ptbl_entry(kvm->arch.lpid, 0, 0);
5938 	}
5939 
5940 	if (kvmhv_is_nestedv2()) {
5941 		kvmhv_flush_lpid(kvm->arch.lpid);
5942 		plpar_guest_delete(0, kvm->arch.lpid);
5943 	} else {
5944 		kvmppc_free_lpid(kvm->arch.lpid);
5945 	}
5946 
5947 	kvmppc_free_pimap(kvm);
5948 }
5949 
5950 /* We don't need to emulate any privileged instructions or dcbz */
kvmppc_core_emulate_op_hv(struct kvm_vcpu * vcpu,unsigned int inst,int * advance)5951 static int kvmppc_core_emulate_op_hv(struct kvm_vcpu *vcpu,
5952 				     unsigned int inst, int *advance)
5953 {
5954 	return EMULATE_FAIL;
5955 }
5956 
kvmppc_core_emulate_mtspr_hv(struct kvm_vcpu * vcpu,int sprn,ulong spr_val)5957 static int kvmppc_core_emulate_mtspr_hv(struct kvm_vcpu *vcpu, int sprn,
5958 					ulong spr_val)
5959 {
5960 	return EMULATE_FAIL;
5961 }
5962 
kvmppc_core_emulate_mfspr_hv(struct kvm_vcpu * vcpu,int sprn,ulong * spr_val)5963 static int kvmppc_core_emulate_mfspr_hv(struct kvm_vcpu *vcpu, int sprn,
5964 					ulong *spr_val)
5965 {
5966 	return EMULATE_FAIL;
5967 }
5968 
kvmppc_core_check_processor_compat_hv(void)5969 static int kvmppc_core_check_processor_compat_hv(void)
5970 {
5971 	if (cpu_has_feature(CPU_FTR_HVMODE) &&
5972 	    cpu_has_feature(CPU_FTR_ARCH_206))
5973 		return 0;
5974 
5975 	/* POWER9 in radix mode is capable of being a nested hypervisor. */
5976 	if (cpu_has_feature(CPU_FTR_ARCH_300) && radix_enabled())
5977 		return 0;
5978 
5979 	return -EIO;
5980 }
5981 
5982 #ifdef CONFIG_KVM_XICS
5983 
kvmppc_free_pimap(struct kvm * kvm)5984 void kvmppc_free_pimap(struct kvm *kvm)
5985 {
5986 	kfree(kvm->arch.pimap);
5987 }
5988 
kvmppc_alloc_pimap(void)5989 static struct kvmppc_passthru_irqmap *kvmppc_alloc_pimap(void)
5990 {
5991 	return kzalloc_obj(struct kvmppc_passthru_irqmap);
5992 }
5993 
kvmppc_set_passthru_irq(struct kvm * kvm,int host_irq,int guest_gsi)5994 static int kvmppc_set_passthru_irq(struct kvm *kvm, int host_irq, int guest_gsi)
5995 {
5996 	struct irq_desc *desc;
5997 	struct kvmppc_irq_map *irq_map;
5998 	struct kvmppc_passthru_irqmap *pimap;
5999 	struct irq_chip *chip;
6000 	int i, rc = 0;
6001 	struct irq_data *host_data;
6002 
6003 	if (!kvm_irq_bypass)
6004 		return 1;
6005 
6006 	desc = irq_to_desc(host_irq);
6007 	if (!desc)
6008 		return -EIO;
6009 
6010 	mutex_lock(&kvm->lock);
6011 
6012 	pimap = kvm->arch.pimap;
6013 	if (pimap == NULL) {
6014 		/* First call, allocate structure to hold IRQ map */
6015 		pimap = kvmppc_alloc_pimap();
6016 		if (pimap == NULL) {
6017 			mutex_unlock(&kvm->lock);
6018 			return -ENOMEM;
6019 		}
6020 		kvm->arch.pimap = pimap;
6021 	}
6022 
6023 	/*
6024 	 * For now, we only support interrupts for which the EOI operation
6025 	 * is an OPAL call followed by a write to XIRR, since that's
6026 	 * what our real-mode EOI code does, or a XIVE interrupt
6027 	 */
6028 	chip = irq_data_get_irq_chip(&desc->irq_data);
6029 	if (!chip || !is_pnv_opal_msi(chip)) {
6030 		pr_warn("kvmppc_set_passthru_irq_hv: Could not assign IRQ map for (%d,%d)\n",
6031 			host_irq, guest_gsi);
6032 		mutex_unlock(&kvm->lock);
6033 		return -ENOENT;
6034 	}
6035 
6036 	/*
6037 	 * See if we already have an entry for this guest IRQ number.
