1 /*
2 * QEMU Plugin API
3 *
4 * This provides the API that is available to the plugins to interact
5 * with QEMU. We have to be careful not to expose internal details of
6 * how QEMU works so we abstract out things like translation and
7 * instructions to anonymous data types:
8 *
9 * qemu_plugin_tb
10 * qemu_plugin_insn
11 * qemu_plugin_register
12 *
13 * Which can then be passed back into the API to do additional things.
14 * As such all the public functions in here are exported in
15 * qemu-plugin.h.
16 *
17 * The general life-cycle of a plugin is:
18 *
19 * - plugin is loaded, public qemu_plugin_install called
20 * - the install func registers callbacks for events
21 * - usually an atexit_cb is registered to dump info at the end
22 * - when a registered event occurs the plugin is called
23 * - some events pass additional info
24 * - during translation the plugin can decide to instrument any
25 * instruction
26 * - when QEMU exits all the registered atexit callbacks are called
27 *
28 * Copyright (C) 2017, Emilio G. Cota <cota@braap.org>
29 * Copyright (C) 2019, Linaro
30 *
31 * License: GNU GPL, version 2 or later.
32 * See the COPYING file in the top-level directory.
33 *
34 * SPDX-License-Identifier: GPL-2.0-or-later
35 *
36 */
37
38 #include "qemu/osdep.h"
39 #include "qemu/main-loop.h"
40 #include "qemu/plugin.h"
41 #include "qemu/log.h"
42 #include "tcg/tcg.h"
43 #include "exec/gdbstub.h"
44 #include "exec/target_page.h"
45 #include "exec/translation-block.h"
46 #include "exec/translator.h"
47 #include "disas/disas.h"
48 #include "plugin.h"
49
50 /* Uninstall and Reset handlers */
51
qemu_plugin_uninstall(qemu_plugin_id_t id,qemu_plugin_simple_cb_t cb)52 void qemu_plugin_uninstall(qemu_plugin_id_t id, qemu_plugin_simple_cb_t cb)
53 {
54 plugin_reset_uninstall(id, cb, false);
55 }
56
qemu_plugin_reset(qemu_plugin_id_t id,qemu_plugin_simple_cb_t cb)57 void qemu_plugin_reset(qemu_plugin_id_t id, qemu_plugin_simple_cb_t cb)
58 {
59 plugin_reset_uninstall(id, cb, true);
60 }
61
62 /*
63 * Plugin Register Functions
64 *
65 * This allows the plugin to register callbacks for various events
66 * during the translation.
67 */
68
qemu_plugin_register_vcpu_init_cb(qemu_plugin_id_t id,qemu_plugin_vcpu_simple_cb_t cb)69 void qemu_plugin_register_vcpu_init_cb(qemu_plugin_id_t id,
70 qemu_plugin_vcpu_simple_cb_t cb)
71 {
72 plugin_register_cb(id, QEMU_PLUGIN_EV_VCPU_INIT, cb);
73 }
74
qemu_plugin_register_vcpu_exit_cb(qemu_plugin_id_t id,qemu_plugin_vcpu_simple_cb_t cb)75 void qemu_plugin_register_vcpu_exit_cb(qemu_plugin_id_t id,
76 qemu_plugin_vcpu_simple_cb_t cb)
77 {
78 plugin_register_cb(id, QEMU_PLUGIN_EV_VCPU_EXIT, cb);
79 }
80
tb_is_mem_only(void)81 static bool tb_is_mem_only(void)
82 {
83 return tb_cflags(tcg_ctx->gen_tb) & CF_MEMI_ONLY;
84 }
85
qemu_plugin_register_vcpu_tb_exec_cb(struct qemu_plugin_tb * tb,qemu_plugin_vcpu_udata_cb_t cb,enum qemu_plugin_cb_flags flags,void * udata)86 void qemu_plugin_register_vcpu_tb_exec_cb(struct qemu_plugin_tb *tb,
87 qemu_plugin_vcpu_udata_cb_t cb,
88 enum qemu_plugin_cb_flags flags,
