1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Fault injection for both 32 and 64bit guests.
4 *
5 * Copyright (C) 2012,2013 - ARM Ltd
6 * Author: Marc Zyngier <marc.zyngier@arm.com>
7 *
8 * Based on arch/arm/kvm/emulate.c
9 * Copyright (C) 2012 - Virtual Open Systems and Columbia University
10 * Author: Christoffer Dall <c.dall@virtualopensystems.com>
11 */
12
13 #include <linux/kvm_host.h>
14 #include <asm/kvm_emulate.h>
15 #include <asm/kvm_nested.h>
16 #include <asm/esr.h>
17
exception_target_el(struct kvm_vcpu * vcpu)18 static unsigned int exception_target_el(struct kvm_vcpu *vcpu)
19 {
20 /* If not nesting, EL1 is the only possible exception target */
21 if (likely(!vcpu_has_nv(vcpu)))
22 return PSR_MODE_EL1h;
23
24 /*
25 * With NV, we need to pick between EL1 and EL2. Note that we
26 * never deal with a nesting exception here, hence never
27 * changing context, and the exception itself can be delayed
28 * until the next entry.
29 */
30 switch(*vcpu_cpsr(vcpu) & PSR_MODE_MASK) {
31 case PSR_MODE_EL2h:
32 case PSR_MODE_EL2t:
33 return PSR_MODE_EL2h;
34 case PSR_MODE_EL1h:
35 case PSR_MODE_EL1t:
36 return PSR_MODE_EL1h;
37 case PSR_MODE_EL0t:
38 return vcpu_el2_tge_is_set(vcpu) ? PSR_MODE_EL2h : PSR_MODE_EL1h;
39 default:
40 BUG();
41 }
42 }
43
exception_esr_elx(struct kvm_vcpu * vcpu)44 static enum vcpu_sysreg exception_esr_elx(struct kvm_vcpu *vcpu)
45 {
46 if (exception_target_el(vcpu) == PSR_MODE_EL2h)
47 return ESR_EL2;
48
49 return ESR_EL1;
50 }
51
exception_far_elx(struct kvm_vcpu * vcpu)52 static enum vcpu_sysreg exception_far_elx(struct kvm_vcpu *vcpu)
53 {
54 if (exception_target_el(vcpu) == PSR_MODE_EL2h)
55 return FAR_EL2;
56
57 return FAR_EL1;
58 }
59
pend_sync_exception(struct kvm_vcpu * vcpu)60 static void pend_sync_exception(struct kvm_vcpu *vcpu)
61 {
62 if (exception_target_el(vcpu) == PSR_MODE_EL1h)
63 kvm_pend_exception(vcpu, EXCEPT_AA64_EL1_SYNC);
64 else
65 kvm_pend_exception(vcpu, EXCEPT_AA64_EL2_SYNC);
66 }
67
pend_serror_exception(struct kvm_vcpu * vcpu)68 static void pend_serror_exception(struct kvm_vcpu *vcpu)
69 {
70 if (exception_target_el(vcpu) == PSR_MODE_EL1h)
71 kvm_pend_exception(vcpu, EXCEPT_AA64_EL1_SERR);
72 else
73 kvm_pend_exception(vcpu, EXCEPT_AA64_EL2_SERR);
74 }
75
__effective_sctlr2_bit(struct kvm_vcpu * vcpu,unsigned int idx)76 static bool __effective_sctlr2_bit(struct kvm_vcpu *vcpu, unsigned int idx)
77 {
78 u64 sctlr2;
79
80 if (!kvm_has_sctlr2(vcpu->kvm))
81 return false;
82
83 if (is_nested_ctxt(vcpu) &&
84 !(__vcpu_sys_reg(vcpu, HCRX_EL2) & HCRX_EL2_SCTLR2En))
85 return false;
86
87 if (exception_target_el(vcpu) == PSR_MODE_EL1h)
88 sctlr2 = vcpu_read_sys_reg(vcpu, SCTLR2_EL1);
89 else
90 sctlr2 = vcpu_read_sys_reg(vcpu, SCTLR2_EL2);
91
92 return sctlr2 & BIT(idx);
93 }
94
effective_sctlr2_ease(struct kvm_vcpu * vcpu)95 static bool effective_sctlr2_ease(struct kvm_vcpu *vcpu)
96 {
97 return __effective_sctlr2_bit(vcpu, SCTLR2_EL1_EASE_SHIFT);
98 }
99
effective_sctlr2_nmea(struct kvm_vcpu * vcpu)100 static bool effective_sctlr2_nmea(struct kvm_vcpu *vcpu)
101 {
102 return __effective_sctlr2_bit(vcpu, SCTLR2_EL1_NMEA_SHIFT);
103 }
104
inject_abt64(struct kvm_vcpu * vcpu,bool is_iabt,unsigned long addr)105 static void inject_abt64(struct kvm_vcpu *vcpu, bool is_iabt, unsigned long addr)
106 {
107 unsigned long cpsr = *vcpu_cpsr(vcpu);
108 bool is_aarch32 = vcpu_mode_is_32bit(vcpu);
109 u64 esr = 0, fsc;
110 int level;
111
112 /*
113 * If injecting an abort from a failed S1PTW, rewalk the S1 PTs to
114 * find the failing level. If we can't find it, assume the error was
115 * transient and restart without changing the state.