6038 	 * If it's mapped to a hardware IRQ number, that's an error,
6039 	 * otherwise re-use this entry.
6040 	 */
6041 	for (i = 0; i < pimap->n_mapped; i++) {
6042 		if (guest_gsi == pimap->mapped[i].v_hwirq) {
6043 			if (pimap->mapped[i].r_hwirq) {
6044 				mutex_unlock(&kvm->lock);
6045 				return -EINVAL;
6046 			}
6047 			break;
6048 		}
6049 	}
6050 
6051 	if (i == KVMPPC_PIRQ_MAPPED) {
6052 		mutex_unlock(&kvm->lock);
6053 		return -EAGAIN;		/* table is full */
6054 	}
6055 
6056 	irq_map = &pimap->mapped[i];
6057 
6058 	irq_map->v_hwirq = guest_gsi;
6059 	irq_map->desc = desc;
6060 
6061 	/*
6062 	 * Order the above two stores before the next to serialize with
6063 	 * the KVM real mode handler.
6064 	 */
6065 	smp_wmb();
6066 
6067 	/*
6068 	 * The 'host_irq' number is mapped in the PCI-MSI domain but
6069 	 * the underlying calls, which will EOI the interrupt in real
6070 	 * mode, need an HW IRQ number mapped in the XICS IRQ domain.
6071 	 */
6072 	host_data = irq_domain_get_irq_data(irq_get_default_domain(), host_irq);
6073 	irq_map->r_hwirq = (unsigned int)irqd_to_hwirq(host_data);
6074 
6075 	if (i == pimap->n_mapped)
6076 		pimap->n_mapped++;
6077 
6078 	if (xics_on_xive())
6079 		rc = kvmppc_xive_set_mapped(kvm, guest_gsi, host_irq);
6080 	else
6081 		kvmppc_xics_set_mapped(kvm, guest_gsi, irq_map->r_hwirq);
6082 	if (rc)
6083 		irq_map->r_hwirq = 0;
6084 
6085 	mutex_unlock(&kvm->lock);
6086 
6087 	return 0;
6088 }
6089 
kvmppc_clr_passthru_irq(struct kvm * kvm,int host_irq,int guest_gsi)6090 static int kvmppc_clr_passthru_irq(struct kvm *kvm, int host_irq, int guest_gsi)
6091 {
6092 	struct irq_desc *desc;
6093 	struct kvmppc_passthru_irqmap *pimap;
6094 	int i, rc = 0;
6095 
6096 	if (!kvm_irq_bypass)
6097 		return 0;
6098 
6099 	desc = irq_to_desc(host_irq);
6100 	if (!desc)
6101 		return -EIO;
6102 
6103 	mutex_lock(&kvm->lock);
6104 	if (!kvm->arch.pimap)
6105 		goto unlock;
6106 
6107 	pimap = kvm->arch.pimap;
6108 
6109 	for (i = 0; i < pimap->n_mapped; i++) {
6110 		if (guest_gsi == pimap->mapped[i].v_hwirq)
6111 			break;
6112 	}
6113 
6114 	if (i == pimap->n_mapped) {
6115 		mutex_unlock(&kvm->lock);
6116 		return -ENODEV;
6117 	}
6118 
6119 	if (xics_on_xive())
6120 		rc = kvmppc_xive_clr_mapped(kvm, guest_gsi, host_irq);
6121 	else
6122 		kvmppc_xics_clr_mapped(kvm, guest_gsi, pimap->mapped[i].r_hwirq);
6123 
6124 	/* invalidate the entry (what to do on error from the above ?) */
6125 	pimap->mapped[i].r_hwirq = 0;
6126 
6127 	/*
6128 	 * We don't free this structure even when the count goes to
6129 	 * zero. The structure is freed when we destroy the VM.
6130 	 */
6131  unlock:
6132 	mutex_unlock(&kvm->lock);
6133 	return rc;
6134 }
6135 
kvmppc_irq_bypass_add_producer_hv(struct irq_bypass_consumer * cons,struct irq_bypass_producer * prod)6136 static int kvmppc_irq_bypass_add_producer_hv(struct irq_bypass_consumer *cons,
6137 					     struct irq_bypass_producer *prod)
6138 {
6139 	int ret = 0;
6140 	struct kvm_kernel_irqfd *irqfd =
6141 		container_of(cons, struct kvm_kernel_irqfd, consumer);
6142 
6143 	ret = kvmppc_set_passthru_irq(irqfd->kvm, prod->irq, irqfd->gsi);
6144 	if (ret)
6145 		pr_info("kvmppc_set_passthru_irq (irq %d, gsi %d) fails: %d\n",
6146 			prod->irq, irqfd->gsi, ret);
6147 	else
6148 		irqfd->producer = prod;
6149 
6150 	return ret;
6151 }
6152 
kvmppc_irq_bypass_del_producer_hv(struct irq_bypass_consumer * cons,struct irq_bypass_producer * prod)6153 static void kvmppc_irq_bypass_del_producer_hv(struct irq_bypass_consumer *cons,
6154 					      struct irq_bypass_producer *prod)
6155 {
6156 	int ret;
6157 	struct kvm_kernel_irqfd *irqfd =
6158 		container_of(cons, struct kvm_kernel_irqfd, consumer);
6159 
6160 	irqfd->producer = NULL;
6161 
6162 	/*
6163 	 * When producer of consumer is unregistered, we change back to
6164 	 * default external interrupt handling mode - KVM real mode
6165 	 * will switch back to host.