89 void *udata)
90 {
91 if (!tb_is_mem_only()) {
92 plugin_register_dyn_cb__udata(&tb->cbs, cb, flags, udata);
93 }
94 }
95
qemu_plugin_register_vcpu_tb_exec_cond_cb(struct qemu_plugin_tb * tb,qemu_plugin_vcpu_udata_cb_t cb,enum qemu_plugin_cb_flags flags,enum qemu_plugin_cond cond,qemu_plugin_u64 entry,uint64_t imm,void * udata)96 void qemu_plugin_register_vcpu_tb_exec_cond_cb(struct qemu_plugin_tb *tb,
97 qemu_plugin_vcpu_udata_cb_t cb,
98 enum qemu_plugin_cb_flags flags,
99 enum qemu_plugin_cond cond,
100 qemu_plugin_u64 entry,
101 uint64_t imm,
102 void *udata)
103 {
104 if (cond == QEMU_PLUGIN_COND_NEVER || tb_is_mem_only()) {
105 return;
106 }
107 if (cond == QEMU_PLUGIN_COND_ALWAYS) {
108 qemu_plugin_register_vcpu_tb_exec_cb(tb, cb, flags, udata);
109 return;
110 }
111 plugin_register_dyn_cond_cb__udata(&tb->cbs, cb, flags,
112 cond, entry, imm, udata);
113 }
114
qemu_plugin_register_vcpu_tb_exec_inline_per_vcpu(struct qemu_plugin_tb * tb,enum qemu_plugin_op op,qemu_plugin_u64 entry,uint64_t imm)115 void qemu_plugin_register_vcpu_tb_exec_inline_per_vcpu(
116 struct qemu_plugin_tb *tb,
117 enum qemu_plugin_op op,
118 qemu_plugin_u64 entry,
119 uint64_t imm)
120 {
121 if (!tb_is_mem_only()) {
122 plugin_register_inline_op_on_entry(&tb->cbs, 0, op, entry, imm);
123 }
124 }
125
qemu_plugin_register_vcpu_insn_exec_cb(struct qemu_plugin_insn * insn,qemu_plugin_vcpu_udata_cb_t cb,enum qemu_plugin_cb_flags flags,void * udata)126 void qemu_plugin_register_vcpu_insn_exec_cb(struct qemu_plugin_insn *insn,
127 qemu_plugin_vcpu_udata_cb_t cb,
128 enum qemu_plugin_cb_flags flags,
129 void *udata)
130 {
131 if (!tb_is_mem_only()) {
132 plugin_register_dyn_cb__udata(&insn->insn_cbs, cb, flags, udata);
133 }
134 }
135
qemu_plugin_register_vcpu_insn_exec_cond_cb(struct qemu_plugin_insn * insn,qemu_plugin_vcpu_udata_cb_t cb,enum qemu_plugin_cb_flags flags,enum qemu_plugin_cond cond,qemu_plugin_u64 entry,uint64_t imm,void * udata)136 void qemu_plugin_register_vcpu_insn_exec_cond_cb(
137 struct qemu_plugin_insn *insn,
138 qemu_plugin_vcpu_udata_cb_t cb,
139 enum qemu_plugin_cb_flags flags,
140 enum qemu_plugin_cond cond,
141 qemu_plugin_u64 entry,
142 uint64_t imm,
143 void *udata)
144 {
145 if (cond == QEMU_PLUGIN_COND_NEVER || tb_is_mem_only()) {
146 return;
147 }
148 if (cond == QEMU_PLUGIN_COND_ALWAYS) {
149 qemu_plugin_register_vcpu_insn_exec_cb(insn, cb, flags, udata);
150 return;
151 }
152 plugin_register_dyn_cond_cb__udata(&insn->insn_cbs, cb, flags,
153 cond, entry, imm, udata);
154 }
155
qemu_plugin_register_vcpu_insn_exec_inline_per_vcpu(struct qemu_plugin_insn * insn,enum qemu_plugin_op op,qemu_plugin_u64 entry,uint64_t imm)156 void qemu_plugin_register_vcpu_insn_exec_inline_per_vcpu(
157 struct qemu_plugin_insn *insn,
158 enum qemu_plugin_op op,
159 qemu_plugin_u64 entry,
160 uint64_t imm)
161 {
162 if (!tb_is_mem_only()) {
163 plugin_register_inline_op_on_entry(&insn->insn_cbs, 0, op, entry, imm);
164 }
165 }
166
167
168 /*
169 * We always plant memory instrumentation because they don't finalise until
170 * after the operation has complete.
