xref: /linux/arch/s390/net/bpf_jit_comp.c (revision 5a8cd539ac19f7a68e68e1d25ef9ca2ff55b8500)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * BPF Jit compiler for s390.
4  *
5  * Minimum build requirements:
6  *
7  *  - HAVE_MARCH_Z196_FEATURES: laal, laalg
8  *  - HAVE_MARCH_Z10_FEATURES: msfi, cgrj, clgrj
9  *  - HAVE_MARCH_Z9_109_FEATURES: alfi, llilf, clfi, oilf, nilf
10  *  - 64BIT
11  *
12  * Copyright IBM Corp. 2012,2015
13  *
14  * Author(s): Martin Schwidefsky <schwidefsky@de.ibm.com>
15  *	      Michael Holzheu <holzheu@linux.vnet.ibm.com>
16  */
17 
18 #define pr_fmt(fmt) "bpf_jit: " fmt
19 
20 #include <linux/netdevice.h>
21 #include <linux/filter.h>
22 #include <linux/init.h>
23 #include <linux/bpf.h>
24 #include <linux/mm.h>
25 #include <linux/kernel.h>
26 #include <asm/cacheflush.h>
27 #include <asm/extable.h>
28 #include <asm/dis.h>
29 #include <asm/facility.h>
30 #include <asm/lowcore.h>
31 #include <asm/nospec-branch.h>
32 #include <asm/set_memory.h>
33 #include <asm/text-patching.h>
34 #include <asm/unwind.h>
35 
36 struct bpf_jit {
37 	u32 seen;		/* Flags to remember seen eBPF instructions */
38 	u16 seen_regs;		/* Mask to remember which registers are used */
39 	u32 *addrs;		/* Array with relative instruction addresses */
40 	u8 *prg_buf;		/* Start of program */
41 	int size;		/* Size of program and literal pool */
42 	int size_prg;		/* Size of program */
43 	int prg;		/* Current position in program */
44 	int lit32_start;	/* Start of 32-bit literal pool */
45 	int lit32;		/* Current position in 32-bit literal pool */
46 	int lit64_start;	/* Start of 64-bit literal pool */
47 	int lit64;		/* Current position in 64-bit literal pool */
48 	int base_ip;		/* Base address for literal pool */
49 	int exit_ip;		/* Address of exit */
50 	int tail_call_start;	/* Tail call start offset */
51 	int excnt;		/* Number of exception table entries */
52 	int prologue_plt_ret;	/* Return address for prologue hotpatch PLT */
53 	int prologue_plt;	/* Start of prologue hotpatch PLT */
54 	int kern_arena;		/* Pool offset of kernel arena address */
55 	u64 user_arena;		/* User arena address */
56 	u32 frame_off;		/* Offset of struct bpf_prog from %r15 */
57 };
58 
59 #define SEEN_MEM	BIT(0)		/* use mem[] for temporary storage */
60 #define SEEN_LITERAL	BIT(1)		/* code uses literals */
61 #define SEEN_FUNC	BIT(2)		/* calls C functions */
62 #define SEEN_STACK	(SEEN_FUNC | SEEN_MEM)
63 
64 #define NVREGS		0xffc0		/* %r6-%r15 */
65 
66 /*
67  * s390 registers
68  */
69 #define REG_W0		(MAX_BPF_JIT_REG + 0)	/* Work register 1 (even) */
70 #define REG_W1		(MAX_BPF_JIT_REG + 1)	/* Work register 2 (odd) */
71 #define REG_L		(MAX_BPF_JIT_REG + 2)	/* Literal pool register */
72 #define REG_15		(MAX_BPF_JIT_REG + 3)	/* Register 15 */
73 #define REG_0		REG_W0			/* Register 0 */
74 #define REG_1		REG_W1			/* Register 1 */
75 #define REG_2		BPF_REG_1		/* Register 2 */
76 #define REG_3		BPF_REG_2		/* Register 3 */
77 #define REG_4		BPF_REG_3		/* Register 4 */
78 #define REG_7		BPF_REG_6		/* Register 7 */
79 #define REG_8		BPF_REG_7		/* Register 8 */
80 #define REG_14		BPF_REG_0		/* Register 14 */
81 
82 /*
83  * Mapping of BPF registers to s390 registers
84  */
85 static const int reg2hex[] = {
86 	/* Return code */
87 	[BPF_REG_0]	= 14,
88 	/* Function parameters */
89 	[BPF_REG_1]	= 2,
90 	[BPF_REG_2]	= 3,
91 	[BPF_REG_3]	= 4,
92 	[BPF_REG_4]	= 5,
93 	[BPF_REG_5]	= 6,
94 	/* Call saved registers */
95 	[BPF_REG_6]	= 7,
96 	[BPF_REG_7]	= 8,
97 	[BPF_REG_8]	= 9,
98 	[BPF_REG_9]	= 10,
99 	/* BPF stack pointer */
100 	[BPF_REG_FP]	= 13,
101 	/* Register for blinding */
102 	[BPF_REG_AX]	= 12,
103 	/* Work registers for s390x backend */
104 	[REG_W0]	= 0,
105 	[REG_W1]	= 1,
106 	[REG_L]		= 11,
107 	[REG_15]	= 15,
108 };
109 
reg(u32 dst_reg,u32 src_reg)110 static inline u32 reg(u32 dst_reg, u32 src_reg)
111 {
112 	return reg2hex[dst_reg] << 4 | reg2hex[src_reg];
113 }
114 
reg_high(u32 reg)115 static inline u32 reg_high(u32 reg)
116 {
117 	return reg2hex[reg] << 4;
118 }
119 
reg_set_seen(struct bpf_jit * jit,u32 b1)120 static inline void reg_set_seen(struct bpf_jit *jit, u32 b1)
121 {
122 	u32 r1 = reg2hex[b1];
123 
124 	if (r1 >= 6 && r1 <= 15)
125 		jit->seen_regs |= (1 << r1);
126 }
127 
off_to_pcrel(struct bpf_jit * jit,u32 off)128 static s32 off_to_pcrel(struct bpf_jit *jit, u32 off)
129 {
130 	return off - jit->prg;
131 }
132 
ptr_to_pcrel(struct bpf_jit * jit,const void * ptr)133 static s64 ptr_to_pcrel(struct bpf_jit *jit, const void *ptr)
134 {
135 	if (jit->prg_buf)
136 		return (const u8 *)ptr - ((const u8 *)jit->prg_buf + jit->prg);
137 	return 0;
138 }
139 
140 #define REG_SET_SEEN(b1)					\
141 ({								\
142 	reg_set_seen(jit, b1);					\
143 })
144 
145 /*
146  * EMIT macros for code generation
147  */
148 
149 #define _EMIT2(op)						\
150 ({								\
151 	if (jit->prg_buf)					\
152 		*(u16 *) (jit->prg_buf + jit->prg) = (op);	\
153 	jit->prg += 2;						\
154 })
155 
156 #define EMIT2(op, b1, b2)					\
157 ({								\
158 	_EMIT2((op) | reg(b1, b2));				\
159 	REG_SET_SEEN(b1);					\
160 	REG_SET_SEEN(b2);					\
161 })
162 
163 #define _EMIT4(op)						\
164 ({								\
165 	if (jit->prg_buf)					\
166 		*(u32 *) (jit->prg_buf + jit->prg) = (op);	\
167 	jit->prg += 4;						\
168 })
169 
170 #define EMIT4(op, b1, b2)					\
171 ({								\
172 	_EMIT4((op) | reg(b1, b2));				\
173 	REG_SET_SEEN(b1);					\
174 	REG_SET_SEEN(b2);					\
175 })
176 
177 #define EMIT4_RRF(op, b1, b2, b3)				\
178 ({								\
179 	_EMIT4((op) | reg_high(b3) << 8 | reg(b1, b2));		\
180 	REG_SET_SEEN(b1);					\
181 	REG_SET_SEEN(b2);					\
182 	REG_SET_SEEN(b3);					\
183 })
184 
185 #define _EMIT4_DISP(op, disp)					\
186 ({								\
187 	unsigned int __disp = (disp) & 0xfff;			\
188 	_EMIT4((op) | __disp);					\
189 })
190 
191 #define EMIT4_DISP(op, b1, b2, disp)				\
192 ({								\
193 	_EMIT4_DISP((op) | reg_high(b1) << 16 |			\
194 		    reg_high(b2) << 8, (disp));			\
195 	REG_SET_SEEN(b1);					\
196 	REG_SET_SEEN(b2);					\
197 })
198 
199 #define EMIT4_IMM(op, b1, imm)					\
200 ({								\
201 	unsigned int __imm = (imm) & 0xffff;			\
202 	_EMIT4((op) | reg_high(b1) << 16 | __imm);		\
203 	REG_SET_SEEN(b1);					\
204 })
205 
206 #define EMIT4_PCREL(op, pcrel)					\
207 ({								\
208 	long __pcrel = ((pcrel) >> 1) & 0xffff;			\
209 	_EMIT4((op) | __pcrel);					\
210 })
211 
212 #define EMIT4_PCREL_RIC(op, mask, target)			\
213 ({								\
214 	int __rel = off_to_pcrel(jit, target) / 2;		\
215 	_EMIT4((op) | (mask) << 20 | (__rel & 0xffff));		\
216 })
217 
218 #define _EMIT6(op1, op2)					\
219 ({								\
220 	if (jit->prg_buf) {					\
221 		*(u32 *) (jit->prg_buf + jit->prg) = (op1);	\
222 		*(u16 *) (jit->prg_buf + jit->prg + 4) = (op2);	\
223 	}							\
224 	jit->prg += 6;						\
225 })
226 
227 #define _EMIT6_DISP(op1, op2, disp)				\
228 ({								\
229 	unsigned int __disp = (disp) & 0xfff;			\
230 	_EMIT6((op1) | __disp, op2);				\
231 })
232 
233 #define _EMIT6_DISP_LH(op1, op2, disp)				\
234 ({								\
235 	u32 _disp = (u32) (disp);				\
236 	unsigned int __disp_h = _disp & 0xff000;		\
237 	unsigned int __disp_l = _disp & 0x00fff;		\
238 	_EMIT6((op1) | __disp_l, (op2) | __disp_h >> 4);	\
239 })
240 
241 #define EMIT6_DISP_LH(op1, op2, b1, b2, b3, disp)		\
242 ({								\
243 	_EMIT6_DISP_LH((op1) | reg(b1, b2) << 16 |		\
244 		       reg_high(b3) << 8, op2, disp);		\
245 	REG_SET_SEEN(b1);					\
246 	REG_SET_SEEN(b2);					\
247 	REG_SET_SEEN(b3);					\
248 })
249 
250 #define EMIT6_PCREL_RIEB(op1, op2, b1, b2, mask, target)	\
251 ({								\
252 	unsigned int rel = off_to_pcrel(jit, target) / 2;	\
253 	_EMIT6((op1) | reg(b1, b2) << 16 | (rel & 0xffff),	\
254 	       (op2) | (mask) << 12);				\
255 	REG_SET_SEEN(b1);					\
256 	REG_SET_SEEN(b2);					\
257 })
258 
259 #define EMIT6_PCREL_RIEC(op1, op2, b1, imm, mask, target)	\
260 ({								\
261 	unsigned int rel = off_to_pcrel(jit, target) / 2;	\
262 	_EMIT6((op1) | (reg_high(b1) | (mask)) << 16 |		\
263 		(rel & 0xffff), (op2) | ((imm) & 0xff) << 8);	\
264 	REG_SET_SEEN(b1);					\
265 	BUILD_BUG_ON(((unsigned long) (imm)) > 0xff);		\
266 })
267 
268 #define EMIT6_PCREL(op1, op2, b1, b2, i, off, mask)		\
269 ({								\
270 	int rel = off_to_pcrel(jit, addrs[(i) + (off) + 1]) / 2;\
271 	_EMIT6((op1) | reg(b1, b2) << 16 | (rel & 0xffff), (op2) | (mask));\
272 	REG_SET_SEEN(b1);					\
273 	REG_SET_SEEN(b2);					\
274 })
275 
emit6_pcrel_ril(struct bpf_jit * jit,u32 op,s64 pcrel)276 static void emit6_pcrel_ril(struct bpf_jit *jit, u32 op, s64 pcrel)
277 {
278 	u32 pc32dbl = (s32)(pcrel / 2);
279 
280 	_EMIT6(op | pc32dbl >> 16, pc32dbl & 0xffff);
281 }
282 
emit6_pcrel_rilb(struct bpf_jit * jit,u32 op,u8 b,s64 pcrel)283 static void emit6_pcrel_rilb(struct bpf_jit *jit, u32 op, u8 b, s64 pcrel)
284 {
285 	emit6_pcrel_ril(jit, op | reg_high(b) << 16, pcrel);
286 	REG_SET_SEEN(b);
287 }
288 
289 #define EMIT6_PCREL_RILB(op, b, target)				\
290 	emit6_pcrel_rilb(jit, op, b, off_to_pcrel(jit, target))
291 
292 #define EMIT6_PCREL_RILB_PTR(op, b, target_ptr)			\
293 	emit6_pcrel_rilb(jit, op, b, ptr_to_pcrel(jit, target_ptr))
294 
emit6_pcrel_rilc(struct bpf_jit * jit,u32 op,u8 mask,s64 pcrel)295 static void emit6_pcrel_rilc(struct bpf_jit *jit, u32 op, u8 mask, s64 pcrel)
296 {
297 	emit6_pcrel_ril(jit, op | mask << 20, pcrel);
298 }
299 
300 #define EMIT6_PCREL_RILC(op, mask, target)			\
301 	emit6_pcrel_rilc(jit, op, mask, off_to_pcrel(jit, target))
302 
303 #define EMIT6_PCREL_RILC_PTR(op, mask, target_ptr)		\
304 	emit6_pcrel_rilc(jit, op, mask, ptr_to_pcrel(jit, target_ptr))
305 
306 #define _EMIT6_IMM(op, imm)					\
307 ({								\
308 	unsigned int __imm = (imm);				\
309 	_EMIT6((op) | (__imm >> 16), __imm & 0xffff);		\
310 })
311 
312 #define EMIT6_IMM(op, b1, imm)					\
313 ({								\
314 	_EMIT6_IMM((op) | reg_high(b1) << 16, imm);		\
315 	REG_SET_SEEN(b1);					\
316 })
317 
318 #define _EMIT_CONST_U32(val)					\
319 ({								\
320 	unsigned int ret;					\
321 	ret = jit->lit32;					\
322 	if (jit->prg_buf)					\
323 		*(u32 *)(jit->prg_buf + jit->lit32) = (u32)(val);\
324 	jit->lit32 += 4;					\
325 	ret;							\
326 })
327 
328 #define EMIT_CONST_U32(val)					\
329 ({								\
330 	jit->seen |= SEEN_LITERAL;				\
331 	_EMIT_CONST_U32(val) - jit->base_ip;			\
332 })
333 
334 #define _EMIT_CONST_U64(val)					\
335 ({								\
336 	unsigned int ret;					\
337 	ret = jit->lit64;					\
338 	if (jit->prg_buf)					\
339 		*(u64 *)(jit->prg_buf + jit->lit64) = (u64)(val);\
340 	jit->lit64 += 8;					\
341 	ret;							\
342 })
343 
344 #define EMIT_CONST_U64(val)					\
345 ({								\
346 	jit->seen |= SEEN_LITERAL;				\
347 	_EMIT_CONST_U64(val) - jit->base_ip;			\
348 })
349 
350 #define EMIT_ZERO(b1)						\
351 ({								\
352 	if (!fp->aux->verifier_zext) {				\
353 		/* llgfr %dst,%dst (zero extend to 64 bit) */	\
354 		EMIT4(0xb9160000, b1, b1);			\
355 		REG_SET_SEEN(b1);				\
356 	}							\
357 })
358 
359 /*
360  * Return whether this is the first pass. The first pass is special, since we
361  * don't know any sizes yet, and thus must be conservative.
362  */
is_first_pass(struct bpf_jit * jit)363 static bool is_first_pass(struct bpf_jit *jit)
364 {
365 	return jit->size == 0;
366 }
367 
368 /*
369  * Return whether this is the code generation pass. The code generation pass is
370  * special, since we should change as little as possible.
371  */
is_codegen_pass(struct bpf_jit * jit)372 static bool is_codegen_pass(struct bpf_jit *jit)
373 {
374 	return jit->prg_buf;
375 }
376 
377 /*
378  * Return whether "rel" can be encoded as a short PC-relative offset
379  */
is_valid_rel(int rel)380 static bool is_valid_rel(int rel)
381 {
382 	return rel >= -65536 && rel <= 65534;
383 }
384 
385 /*
386  * Return whether "off" can be reached using a short PC-relative offset
387  */
can_use_rel(struct bpf_jit * jit,int off)388 static bool can_use_rel(struct bpf_jit *jit, int off)
389 {
390 	return is_valid_rel(off - jit->prg);
391 }
392 
393 /*
394  * Return whether given displacement can be encoded using
395  * Long-Displacement Facility
396  */
is_valid_ldisp(int disp)397 static bool is_valid_ldisp(int disp)
398 {
399 	return disp >= -524288 && disp <= 524287;
400 }
401 
402 /*
403  * Return whether the next 32-bit literal pool entry can be referenced using
404  * Long-Displacement Facility
405  */
can_use_ldisp_for_lit32(struct bpf_jit * jit)406 static bool can_use_ldisp_for_lit32(struct bpf_jit *jit)
407 {
408 	return is_valid_ldisp(jit->lit32 - jit->base_ip);
409 }
410 
411 /*
412  * Return whether the next 64-bit literal pool entry can be referenced using
413  * Long-Displacement Facility
414  */
can_use_ldisp_for_lit64(struct bpf_jit * jit)415 static bool can_use_ldisp_for_lit64(struct bpf_jit *jit)
416 {
417 	return is_valid_ldisp(jit->lit64 - jit->base_ip);
418 }
419 
420 /*
421  * Fill whole space with illegal instructions
422  */
jit_fill_hole(void * area,unsigned int size)423 static void jit_fill_hole(void *area, unsigned int size)
424 {
425 	memset(area, 0, size);
426 }
427 
428 /*
429  * Caller-allocated part of the frame.
430  * Thanks to packed stack, its otherwise unused initial part can be used for
431  * the BPF stack and for the next frame.