6166 	 */
6167 	ret = kvmppc_clr_passthru_irq(irqfd->kvm, prod->irq, irqfd->gsi);
6168 	if (ret)
6169 		pr_warn("kvmppc_clr_passthru_irq (irq %d, gsi %d) fails: %d\n",
6170 			prod->irq, irqfd->gsi, ret);
6171 }
6172 #endif
6173 
kvm_arch_vm_ioctl_hv(struct file * filp,unsigned int ioctl,unsigned long arg)6174 static int kvm_arch_vm_ioctl_hv(struct file *filp,
6175 				unsigned int ioctl, unsigned long arg)
6176 {
6177 	struct kvm *kvm __maybe_unused = filp->private_data;
6178 	void __user *argp = (void __user *)arg;
6179 	int r;
6180 
6181 	switch (ioctl) {
6182 
6183 	case KVM_PPC_ALLOCATE_HTAB: {
6184 		u32 htab_order;
6185 
6186 		/* If we're a nested hypervisor, we currently only support radix */
6187 		if (kvmhv_on_pseries()) {
6188 			r = -EOPNOTSUPP;
6189 			break;
6190 		}
6191 
6192 		r = -EFAULT;
6193 		if (get_user(htab_order, (u32 __user *)argp))
6194 			break;
6195 		r = kvmppc_alloc_reset_hpt(kvm, htab_order);
6196 		if (r)
6197 			break;
6198 		r = 0;
6199 		break;
6200 	}
6201 
6202 	case KVM_PPC_GET_HTAB_FD: {
6203 		struct kvm_get_htab_fd ghf;
6204 
6205 		r = -EFAULT;
6206 		if (copy_from_user(&ghf, argp, sizeof(ghf)))
6207 			break;
6208 		r = kvm_vm_ioctl_get_htab_fd(kvm, &ghf);
6209 		break;
6210 	}
6211 
6212 	case KVM_PPC_RESIZE_HPT_PREPARE: {
6213 		struct kvm_ppc_resize_hpt rhpt;
6214 
6215 		r = -EFAULT;
6216 		if (copy_from_user(&rhpt, argp, sizeof(rhpt)))
6217 			break;
6218 
6219 		r = kvm_vm_ioctl_resize_hpt_prepare(kvm, &rhpt);
6220 		break;
6221 	}
6222 
6223 	case KVM_PPC_RESIZE_HPT_COMMIT: {
6224 		struct kvm_ppc_resize_hpt rhpt;
6225 
6226 		r = -EFAULT;
6227 		if (copy_from_user(&rhpt, argp, sizeof(rhpt)))
6228 			break;
6229 
6230 		r = kvm_vm_ioctl_resize_hpt_commit(kvm, &rhpt);
6231 		break;
6232 	}
6233 
6234 	default:
6235 		r = -ENOTTY;
6236 	}
6237 
6238 	return r;
6239 }
6240 
6241 /*
6242  * List of hcall numbers to enable by default.
6243  * For compatibility with old userspace, we enable by default
6244  * all hcalls that were implemented before the hcall-enabling
6245  * facility was added.  Note this list should not include H_RTAS.