171 */
qemu_plugin_register_vcpu_mem_cb(struct qemu_plugin_insn * insn,qemu_plugin_vcpu_mem_cb_t cb,enum qemu_plugin_cb_flags flags,enum qemu_plugin_mem_rw rw,void * udata)172 void qemu_plugin_register_vcpu_mem_cb(struct qemu_plugin_insn *insn,
173 qemu_plugin_vcpu_mem_cb_t cb,
174 enum qemu_plugin_cb_flags flags,
175 enum qemu_plugin_mem_rw rw,
176 void *udata)
177 {
178 plugin_register_vcpu_mem_cb(&insn->mem_cbs, cb, flags, rw, udata);
179 }
180
qemu_plugin_register_vcpu_mem_inline_per_vcpu(struct qemu_plugin_insn * insn,enum qemu_plugin_mem_rw rw,enum qemu_plugin_op op,qemu_plugin_u64 entry,uint64_t imm)181 void qemu_plugin_register_vcpu_mem_inline_per_vcpu(
182 struct qemu_plugin_insn *insn,
183 enum qemu_plugin_mem_rw rw,
184 enum qemu_plugin_op op,
185 qemu_plugin_u64 entry,
186 uint64_t imm)
187 {
188 plugin_register_inline_op_on_entry(&insn->mem_cbs, rw, op, entry, imm);
189 }
190
qemu_plugin_register_vcpu_tb_trans_cb(qemu_plugin_id_t id,qemu_plugin_vcpu_tb_trans_cb_t cb)191 void qemu_plugin_register_vcpu_tb_trans_cb(qemu_plugin_id_t id,
192 qemu_plugin_vcpu_tb_trans_cb_t cb)
193 {
194 plugin_register_cb(id, QEMU_PLUGIN_EV_VCPU_TB_TRANS, cb);
195 }
196
qemu_plugin_register_vcpu_syscall_cb(qemu_plugin_id_t id,qemu_plugin_vcpu_syscall_cb_t cb)197 void qemu_plugin_register_vcpu_syscall_cb(qemu_plugin_id_t id,
198 qemu_plugin_vcpu_syscall_cb_t cb)
199 {
200 plugin_register_cb(id, QEMU_PLUGIN_EV_VCPU_SYSCALL, cb);
201 }
202
203 void
qemu_plugin_register_vcpu_syscall_ret_cb(qemu_plugin_id_t id,qemu_plugin_vcpu_syscall_ret_cb_t cb)204 qemu_plugin_register_vcpu_syscall_ret_cb(qemu_plugin_id_t id,
205 qemu_plugin_vcpu_syscall_ret_cb_t cb)
206 {
207 plugin_register_cb(id, QEMU_PLUGIN_EV_VCPU_SYSCALL_RET, cb);
208 }
209
210 /*
211 * Plugin Queries
212 *
213 * These are queries that the plugin can make to gauge information
214 * from our opaque data types. We do not want to leak internal details
215 * here just information useful to the plugin.
216 */
217
218 /*
219 * Translation block information:
220 *
221 * A plugin can query the virtual address of the start of the block
222 * and the number of instructions in it. It can also get access to
223 * each translated instruction.