432  */
433 struct prog_frame {
434 	u64 unused[8];
435 	/* BPF stack starts here and grows towards 0 */
436 	u32 tail_call_cnt;
437 	u32 pad;
438 	u64 r6[10];  /* r6 - r15 */
439 	u64 backchain;
440 } __packed;
441 
442 /*
443  * Save registers from "rs" (register start) to "re" (register end) on stack
444  */
save_regs(struct bpf_jit * jit,u32 rs,u32 re)445 static void save_regs(struct bpf_jit *jit, u32 rs, u32 re)
446 {
447 	u32 off = offsetof(struct prog_frame, r6) + (rs - 6) * 8;
448 
449 	if (rs == re)
450 		/* stg %rs,off(%r15) */
451 		_EMIT6(0xe300f000 | rs << 20 | off, 0x0024);
452 	else
453 		/* stmg %rs,%re,off(%r15) */
454 		_EMIT6_DISP(0xeb00f000 | rs << 20 | re << 16, 0x0024, off);
455 }
456 
457 /*
458  * Restore registers from "rs" (register start) to "re" (register end) on stack
459  */
restore_regs(struct bpf_jit * jit,u32 rs,u32 re)460 static void restore_regs(struct bpf_jit *jit, u32 rs, u32 re)
461 {
462 	u32 off = jit->frame_off + offsetof(struct prog_frame, r6) + (rs - 6) * 8;
463 
464 	if (rs == re)
465 		/* lg %rs,off(%r15) */
466 		_EMIT6(0xe300f000 | rs << 20 | off, 0x0004);
467 	else
468 		/* lmg %rs,%re,off(%r15) */
469 		_EMIT6_DISP(0xeb00f000 | rs << 20 | re << 16, 0x0004, off);
470 }
471 
472 /*
473  * Return first seen register (from start)
474  */
get_start(u16 seen_regs,int start)475 static int get_start(u16 seen_regs, int start)
476 {
477 	int i;
478 
479 	for (i = start; i <= 15; i++) {
480 		if (seen_regs & (1 << i))
481 			return i;
482 	}
483 	return 0;
484 }
485 
486 /*
487  * Return last seen register (from start) (gap >= 2)
488  */
get_end(u16 seen_regs,int start)489 static int get_end(u16 seen_regs, int start)
490 {
491 	int i;
492 
493 	for (i = start; i < 15; i++) {
494 		if (!(seen_regs & (3 << i)))
495 			return i - 1;
496 	}
497 	return (seen_regs & (1 << 15)) ? 15 : 14;
498 }
499 
500 #define REGS_SAVE	1
501 #define REGS_RESTORE	0
502 /*
503  * Save and restore clobbered registers (6-15) on stack.
504  * We save/restore registers in chunks with gap >= 2 registers.
505  */
save_restore_regs(struct bpf_jit * jit,int op,u16 extra_regs)506 static void save_restore_regs(struct bpf_jit *jit, int op, u16 extra_regs)
507 {
508 	u16 seen_regs = jit->seen_regs | extra_regs;
509 	const int last = 15, save_restore_size = 6;
510 	int re = 6, rs;
511 
512 	if (is_first_pass(jit)) {
513 		/*
514 		 * We don't know yet which registers are used. Reserve space
515 		 * conservatively.
516 		 */
517 		jit->prg += (last - re + 1) * save_restore_size;
518 		return;
519 	}
520 
521 	do {
522 		rs = get_start(seen_regs, re);
523 		if (!rs)
524 			break;
525 		re = get_end(seen_regs, rs + 1);
526 		if (op == REGS_SAVE)
527 			save_regs(jit, rs, re);
528 		else
529 			restore_regs(jit, rs, re);
530 		re++;
531 	} while (re <= last);
532 }
533 
bpf_skip(struct bpf_jit * jit,int size)534 static void bpf_skip(struct bpf_jit *jit, int size)
535 {
536 	if (size >= 6 && !is_valid_rel(size)) {
537 		/* brcl 0xf,size */
538 		EMIT6_PCREL_RILC(0xc0040000, 0xf, size);
539 		size -= 6;
540 	} else if (size >= 4 && is_valid_rel(size)) {
541 		/* brc 0xf,size */
542 		EMIT4_PCREL(0xa7f40000, size);
543 		size -= 4;
544 	}
545 	while (size >= 2) {
546 		/* bcr 0,%0 */
547 		_EMIT2(0x0700);
548 		size -= 2;
549 	}
550 }
551 
552 /*
553  * PLT for hotpatchable calls. The calling convention is the same as for the
554  * ftrace hotpatch trampolines: %r0 is return address, %r1 is clobbered.
555  */
556 struct bpf_plt {
557 	char code[16];
558 	void *ret;
559 	void *target;
560 } __packed;
561 extern const struct bpf_plt bpf_plt;
562 asm(
563 	".pushsection .rodata\n"
564 	"	.balign 8\n"
565 	"bpf_plt:\n"
566 	"	lgrl %r0,bpf_plt_ret\n"
567 	"	lgrl %r1,bpf_plt_target\n"
568 	"	br %r1\n"
569 	"	.balign 8\n"
570 	"bpf_plt_ret: .quad 0\n"
571 	"bpf_plt_target: .quad 0\n"
572 	"	.popsection\n"
573 );
574 
bpf_jit_plt(struct bpf_plt * plt,void * ret,void * target)575 static void bpf_jit_plt(struct bpf_plt *plt, void *ret, void *target)
576 {
577 	memcpy(plt, &bpf_plt, sizeof(*plt));
578 	plt->ret = ret;
579 	/*
580 	 * (target == NULL) implies that the branch to this PLT entry was
581 	 * patched and became a no-op. However, some CPU could have jumped
582 	 * to this PLT entry before patching and may be still executing it.
583 	 *
584 	 * Since the intention in this case is to make the PLT entry a no-op,
585 	 * make the target point to the return label instead of NULL.
586 	 */
587 	plt->target = target ?: ret;
588 }
589 
590 /*
591  * Emit function prologue
592  *
593  * Save registers and create stack frame if necessary.
594  * Stack frame layout is described by struct prog_frame.
595  */
bpf_jit_prologue(struct bpf_jit * jit,struct bpf_prog * fp)596 static void bpf_jit_prologue(struct bpf_jit *jit, struct bpf_prog *fp)
597 {
598 	BUILD_BUG_ON(sizeof(struct prog_frame) != STACK_FRAME_OVERHEAD);
599 
600 	/* No-op for hotpatching */
601 	/* brcl 0,prologue_plt */
602 	EMIT6_PCREL_RILC(0xc0040000, 0, jit->prologue_plt);
603 	jit->prologue_plt_ret = jit->prg;
604 
605 	if (!bpf_is_subprog(fp)) {
606 		/* Initialize the tail call counter in the main program. */
607 		/* xc tail_call_cnt(4,%r15),tail_call_cnt(%r15) */
608 		_EMIT6(0xd703f000 | offsetof(struct prog_frame, tail_call_cnt),
609 		       0xf000 | offsetof(struct prog_frame, tail_call_cnt));
610 	} else {
611 		/*
612 		 * Skip the tail call counter initialization in subprograms.
613 		 * Insert nops in order to have tail_call_start at a
614 		 * predictable offset.
615 		 */
616 		bpf_skip(jit, 6);
617 	}
618 	/* Tail calls have to skip above initialization */
619 	jit->tail_call_start = jit->prg;
620 	if (fp->aux->exception_cb) {
621 		/*
622 		 * Switch stack, the new address is in the 2nd parameter.
623 		 *
624 		 * Arrange the restoration of %r6-%r15 in the epilogue.
625 		 * Do not restore them now, the prog does not need them.
626 		 */
627 		/* lgr %r15,%r3 */
628 		EMIT4(0xb9040000, REG_15, REG_3);
629 		jit->seen_regs |= NVREGS;
630 	} else {
631 		/* Save registers */
632 		save_restore_regs(jit, REGS_SAVE,
633 				  fp->aux->exception_boundary ? NVREGS : 0);
634 	}
635 	/* Setup literal pool */
636 	if (is_first_pass(jit) || (jit->seen & SEEN_LITERAL)) {
637 		if (!is_first_pass(jit) &&
638 		    is_valid_ldisp(jit->size - (jit->prg + 2))) {
639 			/* basr %l,0 */
640 			EMIT2(0x0d00, REG_L, REG_0);
641 			jit->base_ip = jit->prg;
642 		} else {
643 			/* larl %l,lit32_start */
644 			EMIT6_PCREL_RILB(0xc0000000, REG_L, jit->lit32_start);
645 			jit->base_ip = jit->lit32_start;
646 		}
647 	}
648 	/* Setup stack and backchain */
649 	if (is_first_pass(jit) || (jit->seen & SEEN_STACK)) {
650 		/* lgr %w1,%r15 (backchain) */
651 		EMIT4(0xb9040000, REG_W1, REG_15);
652 		/* la %bfp,unused_end(%r15) (BPF frame pointer) */
653 		EMIT4_DISP(0x41000000, BPF_REG_FP, REG_15,
654 			   offsetofend(struct prog_frame, unused));
655 		/* aghi %r15,-frame_off */
656 		EMIT4_IMM(0xa70b0000, REG_15, -jit->frame_off);
657 		/* stg %w1,backchain(%r15) */
658 		EMIT6_DISP_LH(0xe3000000, 0x0024, REG_W1, REG_0,
659 			      REG_15,
660 			      offsetof(struct prog_frame, backchain));
661 	}
662 }
663 
664 /*
665  * Jump using a register either directly or via an expoline thunk
666  */
667 #define EMIT_JUMP_REG(reg) do {						\
668 	if (nospec_uses_trampoline())					\
669 		/* brcl 0xf,__s390_indirect_jump_rN */			\
670 		EMIT6_PCREL_RILC_PTR(0xc0040000, 0x0f,			\
671 				     __s390_indirect_jump_r ## reg);	\
672 	else								\
673 		/* br %rN */						\
674 		_EMIT2(0x07f0 | reg);					\
675 } while (0)
676 
677 /*
678  * Function epilogue
679  */
bpf_jit_epilogue(struct bpf_jit * jit)680 static void bpf_jit_epilogue(struct bpf_jit *jit)
681 {
682 	jit->exit_ip = jit->prg;
683 	/* Load exit code: lgr %r2,%b0 */
684 	EMIT4(0xb9040000, REG_2, BPF_REG_0);
685 	/* Restore registers */
686 	save_restore_regs(jit, REGS_RESTORE, 0);
687 	EMIT_JUMP_REG(14);
688 
689 	jit->prg = ALIGN(jit->prg, 8);
690 	jit->prologue_plt = jit->prg;
691 	if (jit->prg_buf)
692 		bpf_jit_plt((struct bpf_plt *)(jit->prg_buf + jit->prg),
693 			    jit->prg_buf + jit->prologue_plt_ret, NULL);
694 	jit->prg += sizeof(struct bpf_plt);
695 }
696 
ex_handler_bpf(const struct exception_table_entry * x,struct pt_regs * regs)697 bool ex_handler_bpf(const struct exception_table_entry *x, struct pt_regs *regs)
698 {
699 	regs->psw.addr = extable_fixup(x);
700 	if (x->data != -1)
701 		regs->gprs[x->data] = 0;
702 	return true;
703 }
704 
705 /*
706  * A single BPF probe instruction
707  */
708 struct bpf_jit_probe {
709 	int prg;	/* JITed instruction offset */
710 	int nop_prg;	/* JITed nop offset */
711 	int reg;	/* Register to clear on exception */
712 	int arena_reg;	/* Register to use for arena addressing */
713 };
714 
bpf_jit_probe_init(struct bpf_jit_probe * probe)715 static void bpf_jit_probe_init(struct bpf_jit_probe *probe)
716 {
717 	probe->prg = -1;
718 	probe->nop_prg = -1;
719 	probe->reg = -1;
720 	probe->arena_reg = REG_0;
721 }
722 
723 /*
724  * Handlers of certain exceptions leave psw.addr pointing to the instruction
725  * directly after the failing one. Therefore, create two exception table
726  * entries and also add a nop in case two probing instructions come directly
727  * after each other.
728  */
bpf_jit_probe_emit_nop(struct bpf_jit * jit,struct bpf_jit_probe * probe)729 static void bpf_jit_probe_emit_nop(struct bpf_jit *jit,
730 				   struct bpf_jit_probe *probe)
731 {
732 	if (probe->prg == -1 || probe->nop_prg != -1)
733 		/* The probe is not armed or nop is already emitted. */
734 		return;
735 
736 	probe->nop_prg = jit->prg;
737 	/* bcr 0,%0 */
738 	_EMIT2(0x0700);
739 }
740 
bpf_jit_probe_load_pre(struct bpf_jit * jit,struct bpf_insn * insn,struct bpf_jit_probe * probe)741 static void bpf_jit_probe_load_pre(struct bpf_jit *jit, struct bpf_insn *insn,
742 				   struct bpf_jit_probe *probe)
743 {
744 	if (BPF_MODE(insn->code) != BPF_PROBE_MEM &&
745 	    BPF_MODE(insn->code) != BPF_PROBE_MEMSX &&
746 	    BPF_MODE(insn->code) != BPF_PROBE_MEM32 &&
747 	    BPF_MODE(insn->code) != BPF_PROBE_ATOMIC)
748 		return;
749 
750 	if (BPF_MODE(insn->code) == BPF_PROBE_MEM32 ||
751 	    BPF_MODE(insn->code) == BPF_PROBE_ATOMIC) {
752 		/* lgrl %r1,kern_arena */
753 		EMIT6_PCREL_RILB(0xc4080000, REG_W1, jit->kern_arena);
754 		probe->arena_reg = REG_W1;
755 	}
756 	probe->prg = jit->prg;
757 	probe->reg = reg2hex[insn->dst_reg];
758 }
759 
bpf_jit_probe_store_pre(struct bpf_jit * jit,struct bpf_insn * insn,struct bpf_jit_probe * probe)760 static void bpf_jit_probe_store_pre(struct bpf_jit *jit, struct bpf_insn *insn,
761 				    struct bpf_jit_probe *probe)
762 {
763 	if (BPF_MODE(insn->code) != BPF_PROBE_MEM32 &&
764 	    BPF_MODE(insn->code) != BPF_PROBE_ATOMIC)
765 		return;
766 
767 	/* lgrl %r1,kern_arena */
768 	EMIT6_PCREL_RILB(0xc4080000, REG_W1, jit->kern_arena);
769 	probe->arena_reg = REG_W1;
770 	probe->prg = jit->prg;
771 }
772 
bpf_jit_probe_atomic_pre(struct bpf_jit * jit,struct bpf_insn * insn,struct bpf_jit_probe * probe)773 static void bpf_jit_probe_atomic_pre(struct bpf_jit *jit,
774 				     struct bpf_insn *insn,
775 				     struct bpf_jit_probe *probe)
776 {
777 	int load_reg;
778 
779 	if (BPF_MODE(insn->code) != BPF_PROBE_ATOMIC)
780 		return;
781 
782 	/* lgrl %r1,kern_arena */
783 	EMIT6_PCREL_RILB(0xc4080000, REG_W1, jit->kern_arena);
784 	/* agr %r1,%dst */
785 	EMIT4(0xb9080000, REG_W1, insn->dst_reg);
786 	probe->arena_reg = REG_W1;
787 	probe->prg = jit->prg;
788 	/*
789 	 * A read-modify-write carrying BPF_FETCH reads the old value into
790 	 * src_reg, or into r0 for a BPF_CMPXCHG. Clear that register on
791 	 * fault, the remaining atomics only write memory.
792 	 */
793 	load_reg = bpf_atomic_load_reg(insn);
794 	if (load_reg >= 0)
795 		probe->reg = reg2hex[load_reg];
796 }
797 
bpf_jit_probe_post(struct bpf_jit * jit,struct bpf_prog * fp,struct bpf_jit_probe * probe)798 static int bpf_jit_probe_post(struct bpf_jit *jit, struct bpf_prog *fp,
799 			      struct bpf_jit_probe *probe)
800 {
801 	struct exception_table_entry *ex;
802 	int i, prg;
803 	s64 delta;
804 	u8 *insn;
805 
806 	if (probe->prg == -1)
807 		/* The probe is not armed. */
808 		return 0;
809 	bpf_jit_probe_emit_nop(jit, probe);
810 	if (!fp->aux->extable)
811 		/* Do nothing during early JIT passes. */
812 		return 0;
813 	insn = jit->prg_buf + probe->prg;
814 	if (WARN_ON_ONCE(probe->prg + insn_length(*insn) != probe->nop_prg))
815 		/* JIT bug - gap between probe and nop instructions. */
816 		return -1;
817 	for (i = 0; i < 2; i++) {
818 		if (WARN_ON_ONCE(jit->excnt >= fp->aux->num_exentries))
819 			/* Verifier bug - not enough entries. */
820 			return -1;
821 		ex = &fp->aux->extable[jit->excnt];
822 		/* Add extable entries for probe and nop instructions. */
823 		prg = i == 0 ? probe->prg : probe->nop_prg;
824 		delta = jit->prg_buf + prg - (u8 *)&ex->insn;
825 		if (WARN_ON_ONCE(delta < INT_MIN || delta > INT_MAX))
826 			/* JIT bug - code and extable must be close. */
827 			return -1;
828 		ex->insn = delta;
829 		/*
830 		 * Land on the current instruction. Note that the extable
831 		 * infrastructure ignores the fixup field; it is handled by
832 		 * ex_handler_bpf().