116 */
117 if (kvm_vcpu_abt_iss1tw(vcpu)) {
118 u64 hpfar = kvm_vcpu_get_fault_ipa(vcpu);
119 int ret;
120
121 if (hpfar == INVALID_GPA)
122 return;
123
124 ret = __kvm_find_s1_desc_level(vcpu, addr, hpfar, &level);
125 if (ret)
126 return;
127
128 WARN_ON_ONCE(level < -1 || level > 3);
129 fsc = ESR_ELx_FSC_SEA_TTW(level);
130 } else {
131 fsc = ESR_ELx_FSC_EXTABT;
132 }
133
134 /* This delight is brought to you by FEAT_DoubleFault2. */
135 if (effective_sctlr2_ease(vcpu))
136 pend_serror_exception(vcpu);
137 else
138 pend_sync_exception(vcpu);
139
140 /*
141 * Build an {i,d}abort, depending on the level.
142 * Report an external synchronous abort.
143 */
144 esr |= ESR_ELx_IL;
145
146 /*
147 * Here, the guest runs in AArch64 mode when in EL1. If we get
148 * an AArch32 fault, it means we managed to trap an EL0 fault.
149 */
150 if (is_aarch32 || (cpsr & PSR_MODE_MASK) == PSR_MODE_EL0t)
151 esr |= (ESR_ELx_EC_IABT_LOW << ESR_ELx_EC_SHIFT);
152 else
153 esr |= (ESR_ELx_EC_IABT_CUR << ESR_ELx_EC_SHIFT);
154
155 if (!is_iabt)
156 esr |= ESR_ELx_EC_DABT_LOW << ESR_ELx_EC_SHIFT;
157
158 esr |= fsc;
159
160 vcpu_write_sys_reg(vcpu, addr, exception_far_elx(vcpu));
161 vcpu_write_sys_reg(vcpu, esr, exception_esr_elx(vcpu));
162 }
163
kvm_inject_sync(struct kvm_vcpu * vcpu,u64 esr)164 void kvm_inject_sync(struct kvm_vcpu *vcpu, u64 esr)
165 {
166 pend_sync_exception(vcpu);
167 vcpu_write_sys_reg(vcpu, esr, exception_esr_elx(vcpu));
168 }
169
inject_undef64(struct kvm_vcpu * vcpu)170 static void inject_undef64(struct kvm_vcpu *vcpu)
171 {
172 u64 esr = (ESR_ELx_EC_UNKNOWN << ESR_ELx_EC_SHIFT) | ESR_ELx_IL;
173
174 kvm_inject_sync(vcpu, esr);
175 }
176
177 #define DFSR_FSC_EXTABT_LPAE 0x10
178 #define DFSR_FSC_EXTABT_nLPAE 0x08
179 #define DFSR_LPAE BIT(9)
180 #define TTBCR_EAE BIT(31)
181
inject_undef32(struct kvm_vcpu * vcpu)182 static void inject_undef32(struct kvm_vcpu *vcpu)
183 {
184 kvm_pend_exception(vcpu, EXCEPT_AA32_UND);
185 }
186
187 /*
188 * Modelled after TakeDataAbortException() and TakePrefetchAbortException
189 * pseudocode.