6246  */
6247 static unsigned int default_hcall_list[] = {
6248 	H_REMOVE,
6249 	H_ENTER,
6250 	H_READ,
6251 	H_PROTECT,
6252 	H_BULK_REMOVE,
6253 #ifdef CONFIG_SPAPR_TCE_IOMMU
6254 	H_GET_TCE,
6255 	H_PUT_TCE,
6256 #endif
6257 	H_SET_DABR,
6258 	H_SET_XDABR,
6259 	H_CEDE,
6260 	H_PROD,
6261 	H_CONFER,
6262 	H_REGISTER_VPA,
6263 #ifdef CONFIG_KVM_XICS
6264 	H_EOI,
6265 	H_CPPR,
6266 	H_IPI,
6267 	H_IPOLL,
6268 	H_XIRR,
6269 	H_XIRR_X,
6270 #endif
6271 	0
6272 };
6273 
init_default_hcalls(void)6274 static void init_default_hcalls(void)
6275 {
6276 	int i;
6277 	unsigned int hcall;
6278 
6279 	for (i = 0; default_hcall_list[i]; ++i) {
6280 		hcall = default_hcall_list[i];
6281 		WARN_ON(!kvmppc_hcall_impl_hv(hcall));
6282 		__set_bit(hcall / 4, default_enabled_hcalls);
6283 	}
6284 }
6285 
kvmhv_configure_mmu(struct kvm * kvm,struct kvm_ppc_mmuv3_cfg * cfg)6286 static int kvmhv_configure_mmu(struct kvm *kvm, struct kvm_ppc_mmuv3_cfg *cfg)
6287 {
6288 	unsigned long lpcr;
6289 	int radix;
6290 	int err;
6291 
6292 	/* If not on a POWER9, reject it */
6293 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
6294 		return -ENODEV;
6295 
6296 	/* If any unknown flags set, reject it */
6297 	if (cfg->flags & ~(KVM_PPC_MMUV3_RADIX | KVM_PPC_MMUV3_GTSE))
6298 		return -EINVAL;
6299 
6300 	/* GR (guest radix) bit in process_table field must match */
6301 	radix = !!(cfg->flags & KVM_PPC_MMUV3_RADIX);
6302 	if (!!(cfg->process_table & PATB_GR) != radix)
6303 		return -EINVAL;
6304 
6305 	/* Process table size field must be reasonable, i.e. <= 24 */
6306 	if ((cfg->process_table & PRTS_MASK) > 24)
6307 		return -EINVAL;
6308 
6309 	/* We can change a guest to/from radix now, if the host is radix */
6310 	if (radix && !radix_enabled())
6311 		return -EINVAL;
6312 
6313 	/* If we're a nested hypervisor, we currently only support radix */
6314 	if (kvmhv_on_pseries() && !radix)
6315 		return -EINVAL;
6316 
6317 	mutex_lock(&kvm->arch.mmu_setup_lock);
6318 	if (radix != kvm_is_radix(kvm)) {
6319 		if (kvm->arch.mmu_ready) {
6320 			kvm->arch.mmu_ready = 0;
6321 			/* order mmu_ready vs. vcpus_running */
6322 			smp_mb();
6323 			if (atomic_read(&kvm->arch.vcpus_running)) {
6324 				kvm->arch.mmu_ready = 1;
6325 				err = -EBUSY;
6326 				goto out_unlock;
6327 			}
6328 		}
6329 		if (radix)
6330 			err = kvmppc_switch_mmu_to_radix(kvm);
6331 		else
6332 			err = kvmppc_switch_mmu_to_hpt(kvm);
6333 		if (err)
6334 			goto out_unlock;
6335 	}
6336 
6337 	kvm->arch.process_table = cfg->process_table;
6338 	kvmppc_setup_partition_table(kvm);
6339 
6340 	lpcr = (cfg->flags & KVM_PPC_MMUV3_GTSE) ? LPCR_GTSE : 0;
6341 	kvmppc_update_lpcr(kvm, lpcr, LPCR_GTSE);
6342 	err = 0;
6343 
6344  out_unlock:
6345 	mutex_unlock(&kvm->arch.mmu_setup_lock);
6346 	return err;
6347 }
6348 
kvmhv_enable_nested(struct kvm * kvm)6349 static int kvmhv_enable_nested(struct kvm *kvm)
6350 {
6351 	if (!nested)
6352 		return -EPERM;
6353 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
6354 		return -ENODEV;
6355 	if (!radix_enabled())
6356 		return -ENODEV;
6357 	if (kvmhv_is_nestedv2())
6358 		return -ENODEV;
6359 
6360 	/* kvm == NULL means the caller is testing if the capability exists */
6361 	if (kvm)
6362 		kvm->arch.nested_enable = true;
6363 	return 0;
6364 }
6365 
kvmhv_load_from_eaddr(struct kvm_vcpu * vcpu,ulong * eaddr,void * ptr,int size)6366 static int kvmhv_load_from_eaddr(struct kvm_vcpu *vcpu, ulong *eaddr, void *ptr,
6367 				 int size)
6368 {
6369 	int rc = -EINVAL;