833 		 */
834 		delta = jit->prg_buf + jit->prg - (u8 *)&ex->fixup;
835 		if (WARN_ON_ONCE(delta < INT_MIN || delta > INT_MAX))
836 			/* JIT bug - landing pad and extable must be close. */
837 			return -1;
838 		ex->fixup = delta;
839 		ex->type = EX_TYPE_BPF;
840 		ex->data = probe->reg;
841 		jit->excnt++;
842 	}
843 	return 0;
844 }
845 
emit_ldx(struct bpf_jit * jit,struct bpf_prog * fp,struct bpf_insn * insn)846 static int emit_ldx(struct bpf_jit *jit, struct bpf_prog *fp, struct bpf_insn *insn)
847 {
848 	struct bpf_jit_probe probe;
849 
850 	bpf_jit_probe_init(&probe);
851 	bpf_jit_probe_load_pre(jit, insn, &probe);
852 
853 	switch (BPF_SIZE(insn->code)) {
854 	case BPF_B: /* dst = *(u8 *)(ul) (src + off) */
855 		/* llgc %dst,off(%src,%arena) */
856 		EMIT6_DISP_LH(0xe3000000, 0x0090, insn->dst_reg, insn->src_reg,
857 			      probe.arena_reg, insn->off);
858 		break;
859 	case BPF_H: /* dst = *(u16 *)(ul) (src + off) */
860 		/* llgh %dst,off(%src,%arena) */
861 		EMIT6_DISP_LH(0xe3000000, 0x0091, insn->dst_reg, insn->src_reg,
862 			      probe.arena_reg, insn->off);
863 		break;
864 	case BPF_W: /* dst = *(u32 *)(ul) (src + off) */
865 		/* llgf %dst,off(%src,%arena) */
866 		EMIT6_DISP_LH(0xe3000000, 0x0016, insn->dst_reg, insn->src_reg,
867 			      probe.arena_reg, insn->off);
868 		break;
869 	case BPF_DW: /* dst = *(u64 *)(ul) (src + off) */
870 		/* lg %dst,off(%src,%arena) */
871 		EMIT6_DISP_LH(0xe3000000, 0x0004, insn->dst_reg, insn->src_reg,
872 			      probe.arena_reg, insn->off);
873 		break;
874 	}
875 
876 	return bpf_jit_probe_post(jit, fp, &probe);
877 }
878 
emit_stx(struct bpf_jit * jit,struct bpf_prog * fp,struct bpf_insn * insn)879 static int emit_stx(struct bpf_jit *jit, struct bpf_prog *fp, struct bpf_insn *insn)
880 {
881 	struct bpf_jit_probe probe;
882 
883 	bpf_jit_probe_init(&probe);
884 	bpf_jit_probe_store_pre(jit, insn, &probe);
885 
886 	switch (BPF_SIZE(insn->code)) {
887 	case BPF_B: /* *(u8 *)(dst + off) = src_reg */
888 		/* stcy %src,off(%dst,%arena) */
889 		EMIT6_DISP_LH(0xe3000000, 0x0072, insn->src_reg, insn->dst_reg,
890 			      probe.arena_reg, insn->off);
891 		break;
892 	case BPF_H: /* (u16 *)(dst + off) = src */
893 		/* sthy %src,off(%dst,%arena) */
894 		EMIT6_DISP_LH(0xe3000000, 0x0070, insn->src_reg, insn->dst_reg,
895 			      probe.arena_reg, insn->off);
896 		break;
897 	case BPF_W: /* *(u32 *)(dst + off) = src */
898 		/* sty %src,off(%dst,%arena) */
899 		EMIT6_DISP_LH(0xe3000000, 0x0050, insn->src_reg, insn->dst_reg,
900 			      probe.arena_reg, insn->off);
901 		break;
902 	case BPF_DW: /* (u64 *)(dst + off) = src */
903 		/* stg %src,off(%dst,%arena) */
904 		EMIT6_DISP_LH(0xe3000000, 0x0024, insn->src_reg, insn->dst_reg,
905 			      probe.arena_reg, insn->off);
906 		break;
907 	}
908 
909 	return bpf_jit_probe_post(jit, fp, &probe);
910 }
911 
912 /*
913  * Sign- or zero-extend the register if necessary
914  */
sign_zero_extend(struct bpf_jit * jit,int r,u8 size,u8 flags)915 static int sign_zero_extend(struct bpf_jit *jit, int r, u8 size, u8 flags)
916 {
917 	switch (size) {
918 	case 1:
919 		if (flags & BTF_FMODEL_SIGNED_ARG)
920 			/* lgbr %r,%r */
921 			EMIT4(0xb9060000, r, r);
922 		else
923 			/* llgcr %r,%r */
924 			EMIT4(0xb9840000, r, r);
925 		return 0;
926 	case 2:
927 		if (flags & BTF_FMODEL_SIGNED_ARG)
928 			/* lghr %r,%r */
929 			EMIT4(0xb9070000, r, r);
930 		else
931 			/* llghr %r,%r */
932 			EMIT4(0xb9850000, r, r);
933 		return 0;
934 	case 4:
935 		if (flags & BTF_FMODEL_SIGNED_ARG)
936 			/* lgfr %r,%r */
937 			EMIT4(0xb9140000, r, r);
938 		else
939 			/* llgfr %r,%r */
940 			EMIT4(0xb9160000, r, r);
941 		return 0;
942 	case 8:
943 		return 0;
944 	default:
945 		return -1;
946 	}
947 }
948 
949 /*
950  * Compile one eBPF instruction into s390x code
951  *
952  * NOTE: Use noinline because for gcov (-fprofile-arcs) gcc allocates a lot of
953  * stack space for the large switch statement.
954  */
bpf_jit_insn(struct bpf_jit * jit,struct bpf_prog * fp,int i,bool extra_pass)955 static noinline int bpf_jit_insn(struct bpf_jit *jit, struct bpf_prog *fp,
956 				 int i, bool extra_pass)
957 {
958 	struct bpf_insn *insn = &fp->insnsi[i];
959 	s32 branch_oc_off = insn->off;
960 	u32 dst_reg = insn->dst_reg;
961 	u32 src_reg = insn->src_reg;
962 	struct bpf_jit_probe probe;
963 	int last, insn_count = 1;
964 	u32 *addrs = jit->addrs;
965 	s32 imm = insn->imm;
966 	s16 off = insn->off;
967 	unsigned int mask;
968 	int err;
969 
970 	bpf_jit_probe_init(&probe);
971 
972 	switch (insn->code) {
973 	/*
974 	 * BPF_MOV
975 	 */
976 	case BPF_ALU | BPF_MOV | BPF_X:
977 		switch (insn->off) {
978 		case 0: /* DST = (u32) SRC */
979 			/* llgfr %dst,%src */
980 			EMIT4(0xb9160000, dst_reg, src_reg);
981 			if (insn_is_zext(&insn[1]))
982 				insn_count = 2;
983 			break;
984 		case 8: /* DST = (u32)(s8) SRC */
985 			/* lbr %dst,%src */
986 			EMIT4(0xb9260000, dst_reg, src_reg);
987 			/* llgfr %dst,%dst */
988 			EMIT4(0xb9160000, dst_reg, dst_reg);
989 			break;
990 		case 16: /* DST = (u32)(s16) SRC */
991 			/* lhr %dst,%src */
992 			EMIT4(0xb9270000, dst_reg, src_reg);
993 			/* llgfr %dst,%dst */
994 			EMIT4(0xb9160000, dst_reg, dst_reg);
995 			break;
996 		}
997 		break;
998 	case BPF_ALU64 | BPF_MOV | BPF_X:
999 		if (insn_is_cast_user(insn)) {
1000 			int patch_brc;
1001 
1002 			/* ltgr %dst,%src */
1003 			EMIT4(0xb9020000, dst_reg, src_reg);
1004 			/* brc 8,0f */
1005 			patch_brc = jit->prg;
1006 			EMIT4_PCREL_RIC(0xa7040000, 8, 0);
1007 			/* iihf %dst,user_arena>>32 */
1008 			EMIT6_IMM(0xc0080000, dst_reg, jit->user_arena >> 32);
1009 			/* 0: */
1010 			if (jit->prg_buf)
1011 				*(u16 *)(jit->prg_buf + patch_brc + 2) =
1012 					(jit->prg - patch_brc) >> 1;
1013 			break;
1014 		}
1015 		switch (insn->off) {
1016 		case 0: /* DST = SRC */
1017 			/* lgr %dst,%src */
1018 			EMIT4(0xb9040000, dst_reg, src_reg);
1019 			break;
1020 		case 8: /* DST = (s8) SRC */
1021 			/* lgbr %dst,%src */
1022 			EMIT4(0xb9060000, dst_reg, src_reg);
1023 			break;
1024 		case 16: /* DST = (s16) SRC */
1025 			/* lghr %dst,%src */
1026 			EMIT4(0xb9070000, dst_reg, src_reg);
1027 			break;
1028 		case 32: /* DST = (s32) SRC */
1029 			/* lgfr %dst,%src */
1030 			EMIT4(0xb9140000, dst_reg, src_reg);
1031 			break;
1032 		}
1033 		break;
1034 	case BPF_ALU | BPF_MOV | BPF_K: /* dst = (u32) imm */
1035 		/* llilf %dst,imm */
1036 		EMIT6_IMM(0xc00f0000, dst_reg, imm);
1037 		if (insn_is_zext(&insn[1]))
1038 			insn_count = 2;
1039 		break;
1040 	case BPF_ALU64 | BPF_MOV | BPF_K: /* dst = imm */
1041 		/* lgfi %dst,imm */
1042 		EMIT6_IMM(0xc0010000, dst_reg, imm);
1043 		break;
1044 	/*
1045 	 * BPF_LD 64
1046 	 */
1047 	case BPF_LD | BPF_IMM | BPF_DW: /* dst = (u64) imm */
1048 	{
1049 		/* 16 byte instruction that uses two 'struct bpf_insn' */
1050 		u64 imm64;
1051 
1052 		imm64 = (u64)(u32) insn[0].imm | ((u64)(u32) insn[1].imm) << 32;
1053 		/* lgrl %dst,imm */
1054 		EMIT6_PCREL_RILB(0xc4080000, dst_reg, _EMIT_CONST_U64(imm64));
1055 		insn_count = 2;
1056 		break;
1057 	}
1058 	/*
1059 	 * BPF_ADD
1060 	 */
1061 	case BPF_ALU | BPF_ADD | BPF_X: /* dst = (u32) dst + (u32) src */
1062 		/* ar %dst,%src */
1063 		EMIT2(0x1a00, dst_reg, src_reg);
1064 		EMIT_ZERO(dst_reg);
1065 		break;
1066 	case BPF_ALU64 | BPF_ADD | BPF_X: /* dst = dst + src */
1067 		/* agr %dst,%src */
1068 		EMIT4(0xb9080000, dst_reg, src_reg);
1069 		break;
1070 	case BPF_ALU | BPF_ADD | BPF_K: /* dst = (u32) dst + (u32) imm */
1071 		if (imm != 0) {
1072 			/* alfi %dst,imm */
1073 			EMIT6_IMM(0xc20b0000, dst_reg, imm);
1074 		}
1075 		EMIT_ZERO(dst_reg);
1076 		break;
1077 	case BPF_ALU64 | BPF_ADD | BPF_K: /* dst = dst + imm */
1078 		if (!imm)
1079 			break;
1080 		/* agfi %dst,imm */
1081 		EMIT6_IMM(0xc2080000, dst_reg, imm);
1082 		break;
1083 	/*
1084 	 * BPF_SUB
1085 	 */
1086 	case BPF_ALU | BPF_SUB | BPF_X: /* dst = (u32) dst - (u32) src */
1087 		/* sr %dst,%src */
1088 		EMIT2(0x1b00, dst_reg, src_reg);
1089 		EMIT_ZERO(dst_reg);
1090 		break;
1091 	case BPF_ALU64 | BPF_SUB | BPF_X: /* dst = dst - src */
1092 		/* sgr %dst,%src */
1093 		EMIT4(0xb9090000, dst_reg, src_reg);
1094 		break;
1095 	case BPF_ALU | BPF_SUB | BPF_K: /* dst = (u32) dst - (u32) imm */
1096 		if (imm != 0) {
1097 			/* alfi %dst,-imm */
1098 			EMIT6_IMM(0xc20b0000, dst_reg, -imm);
1099 		}
1100 		EMIT_ZERO(dst_reg);
1101 		break;
1102 	case BPF_ALU64 | BPF_SUB | BPF_K: /* dst = dst - imm */
1103 		if (!imm)
1104 			break;
1105 		if (imm == -0x80000000) {
1106 			/* algfi %dst,0x80000000 */
1107 			EMIT6_IMM(0xc20a0000, dst_reg, 0x80000000);
1108 		} else {
1109 			/* agfi %dst,-imm */
1110 			EMIT6_IMM(0xc2080000, dst_reg, -imm);
1111 		}
1112 		break;
1113 	/*
1114 	 * BPF_MUL
1115 	 */
1116 	case BPF_ALU | BPF_MUL | BPF_X: /* dst = (u32) dst * (u32) src */
1117 		/* msr %dst,%src */
1118 		EMIT4(0xb2520000, dst_reg, src_reg);
1119 		EMIT_ZERO(dst_reg);
1120 		break;
1121 	case BPF_ALU64 | BPF_MUL | BPF_X: /* dst = dst * src */
1122 		/* msgr %dst,%src */
1123 		EMIT4(0xb90c0000, dst_reg, src_reg);
1124 		break;
1125 	case BPF_ALU | BPF_MUL | BPF_K: /* dst = (u32) dst * (u32) imm */
1126 		if (imm != 1) {
1127 			/* msfi %r5,imm */
1128 			EMIT6_IMM(0xc2010000, dst_reg, imm);
1129 		}
1130 		EMIT_ZERO(dst_reg);
1131 		break;
1132 	case BPF_ALU64 | BPF_MUL | BPF_K: /* dst = dst * imm */
1133 		if (imm == 1)
1134 			break;
1135 		/* msgfi %dst,imm */
1136 		EMIT6_IMM(0xc2000000, dst_reg, imm);
1137 		break;
1138 	/*
1139 	 * BPF_DIV / BPF_MOD
1140 	 */
1141 	case BPF_ALU | BPF_DIV | BPF_X:
1142 	case BPF_ALU | BPF_MOD | BPF_X:
1143 	{
1144 		int rc_reg = BPF_OP(insn->code) == BPF_DIV ? REG_W1 : REG_W0;
1145 
1146 		switch (off) {
1147 		case 0: /* dst = (u32) dst {/,%} (u32) src */
1148 			/* xr %w0,%w0 */
1149 			EMIT2(0x1700, REG_W0, REG_W0);
1150 			/* lr %w1,%dst */
1151 			EMIT2(0x1800, REG_W1, dst_reg);
1152 			/* dlr %w0,%src */
1153 			EMIT4(0xb9970000, REG_W0, src_reg);
1154 			break;
1155 		case 1: /* dst = (u32) ((s32) dst {/,%} (s32) src) */
1156 			/* lgfr %r1,%dst */
1157 			EMIT4(0xb9140000, REG_W1, dst_reg);
1158 			/* dsgfr %r0,%src */
1159 			EMIT4(0xb91d0000, REG_W0, src_reg);
1160 			break;
1161 		}
1162 		/* llgfr %dst,%rc */
1163 		EMIT4(0xb9160000, dst_reg, rc_reg);
1164 		if (insn_is_zext(&insn[1]))
1165 			insn_count = 2;
1166 		break;
1167 	}
1168 	case BPF_ALU64 | BPF_DIV | BPF_X:
1169 	case BPF_ALU64 | BPF_MOD | BPF_X:
1170 	{
1171 		int rc_reg = BPF_OP(insn->code) == BPF_DIV ? REG_W1 : REG_W0;
1172 
1173 		switch (off) {
1174 		case 0: /* dst = dst {/,%} src */
1175 			/* lghi %w0,0 */
1176 			EMIT4_IMM(0xa7090000, REG_W0, 0);
1177 			/* lgr %w1,%dst */
1178 			EMIT4(0xb9040000, REG_W1, dst_reg);
1179 			/* dlgr %w0,%src */
1180 			EMIT4(0xb9870000, REG_W0, src_reg);
1181 			break;
1182 		case 1: /* dst = (s64) dst {/,%} (s64) src */
1183 			/* lgr %w1,%dst */
1184 			EMIT4(0xb9040000, REG_W1, dst_reg);
1185 			/* dsgr %w0,%src */
1186 			EMIT4(0xb90d0000, REG_W0, src_reg);
1187 			break;
1188 		}
1189 		/* lgr %dst,%rc */
1190 		EMIT4(0xb9040000, dst_reg, rc_reg);
1191 		break;
1192 	}
1193 	case BPF_ALU | BPF_DIV | BPF_K:
1194 	case BPF_ALU | BPF_MOD | BPF_K:
1195 	{
1196 		int rc_reg = BPF_OP(insn->code) == BPF_DIV ? REG_W1 : REG_W0;
1197 
1198 		if (imm == 1) {
1199 			if (BPF_OP(insn->code) == BPF_MOD)
1200 				/* lghi %dst,0 */
1201 				EMIT4_IMM(0xa7090000, dst_reg, 0);
1202 			else
1203 				EMIT_ZERO(dst_reg);
1204 			break;
1205 		}
1206 		if (!is_first_pass(jit) && can_use_ldisp_for_lit32(jit)) {
1207 			switch (off) {
1208 			case 0: /* dst = (u32) dst {/,%} (u32) imm */
1209 				/* xr %w0,%w0 */
1210 				EMIT2(0x1700, REG_W0, REG_W0);
1211 				/* lr %w1,%dst */
1212 				EMIT2(0x1800, REG_W1, dst_reg);
1213 				/* dl %w0,<d(imm)>(%l) */
1214 				EMIT6_DISP_LH(0xe3000000, 0x0097, REG_W0, REG_0,
1215 					      REG_L, EMIT_CONST_U32(imm));
1216 				break;
1217 			case 1: /* dst = (s32) dst {/,%} (s32) imm */
1218 				/* lgfr %r1,%dst */
1219 				EMIT4(0xb9140000, REG_W1, dst_reg);
1220 				/* dsgf %r0,<d(imm)>(%l) */
1221 				EMIT6_DISP_LH(0xe3000000, 0x001d, REG_W0, REG_0,
1222 					      REG_L, EMIT_CONST_U32(imm));
1223 				break;
1224 			}
1225 		} else {
1226 			switch (off) {
1227 			case 0: /* dst = (u32) dst {/,%} (u32) imm */
1228 				/* xr %w0,%w0 */
1229 				EMIT2(0x1700, REG_W0, REG_W0);
1230 				/* lr %w1,%dst */
1231 				EMIT2(0x1800, REG_W1, dst_reg);
1232 				/* lrl %dst,imm */
1233 				EMIT6_PCREL_RILB(0xc40d0000, dst_reg,
1234 						 _EMIT_CONST_U32(imm));
1235 				jit->seen |= SEEN_LITERAL;
1236 				/* dlr %w0,%dst */
1237 				EMIT4(0xb9970000, REG_W0, dst_reg);
1238 				break;
1239 			case 1: /* dst = (s32) dst {/,%} (s32) imm */
1240 				/* lgfr %w1,%dst */
1241 				EMIT4(0xb9140000, REG_W1, dst_reg);
1242 				/* lgfrl %dst,imm */
1243 				EMIT6_PCREL_RILB(0xc40c0000, dst_reg,
1244 						 _EMIT_CONST_U32(imm));
1245 				jit->seen |= SEEN_LITERAL;
1246 				/* dsgr %w0,%dst */
1247 				EMIT4(0xb90d0000, REG_W0, dst_reg);
1248 				break;
1249 			}
1250 		}
1251 		/* llgfr %dst,%rc */
1252 		EMIT4(0xb9160000, dst_reg, rc_reg);
1253 		if (insn_is_zext(&insn[1]))
1254 			insn_count = 2;