224 */
225
qemu_plugin_tb_n_insns(const struct qemu_plugin_tb * tb)226 size_t qemu_plugin_tb_n_insns(const struct qemu_plugin_tb *tb)
227 {
228 return tb->n;
229 }
230
qemu_plugin_tb_vaddr(const struct qemu_plugin_tb * tb)231 uint64_t qemu_plugin_tb_vaddr(const struct qemu_plugin_tb *tb)
232 {
233 const DisasContextBase *db = tcg_ctx->plugin_db;
234 return db->pc_first;
235 }
236
237 struct qemu_plugin_insn *
qemu_plugin_tb_get_insn(const struct qemu_plugin_tb * tb,size_t idx)238 qemu_plugin_tb_get_insn(const struct qemu_plugin_tb *tb, size_t idx)
239 {
240 if (unlikely(idx >= tb->n)) {
241 return NULL;
242 }
243 return g_ptr_array_index(tb->insns, idx);
244 }
245
246 /*
247 * Instruction information
248 *
249 * These queries allow the plugin to retrieve information about each
250 * instruction being translated.
251 */
252
qemu_plugin_insn_data(const struct qemu_plugin_insn * insn,void * dest,size_t len)253 size_t qemu_plugin_insn_data(const struct qemu_plugin_insn *insn,
254 void *dest, size_t len)
255 {
256 const DisasContextBase *db = tcg_ctx->plugin_db;
257
258 len = MIN(len, insn->len);
259 return translator_st(db, dest, insn->vaddr, len) ? len : 0;
260 }
261
qemu_plugin_insn_size(const struct qemu_plugin_insn * insn)262 size_t qemu_plugin_insn_size(const struct qemu_plugin_insn *insn)
263 {
264 return insn->len;
265 }
266
qemu_plugin_insn_vaddr(const struct qemu_plugin_insn * insn)267 uint64_t qemu_plugin_insn_vaddr(const struct qemu_plugin_insn *insn)
268 {
269 return insn->vaddr;
270 }
271
qemu_plugin_insn_haddr(const struct qemu_plugin_insn * insn)272 void *qemu_plugin_insn_haddr(const struct qemu_plugin_insn *insn)
273 {
274 const DisasContextBase *db = tcg_ctx->plugin_db;
275 vaddr page0_last = db->pc_first | ~qemu_target_page_mask();
276
277 if (db->fake_insn) {
278 return NULL;
279 }
280
281 /*
282 * ??? The return value is not intended for use of host memory,
283 * but as a proxy for address space and physical address.
284 * Thus we are only interested in the first byte and do not
285 * care about spanning pages.
286 */
287 if (insn->vaddr <= page0_last) {
288 if (db->host_addr[0] == NULL) {
289 return NULL;
290 }
291 return db->host_addr[0] + insn->vaddr - db->pc_first;
292 } else {
293 if (db->host_addr[1] == NULL) {
294 return NULL;
295 }
296 return db->host_addr[1] + insn->vaddr - (page0_last + 1);
297 }
298 }
299
qemu_plugin_insn_disas(const struct qemu_plugin_insn * insn)300 char *qemu_plugin_insn_disas(const struct qemu_plugin_insn *insn)
301 {
302 return plugin_disas(tcg_ctx->cpu, tcg_ctx->plugin_db,
303 insn->vaddr, insn->len);
304 }
305
qemu_plugin_insn_symbol(const struct qemu_plugin_insn * insn)306 const char *qemu_plugin_insn_symbol(const struct qemu_plugin_insn *insn)
307 {
308 const char *sym = lookup_symbol(insn->vaddr);
309 return sym[0] != 0 ? sym : NULL;
310 }
311
312 /*
313 * The memory queries allow the plugin to query information about a
314 * memory access.