6370 
6371 	if (kvmhv_vcpu_is_radix(vcpu)) {
6372 		rc = kvmhv_copy_from_guest_radix(vcpu, *eaddr, ptr, size);
6373 
6374 		if (rc > 0)
6375 			rc = -EINVAL;
6376 	}
6377 
6378 	/* For now quadrants are the only way to access nested guest memory */
6379 	if (rc && vcpu->arch.nested)
6380 		rc = -EAGAIN;
6381 
6382 	return rc;
6383 }
6384 
kvmhv_store_to_eaddr(struct kvm_vcpu * vcpu,ulong * eaddr,void * ptr,int size)6385 static int kvmhv_store_to_eaddr(struct kvm_vcpu *vcpu, ulong *eaddr, void *ptr,
6386 				int size)
6387 {
6388 	int rc = -EINVAL;
6389 
6390 	if (kvmhv_vcpu_is_radix(vcpu)) {
6391 		rc = kvmhv_copy_to_guest_radix(vcpu, *eaddr, ptr, size);
6392 
6393 		if (rc > 0)
6394 			rc = -EINVAL;
6395 	}
6396 
6397 	/* For now quadrants are the only way to access nested guest memory */
6398 	if (rc && vcpu->arch.nested)
6399 		rc = -EAGAIN;
6400 
6401 	return rc;
6402 }
6403 
unpin_vpa_reset(struct kvm * kvm,struct kvmppc_vpa * vpa)6404 static void unpin_vpa_reset(struct kvm *kvm, struct kvmppc_vpa *vpa)
6405 {
6406 	unpin_vpa(kvm, vpa);
6407 	vpa->gpa = 0;
6408 	vpa->pinned_addr = NULL;
6409 	vpa->dirty = false;
6410 	vpa->update_pending = 0;
6411 }
6412 
6413 /*
6414  * Enable a guest to become a secure VM, or test whether
6415  * that could be enabled.
6416  * Called when the KVM_CAP_PPC_SECURE_GUEST capability is
6417  * tested (kvm == NULL) or enabled (kvm != NULL).
6418  */
kvmhv_enable_svm(struct kvm * kvm)6419 static int kvmhv_enable_svm(struct kvm *kvm)
6420 {
6421 	if (!kvmppc_uvmem_available())
6422 		return -EINVAL;
6423 	if (kvm)
6424 		kvm->arch.svm_enabled = 1;
6425 	return 0;
6426 }
6427 
6428 /*
6429  *  IOCTL handler to turn off secure mode of guest
6430  *
6431  * - Release all device pages
6432  * - Issue ucall to terminate the guest on the UV side
6433  * - Unpin the VPA pages.
6434  * - Reinit the partition scoped page tables
6435  */
kvmhv_svm_off(struct kvm * kvm)6436 static int kvmhv_svm_off(struct kvm *kvm)
6437 {
6438 	struct kvm_vcpu *vcpu;
6439 	int mmu_was_ready;
6440 	int srcu_idx;
6441 	int ret = 0;
6442 	unsigned long i;
6443 
6444 	if (!(kvm->arch.secure_guest & KVMPPC_SECURE_INIT_START))
6445 		return ret;
6446 
6447 	mutex_lock(&kvm->arch.mmu_setup_lock);
6448 	mmu_was_ready = kvm->arch.mmu_ready;
6449 	if (kvm->arch.mmu_ready) {
6450 		kvm->arch.mmu_ready = 0;
6451 		/* order mmu_ready vs. vcpus_running */
6452 		smp_mb();
6453 		if (atomic_read(&kvm->arch.vcpus_running)) {
6454 			kvm->arch.mmu_ready = 1;
6455 			ret = -EBUSY;
6456 			goto out;
6457 		}
6458 	}
6459 
6460 	srcu_idx = srcu_read_lock(&kvm->srcu);
6461 	for (i = 0; i < kvm_arch_nr_memslot_as_ids(kvm); i++) {
6462 		struct kvm_memory_slot *memslot;
6463 		struct kvm_memslots *slots = __kvm_memslots(kvm, i);
6464 		int bkt;
6465 
6466 		if (!slots)
6467 			continue;
6468 
6469 		kvm_for_each_memslot(memslot, bkt, slots) {
6470 			kvmppc_uvmem_drop_pages(memslot, kvm, true);
6471 			uv_unregister_mem_slot(kvm->arch.lpid, memslot->id);
6472 		}
6473 	}
6474 	srcu_read_unlock(&kvm->srcu, srcu_idx);
6475 
6476 	ret = uv_svm_terminate(kvm->arch.lpid);
6477 	if (ret != U_SUCCESS) {
6478 		ret = -EINVAL;
6479 		goto out;
6480 	}
6481 
6482 	/*
6483 	 * When secure guest is reset, all the guest pages are sent
6484 	 * to UV via UV_PAGE_IN before the non-boot vcpus get a
6485 	 * chance to run and unpin their VPA pages. Unpinning of all
6486 	 * VPA pages is done here explicitly so that VPA pages
6487 	 * can be migrated to the secure side.