1255 		break;
1256 	}
1257 	case BPF_ALU64 | BPF_DIV | BPF_K:
1258 	case BPF_ALU64 | BPF_MOD | BPF_K:
1259 	{
1260 		int rc_reg = BPF_OP(insn->code) == BPF_DIV ? REG_W1 : REG_W0;
1261 
1262 		if (imm == 1) {
1263 			if (BPF_OP(insn->code) == BPF_MOD)
1264 				/* lhgi %dst,0 */
1265 				EMIT4_IMM(0xa7090000, dst_reg, 0);
1266 			break;
1267 		}
1268 		if (!is_first_pass(jit) && can_use_ldisp_for_lit64(jit)) {
1269 			switch (off) {
1270 			case 0: /* dst = dst {/,%} imm */
1271 				/* lghi %w0,0 */
1272 				EMIT4_IMM(0xa7090000, REG_W0, 0);
1273 				/* lgr %w1,%dst */
1274 				EMIT4(0xb9040000, REG_W1, dst_reg);
1275 				/* dlg %w0,<d(imm)>(%l) */
1276 				EMIT6_DISP_LH(0xe3000000, 0x0087, REG_W0, REG_0,
1277 					      REG_L, EMIT_CONST_U64(imm));
1278 				break;
1279 			case 1: /* dst = (s64) dst {/,%} (s64) imm */
1280 				/* lgr %w1,%dst */
1281 				EMIT4(0xb9040000, REG_W1, dst_reg);
1282 				/* dsg %w0,<d(imm)>(%l) */
1283 				EMIT6_DISP_LH(0xe3000000, 0x000d, REG_W0, REG_0,
1284 					      REG_L, EMIT_CONST_U64(imm));
1285 				break;
1286 			}
1287 		} else {
1288 			switch (off) {
1289 			case 0: /* dst = dst {/,%} imm */
1290 				/* lghi %w0,0 */
1291 				EMIT4_IMM(0xa7090000, REG_W0, 0);
1292 				/* lgr %w1,%dst */
1293 				EMIT4(0xb9040000, REG_W1, dst_reg);
1294 				/* lgrl %dst,imm */
1295 				EMIT6_PCREL_RILB(0xc4080000, dst_reg,
1296 						 _EMIT_CONST_U64(imm));
1297 				jit->seen |= SEEN_LITERAL;
1298 				/* dlgr %w0,%dst */
1299 				EMIT4(0xb9870000, REG_W0, dst_reg);
1300 				break;
1301 			case 1: /* dst = (s64) dst {/,%} (s64) imm */
1302 				/* lgr %w1,%dst */
1303 				EMIT4(0xb9040000, REG_W1, dst_reg);
1304 				/* lgrl %dst,imm */
1305 				EMIT6_PCREL_RILB(0xc4080000, dst_reg,
1306 						 _EMIT_CONST_U64(imm));
1307 				jit->seen |= SEEN_LITERAL;
1308 				/* dsgr %w0,%dst */
1309 				EMIT4(0xb90d0000, REG_W0, dst_reg);
1310 				break;
1311 			}
1312 		}
1313 		/* lgr %dst,%rc */
1314 		EMIT4(0xb9040000, dst_reg, rc_reg);
1315 		break;
1316 	}
1317 	/*
1318 	 * BPF_AND
1319 	 */
1320 	case BPF_ALU | BPF_AND | BPF_X: /* dst = (u32) dst & (u32) src */
1321 		/* nr %dst,%src */
1322 		EMIT2(0x1400, dst_reg, src_reg);
1323 		EMIT_ZERO(dst_reg);
1324 		break;
1325 	case BPF_ALU64 | BPF_AND | BPF_X: /* dst = dst & src */
1326 		/* ngr %dst,%src */
1327 		EMIT4(0xb9800000, dst_reg, src_reg);
1328 		break;
1329 	case BPF_ALU | BPF_AND | BPF_K: /* dst = (u32) dst & (u32) imm */
1330 		/* nilf %dst,imm */
1331 		EMIT6_IMM(0xc00b0000, dst_reg, imm);
1332 		EMIT_ZERO(dst_reg);
1333 		break;
1334 	case BPF_ALU64 | BPF_AND | BPF_K: /* dst = dst & imm */
1335 		if (!is_first_pass(jit) && can_use_ldisp_for_lit64(jit)) {
1336 			/* ng %dst,<d(imm)>(%l) */
1337 			EMIT6_DISP_LH(0xe3000000, 0x0080,
1338 				      dst_reg, REG_0, REG_L,
1339 				      EMIT_CONST_U64(imm));
1340 		} else {
1341 			/* lgrl %w0,imm */
1342 			EMIT6_PCREL_RILB(0xc4080000, REG_W0,
1343 					 _EMIT_CONST_U64(imm));
1344 			jit->seen |= SEEN_LITERAL;
1345 			/* ngr %dst,%w0 */
1346 			EMIT4(0xb9800000, dst_reg, REG_W0);
1347 		}
1348 		break;
1349 	/*
1350 	 * BPF_OR
1351 	 */
1352 	case BPF_ALU | BPF_OR | BPF_X: /* dst = (u32) dst | (u32) src */
1353 		/* or %dst,%src */
1354 		EMIT2(0x1600, dst_reg, src_reg);
1355 		EMIT_ZERO(dst_reg);
1356 		break;
1357 	case BPF_ALU64 | BPF_OR | BPF_X: /* dst = dst | src */
1358 		/* ogr %dst,%src */
1359 		EMIT4(0xb9810000, dst_reg, src_reg);
1360 		break;
1361 	case BPF_ALU | BPF_OR | BPF_K: /* dst = (u32) dst | (u32) imm */
1362 		/* oilf %dst,imm */
1363 		EMIT6_IMM(0xc00d0000, dst_reg, imm);
1364 		EMIT_ZERO(dst_reg);
1365 		break;
1366 	case BPF_ALU64 | BPF_OR | BPF_K: /* dst = dst | imm */
1367 		if (!is_first_pass(jit) && can_use_ldisp_for_lit64(jit)) {
1368 			/* og %dst,<d(imm)>(%l) */
1369 			EMIT6_DISP_LH(0xe3000000, 0x0081,
1370 				      dst_reg, REG_0, REG_L,
1371 				      EMIT_CONST_U64(imm));
1372 		} else {
1373 			/* lgrl %w0,imm */
1374 			EMIT6_PCREL_RILB(0xc4080000, REG_W0,
1375 					 _EMIT_CONST_U64(imm));
1376 			jit->seen |= SEEN_LITERAL;
1377 			/* ogr %dst,%w0 */
1378 			EMIT4(0xb9810000, dst_reg, REG_W0);
1379 		}
1380 		break;
1381 	/*
1382 	 * BPF_XOR
1383 	 */
1384 	case BPF_ALU | BPF_XOR | BPF_X: /* dst = (u32) dst ^ (u32) src */
1385 		/* xr %dst,%src */
1386 		EMIT2(0x1700, dst_reg, src_reg);
1387 		EMIT_ZERO(dst_reg);
1388 		break;
1389 	case BPF_ALU64 | BPF_XOR | BPF_X: /* dst = dst ^ src */
1390 		/* xgr %dst,%src */
1391 		EMIT4(0xb9820000, dst_reg, src_reg);
1392 		break;
1393 	case BPF_ALU | BPF_XOR | BPF_K: /* dst = (u32) dst ^ (u32) imm */
1394 		if (imm != 0) {
1395 			/* xilf %dst,imm */
1396 			EMIT6_IMM(0xc0070000, dst_reg, imm);
1397 		}
1398 		EMIT_ZERO(dst_reg);
1399 		break;
1400 	case BPF_ALU64 | BPF_XOR | BPF_K: /* dst = dst ^ imm */
1401 		if (!is_first_pass(jit) && can_use_ldisp_for_lit64(jit)) {
1402 			/* xg %dst,<d(imm)>(%l) */
1403 			EMIT6_DISP_LH(0xe3000000, 0x0082,
1404 				      dst_reg, REG_0, REG_L,
1405 				      EMIT_CONST_U64(imm));
1406 		} else {
1407 			/* lgrl %w0,imm */
1408 			EMIT6_PCREL_RILB(0xc4080000, REG_W0,
1409 					 _EMIT_CONST_U64(imm));
1410 			jit->seen |= SEEN_LITERAL;
1411 			/* xgr %dst,%w0 */
1412 			EMIT4(0xb9820000, dst_reg, REG_W0);
1413 		}
1414 		break;
1415 	/*
1416 	 * BPF_LSH
1417 	 */
1418 	case BPF_ALU | BPF_LSH | BPF_X: /* dst = (u32) dst << (u32) src */
1419 		/* sll %dst,0(%src) */
1420 		EMIT4_DISP(0x89000000, dst_reg, src_reg, 0);
1421 		EMIT_ZERO(dst_reg);
1422 		break;
1423 	case BPF_ALU64 | BPF_LSH | BPF_X: /* dst = dst << src */
1424 		/* sllg %dst,%dst,0(%src) */
1425 		EMIT6_DISP_LH(0xeb000000, 0x000d, dst_reg, dst_reg, src_reg, 0);
1426 		break;
1427 	case BPF_ALU | BPF_LSH | BPF_K: /* dst = (u32) dst << (u32) imm */
1428 		if (imm != 0) {
1429 			/* sll %dst,imm(%r0) */
1430 			EMIT4_DISP(0x89000000, dst_reg, REG_0, imm);
1431 		}
1432 		EMIT_ZERO(dst_reg);
1433 		break;
1434 	case BPF_ALU64 | BPF_LSH | BPF_K: /* dst = dst << imm */
1435 		if (imm == 0)
1436 			break;
1437 		/* sllg %dst,%dst,imm(%r0) */
1438 		EMIT6_DISP_LH(0xeb000000, 0x000d, dst_reg, dst_reg, REG_0, imm);
1439 		break;
1440 	/*
1441 	 * BPF_RSH
1442 	 */
1443 	case BPF_ALU | BPF_RSH | BPF_X: /* dst = (u32) dst >> (u32) src */
1444 		/* srl %dst,0(%src) */
1445 		EMIT4_DISP(0x88000000, dst_reg, src_reg, 0);
1446 		EMIT_ZERO(dst_reg);
1447 		break;
1448 	case BPF_ALU64 | BPF_RSH | BPF_X: /* dst = dst >> src */
1449 		/* srlg %dst,%dst,0(%src) */
1450 		EMIT6_DISP_LH(0xeb000000, 0x000c, dst_reg, dst_reg, src_reg, 0);
1451 		break;
1452 	case BPF_ALU | BPF_RSH | BPF_K: /* dst = (u32) dst >> (u32) imm */
1453 		if (imm != 0) {
1454 			/* srl %dst,imm(%r0) */
1455 			EMIT4_DISP(0x88000000, dst_reg, REG_0, imm);
1456 		}
1457 		EMIT_ZERO(dst_reg);
1458 		break;
1459 	case BPF_ALU64 | BPF_RSH | BPF_K: /* dst = dst >> imm */
1460 		if (imm == 0)
1461 			break;
1462 		/* srlg %dst,%dst,imm(%r0) */
1463 		EMIT6_DISP_LH(0xeb000000, 0x000c, dst_reg, dst_reg, REG_0, imm);
1464 		break;
1465 	/*
1466 	 * BPF_ARSH
1467 	 */
1468 	case BPF_ALU | BPF_ARSH | BPF_X: /* ((s32) dst) >>= src */
1469 		/* sra %dst,%dst,0(%src) */
1470 		EMIT4_DISP(0x8a000000, dst_reg, src_reg, 0);
1471 		EMIT_ZERO(dst_reg);
1472 		break;
1473 	case BPF_ALU64 | BPF_ARSH | BPF_X: /* ((s64) dst) >>= src */
1474 		/* srag %dst,%dst,0(%src) */
1475 		EMIT6_DISP_LH(0xeb000000, 0x000a, dst_reg, dst_reg, src_reg, 0);
1476 		break;
1477 	case BPF_ALU | BPF_ARSH | BPF_K: /* ((s32) dst >> imm */
1478 		if (imm != 0) {
1479 			/* sra %dst,imm(%r0) */
1480 			EMIT4_DISP(0x8a000000, dst_reg, REG_0, imm);
1481 		}
1482 		EMIT_ZERO(dst_reg);
1483 		break;
1484 	case BPF_ALU64 | BPF_ARSH | BPF_K: /* ((s64) dst) >>= imm */
1485 		if (imm == 0)
1486 			break;
1487 		/* srag %dst,%dst,imm(%r0) */
1488 		EMIT6_DISP_LH(0xeb000000, 0x000a, dst_reg, dst_reg, REG_0, imm);
1489 		break;
1490 	/*
1491 	 * BPF_NEG
1492 	 */
1493 	case BPF_ALU | BPF_NEG: /* dst = (u32) -dst */
1494 		/* lcr %dst,%dst */
1495 		EMIT2(0x1300, dst_reg, dst_reg);
1496 		EMIT_ZERO(dst_reg);
1497 		break;
1498 	case BPF_ALU64 | BPF_NEG: /* dst = -dst */
1499 		/* lcgr %dst,%dst */
1500 		EMIT4(0xb9030000, dst_reg, dst_reg);
1501 		break;
1502 	/*
1503 	 * BPF_FROM_BE/LE
1504 	 */
1505 	case BPF_ALU | BPF_END | BPF_FROM_BE:
1506 		/* s390 is big endian, therefore only clear high order bytes */
1507 		switch (imm) {
1508 		case 16: /* dst = (u16) cpu_to_be16(dst) */
1509 			/* llghr %dst,%dst */
1510 			EMIT4(0xb9850000, dst_reg, dst_reg);
1511 			if (insn_is_zext(&insn[1]))
1512 				insn_count = 2;
1513 			break;
1514 		case 32: /* dst = (u32) cpu_to_be32(dst) */
1515 			if (!fp->aux->verifier_zext)
1516 				/* llgfr %dst,%dst */
1517 				EMIT4(0xb9160000, dst_reg, dst_reg);
1518 			break;
1519 		case 64: /* dst = (u64) cpu_to_be64(dst) */
1520 			break;
1521 		}
1522 		break;
1523 	case BPF_ALU | BPF_END | BPF_FROM_LE:
1524 	case BPF_ALU64 | BPF_END | BPF_FROM_LE:
1525 		switch (imm) {
1526 		case 16: /* dst = (u16) cpu_to_le16(dst) */
1527 			/* lrvr %dst,%dst */
1528 			EMIT4(0xb91f0000, dst_reg, dst_reg);
1529 			/* srl %dst,16(%r0) */
1530 			EMIT4_DISP(0x88000000, dst_reg, REG_0, 16);
1531 			/* llghr %dst,%dst */
1532 			EMIT4(0xb9850000, dst_reg, dst_reg);
1533 			if (insn_is_zext(&insn[1]))
1534 				insn_count = 2;
1535 			break;
1536 		case 32: /* dst = (u32) cpu_to_le32(dst) */
1537 			/* lrvr %dst,%dst */
1538 			EMIT4(0xb91f0000, dst_reg, dst_reg);
1539 			if (!fp->aux->verifier_zext)
1540 				/* llgfr %dst,%dst */
1541 				EMIT4(0xb9160000, dst_reg, dst_reg);
1542 			break;
1543 		case 64: /* dst = (u64) cpu_to_le64(dst) */
1544 			/* lrvgr %dst,%dst */
1545 			EMIT4(0xb90f0000, dst_reg, dst_reg);
1546 			break;
1547 		}
1548 		break;
1549 	/*
1550 	 * BPF_NOSPEC (speculation barrier)
1551 	 */
1552 	case BPF_ST | BPF_NOSPEC:
1553 		break;
1554 	/*
1555 	 * BPF_ST(X)
1556 	 */
1557 	case BPF_STX | BPF_MEM | BPF_B: /* *(u8 *)(dst + off) = src_reg */
1558 	case BPF_STX | BPF_PROBE_MEM32 | BPF_B:
1559 	case BPF_STX | BPF_MEM | BPF_H: /* (u16 *)(dst + off) = src */
1560 	case BPF_STX | BPF_PROBE_MEM32 | BPF_H:
1561 	case BPF_STX | BPF_MEM | BPF_W: /* *(u32 *)(dst + off) = src */
1562 	case BPF_STX | BPF_PROBE_MEM32 | BPF_W:
1563 	case BPF_STX | BPF_MEM | BPF_DW: /* (u64 *)(dst + off) = src */
1564 	case BPF_STX | BPF_PROBE_MEM32 | BPF_DW:
1565 		err = emit_stx(jit, fp, insn);
1566 		if (err < 0)
1567 			return err;
1568 		jit->seen |= SEEN_MEM;
1569 		break;
1570 	case BPF_ST | BPF_MEM | BPF_B: /* *(u8 *)(dst + off) = imm */
1571 	case BPF_ST | BPF_PROBE_MEM32 | BPF_B:
1572 		/* lhi %w0,imm */
1573 		EMIT4_IMM(0xa7080000, REG_W0, (u8) imm);
1574 		bpf_jit_probe_store_pre(jit, insn, &probe);
1575 		/* stcy %w0,off(%dst,%arena) */
1576 		EMIT6_DISP_LH(0xe3000000, 0x0072, REG_W0, dst_reg,
1577 			      probe.arena_reg, off);
1578 		err = bpf_jit_probe_post(jit, fp, &probe);
1579 		if (err < 0)
1580 			return err;
1581 		jit->seen |= SEEN_MEM;
1582 		break;
1583 	case BPF_ST | BPF_MEM | BPF_H: /* (u16 *)(dst + off) = imm */
1584 	case BPF_ST | BPF_PROBE_MEM32 | BPF_H:
1585 		/* lhi %w0,imm */
1586 		EMIT4_IMM(0xa7080000, REG_W0, (u16) imm);
1587 		bpf_jit_probe_store_pre(jit, insn, &probe);
1588 		/* sthy %w0,off(%dst,%arena) */
1589 		EMIT6_DISP_LH(0xe3000000, 0x0070, REG_W0, dst_reg,
1590 			      probe.arena_reg, off);
1591 		err = bpf_jit_probe_post(jit, fp, &probe);
1592 		if (err < 0)
1593 			return err;
1594 		jit->seen |= SEEN_MEM;
1595 		break;
1596 	case BPF_ST | BPF_MEM | BPF_W: /* *(u32 *)(dst + off) = imm */
1597 	case BPF_ST | BPF_PROBE_MEM32 | BPF_W:
1598 		/* llilf %w0,imm  */
1599 		EMIT6_IMM(0xc00f0000, REG_W0, (u32) imm);
1600 		bpf_jit_probe_store_pre(jit, insn, &probe);
1601 		/* sty %w0,off(%dst,%arena) */
1602 		EMIT6_DISP_LH(0xe3000000, 0x0050, REG_W0, dst_reg,
1603 			      probe.arena_reg, off);
1604 		err = bpf_jit_probe_post(jit, fp, &probe);
1605 		if (err < 0)
1606 			return err;
1607 		jit->seen |= SEEN_MEM;
1608 		break;
1609 	case BPF_ST | BPF_MEM | BPF_DW: /* *(u64 *)(dst + off) = imm */
1610 	case BPF_ST | BPF_PROBE_MEM32 | BPF_DW:
1611 		/* lgfi %w0,imm */
1612 		EMIT6_IMM(0xc0010000, REG_W0, imm);
1613 		bpf_jit_probe_store_pre(jit, insn, &probe);
1614 		/* stg %w0,off(%dst,%arena) */
1615 		EMIT6_DISP_LH(0xe3000000, 0x0024, REG_W0, dst_reg,
1616 			      probe.arena_reg, off);
1617 		err = bpf_jit_probe_post(jit, fp, &probe);
1618 		if (err < 0)
1619 			return err;
1620 		jit->seen |= SEEN_MEM;
1621 		break;
1622 	/*
1623 	 * BPF_ATOMIC
1624 	 */
1625 	case BPF_STX | BPF_ATOMIC | BPF_B:
1626 	case BPF_STX | BPF_ATOMIC | BPF_H:
1627 	case BPF_STX | BPF_ATOMIC | BPF_DW:
1628 	case BPF_STX | BPF_ATOMIC | BPF_W:
1629 	case BPF_STX | BPF_PROBE_ATOMIC | BPF_B:
1630 	case BPF_STX | BPF_PROBE_ATOMIC | BPF_H:
1631 	case BPF_STX | BPF_PROBE_ATOMIC | BPF_DW:
1632 	case BPF_STX | BPF_PROBE_ATOMIC | BPF_W:
1633 	{
1634 		bool is32 = BPF_SIZE(insn->code) == BPF_W;
1635 
1636 		/*
1637 		 * Unlike loads and stores, s390 atomics have only a base
1638 		 * register, but no index register. For the non-arena case,
1639 		 * simply use %dst as a base. For the arena case, use the
1640 		 * work register %r1: first, load the arena base into it,
1641 		 * and then add %dst to it.
