xref: /linux/tools/lib/bpf/usdt.c (revision 5a8cd539ac19f7a68e68e1d25ef9ca2ff55b8500)
1 // SPDX-License-Identifier: (LGPL-2.1 OR BSD-2-Clause)
2 /* Copyright (c) 2022 Meta Platforms, Inc. and affiliates. */
3 #include <ctype.h>
4 #include <stdio.h>
5 #include <stdlib.h>
6 #include <string.h>
7 #include <libelf.h>
8 #include <gelf.h>
9 #include <unistd.h>
10 #include <linux/ptrace.h>
11 #include <linux/kernel.h>
12 
13 /* s8 will be marked as poison while it's a reg of riscv */
14 #if defined(__riscv)
15 #define rv_s8 s8
16 #endif
17 
18 #include "bpf.h"
19 #include "libbpf.h"
20 #include "libbpf_common.h"
21 #include "libbpf_internal.h"
22 #include "hashmap.h"
23 
24 /* libbpf's USDT support consists of BPF-side state/code and user-space
25  * state/code working together in concert. BPF-side parts are defined in
26  * usdt.bpf.h header library. User-space state is encapsulated by struct
27  * usdt_manager and all the supporting code centered around usdt_manager.
28  *
29  * usdt.bpf.h defines two BPF maps that usdt_manager expects: USDT spec map
30  * and IP-to-spec-ID map, which is auxiliary map necessary for kernels that
31  * don't support BPF cookie (see below). These two maps are implicitly
32  * embedded into user's end BPF object file when user's code included
33  * usdt.bpf.h. This means that libbpf doesn't do anything special to create
34  * these USDT support maps. They are created by normal libbpf logic of
35  * instantiating BPF maps when opening and loading BPF object.
36  *
37  * As such, libbpf is basically unaware of the need to do anything
38  * USDT-related until the very first call to bpf_program__attach_usdt(), which
39  * can be called by user explicitly or happen automatically during skeleton
40  * attach (or, equivalently, through generic bpf_program__attach() call). At
41  * this point, libbpf will instantiate and initialize struct usdt_manager and
42  * store it in bpf_object. USDT manager is per-BPF object construct, as each
43  * independent BPF object might or might not have USDT programs, and thus all
44  * the expected USDT-related state. There is no coordination between two
45  * bpf_object in parts of USDT attachment, they are oblivious of each other's
46  * existence and libbpf is just oblivious, dealing with bpf_object-specific
47  * USDT state.
48  *
49  * Quick crash course on USDTs.
50  *
51  * From user-space application's point of view, USDT is essentially just
52  * a slightly special function call that normally has zero overhead, unless it
53  * is being traced by some external entity (e.g, BPF-based tool). Here's how
54  * a typical application can trigger USDT probe:
55  *
56  * #include <sys/sdt.h>  // provided by systemtap-sdt-devel package
57  * // folly also provide similar functionality in folly/tracing/StaticTracepoint.h
58  *
59  * STAP_PROBE3(my_usdt_provider, my_usdt_probe_name, 123, x, &y);
60  *
61  * USDT is identified by its <provider-name>:<probe-name> pair of names. Each
62  * individual USDT has a fixed number of arguments (3 in the above example)
63  * and specifies values of each argument as if it was a function call.
64  *
65  * USDT call is actually not a function call, but is instead replaced by
66  * a single NOP instruction (thus zero overhead, effectively). But in addition
67  * to that, those USDT macros generate special SHT_NOTE ELF records in
68  * .note.stapsdt ELF section. Here's an example USDT definition as emitted by
69  * `readelf -n <binary>`:
70  *
71  *   stapsdt              0x00000089       NT_STAPSDT (SystemTap probe descriptors)
72  *   Provider: test
73  *   Name: usdt12
74  *   Location: 0x0000000000549df3, Base: 0x00000000008effa4, Semaphore: 0x0000000000a4606e
75  *   Arguments: -4@-1204(%rbp) -4@%edi -8@-1216(%rbp) -8@%r8 -4@$5 -8@%r9 8@%rdx 8@%r10 -4@$-9 -2@%cx -2@%ax -1@%sil
76  *
77  * In this case we have USDT test:usdt12 with 12 arguments.
78  *
79  * Location and base are offsets used to calculate absolute IP address of that
80  * NOP instruction that kernel can replace with an interrupt instruction to
81  * trigger instrumentation code (BPF program for all that we care about).
82  *
83  * Semaphore above is an optional feature. It records an address of a 2-byte
84  * refcount variable (normally in '.probes' ELF section) used for signaling if
85  * there is anything that is attached to USDT. This is useful for user
86  * applications if, for example, they need to prepare some arguments that are
87  * passed only to USDTs and preparation is expensive. By checking if USDT is
88  * "activated", an application can avoid paying those costs unnecessarily.
89  * Recent enough kernel has built-in support for automatically managing this
90  * refcount, which libbpf expects and relies on. If USDT is defined without
91  * associated semaphore, this value will be zero. See selftests for semaphore
92  * examples.
93  *
94  * Arguments is the most interesting part. This USDT specification string is
95  * providing information about all the USDT arguments and their locations. The
96  * part before @ sign defined byte size of the argument (1, 2, 4, or 8) and
97  * whether the argument is signed or unsigned (negative size means signed).
98  * The part after @ sign is assembly-like definition of argument location
99  * (see [0] for more details). Technically, assembler can provide some pretty
100  * advanced definitions, but libbpf is currently supporting three most common
101  * cases:
102  *   1) immediate constant, see 5th and 9th args above (-4@$5 and -4@-9);
103  *   2) register value, e.g., 8@%rdx, which means "unsigned 8-byte integer
104  *      whose value is in register %rdx";
105  *   3) memory dereference addressed by register, e.g., -4@-1204(%rbp), which
106  *      specifies signed 32-bit integer stored at offset -1204 bytes from
107  *      memory address stored in %rbp.
108  *
109  *   [0] https://sourceware.org/systemtap/wiki/UserSpaceProbeImplementation
110  *
111  * During attachment, libbpf parses all the relevant USDT specifications and
112  * prepares `struct usdt_spec` (USDT spec), which is then provided to BPF-side
113  * code through spec map. This allows BPF applications to quickly fetch the
114  * actual value at runtime using a simple BPF-side code.
115  *
116  * With basics out of the way, let's go over less immediately obvious aspects
117  * of supporting USDTs.
118  *
119  * First, there is no special USDT BPF program type. It is actually just
120  * a uprobe BPF program (which for kernel, at least currently, is just a kprobe
121  * program, so BPF_PROG_TYPE_KPROBE program type). With the only difference
122  * that uprobe is usually attached at the function entry, while USDT will
123  * normally be somewhere inside the function. But it should always be
124  * pointing to NOP instruction, which makes such uprobes the fastest uprobe
125  * kind.
126  *
127  * Second, it's important to realize that such STAP_PROBEn(provider, name, ...)
128  * macro invocations can end up being inlined many-many times, depending on
129  * specifics of each individual user application. So single conceptual USDT
130  * (identified by provider:name pair of identifiers) is, generally speaking,
131  * multiple uprobe locations (USDT call sites) in different places in user
132  * application. Further, again due to inlining, each USDT call site might end
133  * up having the same argument #N be located in a different place. In one call
134  * site it could be a constant, in another will end up in a register, and in
135  * yet another could be some other register or even somewhere on the stack.
136  *
137  * As such, "attaching to USDT" means (in general case) attaching the same
138  * uprobe BPF program to multiple target locations in user application, each
139  * potentially having a completely different USDT spec associated with it.
140  * To wire all this up together libbpf allocates a unique integer spec ID for
141  * each unique USDT spec. Spec IDs are allocated as sequential small integers
142  * so that they can be used as keys in array BPF map (for performance reasons).
143  * Spec ID allocation and accounting is big part of what usdt_manager is
144  * about. This state has to be maintained per-BPF object and coordinate
145  * between different USDT attachments within the same BPF object.