6488 	 *
6489 	 * This is required to for the secure SMP guest to reboot
6490 	 * correctly.
6491 	 */
6492 	kvm_for_each_vcpu(i, vcpu, kvm) {
6493 		spin_lock(&vcpu->arch.vpa_update_lock);
6494 		unpin_vpa_reset(kvm, &vcpu->arch.dtl);
6495 		unpin_vpa_reset(kvm, &vcpu->arch.slb_shadow);
6496 		unpin_vpa_reset(kvm, &vcpu->arch.vpa);
6497 		spin_unlock(&vcpu->arch.vpa_update_lock);
6498 	}
6499 
6500 	kvmppc_setup_partition_table(kvm);
6501 	kvm->arch.secure_guest = 0;
6502 	kvm->arch.mmu_ready = mmu_was_ready;
6503 out:
6504 	mutex_unlock(&kvm->arch.mmu_setup_lock);
6505 	return ret;
6506 }
6507 
kvmhv_enable_dawr1(struct kvm * kvm)6508 static int kvmhv_enable_dawr1(struct kvm *kvm)
6509 {
6510 	if (!cpu_has_feature(CPU_FTR_DAWR1))
6511 		return -ENODEV;
6512 
6513 	/* kvm == NULL means the caller is testing if the capability exists */
6514 	if (kvm)
6515 		kvm->arch.dawr1_enabled = true;
6516 	return 0;
6517 }
6518 
kvmppc_hash_v3_possible(void)6519 static bool kvmppc_hash_v3_possible(void)
6520 {
6521 	if (!cpu_has_feature(CPU_FTR_ARCH_300))
6522 		return false;
6523 
6524 	if (!cpu_has_feature(CPU_FTR_HVMODE))
6525 		return false;
6526 
6527 	/*
6528 	 * POWER9 chips before version 2.02 can't have some threads in
6529 	 * HPT mode and some in radix mode on the same core.
6530 	 */
6531 	if (radix_enabled()) {
6532 		unsigned int pvr = mfspr(SPRN_PVR);
6533 		if ((pvr >> 16) == PVR_POWER9 &&
6534 		    (((pvr & 0xe000) == 0 && (pvr & 0xfff) < 0x202) ||
6535 		     ((pvr & 0xe000) == 0x2000 && (pvr & 0xfff) < 0x101)))
6536 			return false;
6537 	}
6538 
6539 	return true;
6540 }
6541 
kvmppc_map_compat_capabilities(u32 cpu_version,unsigned long * capabilities)6542 static int kvmppc_map_compat_capabilities(u32 cpu_version,
6543 					  unsigned long *capabilities)
6544 {
6545 	switch (cpu_version) {
6546 	case PVR_ARCH_31_P11:
6547 		*capabilities |= KVM_PPC_COMPAT_CAP_POWER11;
6548 		fallthrough;
6549 	case PVR_ARCH_31:
6550 		*capabilities |= KVM_PPC_COMPAT_CAP_POWER10;
6551 		fallthrough;
6552 	case PVR_ARCH_300:
6553 		*capabilities |= KVM_PPC_COMPAT_CAP_POWER9;
6554 		break;
6555 	default:
6556 		return -EINVAL;
6557 	}
6558 
6559 	return 0;
6560 }
6561 
kvmppc_get_compat_caps(struct kvm_ppc_compat_caps * host_caps)6562 static int kvmppc_get_compat_caps(struct kvm_ppc_compat_caps *host_caps)
6563 {
6564 	struct device_node *np;
6565 	unsigned long capabilities = 0;
6566 	long rc = -EINVAL;
6567 	u32 cpu_version = 0;
6568 
6569 	if (kvmhv_on_pseries()) {
6570 		if (kvmhv_is_nestedv2()) {
6571 			WARN_ON_ONCE(!nested_capabilities);
6572 			capabilities = nested_capabilities;
6573 			rc = 0;
6574 		} else {
6575 			for_each_node_by_type(np, "cpu") {
6576 				if (!of_property_read_u32(np, "cpu-version",
6577 							  &cpu_version)) {
6578 					of_node_put(np);
6579 					break;
6580 				}
6581 			}
6582 			if (!cpu_version)
6583 				return -EINVAL;
6584 			rc = kvmppc_map_compat_capabilities(cpu_version,
6585 							    &capabilities);
6586 		}
6587 	}
6588 
6589 	if (rc < 0)
6590 		return rc;
6591 
6592 	host_caps->compat_capabilities = capabilities & KVM_PPC_COMPAT_BITMASK;
6593 
6594 	return rc;
6595 }
6596 
6597 static struct kvmppc_ops kvm_ops_hv = {
6598 	.get_sregs = kvm_arch_vcpu_ioctl_get_sregs_hv,