190 */
inject_abt32(struct kvm_vcpu * vcpu,bool is_pabt,u32 addr)191 static void inject_abt32(struct kvm_vcpu *vcpu, bool is_pabt, u32 addr)
192 {
193 u64 far;
194 u32 fsr;
195
196 /* Give the guest an IMPLEMENTATION DEFINED exception */
197 if (vcpu_read_sys_reg(vcpu, TCR_EL1) & TTBCR_EAE) {
198 fsr = DFSR_LPAE | DFSR_FSC_EXTABT_LPAE;
199 } else {
200 /* no need to shuffle FS[4] into DFSR[10] as it's 0 */
201 fsr = DFSR_FSC_EXTABT_nLPAE;
202 }
203
204 far = vcpu_read_sys_reg(vcpu, FAR_EL1);
205
206 if (is_pabt) {
207 kvm_pend_exception(vcpu, EXCEPT_AA32_IABT);
208 far &= GENMASK(31, 0);
209 far |= (u64)addr << 32;
210 vcpu_write_sys_reg(vcpu, fsr, IFSR32_EL2);
211 } else { /* !iabt */
212 kvm_pend_exception(vcpu, EXCEPT_AA32_DABT);
213 far &= GENMASK(63, 32);
214 far |= addr;
215 vcpu_write_sys_reg(vcpu, fsr, ESR_EL1);
216 }
217
218 vcpu_write_sys_reg(vcpu, far, FAR_EL1);
219 }
220
__kvm_inject_sea(struct kvm_vcpu * vcpu,bool iabt,u64 addr)221 static void __kvm_inject_sea(struct kvm_vcpu *vcpu, bool iabt, u64 addr)
222 {
223 if (vcpu_el1_is_32bit(vcpu))
224 inject_abt32(vcpu, iabt, addr);
225 else
226 inject_abt64(vcpu, iabt, addr);
227 }
228
kvm_sea_target_is_el2(struct kvm_vcpu * vcpu)229 static bool kvm_sea_target_is_el2(struct kvm_vcpu *vcpu)
230 {
231 if (__vcpu_sys_reg(vcpu, HCR_EL2) & (HCR_TGE | HCR_TEA))
232 return true;
233
234 if (!vcpu_mode_priv(vcpu))
235 return false;
236
237 return (*vcpu_cpsr(vcpu) & PSR_A_BIT) &&
238 (__vcpu_sys_reg(vcpu, HCRX_EL2) & HCRX_EL2_TMEA);
239 }
240
kvm_inject_sea(struct kvm_vcpu * vcpu,bool iabt,u64 addr)241 int kvm_inject_sea(struct kvm_vcpu *vcpu, bool iabt, u64 addr)
242 {
243 lockdep_assert_held(&vcpu->mutex);
244
245 if (is_nested_ctxt(vcpu) && kvm_sea_target_is_el2(vcpu))
246 return kvm_inject_nested_sea(vcpu, iabt, addr);
247
248 __kvm_inject_sea(vcpu, iabt, addr);
249 return 1;
250 }
251
kvm_inject_nested_excl_atomic(struct kvm_vcpu * vcpu,u64 addr)252 static int kvm_inject_nested_excl_atomic(struct kvm_vcpu *vcpu, u64 addr)
253 {
254 u64 esr = FIELD_PREP(ESR_ELx_EC_MASK, ESR_ELx_EC_DABT_LOW) |
255 FIELD_PREP(ESR_ELx_FSC, ESR_ELx_FSC_EXCL_ATOMIC) |
256 ESR_ELx_IL;
257
258 vcpu_write_sys_reg(vcpu, addr, FAR_EL2);
259 return kvm_inject_nested_sync(vcpu, esr);
260 }
261
262 /**
263 * kvm_inject_dabt_excl_atomic - inject a data abort for unsupported exclusive
264 * or atomic access
265 * @vcpu: The VCPU to receive the data abort
266 * @addr: The address to report in the DFAR
267 *
268 * It is assumed that this code is called from the VCPU thread and that the
269 * VCPU therefore is not currently executing guest code.
270 */
kvm_inject_dabt_excl_atomic(struct kvm_vcpu * vcpu,u64 addr)271 int kvm_inject_dabt_excl_atomic(struct kvm_vcpu *vcpu, u64 addr)
272 {
273 u64 esr;
274
275 if (is_nested_ctxt(vcpu) && (vcpu_read_sys_reg(vcpu, HCR_EL2) & HCR_VM))
276 return kvm_inject_nested_excl_atomic(vcpu, addr);
277
278 __kvm_inject_sea(vcpu, false, addr);
279 esr = vcpu_read_sys_reg(vcpu, exception_esr_elx(vcpu));
280 esr &= ~ESR_ELx_FSC;
281 esr |= ESR_ELx_FSC_EXCL_ATOMIC;
282 vcpu_write_sys_reg(vcpu, esr, exception_esr_elx(vcpu));
283 return 1;
284 }
285
kvm_inject_size_fault(struct kvm_vcpu * vcpu)286 void kvm_inject_size_fault(struct kvm_vcpu *vcpu)
287 {
288 unsigned long addr, esr;
289
290 addr = kvm_vcpu_get_fault_ipa(vcpu);
291 addr |= FAR_TO_FIPA_OFFSET(kvm_vcpu_get_hfar(vcpu));
292
293 __kvm_inject_sea(vcpu, kvm_vcpu_trap_is_iabt(vcpu), addr);
294
295 /*
296 * If AArch64 or LPAE, set FSC to 0 to indicate an Address
297 * Size Fault at level 0, as if exceeding PARange.