146  *
147  * Spec ID is the key in spec BPF map, value is the actual USDT spec layed out
148  * as struct usdt_spec. Each invocation of BPF program at runtime needs to
149  * know its associated spec ID. It gets it either through BPF cookie, which
150  * libbpf sets to spec ID during attach time, or, if kernel is too old to
151  * support BPF cookie, through IP-to-spec-ID map that libbpf maintains in such
152  * case. The latter means that some modes of operation can't be supported
153  * without BPF cookie. Such a mode is attaching to shared library "generically",
154  * without specifying target process. In such case, it's impossible to
155  * calculate absolute IP addresses for IP-to-spec-ID map, and thus such mode
156  * is not supported without BPF cookie support.
157  *
158  * Note that libbpf is using BPF cookie functionality for its own internal
159  * needs, so user itself can't rely on BPF cookie feature. To that end, libbpf
160  * provides conceptually equivalent USDT cookie support. It's still u64
161  * user-provided value that can be associated with USDT attachment. Note that
162  * this will be the same value for all USDT call sites within the same single
163  * *logical* USDT attachment. This makes sense because to user attaching to
164  * USDT is a single BPF program triggered for singular USDT probe. The fact
165  * that this is done at multiple actual locations is a mostly hidden
166  * implementation details. This USDT cookie value can be fetched with
167  * bpf_usdt_cookie(ctx) API provided by usdt.bpf.h
168  *
169  * Lastly, while single USDT can have tons of USDT call sites, it doesn't
170  * necessarily have that many different USDT specs. It very well might be
171  * that 1000 USDT call sites only need 5 different USDT specs, because all the
172  * arguments are typically contained in a small set of registers or stack
173  * locations. As such, it's wasteful to allocate as many USDT spec IDs as
174  * there are USDT call sites. So libbpf tries to be frugal and performs
175  * on-the-fly deduplication during a single USDT attachment to only allocate
176  * the minimal required amount of unique USDT specs (and thus spec IDs). This
177  * is trivially achieved by using USDT spec string (Arguments string from USDT
178  * note) as a lookup key in a hashmap. USDT spec string uniquely defines
179  * everything about how to fetch USDT arguments, so two USDT call sites
180  * sharing USDT spec string can safely share the same USDT spec and spec ID.
181  * Note, this spec string deduplication is happening only during the same USDT
182  * attachment, so each USDT spec shares the same USDT cookie value. This is
183  * not generally true for other USDT attachments within the same BPF object,
184  * as even if USDT spec string is the same, USDT cookie value can be
185  * different. It was deemed excessive to try to deduplicate across independent
186  * USDT attachments by taking into account USDT spec string *and* USDT cookie
187  * value, which would complicate spec ID accounting significantly for little
188  * gain.
189  */
190 
191 #define USDT_BASE_SEC ".stapsdt.base"
192 #define USDT_SEMA_SEC ".probes"
193 #define USDT_NOTE_SEC  ".note.stapsdt"
194 #define USDT_NOTE_TYPE 3
195 #define USDT_NOTE_NAME "stapsdt"
196 
197 /* should match exactly enum __bpf_usdt_arg_type from usdt.bpf.h */
198 enum usdt_arg_type {
199 	USDT_ARG_CONST,
200 	USDT_ARG_REG,
201 	USDT_ARG_REG_DEREF,
202 	USDT_ARG_SIB,
203 };
204 
205 /* should match exactly struct __bpf_usdt_arg_spec from usdt.bpf.h */
206 struct usdt_arg_spec {
207 	__u64 val_off;
208 #if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
209 	enum usdt_arg_type arg_type: 8;
210 	__u16	idx_reg_off: 12;
211 	__u16	scale_bitshift: 4;
212 	__u8 __reserved: 8;     /* keep reg_off offset stable */
213 #else
214 	__u8 __reserved: 8;     /* keep reg_off offset stable */
215 	__u16	idx_reg_off: 12;
216 	__u16	scale_bitshift: 4;
217 	enum usdt_arg_type arg_type: 8;
218 #endif
219 	short reg_off;
220 	bool arg_signed;
221 	char arg_bitshift;
222 };
223 
224 /* should match BPF_USDT_MAX_ARG_CNT in usdt.bpf.h */
225 #define USDT_MAX_ARG_CNT 12
226 
227 /* should match struct __bpf_usdt_spec from usdt.bpf.h */
228 struct usdt_spec {
229 	struct usdt_arg_spec args[USDT_MAX_ARG_CNT];
230 	__u64 usdt_cookie;
231 	short arg_cnt;
232 };
233 
234 struct usdt_note {
235 	const char *provider;
236 	const char *name;
237 	/* USDT args specification string, e.g.:
238 	 * "-4@%esi -4@-24(%rbp) -4@%ecx 2@%ax 8@%rdx"
239 	 */
240 	const char *args;
241 	long loc_addr;
242 	long base_addr;
243 	long sema_addr;
244 };
245 
246 struct usdt_target {
247 	long abs_ip;
248 	long rel_ip;
249 	long sema_off;
250 	struct usdt_spec spec;
251 	const char *spec_str;
252 };
253 
254 struct usdt_manager {
255 	struct bpf_map *specs_map;
256 	struct bpf_map *ip_to_spec_id_map;
257 
258 	int *free_spec_ids;
259 	size_t free_spec_cnt;
260 	size_t next_free_spec_id;
261 
262 	bool has_bpf_cookie;
263 	bool has_sema_refcnt;
264 	bool has_uprobe_multi;
265 	bool has_uprobe_syscall;
266 };
267 
usdt_manager_new(struct bpf_object * obj)268 struct usdt_manager *usdt_manager_new(struct bpf_object *obj)
269 {
270 	static const char *ref_ctr_sysfs_path = "/sys/bus/event_source/devices/uprobe/format/ref_ctr_offset";
271 	struct usdt_manager *man;
272 	struct bpf_map *specs_map, *ip_to_spec_id_map;
273 
274 	specs_map = bpf_object__find_map_by_name(obj, "__bpf_usdt_specs");
275 	ip_to_spec_id_map = bpf_object__find_map_by_name(obj, "__bpf_usdt_ip_to_spec_id");
276 	if (!specs_map || !ip_to_spec_id_map) {
277 		pr_warn("usdt: failed to find USDT support BPF maps, did you forget to include bpf/usdt.bpf.h?\n");
278 		return ERR_PTR(-ESRCH);
279 	}
280 
281 	man = calloc(1, sizeof(*man));
282 	if (!man)
283 		return ERR_PTR(-ENOMEM);
284 
285 	man->specs_map = specs_map;
286 	man->ip_to_spec_id_map = ip_to_spec_id_map;
287 
288 	/* Detect if BPF cookie is supported for kprobes.
289 	 * We don't need IP-to-ID mapping if we can use BPF cookies.
290 	 * Added in: 7adfc6c9b315 ("bpf: Add bpf_get_attach_cookie() BPF helper to access bpf_cookie value")
291 	 */
292 	man->has_bpf_cookie = kernel_supports(obj, FEAT_BPF_COOKIE);
293 
294 	/* Detect kernel support for automatic refcounting of USDT semaphore.
295 	 * If this is not supported, USDTs with semaphores will not be supported.
296 	 * Added in: a6ca88b241d5 ("trace_uprobe: support reference counter in fd-based uprobe")
297 	 */
298 	man->has_sema_refcnt = faccessat(AT_FDCWD, ref_ctr_sysfs_path, F_OK, AT_EACCESS) == 0;
299 
300 	/*
301 	 * Detect kernel support for uprobe multi link to be used for attaching
302 	 * usdt probes.
303 	 */
304 	man->has_uprobe_multi = kernel_supports(obj, FEAT_UPROBE_MULTI_LINK);
305 
306 	/*
307 	 * Detect kernel support for uprobe() syscall, it's presence means we can
308 	 * take advantage of faster nop10 uprobe handling.