6599 	.set_sregs = kvm_arch_vcpu_ioctl_set_sregs_hv,
6600 	.get_one_reg = kvmppc_get_one_reg_hv,
6601 	.set_one_reg = kvmppc_set_one_reg_hv,
6602 	.vcpu_load   = kvmppc_core_vcpu_load_hv,
6603 	.vcpu_put    = kvmppc_core_vcpu_put_hv,
6604 	.inject_interrupt = kvmppc_inject_interrupt_hv,
6605 	.set_msr     = kvmppc_set_msr_hv,
6606 	.vcpu_run    = kvmppc_vcpu_run_hv,
6607 	.vcpu_create = kvmppc_core_vcpu_create_hv,
6608 	.vcpu_free   = kvmppc_core_vcpu_free_hv,
6609 	.check_requests = kvmppc_core_check_requests_hv,
6610 	.get_dirty_log  = kvm_vm_ioctl_get_dirty_log_hv,
6611 	.flush_memslot  = kvmppc_core_flush_memslot_hv,
6612 	.prepare_memory_region = kvmppc_core_prepare_memory_region_hv,
6613 	.commit_memory_region  = kvmppc_core_commit_memory_region_hv,
6614 	.unmap_gfn_range = kvm_unmap_gfn_range_hv,
6615 	.age_gfn = kvm_age_gfn_hv,
6616 	.test_age_gfn = kvm_test_age_gfn_hv,
6617 	.free_memslot = kvmppc_core_free_memslot_hv,
6618 	.init_vm =  kvmppc_core_init_vm_hv,
6619 	.destroy_vm = kvmppc_core_destroy_vm_hv,
6620 	.get_smmu_info = kvm_vm_ioctl_get_smmu_info_hv,
6621 	.emulate_op = kvmppc_core_emulate_op_hv,
6622 	.emulate_mtspr = kvmppc_core_emulate_mtspr_hv,
6623 	.emulate_mfspr = kvmppc_core_emulate_mfspr_hv,
6624 	.fast_vcpu_kick = kvmppc_fast_vcpu_kick_hv,
6625 	.arch_vm_ioctl  = kvm_arch_vm_ioctl_hv,
6626 	.hcall_implemented = kvmppc_hcall_impl_hv,
6627 	.configure_mmu = kvmhv_configure_mmu,
6628 	.get_rmmu_info = kvmhv_get_rmmu_info,
6629 	.set_smt_mode = kvmhv_set_smt_mode,
6630 	.enable_nested = kvmhv_enable_nested,
6631 	.load_from_eaddr = kvmhv_load_from_eaddr,
6632 	.store_to_eaddr = kvmhv_store_to_eaddr,
6633 	.enable_svm = kvmhv_enable_svm,
6634 	.svm_off = kvmhv_svm_off,
6635 	.enable_dawr1 = kvmhv_enable_dawr1,
6636 	.hash_v3_possible = kvmppc_hash_v3_possible,
6637 	.create_vcpu_debugfs = kvmppc_arch_create_vcpu_debugfs_hv,
6638 	.create_vm_debugfs = kvmppc_arch_create_vm_debugfs_hv,
6639 	.get_compat_caps = kvmppc_get_compat_caps,
6640 };
6641 
kvm_init_subcore_bitmap(void)6642 static int kvm_init_subcore_bitmap(void)
6643 {
6644 	int i, j;
6645 	int nr_cores = cpu_nr_cores();
6646 	struct sibling_subcore_state *sibling_subcore_state;
6647 
6648 	for (i = 0; i < nr_cores; i++) {
6649 		int first_cpu = i * threads_per_core;
6650 		int node = cpu_to_node(first_cpu);
6651 
6652 		/* Ignore if it is already allocated. */
6653 		if (paca_ptrs[first_cpu]->sibling_subcore_state)
6654 			continue;
6655 
6656 		sibling_subcore_state =
6657 			kzalloc_node(sizeof(struct sibling_subcore_state),
6658 							GFP_KERNEL, node);
6659 		if (!sibling_subcore_state)
6660 			return -ENOMEM;
6661 
6662 
6663 		for (j = 0; j < threads_per_core; j++) {
6664 			int cpu = first_cpu + j;
6665 
6666 			paca_ptrs[cpu]->sibling_subcore_state =
6667 						sibling_subcore_state;
6668 		}
6669 	}
6670 	return 0;
6671 }
6672 
kvmppc_radix_possible(void)6673 static int kvmppc_radix_possible(void)
6674 {
6675 	return cpu_has_feature(CPU_FTR_ARCH_300) && radix_enabled();
6676 }
6677 
kvmppc_book3s_init_hv(void)6678 static int kvmppc_book3s_init_hv(void)
6679 {
6680 	int r;
6681 
6682 	if (!tlbie_capable) {
6683 		pr_err("KVM-HV: Host does not support TLBIE\n");
6684 		return -ENODEV;
6685 	}
6686 
6687 	/*
6688 	 * FIXME!! Do we need to check on all cpus ?