1642 		 */
1643 		probe.arena_reg = dst_reg;
1644 
1645 		switch (insn->imm) {
1646 #define EMIT_ATOMIC(op32, op64) do {					\
1647 	bpf_jit_probe_atomic_pre(jit, insn, &probe);			\
1648 	/* {op32|op64} {%w0|%src},%src,off(%arena) */			\
1649 	EMIT6_DISP_LH(0xeb000000, is32 ? (op32) : (op64),		\
1650 		      (insn->imm & BPF_FETCH) ? src_reg : REG_W0,	\
1651 		      src_reg, probe.arena_reg, off);			\
1652 	err = bpf_jit_probe_post(jit, fp, &probe);			\
1653 	if (err < 0)							\
1654 		return err;						\
1655 	if (insn->imm & BPF_FETCH) {					\
1656 		/* bcr 14,0 - see atomic_fetch_{add,and,or,xor}() */	\
1657 		_EMIT2(0x07e0);						\
1658 		if (is32)                                               \
1659 			EMIT_ZERO(src_reg);				\
1660 	}								\
1661 } while (0)
1662 		case BPF_ADD:
1663 		case BPF_ADD | BPF_FETCH:
1664 			/* {laal|laalg} */
1665 			EMIT_ATOMIC(0x00fa, 0x00ea);
1666 			break;
1667 		case BPF_AND:
1668 		case BPF_AND | BPF_FETCH:
1669 			/* {lan|lang} */
1670 			EMIT_ATOMIC(0x00f4, 0x00e4);
1671 			break;
1672 		case BPF_OR:
1673 		case BPF_OR | BPF_FETCH:
1674 			/* {lao|laog} */
1675 			EMIT_ATOMIC(0x00f6, 0x00e6);
1676 			break;
1677 		case BPF_XOR:
1678 		case BPF_XOR | BPF_FETCH:
1679 			/* {lax|laxg} */
1680 			EMIT_ATOMIC(0x00f7, 0x00e7);
1681 			break;
1682 #undef EMIT_ATOMIC
1683 		case BPF_XCHG: {
1684 			struct bpf_jit_probe load_probe = probe;
1685 			int loop_start;
1686 
1687 			bpf_jit_probe_atomic_pre(jit, insn, &load_probe);
1688 			/* {ly|lg} %w0,off(%arena) */
1689 			EMIT6_DISP_LH(0xe3000000,
1690 				      is32 ? 0x0058 : 0x0004, REG_W0, REG_0,
1691 				      load_probe.arena_reg, off);
1692 			bpf_jit_probe_emit_nop(jit, &load_probe);
1693 			/* Reuse {ly|lg}'s arena_reg for {csy|csg}. */
1694 			if (load_probe.prg != -1) {
1695 				probe.prg = jit->prg;
1696 				probe.arena_reg = load_probe.arena_reg;
1697 				probe.reg = load_probe.reg;
1698 			}
1699 			loop_start = jit->prg;
1700 			/* 0: {csy|csg} %w0,%src,off(%arena) */
1701 			EMIT6_DISP_LH(0xeb000000, is32 ? 0x0014 : 0x0030,
1702 				      REG_W0, src_reg, probe.arena_reg, off);
1703 			bpf_jit_probe_emit_nop(jit, &probe);
1704 			/* brc 4,0b */
1705 			EMIT4_PCREL_RIC(0xa7040000, 4, loop_start);
1706 			/* {llgfr|lgr} %src,%w0 */
1707 			EMIT4(is32 ? 0xb9160000 : 0xb9040000, src_reg, REG_W0);
1708 			/* Both probes should land here on exception. */
1709 			err = bpf_jit_probe_post(jit, fp, &load_probe);
1710 			if (err < 0)
1711 				return err;
1712 			err = bpf_jit_probe_post(jit, fp, &probe);
1713 			if (err < 0)
1714 				return err;
1715 			if (is32 && insn_is_zext(&insn[1]))
1716 				insn_count = 2;
1717 			break;
1718 		}
1719 		case BPF_CMPXCHG:
1720 			bpf_jit_probe_atomic_pre(jit, insn, &probe);
1721 			/* 0: {csy|csg} %b0,%src,off(%arena) */
1722 			EMIT6_DISP_LH(0xeb000000, is32 ? 0x0014 : 0x0030,
1723 				      BPF_REG_0, src_reg,
1724 				      probe.arena_reg, off);
1725 			err = bpf_jit_probe_post(jit, fp, &probe);
1726 			if (err < 0)
1727 				return err;
1728 			break;
1729 		case BPF_LOAD_ACQ:
1730 			/* s390 has strong ordering, just use load */
1731 			err = emit_ldx(jit, fp, insn);
1732 			if (err < 0)
1733 				return err;
1734 			break;
1735 		case BPF_STORE_REL:
1736 			/* s390 has strong ordering, just use store */
1737 			err = emit_stx(jit, fp, insn);
1738 			if (err < 0)
1739 				return err;
1740 			break;
1741 		default:
1742 			pr_err("Unknown atomic operation %02x\n", insn->imm);
1743 			return -1;
1744 		}
1745 
1746 		jit->seen |= SEEN_MEM;
1747 		break;
1748 	}
1749 	/*
1750 	 * BPF_LDX
1751 	 */
1752 	case BPF_LDX | BPF_MEM | BPF_B: /* dst = *(u8 *)(ul) (src + off) */
1753 	case BPF_LDX | BPF_PROBE_MEM | BPF_B:
1754 	case BPF_LDX | BPF_PROBE_MEM32 | BPF_B:
1755 	case BPF_LDX | BPF_MEM | BPF_H: /* dst = *(u16 *)(ul) (src + off) */
1756 	case BPF_LDX | BPF_PROBE_MEM | BPF_H:
1757 	case BPF_LDX | BPF_PROBE_MEM32 | BPF_H:
1758 	case BPF_LDX | BPF_MEM | BPF_W: /* dst = *(u32 *)(ul) (src + off) */
1759 	case BPF_LDX | BPF_PROBE_MEM | BPF_W:
1760 	case BPF_LDX | BPF_PROBE_MEM32 | BPF_W:
1761 	case BPF_LDX | BPF_MEM | BPF_DW: /* dst = *(u64 *)(ul) (src + off) */
1762 	case BPF_LDX | BPF_PROBE_MEM | BPF_DW:
1763 	case BPF_LDX | BPF_PROBE_MEM32 | BPF_DW:
1764 		err = emit_ldx(jit, fp, insn);
1765 		if (err < 0)
1766 			return err;
1767 		jit->seen |= SEEN_MEM;
1768 		if (BPF_SIZE(insn->code) != BPF_DW && insn_is_zext(&insn[1]))
1769 			insn_count = 2;
1770 		break;
1771 	case BPF_LDX | BPF_MEMSX | BPF_B: /* dst = *(s8 *)(ul) (src + off) */
1772 	case BPF_LDX | BPF_PROBE_MEMSX | BPF_B:
1773 		bpf_jit_probe_load_pre(jit, insn, &probe);
1774 		/* lgb %dst,off(%src) */
1775 		EMIT6_DISP_LH(0xe3000000, 0x0077, dst_reg, src_reg, REG_0, off);
1776 		err = bpf_jit_probe_post(jit, fp, &probe);
1777 		if (err < 0)
1778 			return err;
1779 		jit->seen |= SEEN_MEM;
1780 		break;
1781 	case BPF_LDX | BPF_MEMSX | BPF_H: /* dst = *(s16 *)(ul) (src + off) */
1782 	case BPF_LDX | BPF_PROBE_MEMSX | BPF_H:
1783 		bpf_jit_probe_load_pre(jit, insn, &probe);
1784 		/* lgh %dst,off(%src) */
1785 		EMIT6_DISP_LH(0xe3000000, 0x0015, dst_reg, src_reg, REG_0, off);
1786 		err = bpf_jit_probe_post(jit, fp, &probe);
1787 		if (err < 0)
1788 			return err;
1789 		jit->seen |= SEEN_MEM;
1790 		break;
1791 	case BPF_LDX | BPF_MEMSX | BPF_W: /* dst = *(s32 *)(ul) (src + off) */
1792 	case BPF_LDX | BPF_PROBE_MEMSX | BPF_W:
1793 		bpf_jit_probe_load_pre(jit, insn, &probe);
1794 		/* lgf %dst,off(%src) */
1795 		jit->seen |= SEEN_MEM;
1796 		EMIT6_DISP_LH(0xe3000000, 0x0014, dst_reg, src_reg, REG_0, off);
1797 		err = bpf_jit_probe_post(jit, fp, &probe);
1798 		if (err < 0)
1799 			return err;
1800 		break;
1801 	/*
1802 	 * BPF_JMP / CALL
1803 	 */
1804 	case BPF_JMP | BPF_CALL:
1805 	{
1806 		const struct btf_func_model *m;
1807 		bool func_addr_fixed;
1808 		int j, ret;
1809 		u64 func;
1810 
1811 		/* Implement helper call to bpf_get_smp_processor_id() inline */
1812 		if (insn->src_reg == 0 &&
1813 		    insn->imm == BPF_FUNC_get_smp_processor_id) {
1814 			const u32 *cpu_nr = &get_lowcore()->cpu_nr;
1815 
1816 			/* llgf %b0, cpu_nr */
1817 			EMIT6_DISP_LH(0xe3000000, 0x0016, BPF_REG_0, REG_0, REG_0,
1818 				      (unsigned long)cpu_nr);
1819 			break;
1820 		}
1821 
1822 		/* Implement helper call to bpf_get_current_task/_btf() inline */
1823 		if (insn->src_reg == 0 &&
1824 		    (insn->imm == BPF_FUNC_get_current_task ||
1825 		     insn->imm == BPF_FUNC_get_current_task_btf)) {
1826 			const u64 *current_task =
1827 				&get_lowcore()->current_task;
1828 
1829 			/* lg %b0, current_task */
1830 			EMIT6_DISP_LH(0xe3000000, 0x0004, BPF_REG_0, REG_0, REG_0,
1831 				      (unsigned long)current_task);
1832 			break;
1833 		}
1834 
1835 		ret = bpf_jit_get_func_addr(fp, insn, extra_pass,
1836 					    &func, &func_addr_fixed);
1837 		if (ret < 0)
1838 			return -1;
1839 
1840 		REG_SET_SEEN(BPF_REG_5);
1841 		jit->seen |= SEEN_FUNC;
1842 
1843 		/*
1844 		 * Copy the tail call counter to where the callee expects it.
1845 		 */
1846 
1847 		if (insn->src_reg == BPF_PSEUDO_CALL)
1848 			/*
1849 			 * mvc tail_call_cnt(4,%r15),
1850 			 *     frame_off+tail_call_cnt(%r15)
1851 			 */
1852 			_EMIT6(0xd203f000 | offsetof(struct prog_frame,
1853 						     tail_call_cnt),
1854 			       0xf000 | (jit->frame_off +
1855 					 offsetof(struct prog_frame,
1856 						  tail_call_cnt)));
1857 
1858 		/* Sign-extend the kfunc arguments. */
1859 		if (insn->src_reg == BPF_PSEUDO_KFUNC_CALL) {
1860 			m = bpf_jit_find_kfunc_model(fp, insn);
1861 			if (!m)
1862 				return -1;
1863 
1864 			for (j = 0; j < m->nr_args; j++) {
1865 				if (sign_zero_extend(jit, BPF_REG_1 + j,
1866 						     m->arg_size[j],
1867 						     m->arg_flags[j]))
1868 					return -1;
1869 			}
1870 		}
1871 
1872 		if ((void *)func == arch_bpf_timed_may_goto) {
1873 			/*
1874 			 * arch_bpf_timed_may_goto() has a special ABI: the
1875 			 * parameters are in BPF_REG_AX and BPF_REG_10; the
1876 			 * return value is in BPF_REG_AX; and all GPRs except
1877 			 * REG_W0, REG_W1, and BPF_REG_AX are callee-saved.
1878 			 */
1879 
1880 			/* brasl %r0,func */
1881 			EMIT6_PCREL_RILB_PTR(0xc0050000, REG_0, (void *)func);
1882 		} else {
1883 			/* brasl %r14,func */
1884 			EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14, (void *)func);
1885 			/* lgr %b0,%r2: load return value into %b0 */
1886 			EMIT4(0xb9040000, BPF_REG_0, REG_2);
1887 		}
1888 
1889 		/*
1890 		 * Copy the potentially updated tail call counter back.
1891 		 */
1892 
1893 		if (insn->src_reg == BPF_PSEUDO_CALL)
1894 			/*
1895 			 * mvc frame_off+tail_call_cnt(%r15),
1896 			 *     tail_call_cnt(4,%r15)
1897 			 */
1898 			_EMIT6(0xd203f000 | (jit->frame_off +
1899 					     offsetof(struct prog_frame,
1900 						      tail_call_cnt)),
1901 			       0xf000 | offsetof(struct prog_frame,
1902 						 tail_call_cnt));
1903 
1904 		break;
1905 	}
1906 	case BPF_JMP | BPF_TAIL_CALL: {
1907 		int patch_1_clrj, patch_2_clij, patch_3_brc;
1908 
1909 		/*
1910 		 * Implicit input:
1911 		 *  B1: pointer to ctx
1912 		 *  B2: pointer to bpf_array
1913 		 *  B3: index in bpf_array
1914 		 *
1915 		 * if (index >= array->map.max_entries)
1916 		 *         goto out;
1917 		 */
1918 
1919 		/* llgf %w1,map.max_entries(%b2) */
1920 		EMIT6_DISP_LH(0xe3000000, 0x0016, REG_W1, REG_0, BPF_REG_2,
1921 			      offsetof(struct bpf_array, map.max_entries));
1922 		/* if ((u32)%b3 >= (u32)%w1) goto out; */
1923 		/* clrj %b3,%w1,0xa,out */
1924 		patch_1_clrj = jit->prg;
1925 		EMIT6_PCREL_RIEB(0xec000000, 0x0077, BPF_REG_3, REG_W1, 0xa,
1926 				 jit->prg);
1927 
1928 		/*
1929 		 * if (tail_call_cnt >= MAX_TAIL_CALL_CNT)
1930 		 *         goto out;
1931 		 *
1932 		 * tail_call_cnt is read into %w0, which needs to be preserved
1933 		 * until it's incremented and flushed.
1934 		 */
1935 
1936 		off = jit->frame_off +
1937 		      offsetof(struct prog_frame, tail_call_cnt);
1938 		/* ly %w0,off(%r15) */
1939 		EMIT6_DISP_LH(0xe3000000, 0x0058, REG_W0, REG_0, REG_15, off);
1940 		/* clij %w0,MAX_TAIL_CALL_CNT,0xa,out */
1941 		patch_2_clij = jit->prg;
1942 		EMIT6_PCREL_RIEC(0xec000000, 0x007f, REG_W0, MAX_TAIL_CALL_CNT,
1943 				 0xa, jit->prg);
1944 
1945 		/*
1946 		 * prog = array->ptrs[index];
1947 		 * if (prog == NULL)
1948 		 *         goto out;
1949 		 */
1950 
1951 		/* llgfr %r1,%b3: %r1 = (u32) index */
1952 		EMIT4(0xb9160000, REG_1, BPF_REG_3);
1953 		/* sllg %r1,%r1,3: %r1 *= 8 */
1954 		EMIT6_DISP_LH(0xeb000000, 0x000d, REG_1, REG_1, REG_0, 3);
1955 		/* ltg %r1,prog(%b2,%r1) */
1956 		EMIT6_DISP_LH(0xe3000000, 0x0002, REG_1, BPF_REG_2,
1957 			      REG_1, offsetof(struct bpf_array, ptrs));
1958 		/* brc 0x8,out */
1959 		patch_3_brc = jit->prg;
1960 		EMIT4_PCREL_RIC(0xa7040000, 8, jit->prg);
1961 
1962 		/* tail_call_cnt++; */
1963 		/* ahi %w0,1 */
1964 		EMIT4_IMM(0xa70a0000, REG_W0, 1);
1965 		/* sty %w0,off(%r15) */
1966 		EMIT6_DISP_LH(0xe3000000, 0x0050, REG_W0, REG_0, REG_15, off);
1967 
1968 		/*
1969 		 * Restore registers before calling function
1970 		 */
1971 		save_restore_regs(jit, REGS_RESTORE, 0);
1972 
1973 		/*
1974 		 * goto *(prog->bpf_func + tail_call_start);
1975 		 */
1976 
1977 		/* lg %r1,bpf_func(%r1) */
1978 		EMIT6_DISP_LH(0xe3000000, 0x0004, REG_1, REG_1, REG_0,
1979 			      offsetof(struct bpf_prog, bpf_func));
1980 		if (nospec_uses_trampoline()) {
1981 			jit->seen |= SEEN_FUNC;
1982 			/* aghi %r1,tail_call_start */
1983 			EMIT4_IMM(0xa70b0000, REG_1, jit->tail_call_start);
1984 			/* brcl 0xf,__s390_indirect_jump_r1 */
1985 			EMIT6_PCREL_RILC_PTR(0xc0040000, 0xf,
1986 					     __s390_indirect_jump_r1);
1987 		} else {
1988 			/* bc 0xf,tail_call_start(%r1) */
1989 			_EMIT4(0x47f01000 + jit->tail_call_start);
1990 		}
1991 		/* out: */
1992 		if (jit->prg_buf) {
1993 			*(u16 *)(jit->prg_buf + patch_1_clrj + 2) =
1994 				(jit->prg - patch_1_clrj) >> 1;
1995 			*(u16 *)(jit->prg_buf + patch_2_clij + 2) =
1996 				(jit->prg - patch_2_clij) >> 1;
1997 			*(u16 *)(jit->prg_buf + patch_3_brc + 2) =
1998 				(jit->prg - patch_3_brc) >> 1;
1999 		}
2000 		break;
2001 	}
2002 	case BPF_JMP | BPF_EXIT: /* return b0 */
2003 		last = (i == fp->len - 1) ? 1 : 0;
2004 		if (last)
2005 			break;
2006 		if (!is_first_pass(jit) && can_use_rel(jit, jit->exit_ip))
2007 			/* brc 0xf, <exit> */
2008 			EMIT4_PCREL_RIC(0xa7040000, 0xf, jit->exit_ip);
2009 		else
2010 			/* brcl 0xf, <exit> */
2011 			EMIT6_PCREL_RILC(0xc0040000, 0xf, jit->exit_ip);
2012 		break;
2013 	/*
2014 	 * Branch relative (number of skipped instructions) to offset on
2015 	 * condition.