309 	 * Added in: 56101b69c919 ("uprobes/x86: Add uprobe syscall to speed up uprobe")
310 	 */
311 	man->has_uprobe_syscall = kernel_supports(obj, FEAT_UPROBE_SYSCALL);
312 	return man;
313 }
314 
usdt_manager_free(struct usdt_manager * man)315 void usdt_manager_free(struct usdt_manager *man)
316 {
317 	if (IS_ERR_OR_NULL(man))
318 		return;
319 
320 	free(man->free_spec_ids);
321 	free(man);
322 }
323 
sanity_check_usdt_elf(Elf * elf,const char * path)324 static int sanity_check_usdt_elf(Elf *elf, const char *path)
325 {
326 	GElf_Ehdr ehdr;
327 	int endianness;
328 
329 	if (elf_kind(elf) != ELF_K_ELF) {
330 		pr_warn("usdt: unrecognized ELF kind %u for '%s'\n", elf_kind(elf), path);
331 		return -EBADF;
332 	}
333 
334 	switch (gelf_getclass(elf)) {
335 	case ELFCLASS64:
336 		if (sizeof(void *) != 8) {
337 			pr_warn("usdt: attaching to 64-bit ELF binary '%s' is not supported\n", path);
338 			return -EBADF;
339 		}
340 		break;
341 	case ELFCLASS32:
342 		if (sizeof(void *) != 4) {
343 			pr_warn("usdt: attaching to 32-bit ELF binary '%s' is not supported\n", path);
344 			return -EBADF;
345 		}
346 		break;
347 	default:
348 		pr_warn("usdt: unsupported ELF class for '%s'\n", path);
349 		return -EBADF;
350 	}
351 
352 	if (!gelf_getehdr(elf, &ehdr))
353 		return -EINVAL;
354 
355 	if (ehdr.e_type != ET_EXEC && ehdr.e_type != ET_DYN) {
356 		pr_warn("usdt: unsupported type of ELF binary '%s' (%d), only ET_EXEC and ET_DYN are supported\n",
357 			path, ehdr.e_type);
358 		return -EBADF;
359 	}
360 
361 #if __BYTE_ORDER__ == __ORDER_LITTLE_ENDIAN__
362 	endianness = ELFDATA2LSB;
363 #elif __BYTE_ORDER__ == __ORDER_BIG_ENDIAN__
364 	endianness = ELFDATA2MSB;
365 #else
366 # error "Unrecognized __BYTE_ORDER__"
367 #endif
368 	if (endianness != ehdr.e_ident[EI_DATA]) {
369 		pr_warn("usdt: ELF endianness mismatch for '%s'\n", path);
370 		return -EBADF;
371 	}
372 
373 	return 0;
374 }
375 
find_elf_sec_by_name(Elf * elf,const char * sec_name,GElf_Shdr * shdr,Elf_Scn ** scn)376 static int find_elf_sec_by_name(Elf *elf, const char *sec_name, GElf_Shdr *shdr, Elf_Scn **scn)
377 {
378 	Elf_Scn *sec = NULL;
379 	size_t shstrndx;
380 
381 	if (elf_getshdrstrndx(elf, &shstrndx))
382 		return -EINVAL;
383 
384 	/* check if ELF is corrupted and avoid calling elf_strptr if yes */
385 	if (!elf_rawdata(elf_getscn(elf, shstrndx), NULL))
386 		return -EINVAL;
387 
388 	while ((sec = elf_nextscn(elf, sec)) != NULL) {
389 		char *name;
390 
391 		if (!gelf_getshdr(sec, shdr))
392 			return -EINVAL;
393 
394 		name = elf_strptr(elf, shstrndx, shdr->sh_name);
395 		if (name && strcmp(sec_name, name) == 0) {
396 			*scn = sec;
397 			return 0;
398 		}
399 	}
400 
401 	return -ENOENT;
402 }
403 
404 struct elf_seg {
405 	long start;
406 	long end;
407 	long offset;
408 	bool is_exec;
409 };
410 
cmp_elf_segs(const void * _a,const void * _b)411 static int cmp_elf_segs(const void *_a, const void *_b)
412 {
413 	const struct elf_seg *a = _a;
414 	const struct elf_seg *b = _b;
415 
416 	return a->start < b->start ? -1 : 1;
417 }
418 
parse_elf_segs(Elf * elf,const char * path,struct elf_seg ** segs,size_t * seg_cnt)419 static int parse_elf_segs(Elf *elf, const char *path, struct elf_seg **segs, size_t *seg_cnt)
420 {
421 	GElf_Phdr phdr;
422 	size_t n;
423 	int i, err;
424 	struct elf_seg *seg;
425 	void *tmp;
426 
427 	*seg_cnt = 0;
428 
429 	if (elf_getphdrnum(elf, &n)) {
430 		err = -errno;
431 		return err;
432 	}
433 
434 	for (i = 0; i < n; i++) {
435 		if (!gelf_getphdr(elf, i, &phdr)) {
436 			err = -errno;
437 			return err;
438 		}
439 
440 		pr_debug("usdt: discovered PHDR #%d in '%s': vaddr 0x%lx memsz 0x%lx offset 0x%lx type 0x%lx flags 0x%lx\n",
441 			 i, path,
442 			 (unsigned long)phdr.p_vaddr, (unsigned long)phdr.p_memsz, (unsigned long)phdr.p_offset,
443 			 (unsigned long)phdr.p_type, (unsigned long)phdr.p_flags);
444 		if (phdr.p_type != PT_LOAD)
445 			continue;
446 
447 		tmp = libbpf_reallocarray(*segs, *seg_cnt + 1, sizeof(**segs));
448 		if (!tmp)
449 			return -ENOMEM;
450 
451 		*segs = tmp;
452 		seg = *segs + *seg_cnt;
453 		(*seg_cnt)++;
454 
455 		seg->start = phdr.p_vaddr;
456 		seg->end = phdr.p_vaddr + phdr.p_memsz;
457 		seg->offset = phdr.p_offset;
458 		seg->is_exec = phdr.p_flags & PF_X;
459 	}
460 
461 	if (*seg_cnt == 0) {
462 		pr_warn("usdt: failed to find PT_LOAD program headers in '%s'\n", path);
463 		return -ESRCH;
464 	}
465 
466 	qsort(*segs, *seg_cnt, sizeof(**segs), cmp_elf_segs);
467 	return 0;
468 }
469 
parse_vma_segs(int pid,const char * lib_path,struct elf_seg ** segs,size_t * seg_cnt)470 static int parse_vma_segs(int pid, const char *lib_path, struct elf_seg **segs, size_t *seg_cnt)
471 {
472 	char path[PATH_MAX], line[4096], mode[16];
473 	size_t seg_start, seg_end, seg_off;
474 	struct elf_seg *seg;
475 	int tmp_pid, n, i, err;
476 	FILE *f;
477 
478 	*seg_cnt = 0;
479 
480 	/* Handle containerized binaries only accessible from
481 	 * /proc/<pid>/root/<path>. They will be reported as just /<path> in
482 	 * /proc/<pid>/maps.
483 	 */
484 	/* %n is not counted in sscanf() return value, so initialize it. */
485 	n = 0;
486 	if (sscanf(lib_path, "/proc/%d/root%n", &tmp_pid, &n) == 1 &&
487 	    n > 0 && pid == tmp_pid && lib_path[n] == '/') {
488 		libbpf_strlcpy(path, lib_path + n, sizeof(path));
489 		goto proceed;
490 	}
491 
492 	if (!realpath(lib_path, path)) {
493 		pr_warn("usdt: failed to get absolute path of '%s' (err %s), using path as is...\n",
494 			lib_path, errstr(-errno));
495 		libbpf_strlcpy(path, lib_path, sizeof(path));
496 	}
497 
498 proceed:
499 	sprintf(line, "/proc/%d/maps", pid);
500 	f = fopen(line, "re");
501 	if (!f) {
502 		err = -errno;
503 		pr_warn("usdt: failed to open '%s' to get base addr of '%s': %s\n",
504 			line, lib_path, errstr(err));
505 		return err;
506 	}
507 
508 	/* We need to handle lines with no path at the end:
509 	 *
510 	 * 7f5c6f5d1000-7f5c6f5d3000 rw-p 001c7000 08:04 21238613      /usr/lib64/libc-2.17.so
511 	 * 7f5c6f5d3000-7f5c6f5d8000 rw-p 00000000 00:00 0
512 	 * 7f5c6f5d8000-7f5c6f5d9000 r-xp 00000000 103:01 362990598    /data/users/andriin/linux/tools/bpf/usdt/libhello_usdt.so
513 	 *
514 	 * Some VMA names can be longer than the local buffer. Bound the
515 	 * writes, but still consume the rest of the line.