298 *
299 * Non-LPAE guests will only get the external abort, as there
300 * is no way to describe the ASF.
301 */
302 if (vcpu_el1_is_32bit(vcpu) &&
303 !(vcpu_read_sys_reg(vcpu, TCR_EL1) & TTBCR_EAE))
304 return;
305
306 esr = vcpu_read_sys_reg(vcpu, exception_esr_elx(vcpu));
307 esr &= ~GENMASK_ULL(5, 0);
308 vcpu_write_sys_reg(vcpu, esr, exception_esr_elx(vcpu));
309 }
310
311 /**
312 * kvm_inject_undefined - inject an undefined instruction into the guest
313 * @vcpu: The vCPU in which to inject the exception
314 *
315 * It is assumed that this code is called from the VCPU thread and that the
316 * VCPU therefore is not currently executing guest code.
317 */
kvm_inject_undefined(struct kvm_vcpu * vcpu)318 void kvm_inject_undefined(struct kvm_vcpu *vcpu)
319 {
320 if (vcpu_el1_is_32bit(vcpu))
321 inject_undef32(vcpu);
322 else
323 inject_undef64(vcpu);
324 }
325
serror_is_masked(struct kvm_vcpu * vcpu)326 static bool serror_is_masked(struct kvm_vcpu *vcpu)
327 {
328 return (*vcpu_cpsr(vcpu) & PSR_A_BIT) && !effective_sctlr2_nmea(vcpu);
329 }
330
kvm_serror_target_is_el2(struct kvm_vcpu * vcpu)331 static bool kvm_serror_target_is_el2(struct kvm_vcpu *vcpu)
332 {
333 if (is_hyp_ctxt(vcpu) || vcpu_el2_amo_is_set(vcpu))
334 return true;
335
336 if (!(__vcpu_sys_reg(vcpu, HCRX_EL2) & HCRX_EL2_TMEA))
337 return false;
338
339 /*
340 * In another example where FEAT_DoubleFault2 is entirely backwards,
341 * "masked" as it relates to the routing effects of HCRX_EL2.TMEA
342 * doesn't consider SCTLR2_EL1.NMEA. That is to say, even if EL1 asked
343 * for non-maskable SErrors, the EL2 bit takes priority if A is set.
344 */
345 if (vcpu_mode_priv(vcpu))
346 return *vcpu_cpsr(vcpu) & PSR_A_BIT;
347
348 /*
349 * Otherwise SErrors are considered unmasked when taken from EL0 and
350 * NMEA is set.
351 */
352 return serror_is_masked(vcpu);
353 }
354
kvm_serror_undeliverable_at_el2(struct kvm_vcpu * vcpu)355 static bool kvm_serror_undeliverable_at_el2(struct kvm_vcpu *vcpu)
356 {
357 return !(vcpu_el2_tge_is_set(vcpu) || vcpu_el2_amo_is_set(vcpu));
358 }
359
kvm_inject_serror_esr(struct kvm_vcpu * vcpu,u64 esr)360 int kvm_inject_serror_esr(struct kvm_vcpu *vcpu, u64 esr)
361 {
362 lockdep_assert_held(&vcpu->mutex);
363
364 if (is_nested_ctxt(vcpu) && kvm_serror_target_is_el2(vcpu))
365 return kvm_inject_nested_serror(vcpu, esr);
366
367 if (vcpu_is_el2(vcpu) && kvm_serror_undeliverable_at_el2(vcpu)) {
368 vcpu_set_vsesr(vcpu, esr);
369 vcpu_set_flag(vcpu, NESTED_SERROR_PENDING);
370 return 1;
371 }
372
373 /*
374 * Emulate the exception entry if SErrors are unmasked. This is useful if
375 * the vCPU is in a nested context w/ vSErrors enabled then we've already
376 * delegated he hardware vSError context (i.e. HCR_EL2.VSE, VSESR_EL2,
377 * VDISR_EL2) to the guest hypervisor.
378 *
379 * As we're emulating the SError injection we need to explicitly populate
380 * ESR_ELx.EC because hardware will not do it on our behalf.
381 */
382 if (!serror_is_masked(vcpu)) {
383 pend_serror_exception(vcpu);
384 esr |= FIELD_PREP(ESR_ELx_EC_MASK, ESR_ELx_EC_SERROR) | ESR_ELx_IL;
385 vcpu_write_sys_reg(vcpu, esr, exception_esr_elx(vcpu));
386 return 1;
387 }
388
389 vcpu_set_vsesr(vcpu, esr & ESR_ELx_ISS_MASK);
390 *vcpu_hcr(vcpu) |= HCR_VSE;
391 return 1;
392 }
393