2016 	 *
2017 	 * Condition code to mask mapping:
2018 	 *
2019 	 * CC | Description	   | Mask
2020 	 * ------------------------------
2021 	 * 0  | Operands equal	   |	8
2022 	 * 1  | First operand low  |	4
2023 	 * 2  | First operand high |	2
2024 	 * 3  | Unused		   |	1
2025 	 *
2026 	 * For s390x relative branches: ip = ip + off_bytes
2027 	 * For BPF relative branches:	insn = insn + off_insns + 1
2028 	 *
2029 	 * For example for s390x with offset 0 we jump to the branch
2030 	 * instruction itself (loop) and for BPF with offset 0 we
2031 	 * branch to the instruction behind the branch.
2032 	 */
2033 	case BPF_JMP32 | BPF_JA: /* if (true) */
2034 		branch_oc_off = imm;
2035 		fallthrough;
2036 	case BPF_JMP | BPF_JA: /* if (true) */
2037 		mask = 0xf000; /* j */
2038 		goto branch_oc;
2039 	case BPF_JMP | BPF_JSGT | BPF_K: /* ((s64) dst > (s64) imm) */
2040 	case BPF_JMP32 | BPF_JSGT | BPF_K: /* ((s32) dst > (s32) imm) */
2041 		mask = 0x2000; /* jh */
2042 		goto branch_ks;
2043 	case BPF_JMP | BPF_JSLT | BPF_K: /* ((s64) dst < (s64) imm) */
2044 	case BPF_JMP32 | BPF_JSLT | BPF_K: /* ((s32) dst < (s32) imm) */
2045 		mask = 0x4000; /* jl */
2046 		goto branch_ks;
2047 	case BPF_JMP | BPF_JSGE | BPF_K: /* ((s64) dst >= (s64) imm) */
2048 	case BPF_JMP32 | BPF_JSGE | BPF_K: /* ((s32) dst >= (s32) imm) */
2049 		mask = 0xa000; /* jhe */
2050 		goto branch_ks;
2051 	case BPF_JMP | BPF_JSLE | BPF_K: /* ((s64) dst <= (s64) imm) */
2052 	case BPF_JMP32 | BPF_JSLE | BPF_K: /* ((s32) dst <= (s32) imm) */
2053 		mask = 0xc000; /* jle */
2054 		goto branch_ks;
2055 	case BPF_JMP | BPF_JGT | BPF_K: /* (dst_reg > imm) */
2056 	case BPF_JMP32 | BPF_JGT | BPF_K: /* ((u32) dst_reg > (u32) imm) */
2057 		mask = 0x2000; /* jh */
2058 		goto branch_ku;
2059 	case BPF_JMP | BPF_JLT | BPF_K: /* (dst_reg < imm) */
2060 	case BPF_JMP32 | BPF_JLT | BPF_K: /* ((u32) dst_reg < (u32) imm) */
2061 		mask = 0x4000; /* jl */
2062 		goto branch_ku;
2063 	case BPF_JMP | BPF_JGE | BPF_K: /* (dst_reg >= imm) */
2064 	case BPF_JMP32 | BPF_JGE | BPF_K: /* ((u32) dst_reg >= (u32) imm) */
2065 		mask = 0xa000; /* jhe */
2066 		goto branch_ku;
2067 	case BPF_JMP | BPF_JLE | BPF_K: /* (dst_reg <= imm) */
2068 	case BPF_JMP32 | BPF_JLE | BPF_K: /* ((u32) dst_reg <= (u32) imm) */
2069 		mask = 0xc000; /* jle */
2070 		goto branch_ku;
2071 	case BPF_JMP | BPF_JNE | BPF_K: /* (dst_reg != imm) */
2072 	case BPF_JMP32 | BPF_JNE | BPF_K: /* ((u32) dst_reg != (u32) imm) */
2073 		mask = 0x7000; /* jne */
2074 		goto branch_ku;
2075 	case BPF_JMP | BPF_JEQ | BPF_K: /* (dst_reg == imm) */
2076 	case BPF_JMP32 | BPF_JEQ | BPF_K: /* ((u32) dst_reg == (u32) imm) */
2077 		mask = 0x8000; /* je */
2078 		goto branch_ku;
2079 	case BPF_JMP | BPF_JSET | BPF_K: /* (dst_reg & imm) */
2080 	case BPF_JMP32 | BPF_JSET | BPF_K: /* ((u32) dst_reg & (u32) imm) */
2081 		mask = 0x7000; /* jnz */
2082 		if (BPF_CLASS(insn->code) == BPF_JMP32) {
2083 			/* llilf %w1,imm (load zero extend imm) */
2084 			EMIT6_IMM(0xc00f0000, REG_W1, imm);
2085 			/* nr %w1,%dst */
2086 			EMIT2(0x1400, REG_W1, dst_reg);
2087 		} else {
2088 			/* lgfi %w1,imm (load sign extend imm) */
2089 			EMIT6_IMM(0xc0010000, REG_W1, imm);
2090 			/* ngr %w1,%dst */
2091 			EMIT4(0xb9800000, REG_W1, dst_reg);
2092 		}
2093 		goto branch_oc;
2094 
2095 	case BPF_JMP | BPF_JSGT | BPF_X: /* ((s64) dst > (s64) src) */
2096 	case BPF_JMP32 | BPF_JSGT | BPF_X: /* ((s32) dst > (s32) src) */
2097 		mask = 0x2000; /* jh */
2098 		goto branch_xs;
2099 	case BPF_JMP | BPF_JSLT | BPF_X: /* ((s64) dst < (s64) src) */
2100 	case BPF_JMP32 | BPF_JSLT | BPF_X: /* ((s32) dst < (s32) src) */
2101 		mask = 0x4000; /* jl */
2102 		goto branch_xs;
2103 	case BPF_JMP | BPF_JSGE | BPF_X: /* ((s64) dst >= (s64) src) */
2104 	case BPF_JMP32 | BPF_JSGE | BPF_X: /* ((s32) dst >= (s32) src) */
2105 		mask = 0xa000; /* jhe */
2106 		goto branch_xs;
2107 	case BPF_JMP | BPF_JSLE | BPF_X: /* ((s64) dst <= (s64) src) */
2108 	case BPF_JMP32 | BPF_JSLE | BPF_X: /* ((s32) dst <= (s32) src) */
2109 		mask = 0xc000; /* jle */
2110 		goto branch_xs;
2111 	case BPF_JMP | BPF_JGT | BPF_X: /* (dst > src) */
2112 	case BPF_JMP32 | BPF_JGT | BPF_X: /* ((u32) dst > (u32) src) */
2113 		mask = 0x2000; /* jh */
2114 		goto branch_xu;
2115 	case BPF_JMP | BPF_JLT | BPF_X: /* (dst < src) */
2116 	case BPF_JMP32 | BPF_JLT | BPF_X: /* ((u32) dst < (u32) src) */
2117 		mask = 0x4000; /* jl */
2118 		goto branch_xu;
2119 	case BPF_JMP | BPF_JGE | BPF_X: /* (dst >= src) */
2120 	case BPF_JMP32 | BPF_JGE | BPF_X: /* ((u32) dst >= (u32) src) */
2121 		mask = 0xa000; /* jhe */
2122 		goto branch_xu;
2123 	case BPF_JMP | BPF_JLE | BPF_X: /* (dst <= src) */
2124 	case BPF_JMP32 | BPF_JLE | BPF_X: /* ((u32) dst <= (u32) src) */
2125 		mask = 0xc000; /* jle */
2126 		goto branch_xu;
2127 	case BPF_JMP | BPF_JNE | BPF_X: /* (dst != src) */
2128 	case BPF_JMP32 | BPF_JNE | BPF_X: /* ((u32) dst != (u32) src) */
2129 		mask = 0x7000; /* jne */
2130 		goto branch_xu;
2131 	case BPF_JMP | BPF_JEQ | BPF_X: /* (dst == src) */
2132 	case BPF_JMP32 | BPF_JEQ | BPF_X: /* ((u32) dst == (u32) src) */
2133 		mask = 0x8000; /* je */
2134 		goto branch_xu;
2135 	case BPF_JMP | BPF_JSET | BPF_X: /* (dst & src) */
2136 	case BPF_JMP32 | BPF_JSET | BPF_X: /* ((u32) dst & (u32) src) */
2137 	{
2138 		bool is_jmp32 = BPF_CLASS(insn->code) == BPF_JMP32;
2139 
2140 		mask = 0x7000; /* jnz */
2141 		/* nrk or ngrk %w1,%dst,%src */
2142 		EMIT4_RRF((is_jmp32 ? 0xb9f40000 : 0xb9e40000),
2143 			  REG_W1, dst_reg, src_reg);
2144 		goto branch_oc;
2145 branch_ks:
2146 		is_jmp32 = BPF_CLASS(insn->code) == BPF_JMP32;
2147 		/* cfi or cgfi %dst,imm */
2148 		EMIT6_IMM(is_jmp32 ? 0xc20d0000 : 0xc20c0000,
2149 			  dst_reg, imm);
2150 		if (!is_first_pass(jit) &&
2151 		    can_use_rel(jit, addrs[i + off + 1])) {
2152 			/* brc mask,off */
2153 			EMIT4_PCREL_RIC(0xa7040000,
2154 					mask >> 12, addrs[i + off + 1]);
2155 		} else {
2156 			/* brcl mask,off */
2157 			EMIT6_PCREL_RILC(0xc0040000,
2158 					 mask >> 12, addrs[i + off + 1]);
2159 		}
2160 		break;
2161 branch_ku:
2162 		/* lgfi %w1,imm (load sign extend imm) */
2163 		src_reg = REG_1;
2164 		EMIT6_IMM(0xc0010000, src_reg, imm);
2165 		goto branch_xu;
2166 branch_xs:
2167 		is_jmp32 = BPF_CLASS(insn->code) == BPF_JMP32;
2168 		if (!is_first_pass(jit) &&
2169 		    can_use_rel(jit, addrs[i + off + 1])) {
2170 			/* crj or cgrj %dst,%src,mask,off */
2171 			EMIT6_PCREL(0xec000000, (is_jmp32 ? 0x0076 : 0x0064),
2172 				    dst_reg, src_reg, i, off, mask);
2173 		} else {
2174 			/* cr or cgr %dst,%src */
2175 			if (is_jmp32)
2176 				EMIT2(0x1900, dst_reg, src_reg);
2177 			else
2178 				EMIT4(0xb9200000, dst_reg, src_reg);
2179 			/* brcl mask,off */
2180 			EMIT6_PCREL_RILC(0xc0040000,
2181 					 mask >> 12, addrs[i + off + 1]);
2182 		}
2183 		break;
2184 branch_xu:
2185 		is_jmp32 = BPF_CLASS(insn->code) == BPF_JMP32;
2186 		if (!is_first_pass(jit) &&
2187 		    can_use_rel(jit, addrs[i + off + 1])) {
2188 			/* clrj or clgrj %dst,%src,mask,off */
2189 			EMIT6_PCREL(0xec000000, (is_jmp32 ? 0x0077 : 0x0065),
2190 				    dst_reg, src_reg, i, off, mask);
2191 		} else {
2192 			/* clr or clgr %dst,%src */
2193 			if (is_jmp32)
2194 				EMIT2(0x1500, dst_reg, src_reg);
2195 			else
2196 				EMIT4(0xb9210000, dst_reg, src_reg);
2197 			/* brcl mask,off */
2198 			EMIT6_PCREL_RILC(0xc0040000,
2199 					 mask >> 12, addrs[i + off + 1]);
2200 		}
2201 		break;
2202 branch_oc:
2203 		if (!is_first_pass(jit) &&
2204 		    can_use_rel(jit, addrs[i + branch_oc_off + 1])) {
2205 			/* brc mask,off */
2206 			EMIT4_PCREL_RIC(0xa7040000,
2207 					mask >> 12,
2208 					addrs[i + branch_oc_off + 1]);
2209 		} else {
2210 			/* brcl mask,off */
2211 			EMIT6_PCREL_RILC(0xc0040000,
2212 					 mask >> 12,
2213 					 addrs[i + branch_oc_off + 1]);
2214 		}
2215 		break;
2216 	}
2217 	default: /* too complex, give up */
2218 		pr_err("Unknown opcode %02x\n", insn->code);
2219 		return -1;
2220 	}
2221 
2222 	return insn_count;
2223 }
2224 
2225 /*
2226  * Return whether new i-th instruction address does not violate any invariant
2227  */
bpf_is_new_addr_sane(struct bpf_jit * jit,int i)2228 static bool bpf_is_new_addr_sane(struct bpf_jit *jit, int i)
2229 {
2230 	/* On the first pass anything goes */
2231 	if (is_first_pass(jit))
2232 		return true;
2233 
2234 	/* The codegen pass must not change anything */
2235 	if (is_codegen_pass(jit))
2236 		return jit->addrs[i] == jit->prg;
2237 
2238 	/* Passes in between must not increase code size */
2239 	return jit->addrs[i] >= jit->prg;
2240 }
2241 
2242 /*
2243  * Update the address of i-th instruction
2244  */
bpf_set_addr(struct bpf_jit * jit,int i)2245 static int bpf_set_addr(struct bpf_jit *jit, int i)
2246 {
2247 	int delta;
2248 
2249 	if (is_codegen_pass(jit)) {
2250 		delta = jit->prg - jit->addrs[i];
2251 		if (delta < 0)
2252 			bpf_skip(jit, -delta);
2253 	}
2254 	if (WARN_ON_ONCE(!bpf_is_new_addr_sane(jit, i)))
2255 		return -1;
2256 	jit->addrs[i] = jit->prg;
2257 	return 0;
2258 }
2259 
2260 /*
2261  * Compile eBPF program into s390x code
2262  */
bpf_jit_prog(struct bpf_jit * jit,struct bpf_prog * fp,bool extra_pass)2263 static int bpf_jit_prog(struct bpf_jit *jit, struct bpf_prog *fp,
2264 			bool extra_pass)
2265 {
2266 	int i, insn_count, lit32_size, lit64_size;
2267 	u64 kern_arena;
2268 
2269 	jit->lit32 = jit->lit32_start;
2270 	jit->lit64 = jit->lit64_start;
2271 	jit->prg = 0;
2272 	jit->excnt = 0;
2273 	if (is_first_pass(jit) || (jit->seen & SEEN_STACK))
2274 		jit->frame_off = sizeof(struct prog_frame) -
2275 				 offsetofend(struct prog_frame, unused) +
2276 				 round_up(fp->aux->stack_depth, 8);
2277 	else
2278 		jit->frame_off = 0;
2279 
2280 	kern_arena = bpf_arena_get_kern_vm_start(fp->aux->arena);
2281 	if (kern_arena)
2282 		jit->kern_arena = _EMIT_CONST_U64(kern_arena);
2283 	jit->user_arena = bpf_arena_get_user_vm_start(fp->aux->arena);
2284 
2285 	bpf_jit_prologue(jit, fp);
2286 	if (bpf_set_addr(jit, 0) < 0)
2287 		return -1;
2288 	for (i = 0; i < fp->len; i += insn_count) {
2289 		insn_count = bpf_jit_insn(jit, fp, i, extra_pass);
2290 		if (insn_count < 0)
2291 			return -1;
2292 		/* Next instruction address */
2293 		if (bpf_set_addr(jit, i + insn_count) < 0)
2294 			return -1;
2295 	}
2296 	bpf_jit_epilogue(jit);
2297 
2298 	lit32_size = jit->lit32 - jit->lit32_start;
2299 	lit64_size = jit->lit64 - jit->lit64_start;
2300 	jit->lit32_start = jit->prg;
2301 	if (lit32_size)
2302 		jit->lit32_start = ALIGN(jit->lit32_start, 4);
2303 	jit->lit64_start = jit->lit32_start + lit32_size;
2304 	if (lit64_size)
2305 		jit->lit64_start = ALIGN(jit->lit64_start, 8);
2306 	jit->size = jit->lit64_start + lit64_size;
2307 	jit->size_prg = jit->prg;
2308 
2309 	if (WARN_ON_ONCE(fp->aux->extable &&
2310 			 jit->excnt != fp->aux->num_exentries))
2311 		/* Verifier bug - too many entries. */
2312 		return -1;
2313 
2314 	return 0;
2315 }
2316 
bpf_jit_needs_zext(void)2317 bool bpf_jit_needs_zext(void)
2318 {
2319 	return true;
2320 }
2321 
2322 struct s390_jit_data {
2323 	struct bpf_binary_header *header;
2324 	struct bpf_jit ctx;
2325 	int pass;
2326 };
2327 
bpf_jit_alloc(struct bpf_jit * jit,struct bpf_prog * fp)2328 static struct bpf_binary_header *bpf_jit_alloc(struct bpf_jit *jit,
2329 					       struct bpf_prog *fp)
2330 {
2331 	struct bpf_binary_header *header;
2332 	struct bpf_insn *insn;
2333 	u32 extable_size;
2334 	u32 code_size;
2335 	int i;
2336 
2337 	for (i = 0; i < fp->len; i++) {
2338 		insn = &fp->insnsi[i];
2339 
2340 		if (BPF_CLASS(insn->code) == BPF_STX &&
2341 		    BPF_MODE(insn->code) == BPF_PROBE_ATOMIC &&
2342 		    (BPF_SIZE(insn->code) == BPF_DW ||
2343 		     BPF_SIZE(insn->code) == BPF_W) &&
2344 		    insn->imm == BPF_XCHG)
2345 			/*
2346 			 * bpf_jit_insn() emits a load and a compare-and-swap,
2347 			 * both of which need to be probed.