315 */
316
qemu_plugin_mem_size_shift(qemu_plugin_meminfo_t info)317 unsigned qemu_plugin_mem_size_shift(qemu_plugin_meminfo_t info)
318 {
319 MemOp op = get_memop(info);
320 return op & MO_SIZE;
321 }
322
qemu_plugin_mem_is_sign_extended(qemu_plugin_meminfo_t info)323 bool qemu_plugin_mem_is_sign_extended(qemu_plugin_meminfo_t info)
324 {
325 MemOp op = get_memop(info);
326 return op & MO_SIGN;
327 }
328
qemu_plugin_mem_is_big_endian(qemu_plugin_meminfo_t info)329 bool qemu_plugin_mem_is_big_endian(qemu_plugin_meminfo_t info)
330 {
331 MemOp op = get_memop(info);
332 return (op & MO_BSWAP) == MO_BE;
333 }
334
qemu_plugin_mem_is_store(qemu_plugin_meminfo_t info)335 bool qemu_plugin_mem_is_store(qemu_plugin_meminfo_t info)
336 {
337 return get_plugin_meminfo_rw(info) & QEMU_PLUGIN_MEM_W;
338 }
339
qemu_plugin_mem_get_value(qemu_plugin_meminfo_t info)340 qemu_plugin_mem_value qemu_plugin_mem_get_value(qemu_plugin_meminfo_t info)
341 {
342 uint64_t low = current_cpu->neg.plugin_mem_value_low;
343 qemu_plugin_mem_value value;
344
345 switch (qemu_plugin_mem_size_shift(info)) {
346 case 0:
347 value.type = QEMU_PLUGIN_MEM_VALUE_U8;
348 value.data.u8 = (uint8_t)low;
349 break;
350 case 1:
351 value.type = QEMU_PLUGIN_MEM_VALUE_U16;
352 value.data.u16 = (uint16_t)low;
353 break;
354 case 2:
355 value.type = QEMU_PLUGIN_MEM_VALUE_U32;
356 value.data.u32 = (uint32_t)low;
357 break;
358 case 3:
359 value.type = QEMU_PLUGIN_MEM_VALUE_U64;
360 value.data.u64 = low;
361 break;
362 case 4:
363 value.type = QEMU_PLUGIN_MEM_VALUE_U128;
364 value.data.u128.low = low;
365 value.data.u128.high = current_cpu->neg.plugin_mem_value_high;
366 break;
367 default:
368 g_assert_not_reached();
369 }
370 return value;
371 }
372
qemu_plugin_num_vcpus(void)373 int qemu_plugin_num_vcpus(void)
374 {
375 return plugin_num_vcpus();
376 }
377
378 /*
379 * Plugin output
380 */
qemu_plugin_outs(const char * string)381 void qemu_plugin_outs(const char *string)
382 {
383 qemu_log_mask(CPU_LOG_PLUGIN, "%s", string);
384 }
385
qemu_plugin_bool_parse(const char * name,const char * value,bool * ret)386 bool qemu_plugin_bool_parse(const char *name, const char *value, bool *ret)
387 {
388 return name && value && qapi_bool_parse(name, value, ret, NULL);
389 }
390
391 /*
392 * Create register handles.
393 *
394 * We need to create a handle for each register so the plugin
395 * infrastructure can call gdbstub to read a register. They are
396 * currently just a pointer encapsulation of the gdb_reg but in
397 * future may hold internal plugin state so its important plugin
398 * authors are not tempted to treat them as numbers.
399 *
400 * We also construct a result array with those handles and some
401 * ancillary data the plugin might find useful.