516 	 */
517 	while (fscanf(f, "%zx-%zx %15s %zx %*s %*d%4095[^\n]%*[^\n]\n",
518 		      &seg_start, &seg_end, mode, &seg_off, line) == 5) {
519 		void *tmp;
520 
521 		/* to handle no path case (see above) we need to capture line
522 		 * without skipping any whitespaces. So we need to strip
523 		 * leading whitespaces manually here
524 		 */
525 		i = 0;
526 		while (isblank(line[i]))
527 			i++;
528 		if (strcmp(line + i, path) != 0)
529 			continue;
530 
531 		pr_debug("usdt: discovered segment for lib '%s': addrs %zx-%zx mode %s offset %zx\n",
532 			 path, seg_start, seg_end, mode, seg_off);
533 
534 		/* ignore non-executable sections for shared libs */
535 		if (mode[2] != 'x')
536 			continue;
537 
538 		tmp = libbpf_reallocarray(*segs, *seg_cnt + 1, sizeof(**segs));
539 		if (!tmp) {
540 			err = -ENOMEM;
541 			goto err_out;
542 		}
543 
544 		*segs = tmp;
545 		seg = *segs + *seg_cnt;
546 		*seg_cnt += 1;
547 
548 		seg->start = seg_start;
549 		seg->end = seg_end;
550 		seg->offset = seg_off;
551 		seg->is_exec = true;
552 	}
553 
554 	if (*seg_cnt == 0) {
555 		pr_warn("usdt: failed to find '%s' (resolved to '%s') within PID %d memory mappings\n",
556 			lib_path, path, pid);
557 		err = -ESRCH;
558 		goto err_out;
559 	}
560 
561 	qsort(*segs, *seg_cnt, sizeof(**segs), cmp_elf_segs);
562 	err = 0;
563 err_out:
564 	fclose(f);
565 	return err;
566 }
567 
find_elf_seg(struct elf_seg * segs,size_t seg_cnt,long virtaddr)568 static struct elf_seg *find_elf_seg(struct elf_seg *segs, size_t seg_cnt, long virtaddr)
569 {
570 	struct elf_seg *seg;
571 	int i;
572 
573 	/* for ELF binaries (both executables and shared libraries), we are
574 	 * given virtual address (absolute for executables, relative for
575 	 * libraries) which should match address range of [seg_start, seg_end)
576 	 */
577 	for (i = 0, seg = segs; i < seg_cnt; i++, seg++) {
578 		if (seg->start <= virtaddr && virtaddr < seg->end)
579 			return seg;
580 	}
581 	return NULL;
582 }
583 
find_vma_seg(struct elf_seg * segs,size_t seg_cnt,long offset)584 static struct elf_seg *find_vma_seg(struct elf_seg *segs, size_t seg_cnt, long offset)
585 {
586 	struct elf_seg *seg;
587 	int i;
588 
589 	/* for VMA segments from /proc/<pid>/maps file, provided "address" is
590 	 * actually a file offset, so should be fall within logical
591 	 * offset-based range of [offset_start, offset_end)
592 	 */
593 	for (i = 0, seg = segs; i < seg_cnt; i++, seg++) {
594 		if (seg->offset <= offset && offset < seg->offset + (seg->end - seg->start))
595 			return seg;
596 	}
597 	return NULL;
598 }
599 
600 static int parse_usdt_note(GElf_Nhdr *nhdr, const char *data, size_t name_off,
601 			   size_t desc_off, struct usdt_note *usdt_note);
602 
603 static int parse_usdt_spec(struct usdt_spec *spec, const struct usdt_note *note, __u64 usdt_cookie);
604 
605 #if defined(__x86_64__)
has_nop_combo(int fd,long off)606 static bool has_nop_combo(int fd, long off)
607 {
608 	unsigned char nop_combo[11] = {
609 		0x90, 0x66, 0x2e, 0x0f, 0x1f, 0x84, 0x00, 0x00, 0x00, 0x00, 0x00,
610 	};
611 	unsigned char buf[11];
612 
613 	if (pread(fd, buf, 11, off) != 11)
614 		return false;
615 	return memcmp(buf, nop_combo, 11) == 0;
616 }
617 #else
has_nop_combo(int fd,long off)618 static bool has_nop_combo(int fd, long off)
619 {
620 	return false;
621 }
622 #endif
623 
collect_usdt_targets(struct usdt_manager * man,struct elf_fd * elf_fd,const char * path,pid_t pid,const char * usdt_provider,const char * usdt_name,__u64 usdt_cookie,struct usdt_target ** out_targets,size_t * out_target_cnt)624 static int collect_usdt_targets(struct usdt_manager *man, struct elf_fd *elf_fd, const char *path,
625 				pid_t pid, const char *usdt_provider, const char *usdt_name,
626 				__u64 usdt_cookie, struct usdt_target **out_targets,
627 				size_t *out_target_cnt)
628 {
629 	size_t off, name_off, desc_off, seg_cnt = 0, vma_seg_cnt = 0, target_cnt = 0;
630 	struct elf_seg *segs = NULL, *vma_segs = NULL;
631 	struct usdt_target *targets = NULL, *target;
632 	Elf *elf = elf_fd->elf;
633 	long base_addr = 0;
634 	Elf_Scn *notes_scn, *base_scn;
635 	GElf_Shdr base_shdr, notes_shdr;
636 	GElf_Ehdr ehdr;
637 	GElf_Nhdr nhdr;
638 	Elf_Data *data;
639 	int err;
640 
641 	*out_targets = NULL;
642 	*out_target_cnt = 0;
643 
644 	err = find_elf_sec_by_name(elf, USDT_NOTE_SEC, &notes_shdr, &notes_scn);
645 	if (err) {
646 		pr_warn("usdt: no USDT notes section (%s) found in '%s'\n", USDT_NOTE_SEC, path);
647 		return err;
648 	}
649 
650 	if (notes_shdr.sh_type != SHT_NOTE || !gelf_getehdr(elf, &ehdr)) {
651 		pr_warn("usdt: invalid USDT notes section (%s) in '%s'\n", USDT_NOTE_SEC, path);
652 		return -EINVAL;
653 	}
654 
655 	err = parse_elf_segs(elf, path, &segs, &seg_cnt);
656 	if (err) {
657 		pr_warn("usdt: failed to process ELF program segments for '%s': %s\n",
658 			path, errstr(err));
659 		goto err_out;
660 	}
661 
662 	/* .stapsdt.base ELF section is optional, but is used for prelink
663 	 * offset compensation (see a big comment further below)
664 	 */
665 	if (find_elf_sec_by_name(elf, USDT_BASE_SEC, &base_shdr, &base_scn) == 0)
666 		base_addr = base_shdr.sh_addr;
667 
668 	data = elf_getdata(notes_scn, 0);
669 	off = 0;
670 	while ((off = gelf_getnote(data, off, &nhdr, &name_off, &desc_off)) > 0) {
671 		long usdt_abs_ip, usdt_rel_ip, usdt_sema_off = 0;
672 		struct usdt_note note;
673 		struct elf_seg *seg = NULL;
674 		void *tmp;
675 
676 		err = parse_usdt_note(&nhdr, data->d_buf, name_off, desc_off, &note);
677 		if (err)
678 			goto err_out;
679 
680 		if (strcmp(note.provider, usdt_provider) != 0 || strcmp(note.name, usdt_name) != 0)
681 			continue;
682 
683 		/* We need to compensate "prelink effect". See [0] for details,
684 		 * relevant parts quoted here:
685 		 *
686 		 * Each SDT probe also expands into a non-allocated ELF note. You can
687 		 * find this by looking at SHT_NOTE sections and decoding the format;
688 		 * see below for details. Because the note is non-allocated, it means
689 		 * there is no runtime cost, and also preserved in both stripped files
690 		 * and .debug files.
691 		 *
692 		 * However, this means that prelink won't adjust the note's contents
693 		 * for address offsets. Instead, this is done via the .stapsdt.base
694 		 * section. This is a special section that is added to the text. We
695 		 * will only ever have one of these sections in a final link and it
696 		 * will only ever be one byte long. Nothing about this section itself
697 		 * matters, we just use it as a marker to detect prelink address
698 		 * adjustments.