2348 			 */
2349 			fp->aux->num_exentries += 1;
2350 	}
2351 	/* We need two entries per insn. */
2352 	fp->aux->num_exentries *= 2;
2353 
2354 	code_size = roundup(jit->size,
2355 			    __alignof__(struct exception_table_entry));
2356 	extable_size = fp->aux->num_exentries *
2357 		sizeof(struct exception_table_entry);
2358 	header = bpf_jit_binary_alloc(code_size + extable_size, &jit->prg_buf,
2359 				      8, jit_fill_hole);
2360 	if (!header)
2361 		return NULL;
2362 	fp->aux->extable = (struct exception_table_entry *)
2363 		(jit->prg_buf + code_size);
2364 	return header;
2365 }
2366 
2367 /*
2368  * Compile eBPF program "fp"
2369  */
bpf_int_jit_compile(struct bpf_verifier_env * env,struct bpf_prog * fp)2370 struct bpf_prog *bpf_int_jit_compile(struct bpf_verifier_env *env, struct bpf_prog *fp)
2371 {
2372 	struct bpf_binary_header *header;
2373 	struct s390_jit_data *jit_data;
2374 	bool extra_pass = false;
2375 	struct bpf_jit jit;
2376 	int pass;
2377 
2378 	if (!fp->jit_requested)
2379 		return fp;
2380 
2381 	jit_data = fp->aux->jit_data;
2382 	if (!jit_data) {
2383 		jit_data = kzalloc_obj(*jit_data);
2384 		if (!jit_data)
2385 			return fp;
2386 		fp->aux->jit_data = jit_data;
2387 	}
2388 	if (jit_data->ctx.addrs) {
2389 		jit = jit_data->ctx;
2390 		header = jit_data->header;
2391 		extra_pass = true;
2392 		pass = jit_data->pass + 1;
2393 		goto skip_init_ctx;
2394 	}
2395 
2396 	memset(&jit, 0, sizeof(jit));
2397 	jit.addrs = kvcalloc(fp->len + 1, sizeof(*jit.addrs), GFP_KERNEL);
2398 	if (jit.addrs == NULL)
2399 		goto out_err;
2400 	/*
2401 	 * Three initial passes:
2402 	 *   - 1/2: Determine clobbered registers
2403 	 *   - 3:   Calculate program size and addrs array
2404 	 */
2405 	for (pass = 1; pass <= 3; pass++) {
2406 		if (bpf_jit_prog(&jit, fp, extra_pass))
2407 			goto out_err;
2408 	}
2409 	/*
2410 	 * Final pass: Allocate and generate program
2411 	 */
2412 	header = bpf_jit_alloc(&jit, fp);
2413 	if (!header)
2414 		goto out_err;
2415 skip_init_ctx:
2416 	if (bpf_jit_prog(&jit, fp, extra_pass)) {
2417 		bpf_jit_binary_free(header);
2418 		goto out_err;
2419 	}
2420 	if (bpf_jit_enable > 1) {
2421 		bpf_jit_dump(fp->len, jit.size, pass, jit.prg_buf);
2422 		print_fn_code(jit.prg_buf, jit.size_prg);
2423 	}
2424 	if (!fp->is_func || extra_pass) {
2425 		if (bpf_jit_binary_lock_ro(header)) {
2426 			bpf_jit_binary_free(header);
2427 			goto out_err;
2428 		}
2429 	} else {
2430 		jit_data->header = header;
2431 		jit_data->ctx = jit;
2432 		jit_data->pass = pass;
2433 	}
2434 	fp->bpf_func = (void *) jit.prg_buf;
2435 	fp->jited = 1;
2436 	fp->jited_len = jit.size;
2437 
2438 	if (!fp->is_func || extra_pass) {
2439 		bpf_prog_fill_jited_linfo(fp, jit.addrs + 1);
2440 free_addrs:
2441 		kvfree(jit.addrs);
2442 		kfree(jit_data);
2443 		fp->aux->jit_data = NULL;
2444 	}
2445 
2446 	return fp;
2447 
2448 out_err:
2449 	if (extra_pass) {
2450 		fp->bpf_func = NULL;
2451 		fp->jited = 0;
2452 		fp->jited_len = 0;
2453 	}
2454 	goto free_addrs;
2455 }
2456 
bpf_jit_supports_kfunc_call(void)2457 bool bpf_jit_supports_kfunc_call(void)
2458 {
2459 	return true;
2460 }
2461 
bpf_jit_supports_far_kfunc_call(void)2462 bool bpf_jit_supports_far_kfunc_call(void)
2463 {
2464 	return true;
2465 }
2466 
bpf_arch_text_poke(void * ip,enum bpf_text_poke_type old_t,enum bpf_text_poke_type new_t,void * old_addr,void * new_addr)2467 int bpf_arch_text_poke(void *ip, enum bpf_text_poke_type old_t,
2468 		       enum bpf_text_poke_type new_t, void *old_addr,
2469 		       void *new_addr)
2470 {
2471 	struct bpf_plt expected_plt, current_plt, new_plt, *plt;
2472 	struct {
2473 		u16 opc;
2474 		s32 disp;
2475 	} __packed insn;
2476 	char *ret;
2477 	int err;
2478 
2479 	/* Verify the branch to be patched. */
2480 	err = copy_from_kernel_nofault(&insn, ip, sizeof(insn));
2481 	if (err < 0)
2482 		return err;
2483 	if (insn.opc != (0xc004 | (old_addr ? 0xf0 : 0)))
2484 		return -EINVAL;
2485 
2486 	if ((new_t == BPF_MOD_JUMP || old_t == BPF_MOD_JUMP) &&
2487 	    insn.disp == ((char *)new_addr - (char *)ip) >> 1) {
2488 		/*
2489 		 * The branch already points to the destination,
2490 		 * there is no PLT.
2491 		 */
2492 	} else {
2493 		/* Verify the PLT. */
2494 		plt = ip + (insn.disp << 1);
2495 		err = copy_from_kernel_nofault(&current_plt, plt,
2496 					       sizeof(current_plt));
2497 		if (err < 0)
2498 			return err;
2499 		ret = (char *)ip + 6;
2500 		bpf_jit_plt(&expected_plt, ret, old_addr);
2501 		if (memcmp(&current_plt, &expected_plt, sizeof(current_plt)))
2502 			return -EINVAL;
2503 		/* Adjust the call address. */
2504 		bpf_jit_plt(&new_plt, ret, new_addr);
2505 		s390_kernel_write(&plt->target, &new_plt.target,
2506 				  sizeof(void *));
2507 	}
2508 
2509 	/* Adjust the mask of the branch. */
2510 	insn.opc = 0xc004 | (new_addr ? 0xf0 : 0);
2511 	s390_kernel_write((char *)ip + 1, (char *)&insn.opc + 1, 1);
2512 
2513 	/* Make the new code visible to the other CPUs. */
2514 	text_poke_sync_lock();
2515 
2516 	return 0;
2517 }
2518 
2519 struct bpf_tramp_jit {
2520 	struct bpf_jit common;
2521 	int orig_stack_args_off;/* Offset of arguments placed on stack by the
2522 				 * func_addr's original caller
2523 				 */
2524 	int stack_size;		/* Trampoline stack size */
2525 	int backchain_off;	/* Offset of backchain */
2526 	int stack_args_off;	/* Offset of stack arguments for calling
2527 				 * func_addr, has to be at the top
2528 				 */
2529 	int reg_args_off;	/* Offset of register arguments for calling
2530 				 * func_addr
2531 				 */
2532 	int ip_off;		/* For bpf_get_func_ip(), has to be at
2533 				 * (ctx - 16)
2534 				 */
2535 	int func_meta_off;	/* For bpf_get_func_arg_cnt()/fsession, has
2536 				 * to be at (ctx - 8)
2537 				 */
2538 	int bpf_args_off;	/* Offset of BPF_PROG context, which consists
2539 				 * of BPF arguments followed by return value
2540 				 */
2541 	int retval_off;		/* Offset of return value (see above) */
2542 	int r7_r8_off;		/* Offset of saved %r7 and %r8, which are used
2543 				 * for __bpf_prog_enter() return value and
2544 				 * func_addr respectively
2545 				 */
2546 	int run_ctx_off;	/* Offset of struct bpf_tramp_run_ctx */
2547 	int tccnt_off;		/* Offset of saved tailcall counter */
2548 	int r14_off;		/* Offset of saved %r14, has to be at the
2549 				 * bottom */
2550 	int do_fexit;		/* do_fexit: label */
2551 };
2552 
load_imm64(struct bpf_jit * jit,int dst_reg,u64 val)2553 static void load_imm64(struct bpf_jit *jit, int dst_reg, u64 val)
2554 {
2555 	/* llihf %dst_reg,val_hi */
2556 	EMIT6_IMM(0xc00e0000, dst_reg, (val >> 32));
2557 	/* oilf %rdst_reg,val_lo */
2558 	EMIT6_IMM(0xc00d0000, dst_reg, val);
2559 }
2560 
emit_store_stack_imm64(struct bpf_jit * jit,int tmp_reg,int stack_off,u64 imm)2561 static void emit_store_stack_imm64(struct bpf_jit *jit, int tmp_reg, int stack_off, u64 imm)
2562 {
2563 	load_imm64(jit, tmp_reg, imm);
2564 	/* stg %tmp_reg,stack_off(%r15) */
2565 	EMIT6_DISP_LH(0xe3000000, 0x0024, tmp_reg, REG_0, REG_15, stack_off);
2566 }
2567 
invoke_bpf_prog(struct bpf_tramp_jit * tjit,const struct btf_func_model * m,struct bpf_tramp_node * node,bool save_ret)2568 static int invoke_bpf_prog(struct bpf_tramp_jit *tjit,
2569 			   const struct btf_func_model *m,
2570 			   struct bpf_tramp_node *node, bool save_ret)
2571 {
2572 	struct bpf_jit *jit = &tjit->common;
2573 	int cookie_off = tjit->run_ctx_off +
2574 			 offsetof(struct bpf_tramp_run_ctx, bpf_cookie);
2575 	struct bpf_prog *p = node->link->prog;
2576 	int patch;
2577 
2578 	/*
2579 	 * run_ctx.cookie = node->cookie;
2580 	 */
2581 
2582 	emit_store_stack_imm64(jit, REG_W0, cookie_off, node->cookie);
2583 
2584 	/*
2585 	 * if ((start = __bpf_prog_enter(p, &run_ctx)) == 0)
2586 	 *         goto skip;
2587 	 */
2588 
2589 	/* %r2 = p */
2590 	load_imm64(jit, REG_2, (u64)p);
2591 	/* la %r3,run_ctx_off(%r15) */
2592 	EMIT4_DISP(0x41000000, REG_3, REG_15, tjit->run_ctx_off);
2593 	/* brasl %r14,__bpf_prog_enter */
2594 	EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14, bpf_trampoline_enter(p));
2595 	/* ltgr %r7,%r2 */
2596 	EMIT4(0xb9020000, REG_7, REG_2);
2597 	/* brcl 8,skip */
2598 	patch = jit->prg;
2599 	EMIT6_PCREL_RILC(0xc0040000, 8, 0);
2600 
2601 	/*
2602 	 * retval = bpf_func(args, p->insnsi);
2603 	 */
2604 
2605 	/* la %r2,bpf_args_off(%r15) */
2606 	EMIT4_DISP(0x41000000, REG_2, REG_15, tjit->bpf_args_off);
2607 	/* %r3 = p->insnsi */
2608 	if (!p->jited)
2609 		load_imm64(jit, REG_3, (u64)p->insnsi);
2610 	/* brasl %r14,p->bpf_func */
2611 	EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14, p->bpf_func);
2612 	/* stg %r2,retval_off(%r15) */
2613 	if (save_ret) {
2614 		if (sign_zero_extend(jit, REG_2, m->ret_size, m->ret_flags))
2615 			return -1;
2616 		EMIT6_DISP_LH(0xe3000000, 0x0024, REG_2, REG_0, REG_15,
2617 			      tjit->retval_off);
2618 	}
2619 
2620 	/* skip: */
2621 	if (jit->prg_buf)
2622 		*(u32 *)&jit->prg_buf[patch + 2] = (jit->prg - patch) >> 1;
2623 
2624 	/*
2625 	 * __bpf_prog_exit(p, start, &run_ctx);
2626 	 */
2627 
2628 	/* %r2 = p */
2629 	load_imm64(jit, REG_2, (u64)p);
2630 	/* lgr %r3,%r7 */
2631 	EMIT4(0xb9040000, REG_3, REG_7);
2632 	/* la %r4,run_ctx_off(%r15) */
2633 	EMIT4_DISP(0x41000000, REG_4, REG_15, tjit->run_ctx_off);
2634 	/* brasl %r14,__bpf_prog_exit */
2635 	EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14, bpf_trampoline_exit(p));
2636 
2637 	return 0;
2638 }
2639 
invoke_bpf(struct bpf_tramp_jit * tjit,const struct btf_func_model * m,struct bpf_tramp_nodes * tn,bool save_ret,u64 func_meta,int cookie_off)2640 static int invoke_bpf(struct bpf_tramp_jit *tjit,
2641 		      const struct btf_func_model *m,
2642 		      struct bpf_tramp_nodes *tn, bool save_ret,
2643 		      u64 func_meta, int cookie_off)
2644 {
2645 	int i, cur_cookie = (tjit->bpf_args_off - cookie_off) / sizeof(u64);
2646 	struct bpf_jit *jit = &tjit->common;
2647 
2648 	for (i = 0; i < tn->nr_nodes; i++) {
2649 		if (bpf_prog_calls_session_cookie(tn->nodes[i])) {
2650 			u64 meta = func_meta | ((u64)cur_cookie << BPF_TRAMP_COOKIE_INDEX_SHIFT);
2651 
2652 			emit_store_stack_imm64(jit, REG_0, tjit->func_meta_off, meta);
2653 			cur_cookie--;
2654 		}
2655 		if (invoke_bpf_prog(tjit, m, tn->nodes[i], save_ret))
2656 			return -EINVAL;
2657 	}
2658 
2659 	return 0;
2660 }
2661 
alloc_stack(struct bpf_tramp_jit * tjit,size_t size)2662 static int alloc_stack(struct bpf_tramp_jit *tjit, size_t size)
2663 {
2664 	int stack_offset = tjit->stack_size;
2665 
2666 	tjit->stack_size += size;
2667 	return stack_offset;
2668 }
2669 
2670 /* ABI uses %r2 - %r6 for parameter passing. */
2671 #define MAX_NR_REG_ARGS 5
2672 
2673 /* The "L" field of the "mvc" instruction is 8 bits. */
2674 #define MAX_MVC_SIZE 256
2675 #define MAX_NR_STACK_ARGS (MAX_MVC_SIZE / sizeof(u64))
2676 
2677 /* -mfentry generates a 6-byte nop on s390x. */
2678 #define S390X_PATCH_SIZE 6
2679 
__arch_prepare_bpf_trampoline(struct bpf_tramp_image * im,struct bpf_tramp_jit * tjit,const struct btf_func_model * m,u32 flags,struct bpf_tramp_nodes * tnodes,void * func_addr)2680 static int __arch_prepare_bpf_trampoline(struct bpf_tramp_image *im,
2681 					 struct bpf_tramp_jit *tjit,
2682 					 const struct btf_func_model *m,
2683 					 u32 flags,
2684 					 struct bpf_tramp_nodes *tnodes,
2685 					 void *func_addr)
2686 {
2687 	struct bpf_tramp_nodes *fmod_ret = &tnodes[BPF_TRAMP_MODIFY_RETURN];
2688 	struct bpf_tramp_nodes *fentry = &tnodes[BPF_TRAMP_FENTRY];
2689 	struct bpf_tramp_nodes *fexit = &tnodes[BPF_TRAMP_FEXIT];
2690 	int nr_bpf_args, nr_reg_args, nr_stack_args;
2691 	int cookie_cnt, cookie_off, fsession_cnt;
2692 	struct bpf_jit *jit = &tjit->common;
2693 	int arg, bpf_arg_off;
2694 	u64 func_meta;
2695 	int i, j;
2696 
2697 	/* Support as many stack arguments as "mvc" instruction can handle. */
2698 	nr_reg_args = min_t(int, m->nr_args, MAX_NR_REG_ARGS);
2699 	nr_stack_args = m->nr_args - nr_reg_args;
2700 	if (nr_stack_args > MAX_NR_STACK_ARGS)
2701 		return -ENOTSUPP;
2702 
2703 	/* Return to %r14 in the struct_ops case. */
2704 	if (flags & BPF_TRAMP_F_INDIRECT)
2705 		flags |= BPF_TRAMP_F_SKIP_FRAME;
2706 
2707 	/*
2708 	 * Compute how many arguments we need to pass to BPF programs.
2709 	 * BPF ABI mirrors that of x86_64: arguments that are 16 bytes or
2710 	 * smaller are packed into 1 or 2 registers; larger arguments are
2711 	 * passed via pointers.
2712 	 * In s390x ABI, arguments that are 8 bytes or smaller are packed into
2713 	 * a register; larger arguments are passed via pointers.
2714 	 * We need to deal with this difference.
2715 	 */
2716 	nr_bpf_args = 0;
2717 	for (i = 0; i < m->nr_args; i++) {
2718 		if (m->arg_size[i] <= 8)
2719 			nr_bpf_args += 1;
2720 		else if (m->arg_size[i] <= 16)
2721 			nr_bpf_args += 2;
2722 		else
2723 			return -ENOTSUPP;
2724 	}
2725 
2726 	cookie_cnt = bpf_fsession_cookie_cnt(tnodes);
2727 	fsession_cnt = bpf_fsession_cnt(tnodes);
2728 
2729 	/*
2730 	 * Calculate the stack layout.
2731 	 */
2732 
2733 	/*
2734 	 * Allocate STACK_FRAME_OVERHEAD bytes for the callees. As the s390x
2735 	 * ABI requires, put our backchain at the end of the allocated memory.