402 */
403
create_register_handles(GArray * gdbstub_regs)404 static GArray *create_register_handles(GArray *gdbstub_regs)
405 {
406 GArray *find_data = g_array_new(true, true,
407 sizeof(qemu_plugin_reg_descriptor));
408
409 for (int i = 0; i < gdbstub_regs->len; i++) {
410 GDBRegDesc *grd = &g_array_index(gdbstub_regs, GDBRegDesc, i);
411 qemu_plugin_reg_descriptor desc;
412
413 /* skip "un-named" regs */
414 if (!grd->name) {
415 continue;
416 }
417
418 /* Create a record for the plugin */
419 desc.handle = GINT_TO_POINTER(grd->gdb_reg + 1);
420 desc.name = g_intern_string(grd->name);
421 desc.feature = g_intern_string(grd->feature_name);
422 g_array_append_val(find_data, desc);
423 }
424
425 return find_data;
426 }
427
qemu_plugin_get_registers(void)428 GArray *qemu_plugin_get_registers(void)
429 {
430 g_assert(current_cpu);
431
432 g_autoptr(GArray) regs = gdb_get_register_list(current_cpu);
433 return create_register_handles(regs);
434 }
435
qemu_plugin_read_memory_vaddr(uint64_t addr,GByteArray * data,size_t len)436 bool qemu_plugin_read_memory_vaddr(uint64_t addr, GByteArray *data, size_t len)
437 {
438 g_assert(current_cpu);
439
440 if (len == 0) {
441 return false;
442 }
443
444 g_byte_array_set_size(data, len);
445
446 int result = cpu_memory_rw_debug(current_cpu, addr, data->data,
447 data->len, false);
448
449 if (result < 0) {
450 return false;
451 }
452
453 return true;
454 }
455
qemu_plugin_read_register(struct qemu_plugin_register * reg,GByteArray * buf)456 int qemu_plugin_read_register(struct qemu_plugin_register *reg, GByteArray *buf)
457 {
458 g_assert(current_cpu);
459
460 return gdb_read_register(current_cpu, buf, GPOINTER_TO_INT(reg) - 1);
461 }
462
qemu_plugin_scoreboard_new(size_t element_size)463 struct qemu_plugin_scoreboard *qemu_plugin_scoreboard_new(size_t element_size)
464 {
465 return plugin_scoreboard_new(element_size);
466 }
467
qemu_plugin_scoreboard_free(struct qemu_plugin_scoreboard * score)468 void qemu_plugin_scoreboard_free(struct qemu_plugin_scoreboard *score)
469 {
470 plugin_scoreboard_free(score);
471 }
472
qemu_plugin_scoreboard_find(struct qemu_plugin_scoreboard * score,unsigned int vcpu_index)473 void *qemu_plugin_scoreboard_find(struct qemu_plugin_scoreboard *score,
474 unsigned int vcpu_index)
475 {
476 g_assert(vcpu_index < qemu_plugin_num_vcpus());
477 /* we can't use g_array_index since entry size is not statically known */
478 char *base_ptr = score->data->data;
479 return base_ptr + vcpu_index * g_array_get_element_size(score->data);
480 }
481
plugin_u64_address(qemu_plugin_u64 entry,unsigned int vcpu_index)482 static uint64_t *plugin_u64_address(qemu_plugin_u64 entry,
483 unsigned int vcpu_index)
484 {
485 char *ptr = qemu_plugin_scoreboard_find(entry.score, vcpu_index);
486 return (uint64_t *)(ptr + entry.offset);
487 }
488
qemu_plugin_u64_add(qemu_plugin_u64 entry,unsigned int vcpu_index,uint64_t added)489 void qemu_plugin_u64_add(qemu_plugin_u64 entry, unsigned int vcpu_index,
490 uint64_t added)
491 {
492 *plugin_u64_address(entry, vcpu_index) += added;
493 }
494
qemu_plugin_u64_get(qemu_plugin_u64 entry,unsigned int vcpu_index)495 uint64_t qemu_plugin_u64_get(qemu_plugin_u64 entry,
496 unsigned int vcpu_index)
497 {
498 return *plugin_u64_address(entry, vcpu_index);
499 }
500
qemu_plugin_u64_set(qemu_plugin_u64 entry,unsigned int vcpu_index,uint64_t val)501 void qemu_plugin_u64_set(qemu_plugin_u64 entry, unsigned int vcpu_index,
502 uint64_t val)
503 {
504 *plugin_u64_address(entry, vcpu_index) = val;
505 }
506
qemu_plugin_u64_sum(qemu_plugin_u64 entry)507 uint64_t qemu_plugin_u64_sum(qemu_plugin_u64 entry)
508 {
509 uint64_t total = 0;
510 for (int i = 0, n = qemu_plugin_num_vcpus(); i < n; ++i) {
511 total += qemu_plugin_u64_get(entry, i);
512 }
513 return total;
514 }
515
516