699 		 *
700 		 * Each probe note records the link-time address of the .stapsdt.base
701 		 * section alongside the probe PC address. The decoder compares the
702 		 * base address stored in the note with the .stapsdt.base section's
703 		 * sh_addr. Initially these are the same, but the section header will
704 		 * be adjusted by prelink. So the decoder applies the difference to
705 		 * the probe PC address to get the correct prelinked PC address; the
706 		 * same adjustment is applied to the semaphore address, if any.
707 		 *
708 		 *   [0] https://sourceware.org/systemtap/wiki/UserSpaceProbeImplementation
709 		 */
710 		usdt_abs_ip = note.loc_addr;
711 		if (base_addr && note.base_addr)
712 			usdt_abs_ip += base_addr - note.base_addr;
713 
714 		/* When attaching uprobes (which is what USDTs basically are)
715 		 * kernel expects file offset to be specified, not a relative
716 		 * virtual address, so we need to translate virtual address to
717 		 * file offset, for both ET_EXEC and ET_DYN binaries.
718 		 */
719 		seg = find_elf_seg(segs, seg_cnt, usdt_abs_ip);
720 		if (!seg) {
721 			err = -ESRCH;
722 			pr_warn("usdt: failed to find ELF program segment for '%s:%s' in '%s' at IP 0x%lx\n",
723 				usdt_provider, usdt_name, path, (unsigned long)usdt_abs_ip);
724 			goto err_out;
725 		}
726 		if (!seg->is_exec) {
727 			err = -ESRCH;
728 			pr_warn("usdt: matched ELF binary '%s' segment [0x%lx, 0x%lx) for '%s:%s' at IP 0x%lx is not executable\n",
729 				path, (unsigned long)seg->start, (unsigned long)seg->end, usdt_provider, usdt_name,
730 				(unsigned long)usdt_abs_ip);
731 			goto err_out;
732 		}
733 		/* translate from virtual address to file offset */
734 		usdt_rel_ip = usdt_abs_ip - seg->start + seg->offset;
735 
736 		if (ehdr.e_type == ET_DYN && !man->has_bpf_cookie) {
737 			/* If we don't have BPF cookie support but need to
738 			 * attach to a shared library, we'll need to know and
739 			 * record absolute addresses of attach points due to
740 			 * the need to lookup USDT spec by absolute IP of
741 			 * triggered uprobe. Doing this resolution is only
742 			 * possible when we have a specific PID of the process
743 			 * that's using specified shared library. BPF cookie
744 			 * removes the absolute address limitation as we don't
745 			 * need to do this lookup (we just use BPF cookie as
746 			 * an index of USDT spec), so for newer kernels with
747 			 * BPF cookie support libbpf supports USDT attachment
748 			 * to shared libraries with no PID filter.
749 			 */
750 			if (pid < 0) {
751 				pr_warn("usdt: attaching to shared libraries without specific PID is not supported on current kernel\n");
752 				err = -ENOTSUP;
753 				goto err_out;
754 			}
755 
756 			/* vma_segs are lazily initialized only if necessary */
757 			if (vma_seg_cnt == 0) {
758 				err = parse_vma_segs(pid, path, &vma_segs, &vma_seg_cnt);
759 				if (err) {
760 					pr_warn("usdt: failed to get memory segments in PID %d for shared library '%s': %s\n",
761 						pid, path, errstr(err));
762 					goto err_out;
763 				}
764 			}
765 
766 			seg = find_vma_seg(vma_segs, vma_seg_cnt, usdt_rel_ip);
767 			if (!seg) {
768 				err = -ESRCH;
769 				pr_warn("usdt: failed to find shared lib memory segment for '%s:%s' in '%s' at relative IP 0x%lx\n",
770 					usdt_provider, usdt_name, path, (unsigned long)usdt_rel_ip);
771 				goto err_out;
772 			}
773 
774 			usdt_abs_ip = seg->start - seg->offset + usdt_rel_ip;
775 		}
776 
777 		pr_debug("usdt: probe for '%s:%s' in %s '%s': addr 0x%lx base 0x%lx (resolved abs_ip 0x%lx rel_ip 0x%lx) args '%s' in segment [0x%lx, 0x%lx) at offset 0x%lx\n",
778 			 usdt_provider, usdt_name, ehdr.e_type == ET_EXEC ? "exec" : "lib ", path,
779 			 (unsigned long)note.loc_addr, (unsigned long)note.base_addr,
780 			 (unsigned long)usdt_abs_ip, (unsigned long)usdt_rel_ip, note.args,
781 			 (unsigned long)(seg ? seg->start : 0), (unsigned long)(seg ? seg->end : 0),
782 			 (unsigned long)(seg ? seg->offset : 0));
783 
784 		/* Adjust semaphore address to be a file offset */
785 		if (note.sema_addr) {
786 			if (!man->has_sema_refcnt) {
787 				pr_warn("usdt: kernel doesn't support USDT semaphore refcounting for '%s:%s' in '%s'\n",
788 					usdt_provider, usdt_name, path);
789 				err = -ENOTSUP;
790 				goto err_out;
791 			}
792 
793 			seg = find_elf_seg(segs, seg_cnt, note.sema_addr);
794 			if (!seg) {
795 				err = -ESRCH;
796 				pr_warn("usdt: failed to find ELF loadable segment with semaphore of '%s:%s' in '%s' at 0x%lx\n",
797 					usdt_provider, usdt_name, path, (unsigned long)note.sema_addr);
798 				goto err_out;
799 			}
800 			if (seg->is_exec) {
801 				err = -ESRCH;
802 				pr_warn("usdt: matched ELF binary '%s' segment [0x%lx, 0x%lx] for semaphore of '%s:%s' at 0x%lx is executable\n",
803 					path, (unsigned long)seg->start, (unsigned long)seg->end, usdt_provider, usdt_name,
804 					(unsigned long)note.sema_addr);
805 				goto err_out;
806 			}
807 
808 			usdt_sema_off = note.sema_addr - seg->start + seg->offset;
809 
810 			pr_debug("usdt: sema  for '%s:%s' in %s '%s': addr 0x%lx base 0x%lx (resolved 0x%lx) in segment [0x%lx, 0x%lx] at offset 0x%lx\n",
811 				 usdt_provider, usdt_name, ehdr.e_type == ET_EXEC ? "exec" : "lib ",
812 				 path, (unsigned long)note.sema_addr, (unsigned long)note.base_addr, (unsigned long)usdt_sema_off,
813 				 (unsigned long)seg->start, (unsigned long)seg->end, (unsigned long)seg->offset);
814 		}
815 
816 		/* Record adjusted addresses and offsets and parse USDT spec */
817 		tmp = libbpf_reallocarray(targets, target_cnt + 1, sizeof(*targets));
818 		if (!tmp) {
819 			err = -ENOMEM;
820 			goto err_out;
821 		}
822 		targets = tmp;
823 
824 		target = &targets[target_cnt];
825 		memset(target, 0, sizeof(*target));
826 
827 		/*
828 		 * We have uprobe syscall and usdt with nop,nop10 instructions combo,
829 		 * so we can place the uprobe directly on nop10 (+1) and get this probe
830 		 * optimized.