2736 	 */
2737 	tjit->stack_size = STACK_FRAME_OVERHEAD;
2738 	tjit->backchain_off = tjit->stack_size - sizeof(u64);
2739 	tjit->stack_args_off = alloc_stack(tjit, nr_stack_args * sizeof(u64));
2740 	tjit->reg_args_off = alloc_stack(tjit, nr_reg_args * sizeof(u64));
2741 	cookie_off = alloc_stack(tjit, cookie_cnt * sizeof(u64));
2742 	tjit->ip_off = alloc_stack(tjit, sizeof(u64));
2743 	tjit->func_meta_off = alloc_stack(tjit, sizeof(u64));
2744 	tjit->bpf_args_off = alloc_stack(tjit, nr_bpf_args * sizeof(u64));
2745 	tjit->retval_off = alloc_stack(tjit, sizeof(u64));
2746 	tjit->r7_r8_off = alloc_stack(tjit, 2 * sizeof(u64));
2747 	tjit->run_ctx_off = alloc_stack(tjit,
2748 					sizeof(struct bpf_tramp_run_ctx));
2749 	tjit->tccnt_off = alloc_stack(tjit, sizeof(u64));
2750 	tjit->r14_off = alloc_stack(tjit, sizeof(u64) * 2);
2751 	/*
2752 	 * In accordance with the s390x ABI, the caller has allocated
2753 	 * STACK_FRAME_OVERHEAD bytes for us. 8 of them contain the caller's
2754 	 * backchain, and the rest we can use.
2755 	 */
2756 	tjit->stack_size -= STACK_FRAME_OVERHEAD - sizeof(u64);
2757 	tjit->orig_stack_args_off = tjit->stack_size + STACK_FRAME_OVERHEAD;
2758 
2759 	/* lgr %r1,%r15 */
2760 	EMIT4(0xb9040000, REG_1, REG_15);
2761 	/* aghi %r15,-stack_size */
2762 	EMIT4_IMM(0xa70b0000, REG_15, -tjit->stack_size);
2763 	/* stg %r1,backchain_off(%r15) */
2764 	EMIT6_DISP_LH(0xe3000000, 0x0024, REG_1, REG_0, REG_15,
2765 		      tjit->backchain_off);
2766 	/* mvc tccnt_off(4,%r15),stack_size+tail_call_cnt(%r15) */
2767 	_EMIT6(0xd203f000 | tjit->tccnt_off,
2768 	       0xf000 | (tjit->stack_size +
2769 			 offsetof(struct prog_frame, tail_call_cnt)));
2770 	/* stmg %r2,%rN,fwd_reg_args_off(%r15) */
2771 	if (nr_reg_args)
2772 		EMIT6_DISP_LH(0xeb000000, 0x0024, REG_2,
2773 			      REG_2 + (nr_reg_args - 1), REG_15,
2774 			      tjit->reg_args_off);
2775 	for (i = 0, j = 0; i < m->nr_args; i++) {
2776 		if (i < MAX_NR_REG_ARGS)
2777 			arg = REG_2 + i;
2778 		else
2779 			arg = tjit->orig_stack_args_off +
2780 			      (i - MAX_NR_REG_ARGS) * sizeof(u64);
2781 		bpf_arg_off = tjit->bpf_args_off + j * sizeof(u64);
2782 		if (m->arg_size[i] <= 8) {
2783 			if (i < MAX_NR_REG_ARGS)
2784 				/* stg %arg,bpf_arg_off(%r15) */
2785 				EMIT6_DISP_LH(0xe3000000, 0x0024, arg,
2786 					      REG_0, REG_15, bpf_arg_off);
2787 			else
2788 				/* mvc bpf_arg_off(8,%r15),arg(%r15) */
2789 				_EMIT6(0xd207f000 | bpf_arg_off,
2790 				       0xf000 | arg);
2791 			j += 1;
2792 		} else {
2793 			if (i < MAX_NR_REG_ARGS) {
2794 				/* mvc bpf_arg_off(16,%r15),0(%arg) */
2795 				_EMIT6(0xd20ff000 | bpf_arg_off,
2796 				       reg2hex[arg] << 12);
2797 			} else {
2798 				/* lg %r1,arg(%r15) */
2799 				EMIT6_DISP_LH(0xe3000000, 0x0004, REG_1, REG_0,
2800 					      REG_15, arg);
2801 				/* mvc bpf_arg_off(16,%r15),0(%r1) */
2802 				_EMIT6(0xd20ff000 | bpf_arg_off, 0x1000);
2803 			}
2804 			j += 2;
2805 		}
2806 	}
2807 	/* stmg %r7,%r8,r7_r8_off(%r15) */
2808 	EMIT6_DISP_LH(0xeb000000, 0x0024, REG_7, REG_8, REG_15,
2809 		      tjit->r7_r8_off);
2810 	/* stg %r14,r14_off(%r15) */
2811 	EMIT6_DISP_LH(0xe3000000, 0x0024, REG_14, REG_0, REG_15, tjit->r14_off);
2812 
2813 	if (flags & BPF_TRAMP_F_ORIG_STACK) {
2814 		/*
2815 		 * The ftrace trampoline puts the return address (which is the
2816 		 * address of the original function + S390X_PATCH_SIZE) into
2817 		 * %r0; see ftrace_shared_hotpatch_trampoline_br and
2818 		 * ftrace_init_nop() for details.
2819 		 */
2820 
2821 		/* lgr %r8,%r0 */
2822 		EMIT4(0xb9040000, REG_8, REG_0);
2823 	}
2824 
2825 	/*
2826 	 * ip = func_addr;
2827 	 * arg_cnt = m->nr_args;
2828 	 */
2829 
2830 	if (flags & BPF_TRAMP_F_IP_ARG)
2831 		emit_store_stack_imm64(jit, REG_0, tjit->ip_off, (u64)func_addr);
2832 	func_meta = nr_bpf_args;
2833 	/* lghi %r0,func_meta */
2834 	EMIT4_IMM(0xa7090000, REG_0, func_meta);
2835 	/* stg %r0,func_meta_off(%r15) */
2836 	EMIT6_DISP_LH(0xe3000000, 0x0024, REG_0, REG_0, REG_15,
2837 		      tjit->func_meta_off);
2838 
2839 	if (flags & BPF_TRAMP_F_CALL_ORIG) {
2840 		/*
2841 		 * __bpf_tramp_enter(im);
2842 		 */
2843 
2844 		/* %r2 = im */
2845 		load_imm64(jit, REG_2, (u64)im);
2846 		/* brasl %r14,__bpf_tramp_enter */
2847 		EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14, __bpf_tramp_enter);
2848 	}
2849 
2850 	if (fsession_cnt) {
2851 		/* Clear all the session cookies' value. */
2852 		for (i = 0; i < cookie_cnt; i++)
2853 			emit_store_stack_imm64(jit, REG_0, cookie_off + 8 * i, 0);
2854 		/* Clear the return value to make sure fentry always gets 0. */
2855 		emit_store_stack_imm64(jit, REG_0, tjit->retval_off, 0);
2856 	}
2857 
2858 	if (invoke_bpf(tjit, m, fentry, flags & BPF_TRAMP_F_RET_FENTRY_RET,
2859 		       func_meta, cookie_off))
2860 		return -EINVAL;
2861 
2862 	if (fmod_ret->nr_nodes) {
2863 		/*
2864 		 * retval = 0;
2865 		 */
2866 
2867 		/* xc retval_off(8,%r15),retval_off(%r15) */
2868 		_EMIT6(0xd707f000 | tjit->retval_off,
2869 		       0xf000 | tjit->retval_off);
2870 
2871 		for (i = 0; i < fmod_ret->nr_nodes; i++) {
2872 			if (invoke_bpf_prog(tjit, m, fmod_ret->nodes[i], true))
2873 				return -EINVAL;
2874 
2875 			/*
2876 			 * if (retval)
2877 			 *         goto do_fexit;
2878 			 */
2879 
2880 			/* ltg %r0,retval_off(%r15) */
2881 			EMIT6_DISP_LH(0xe3000000, 0x0002, REG_0, REG_0, REG_15,
2882 				      tjit->retval_off);
2883 			/* brcl 7,do_fexit */
2884 			EMIT6_PCREL_RILC(0xc0040000, 7, tjit->do_fexit);
2885 		}
2886 	}
2887 
2888 	if (flags & BPF_TRAMP_F_CALL_ORIG) {
2889 		/*
2890 		 * retval = func_addr(args);
2891 		 */
2892 
2893 		/* lmg %r2,%rN,reg_args_off(%r15) */
2894 		if (nr_reg_args)
2895 			EMIT6_DISP_LH(0xeb000000, 0x0004, REG_2,
2896 				      REG_2 + (nr_reg_args - 1), REG_15,
2897 				      tjit->reg_args_off);
2898 		/* mvc stack_args_off(N,%r15),orig_stack_args_off(%r15) */
2899 		if (nr_stack_args)
2900 			_EMIT6(0xd200f000 |
2901 				       (nr_stack_args * sizeof(u64) - 1) << 16 |
2902 				       tjit->stack_args_off,
2903 			       0xf000 | tjit->orig_stack_args_off);
2904 		/* mvc tail_call_cnt(4,%r15),tccnt_off(%r15) */
2905 		_EMIT6(0xd203f000 | offsetof(struct prog_frame, tail_call_cnt),
2906 		       0xf000 | tjit->tccnt_off);
2907 		if (flags & BPF_TRAMP_F_ORIG_STACK) {
2908 			if (nospec_uses_trampoline())
2909 				/* brasl %r14,__s390_indirect_jump_r8 */
2910 				EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14,
2911 						     __s390_indirect_jump_r8);
2912 			else
2913 				/* basr %r14,%r8 */
2914 				EMIT2(0x0d00, REG_14, REG_8);
2915 		} else {
2916 			/* brasl %r14,func_addr+S390X_PATCH_SIZE */
2917 			EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14,
2918 					     func_addr + S390X_PATCH_SIZE);
2919 		}
2920 		/* stg %r2,retval_off(%r15) */
2921 		EMIT6_DISP_LH(0xe3000000, 0x0024, REG_2, REG_0, REG_15,
2922 			      tjit->retval_off);
2923 		/* mvc tccnt_off(%r15),tail_call_cnt(4,%r15) */
2924 		_EMIT6(0xd203f000 | tjit->tccnt_off,
2925 		       0xf000 | offsetof(struct prog_frame, tail_call_cnt));
2926 
2927 		im->ip_after_call = jit->prg_buf + jit->prg;
2928 
2929 		/*
2930 		 * The following nop will be patched by bpf_tramp_image_put().
2931 		 */
2932 
2933 		/* brcl 0,im->ip_epilogue */
2934 		EMIT6_PCREL_RILC(0xc0040000, 0, (u64)im->ip_epilogue);
2935 	}
2936 
2937 	/* Set the "is_return" flag for fsession. */
2938 	func_meta |= (1ULL << BPF_TRAMP_IS_RETURN_SHIFT);
2939 	if (fsession_cnt)
2940 		emit_store_stack_imm64(jit, REG_W0, tjit->func_meta_off,
2941 				       func_meta);
2942 
2943 	/* do_fexit: */
2944 	tjit->do_fexit = jit->prg;
2945 	if (invoke_bpf(tjit, m, fexit, false, func_meta, cookie_off))
2946 		return -EINVAL;
2947 
2948 	if (flags & BPF_TRAMP_F_CALL_ORIG) {
2949 		im->ip_epilogue = jit->prg_buf + jit->prg;
2950 
2951 		/*
2952 		 * __bpf_tramp_exit(im);
2953 		 */
2954 
2955 		/* %r2 = im */
2956 		load_imm64(jit, REG_2, (u64)im);
2957 		/* brasl %r14,__bpf_tramp_exit */
2958 		EMIT6_PCREL_RILB_PTR(0xc0050000, REG_14, __bpf_tramp_exit);
2959 	}
2960 
2961 	/* lmg %r2,%rN,reg_args_off(%r15) */
2962 	if ((flags & BPF_TRAMP_F_RESTORE_REGS) && nr_reg_args)
2963 		EMIT6_DISP_LH(0xeb000000, 0x0004, REG_2,
2964 			      REG_2 + (nr_reg_args - 1), REG_15,
2965 			      tjit->reg_args_off);
2966 	/* lgr %r1,%r8 */
2967 	if (!(flags & BPF_TRAMP_F_SKIP_FRAME) &&
2968 	    (flags & BPF_TRAMP_F_ORIG_STACK))
2969 		EMIT4(0xb9040000, REG_1, REG_8);
2970 	/* lmg %r7,%r8,r7_r8_off(%r15) */
2971 	EMIT6_DISP_LH(0xeb000000, 0x0004, REG_7, REG_8, REG_15,
2972 		      tjit->r7_r8_off);
2973 	/* lg %r14,r14_off(%r15) */
2974 	EMIT6_DISP_LH(0xe3000000, 0x0004, REG_14, REG_0, REG_15, tjit->r14_off);
2975 	/* lg %r2,retval_off(%r15) */
2976 	if (flags & (BPF_TRAMP_F_CALL_ORIG | BPF_TRAMP_F_RET_FENTRY_RET))
2977 		EMIT6_DISP_LH(0xe3000000, 0x0004, REG_2, REG_0, REG_15,
2978 			      tjit->retval_off);
2979 	/* mvc stack_size+tail_call_cnt(4,%r15),tccnt_off(%r15) */
2980 	_EMIT6(0xd203f000 | (tjit->stack_size +
2981 			     offsetof(struct prog_frame, tail_call_cnt)),
2982 	       0xf000 | tjit->tccnt_off);
2983 	/* aghi %r15,stack_size */
2984 	EMIT4_IMM(0xa70b0000, REG_15, tjit->stack_size);
2985 	if (flags & BPF_TRAMP_F_SKIP_FRAME)
2986 		EMIT_JUMP_REG(14);
2987 	else if (flags & BPF_TRAMP_F_ORIG_STACK)
2988 		EMIT_JUMP_REG(1);
2989 	else
2990 		/* brcl 0xf,func_addr+S390X_PATCH_SIZE */
2991 		EMIT6_PCREL_RILC_PTR(0xc0040000, 0xf,
2992 				     func_addr + S390X_PATCH_SIZE);
2993 	return 0;
2994 }
2995 
arch_bpf_trampoline_size(const struct btf_func_model * m,u32 flags,struct bpf_tramp_nodes * tnodes,void * orig_call)2996 int arch_bpf_trampoline_size(const struct btf_func_model *m, u32 flags,
2997 			     struct bpf_tramp_nodes *tnodes, void *orig_call)
2998 {
2999 	struct bpf_tramp_image im;
3000 	struct bpf_tramp_jit tjit;
3001 	int ret;
3002 
3003 	memset(&tjit, 0, sizeof(tjit));
3004 
3005 	ret = __arch_prepare_bpf_trampoline(&im, &tjit, m, flags,
3006 					    tnodes, orig_call);
3007 
3008 	return ret < 0 ? ret : tjit.common.prg;
3009 }
3010 
arch_prepare_bpf_trampoline(struct bpf_tramp_image * im,void * image,void * image_end,const struct btf_func_model * m,u32 flags,struct bpf_tramp_nodes * tnodes,void * func_addr)3011 int arch_prepare_bpf_trampoline(struct bpf_tramp_image *im, void *image,
3012 				void *image_end, const struct btf_func_model *m,
3013 				u32 flags, struct bpf_tramp_nodes *tnodes,
3014 				void *func_addr)
3015 {
3016 	struct bpf_tramp_jit tjit;
3017 	int ret;
3018 
3019 	/* Compute offsets, check whether the code fits. */
3020 	memset(&tjit, 0, sizeof(tjit));
3021 	ret = __arch_prepare_bpf_trampoline(im, &tjit, m, flags,
3022 					    tnodes, func_addr);
3023 
3024 	if (ret < 0)
3025 		return ret;
3026 	if (tjit.common.prg > (char *)image_end - (char *)image)
3027 		/*
3028 		 * Use the same error code as for exceeding
3029 		 * BPF_MAX_TRAMP_LINKS.
3030 		 */
3031 		return -E2BIG;
3032 
3033 	tjit.common.prg = 0;
3034 	tjit.common.prg_buf = image;
3035 	ret = __arch_prepare_bpf_trampoline(im, &tjit, m, flags,
3036 					    tnodes, func_addr);
3037 
3038 	return ret < 0 ? ret : tjit.common.prg;
3039 }
3040 
bpf_jit_supports_subprog_tailcalls(void)3041 bool bpf_jit_supports_subprog_tailcalls(void)
3042 {
3043 	return true;
3044 }
3045 
bpf_jit_supports_arena(void)3046 bool bpf_jit_supports_arena(void)
3047 {
3048 	return true;
3049 }
3050 
bpf_jit_supports_fsession(void)3051 bool bpf_jit_supports_fsession(void)
3052 {
3053 	return true;
3054 }
3055 
bpf_jit_supports_insn(struct bpf_insn * insn,bool in_arena)3056 bool bpf_jit_supports_insn(struct bpf_insn *insn, bool in_arena)
3057 {
3058 	if (!in_arena)
3059 		return true;
3060 	switch (insn->code) {
3061 	case BPF_LDX | BPF_MEMSX | BPF_B:
3062 	case BPF_LDX | BPF_MEMSX | BPF_H:
3063 	case BPF_LDX | BPF_MEMSX | BPF_W:
3064 		return false;
3065 	}
3066 	return true;
3067 }
3068 
bpf_jit_supports_exceptions(void)3069 bool bpf_jit_supports_exceptions(void)
3070 {
3071 	/*
3072 	 * Exceptions require unwinding support, which is always available,
3073 	 * because the kernel is always built with backchain.
3074 	 */
3075 	return true;
3076 }
3077 
arch_bpf_stack_walk(bool (* consume_fn)(void *,u64,u64,u64),void * cookie)3078 void arch_bpf_stack_walk(bool (*consume_fn)(void *, u64, u64, u64),
3079 			 void *cookie)
3080 {
3081 	unsigned long addr, prev_addr = 0;
3082 	struct unwind_state state;
3083 
3084 	unwind_for_each_frame(&state, NULL, NULL, 0) {
3085 		addr = unwind_get_return_address(&state);
3086 		if (!addr)
3087 			break;
3088 		/*
3089 		 * addr is a return address and state.sp is the value of %r15
3090 		 * at this address. exception_cb needs %r15 at entry to the
3091 		 * function containing addr, so take the next state.sp.
3092 		 *
3093 		 * There is no bp, and the exception_cb prog does not need one
3094 		 * to perform a quasi-longjmp. The common code requires a
3095 		 * non-zero bp, so pass sp there as well.
3096 		 */
3097 		if (prev_addr && !consume_fn(cookie, prev_addr, state.sp,
3098 					     state.sp))
3099 			break;
3100 		prev_addr = addr;
3101 	}
3102 }
3103 
bpf_jit_supports_timed_may_goto(void)3104 bool bpf_jit_supports_timed_may_goto(void)
3105 {
3106 	return true;
3107 }
3108 
bpf_jit_inlines_helper_call(s32 imm)3109 bool bpf_jit_inlines_helper_call(s32 imm)
3110 {
3111 	switch (imm) {
3112 	case BPF_FUNC_get_smp_processor_id:
3113 	case BPF_FUNC_get_current_task:
3114 	case BPF_FUNC_get_current_task_btf:
3115 		return true;
3116 	default:
3117 		return false;
3118 	}
3119 }
3120