6689 	 */
6690 	r = kvmppc_core_check_processor_compat_hv();
6691 	if (r < 0)
6692 		return -ENODEV;
6693 
6694 	r = kvmhv_nested_init();
6695 	if (r)
6696 		return r;
6697 
6698 	if (!cpu_has_feature(CPU_FTR_ARCH_300)) {
6699 		r = kvm_init_subcore_bitmap();
6700 		if (r)
6701 			goto err;
6702 	}
6703 
6704 	/*
6705 	 * We need a way of accessing the XICS interrupt controller,
6706 	 * either directly, via paca_ptrs[cpu]->kvm_hstate.xics_phys, or
6707 	 * indirectly, via OPAL.
6708 	 */
6709 #ifdef CONFIG_SMP
6710 	if (!xics_on_xive() && !kvmhv_on_pseries() &&
6711 	    !local_paca->kvm_hstate.xics_phys) {
6712 		struct device_node *np;
6713 
6714 		np = of_find_compatible_node(NULL, NULL, "ibm,opal-intc");
6715 		if (!np) {
6716 			pr_err("KVM-HV: Cannot determine method for accessing XICS\n");
6717 			r = -ENODEV;
6718 			goto err;
6719 		}
6720 		/* presence of intc confirmed - node can be dropped again */
6721 		of_node_put(np);
6722 	}
6723 #endif
6724 
6725 	init_default_hcalls();
6726 
6727 	init_vcore_lists();
6728 
6729 	r = kvmppc_mmu_hv_init();
6730 	if (r)
6731 		goto err;
6732 
6733 	if (kvmppc_radix_possible()) {
6734 		r = kvmppc_radix_init();
6735 		if (r)
6736 			goto err;
6737 	}
6738 
6739 	r = kvmppc_uvmem_init();
6740 	if (r < 0) {
6741 		pr_err("KVM-HV: kvmppc_uvmem_init failed %d\n", r);
6742 		return r;
6743 	}
6744 
6745 #if defined(CONFIG_KVM_XICS)
6746 	/*
6747 	 * IRQ bypass is supported only for interrupts whose EOI operations are
6748 	 * handled via OPAL calls. Therefore, register IRQ bypass handlers
6749 	 * exclusively for PowerNV KVM when booted with 'xive=off', indicating
6750 	 * the use of the emulated XICS interrupt controller.
6751 	 */
6752 	if (!kvmhv_on_pseries()) {
6753 		pr_info("KVM-HV: Enabling IRQ bypass\n");
6754 		kvm_ops_hv.irq_bypass_add_producer =
6755 			kvmppc_irq_bypass_add_producer_hv;
6756 		kvm_ops_hv.irq_bypass_del_producer =
6757 			kvmppc_irq_bypass_del_producer_hv;
6758 	}
6759 #endif
6760 
6761 	kvm_ops_hv.owner = THIS_MODULE;
6762 	kvmppc_hv_ops = &kvm_ops_hv;
6763 
6764 	return 0;
6765 
6766 err:
6767 	kvmhv_nested_exit();
6768 	kvmppc_radix_exit();
6769 
6770 	return r;
6771 }
6772 
kvmppc_book3s_exit_hv(void)6773 static void kvmppc_book3s_exit_hv(void)
6774 {
6775 	kvmppc_uvmem_free();
6776 	kvmppc_free_host_rm_ops();
6777 	if (kvmppc_radix_possible())
6778 		kvmppc_radix_exit();
6779 	kvmppc_hv_ops = NULL;
6780 	kvmhv_nested_exit();
6781 }
6782 
6783 module_init(kvmppc_book3s_init_hv);
6784 module_exit(kvmppc_book3s_exit_hv);
6785 MODULE_DESCRIPTION("KVM on Book3S (POWER8 and later) in hypervisor mode");
6786 MODULE_LICENSE("GPL");
6787 MODULE_ALIAS_MISCDEV(KVM_MINOR);
6788 MODULE_ALIAS("devname:kvm");
6789