831 		 */
832 		if (man->has_uprobe_syscall && has_nop_combo(elf_fd->fd, usdt_rel_ip)) {
833 			usdt_abs_ip++;
834 			usdt_rel_ip++;
835 		}
836 
837 		target->abs_ip = usdt_abs_ip;
838 		target->rel_ip = usdt_rel_ip;
839 		target->sema_off = usdt_sema_off;
840 
841 		/* notes.args references strings from ELF itself, so they can
842 		 * be referenced safely until elf_end() call
843 		 */
844 		target->spec_str = note.args;
845 
846 		err = parse_usdt_spec(&target->spec, &note, usdt_cookie);
847 		if (err)
848 			goto err_out;
849 
850 		target_cnt++;
851 	}
852 
853 	*out_targets = targets;
854 	*out_target_cnt = target_cnt;
855 	err = target_cnt;
856 
857 err_out:
858 	free(segs);
859 	free(vma_segs);
860 	if (err < 0)
861 		free(targets);
862 	return err;
863 }
864 
865 struct bpf_link_usdt {
866 	struct bpf_link link;
867 
868 	struct usdt_manager *usdt_man;
869 
870 	size_t spec_cnt;
871 	int *spec_ids;
872 
873 	size_t uprobe_cnt;
874 	struct {
875 		long abs_ip;
876 		struct bpf_link *link;
877 	} *uprobes;
878 
879 	struct bpf_link *multi_link;
880 };
881 
bpf_link_usdt_detach(struct bpf_link * link)882 static int bpf_link_usdt_detach(struct bpf_link *link)
883 {
884 	struct bpf_link_usdt *usdt_link = container_of(link, struct bpf_link_usdt, link);
885 	struct usdt_manager *man = usdt_link->usdt_man;
886 	int i;
887 
888 	bpf_link__destroy(usdt_link->multi_link);
889 
890 	/* When having multi_link, uprobe_cnt is 0 */
891 	for (i = 0; i < usdt_link->uprobe_cnt; i++) {
892 		/* detach underlying uprobe link */
893 		bpf_link__destroy(usdt_link->uprobes[i].link);
894 		/* there is no need to update specs map because it will be
895 		 * unconditionally overwritten on subsequent USDT attaches,
896 		 * but if BPF cookies are not used we need to remove entry
897 		 * from ip_to_spec_id map, otherwise we'll run into false
898 		 * conflicting IP errors
899 		 */
900 		if (!man->has_bpf_cookie) {
901 			/* not much we can do about errors here */
902 			(void)bpf_map_delete_elem(bpf_map__fd(man->ip_to_spec_id_map),
903 						  &usdt_link->uprobes[i].abs_ip);
904 		}
905 	}
906 
907 	/* try to return the list of previously used spec IDs to usdt_manager
908 	 * for future reuse for subsequent USDT attaches
909 	 */
910 	if (!man->free_spec_ids) {
911 		/* if there were no free spec IDs yet, just transfer our IDs */
912 		man->free_spec_ids = usdt_link->spec_ids;
913 		man->free_spec_cnt = usdt_link->spec_cnt;
914 		usdt_link->spec_ids = NULL;
915 	} else {
916 		/* otherwise concat IDs */
917 		size_t new_cnt = man->free_spec_cnt + usdt_link->spec_cnt;
918 		int *new_free_ids;
919 
920 		new_free_ids = libbpf_reallocarray(man->free_spec_ids, new_cnt,
921 						   sizeof(*new_free_ids));
922 		/* If we couldn't resize free_spec_ids, we'll just leak
923 		 * a bunch of free IDs; this is very unlikely to happen and if
924 		 * system is so exhausted on memory, it's the least of user's
925 		 * concerns, probably.
926 		 * So just do our best here to return those IDs to usdt_manager.
927 		 * Another edge case when we can legitimately get NULL is when
928 		 * new_cnt is zero, which can happen in some edge cases, so we
929 		 * need to be careful about that.
930 		 */
931 		if (new_free_ids || new_cnt == 0) {
932 			memcpy(new_free_ids + man->free_spec_cnt, usdt_link->spec_ids,
933 			       usdt_link->spec_cnt * sizeof(*usdt_link->spec_ids));
934 			man->free_spec_ids = new_free_ids;
935 			man->free_spec_cnt = new_cnt;
936 		}
937 	}
938 
939 	return 0;
940 }
941 
bpf_link_usdt_dealloc(struct bpf_link * link)942 static void bpf_link_usdt_dealloc(struct bpf_link *link)
943 {
944 	struct bpf_link_usdt *usdt_link = container_of(link, struct bpf_link_usdt, link);
945 
946 	free(usdt_link->spec_ids);
947 	free(usdt_link->uprobes);
948 	free(usdt_link);
949 }
950 
specs_hash_fn(long key,void * ctx)951 static size_t specs_hash_fn(long key, void *ctx)
952 {
953 	return str_hash((char *)key);
954 }
955 
specs_equal_fn(long key1,long key2,void * ctx)956 static bool specs_equal_fn(long key1, long key2, void *ctx)
957 {
958 	return strcmp((char *)key1, (char *)key2) == 0;
959 }
960 
allocate_spec_id(struct usdt_manager * man,struct hashmap * specs_hash,struct bpf_link_usdt * link,struct usdt_target * target,int * spec_id,bool * is_new)961 static int allocate_spec_id(struct usdt_manager *man, struct hashmap *specs_hash,
962 			    struct bpf_link_usdt *link, struct usdt_target *target,
963 			    int *spec_id, bool *is_new)
964 {
965 	long tmp;
966 	void *new_ids;
967 	int err;
968 
969 	/* check if we already allocated spec ID for this spec string */
970 	if (hashmap__find(specs_hash, target->spec_str, &tmp)) {
971 		*spec_id = tmp;
972 		*is_new = false;
973 		return 0;
974 	}
975 
976 	/* otherwise it's a new ID that needs to be set up in specs map and
977 	 * returned back to usdt_manager when USDT link is detached
978 	 */
979 	new_ids = libbpf_reallocarray(link->spec_ids, link->spec_cnt + 1, sizeof(*link->spec_ids));
980 	if (!new_ids)
981 		return -ENOMEM;
982 	link->spec_ids = new_ids;
983 
984 	/* get next free spec ID, giving preference to free list, if not empty */
985 	if (man->free_spec_cnt) {
986 		*spec_id = man->free_spec_ids[man->free_spec_cnt - 1];
987 
988 		/* cache spec ID for current spec string for future lookups */
989 		err = hashmap__add(specs_hash, target->spec_str, *spec_id);
990 		if (err)
991 			 return err;
992 
993 		man->free_spec_cnt--;
994 	} else {
995 		/* don't allocate spec ID bigger than what fits in specs map */
996 		if (man->next_free_spec_id >= bpf_map__max_entries(man->specs_map))
997 			return -E2BIG;
998 
999 		*spec_id = man->next_free_spec_id;
1000 
1001 		/* cache spec ID for current spec string for future lookups */
1002 		err = hashmap__add(specs_hash, target->spec_str, *spec_id);
1003 		if (err)
1004 			 return err;
1005 
1006 		man->next_free_spec_id++;
1007 	}
1008 
1009 	/* remember new spec ID in the link for later return back to free list on detach */
1010 	link->spec_ids[link->spec_cnt] = *spec_id;
1011 	link->spec_cnt++;
1012 	*is_new = true;
1013 	return 0;
1014 }
1015 
usdt_manager_attach_usdt(struct usdt_manager * man,const struct bpf_program * prog,pid_t pid,const char * path,const char * usdt_provider,const char * usdt_name,__u64 usdt_cookie)1016 struct bpf_link *usdt_manager_attach_usdt(struct usdt_manager *man, const struct bpf_program *prog,
1017 					  pid_t pid, const char *path,
1018 					  const char *usdt_provider, const char *usdt_name,
1019 					  __u64 usdt_cookie)
1020 {
1021 	unsigned long *offsets = NULL, *ref_ctr_offsets = NULL;
1022 	int i, err, spec_map_fd, ip_map_fd;
1023 	LIBBPF_OPTS(bpf_uprobe_opts, opts);
1024 	struct hashmap *specs_hash = NULL;
1025 	struct bpf_link_usdt *link = NULL;
1026 	struct usdt_target *targets = NULL;
1027 	__u64 *cookies = NULL;
1028 	struct elf_fd elf_fd;
1029 	size_t target_cnt;
1030 
1031 	spec_map_fd = bpf_map__fd(man->specs_map);
1032 	ip_map_fd = bpf_map__fd(man->ip_to_spec_id_map);
1033 
1034 	err = elf_open(path, &elf_fd);
1035 	if (err)
1036 		return libbpf_err_ptr(err);
1037 
1038 	err = sanity_check_usdt_elf(elf_fd.elf, path);
1039 	if (err)
1040 		goto err_out;
1041 
1042 	/* normalize PID filter */
1043 	if (pid < 0)
1044 		pid = -1;
1045 	else if (pid == 0)
1046 		pid = getpid();
1047 
1048 	/* discover USDT in given binary, optionally limiting
1049 	 * activations to a given PID, if pid > 0
1050 	 */
1051 	err = collect_usdt_targets(man, &elf_fd, path, pid, usdt_provider, usdt_name,
1052 				   usdt_cookie, &targets, &target_cnt);
1053 	if (err <= 0) {
1054 		err = (err == 0) ? -ENOENT : err;
1055 		goto err_out;
1056 	}
1057 
1058 	specs_hash = hashmap__new(specs_hash_fn, specs_equal_fn, NULL);
1059 	if (IS_ERR(specs_hash)) {
1060 		err = PTR_ERR(specs_hash);
1061 		goto err_out;
1062 	}
1063 
1064 	link = calloc(1, sizeof(*link));
1065 	if (!link) {
1066 		err = -ENOMEM;
1067 		goto err_out;
1068 	}
1069 
1070 	link->usdt_man = man;
1071 	link->link.detach = &bpf_link_usdt_detach;
1072 	link->link.dealloc = &bpf_link_usdt_dealloc;
1073 
1074 	if (man->has_uprobe_multi) {
1075 		offsets = calloc(target_cnt, sizeof(*offsets));
1076 		cookies = calloc(target_cnt, sizeof(*cookies));
1077 		ref_ctr_offsets = calloc(target_cnt, sizeof(*ref_ctr_offsets));
1078 
1079 		if (!offsets || !ref_ctr_offsets || !cookies) {
1080 			err = -ENOMEM;
1081 			goto err_out;
1082 		}
1083 	} else {
1084 		link->uprobes = calloc(target_cnt, sizeof(*link->uprobes));
1085 		if (!link->uprobes) {
1086 			err = -ENOMEM;
1087 			goto err_out;
1088 		}
1089 	}
1090 
1091 	for (i = 0; i < target_cnt; i++) {
1092 		struct usdt_target *target = &targets[i];
1093 		struct bpf_link *uprobe_link;
1094 		bool is_new;
1095 		int spec_id;
1096 
1097 		/* Spec ID can be either reused or newly allocated. If it is
1098 		 * newly allocated, we'll need to fill out spec map, otherwise
1099 		 * entire spec should be valid and can be just used by a new
1100 		 * uprobe. We reuse spec when USDT arg spec is identical. We
1101 		 * also never share specs between two different USDT
1102 		 * attachments ("links"), so all the reused specs already
1103 		 * share USDT cookie value implicitly.
1104 		 */
1105 		err = allocate_spec_id(man, specs_hash, link, target, &spec_id, &is_new);
1106 		if (err)
1107 			goto err_out;
1108 
1109 		if (is_new && bpf_map_update_elem(spec_map_fd, &spec_id, &target->spec, BPF_ANY)) {
1110 			err = -errno;
1111 			pr_warn("usdt: failed to set USDT spec #%d for '%s:%s' in '%s': %s\n",
1112 				spec_id, usdt_provider, usdt_name, path, errstr(err));
1113 			goto err_out;
1114 		}
1115 		if (!man->has_bpf_cookie &&
1116 		    bpf_map_update_elem(ip_map_fd, &target->abs_ip, &spec_id, BPF_NOEXIST)) {
1117 			err = -errno;
1118 			if (err == -EEXIST) {
1119 				pr_warn("usdt: IP collision detected for spec #%d for '%s:%s' in '%s'\n",
1120 				        spec_id, usdt_provider, usdt_name, path);
1121 			} else {
1122 				pr_warn("usdt: failed to map IP 0x%lx to spec #%d for '%s:%s' in '%s': %s\n",
1123 					(unsigned long)target->abs_ip, spec_id, usdt_provider, usdt_name,
1124 					path, errstr(err));
1125 			}
1126 			goto err_out;
1127 		}
1128 
1129 		if (man->has_uprobe_multi) {
1130 			offsets[i] = target->rel_ip;
1131 			ref_ctr_offsets[i] = target->sema_off;
1132 			cookies[i] = spec_id;
1133 		} else {
1134 			opts.ref_ctr_offset = target->sema_off;
1135 			opts.bpf_cookie = man->has_bpf_cookie ? spec_id : 0;
1136 			uprobe_link = bpf_program__attach_uprobe_opts(prog, pid, path,
1137 								      target->rel_ip, &opts);
1138 			err = libbpf_get_error(uprobe_link);
1139 			if (err) {
1140 				pr_warn("usdt: failed to attach uprobe #%d for '%s:%s' in '%s': %s\n",
1141 					i, usdt_provider, usdt_name, path, errstr(err));
1142 				goto err_out;
1143 			}
1144 
1145 			link->uprobes[i].link = uprobe_link;
1146 			link->uprobes[i].abs_ip = target->abs_ip;
1147 			link->uprobe_cnt++;
1148 		}
1149 	}
1150 
1151 	if (man->has_uprobe_multi) {
1152 		LIBBPF_OPTS(bpf_uprobe_multi_opts, opts_multi,
1153 			.ref_ctr_offsets = ref_ctr_offsets,
1154 			.offsets = offsets,
1155 			.cookies = cookies,
1156 			.cnt = target_cnt,
1157 		);
1158 
1159 		link->multi_link = bpf_program__attach_uprobe_multi(prog, pid, path,
1160 								    NULL, &opts_multi);
1161 		if (!link->multi_link) {
1162 			err = -errno;
1163 			pr_warn("usdt: failed to attach uprobe multi for '%s:%s' in '%s': %s\n",
1164 				usdt_provider, usdt_name, path, errstr(err));
1165 			goto err_out;
1166 		}
1167 
1168 		free(offsets);
1169 		free(ref_ctr_offsets);
1170 		free(cookies);
1171 	}
1172 
1173 	free(targets);
1174 	hashmap__free(specs_hash);
1175 	elf_close(&elf_fd);
1176 	return &link->link;
1177 
1178 err_out:
1179 	free(offsets);
1180 	free(ref_ctr_offsets);
1181 	free(cookies);
1182 
1183 	if (link)
1184 		bpf_link__destroy(&link->link);
1185 	free(targets);
1186 	hashmap__free(specs_hash);
1187 	elf_close(&elf_fd);
1188 	return libbpf_err_ptr(err);
1189 }
1190 
1191 /* Parse out USDT ELF note from '.note.stapsdt' section.
1192  * Logic inspired by perf's code.
1193  */
parse_usdt_note(GElf_Nhdr * nhdr,const char * data,size_t name_off,size_t desc_off,struct usdt_note * note)1194 static int parse_usdt_note(GElf_Nhdr *nhdr, const char *data, size_t name_off, size_t desc_off,
1195 			   struct usdt_note *note)
1196 {
1197 	const char *provider, *name, *args;
1198 	long addrs[3];
1199 	size_t len;
1200 
1201 	/* sanity check USDT note name and type first */
1202 	if (strncmp(data + name_off, USDT_NOTE_NAME, nhdr->n_namesz) != 0)
1203 		return -EINVAL;
1204 	if (nhdr->n_type != USDT_NOTE_TYPE)
1205 		return -EINVAL;
1206 
1207 	/* sanity check USDT note contents ("description" in ELF terminology) */
1208 	len = nhdr->n_descsz;
1209 	data = data + desc_off;
1210 
1211 	/* +3 is the very minimum required to store three empty strings */
1212 	if (len < sizeof(addrs) + 3)
1213 		return -EINVAL;
1214 
1215 	/* get location, base, and semaphore addrs */
1216 	memcpy(&addrs, data, sizeof(addrs));
1217 
1218 	/* parse string fields: provider, name, args */
1219 	provider = data + sizeof(addrs);
1220 
1221 	name = (const char *)memchr(provider, '\0', data + len - provider);
1222 	if (!name) /* non-zero-terminated provider */
1223 		return -EINVAL;
1224 	name++;
1225 	if (name >= data + len || *name == '\0') /* missing or empty name */
1226 		return -EINVAL;
1227 
1228 	args = memchr(name, '\0', data + len - name);
1229 	if (!args) /* non-zero-terminated name */
1230 		return -EINVAL;
1231 	++args;
1232 	if (args >= data + len) /* missing arguments spec */
1233 		return -EINVAL;
1234 
1235 	note->provider = provider;
1236 	note->name = name;
1237 	if (*args == '\0' || *args == ':')
1238 		note->args = "";
1239 	else
1240 		note->args = args;
1241 	note->loc_addr = addrs[0];
1242 	note->base_addr = addrs[1];
1243 	note->sema_addr = addrs[2];
1244 
1245 	return 0;
1246 }
1247 
1248 static int parse_usdt_arg(const char *arg_str, int arg_num, struct usdt_arg_spec *arg, int *arg_sz);
1249 
parse_usdt_spec(struct usdt_spec * spec,const struct usdt_note * note,__u64 usdt_cookie)1250 static int parse_usdt_spec(struct usdt_spec *spec, const struct usdt_note *note, __u64 usdt_cookie)
1251 {
1252 	struct usdt_arg_spec *arg;
1253 	const char *s;
1254 	int arg_sz, len;
1255 
1256 	spec->usdt_cookie = usdt_cookie;
1257 	spec->arg_cnt = 0;
1258 
1259 	s = note->args;
1260 	while (s[0]) {
1261 		if (spec->arg_cnt >= USDT_MAX_ARG_CNT) {
1262 			pr_warn("usdt: too many USDT arguments (> %d) for '%s:%s' with args spec '%s'\n",
1263 				USDT_MAX_ARG_CNT, note->provider, note->name, note->args);
1264 			return -E2BIG;
1265 		}
1266 
1267 		arg = &spec->args[spec->arg_cnt];
1268 		len = parse_usdt_arg(s, spec->arg_cnt, arg, &arg_sz);
1269 		if (len < 0)
1270 			return len;
1271 
1272 		arg->arg_signed = arg_sz < 0;
1273 		if (arg_sz < 0)
1274 			arg_sz = -arg_sz;
1275 
1276 		switch (arg_sz) {
1277 		case 1: case 2: case 4: case 8:
1278 			arg->arg_bitshift = 64 - arg_sz * 8;
1279 			break;
1280 		default:
1281 			pr_warn("usdt: unsupported arg #%d (spec '%s') size: %d\n",
1282 				spec->arg_cnt, s, arg_sz);
1283 			return -EINVAL;
1284 		}
1285 
1286 		s += len;
1287 		spec->arg_cnt++;
1288 	}
1289 
1290 	return 0;
1291 }
1292 
1293 /* Architecture-specific logic for parsing USDT argument location specs */
1294 
1295 #if defined(__x86_64__) || defined(__i386__)
1296 
calc_pt_regs_off(const char * reg_name)1297 static int calc_pt_regs_off(const char *reg_name)
1298 {
1299 	static struct {
1300 		const char *names[4];
1301 		size_t pt_regs_off;
1302 	} reg_map[] = {
1303 #ifdef __x86_64__
1304 #define reg_off(reg64, reg32) offsetof(struct pt_regs, reg64)
1305 #else
1306 #define reg_off(reg64, reg32) offsetof(struct pt_regs, reg32)
1307 #endif
1308 		{ {"rip", "eip", "", ""}, reg_off(rip, eip) },
1309 		{ {"rax", "eax", "ax", "al"}, reg_off(rax, eax) },
1310 		{ {"rbx", "ebx", "bx", "bl"}, reg_off(rbx, ebx) },
1311 		{ {"rcx", "ecx", "cx", "cl"}, reg_off(rcx, ecx) },
1312 		{ {"rdx", "edx", "dx", "dl"}, reg_off(rdx, edx) },
1313 		{ {"rsi", "esi", "si", "sil"}, reg_off(rsi, esi) },
1314 		{ {"rdi", "edi", "di", "dil"}, reg_off(rdi, edi) },
1315 		{ {"rbp", "ebp", "bp", "bpl"}, reg_off(rbp, ebp) },
1316 		{ {"rsp", "esp", "sp", "spl"}, reg_off(rsp, esp) },
1317 #undef reg_off
1318 #ifdef __x86_64__
1319 		{ {"r8", "r8d", "r8w", "r8b"}, offsetof(struct pt_regs, r8) },
1320 		{ {"r9", "r9d", "r9w", "r9b"}, offsetof(struct pt_regs, r9) },
1321 		{ {"r10", "r10d", "r10w", "r10b"}, offsetof(struct pt_regs, r10) },
1322 		{ {"r11", "r11d", "r11w", "r11b"}, offsetof(struct pt_regs, r11) },
1323 		{ {"r12", "r12d", "r12w", "r12b"}, offsetof(struct pt_regs, r12) },
1324 		{ {"r13", "r13d", "r13w", "r13b"}, offsetof(struct pt_regs, r13) },
1325 		{ {"r14", "r14d", "r14w", "r14b"}, offsetof(struct pt_regs, r14) },
1326 		{ {"r15", "r15d", "r15w", "r15b"}, offsetof(struct pt_regs, r15) },
1327 #endif
1328 	};
1329 	int i, j;
1330 
1331 	for (i = 0; i < ARRAY_SIZE(reg_map); i++) {
1332 		for (j = 0; j < ARRAY_SIZE(reg_map[i].names); j++) {
1333 			if (strcmp(reg_name, reg_map[i].names[j]) == 0)
1334 				return reg_map[i].pt_regs_off;
1335 		}
1336 	}
1337 
1338 	pr_warn("usdt: unrecognized register '%s'\n", reg_name);
1339 	return -ENOENT;
1340 }
1341 
parse_usdt_arg(const char * arg_str,int arg_num,struct usdt_arg_spec * arg,int * arg_sz)1342 static int parse_usdt_arg(const char *arg_str, int arg_num, struct usdt_arg_spec *arg, int *arg_sz)
1343 {
1344 	char reg_name[16] = {0}, idx_reg_name[16] = {0};
1345 	int len, reg_off, idx_reg_off, scale = 1;
1346 	long off = 0;
1347 
1348 	if (sscanf(arg_str, " %d @ %ld ( %%%15[^,] , %%%15[^,] , %d ) %n",
1349 		   arg_sz, &off, reg_name, idx_reg_name, &scale, &len) == 5 ||
1350 		sscanf(arg_str, " %d @ ( %%%15[^,] , %%%15[^,] , %d ) %n",
1351 		       arg_sz, reg_name, idx_reg_name, &scale, &len) == 4 ||
1352 		sscanf(arg_str, " %d @ %ld ( %%%15[^,] , %%%15[^)] ) %n",
1353 		       arg_sz, &off, reg_name, idx_reg_name, &len) == 4 ||
1354 		sscanf(arg_str, " %d @ ( %%%15[^,] , %%%15[^)] ) %n",
1355 		       arg_sz, reg_name, idx_reg_name, &len) == 3
1356 		) {
1357 		/*
1358 		 * Scale Index Base case:
1359 		 * 1@-96(%rbp,%rax,8)
1360 		 * 1@(%rbp,%rax,8)
1361 		 * 1@-96(%rbp,%rax)
1362 		 * 1@(%rbp,%rax)
1363 		 */
1364 		arg->arg_type = USDT_ARG_SIB;
1365 		arg->val_off = off;
1366 
1367 		reg_off = calc_pt_regs_off(reg_name);
1368 		if (reg_off < 0)
1369 			return reg_off;
1370 		arg->reg_off = reg_off;
1371 
1372 		idx_reg_off = calc_pt_regs_off(idx_reg_name);
1373 		if (idx_reg_off < 0)
1374 			return idx_reg_off;
1375 		arg->idx_reg_off = idx_reg_off;
1376 
1377 		/* validate scale factor and set fields directly */
1378 		switch (scale) {
1379 		case 1: arg->scale_bitshift = 0; break;
1380 		case 2: arg->scale_bitshift = 1; break;
1381 		case 4: arg->scale_bitshift = 2; break;
1382 		case 8: arg->scale_bitshift = 3; break;
1383 		default:
1384 			pr_warn("usdt: invalid SIB scale %d, expected 1, 2, 4, 8\n", scale);
1385 			return -EINVAL;
1386 		}
1387 	} else if (sscanf(arg_str, " %d @ %ld ( %%%15[^)] ) %n",
1388 				arg_sz, &off, reg_name, &len) == 3) {
1389 		/* Memory dereference case, e.g., -4@-20(%rbp) */
1390 		arg->arg_type = USDT_ARG_REG_DEREF;
1391 		arg->val_off = off;
1392 		reg_off = calc_pt_regs_off(reg_name);
1393 		if (reg_off < 0)
1394 			return reg_off;
1395 		arg->reg_off = reg_off;
1396 	} else if (sscanf(arg_str, " %d @ ( %%%15[^)] ) %n", arg_sz, reg_name, &len) == 2) {
1397 		/* Memory dereference case without offset, e.g., 8@(%rsp) */
1398 		arg->arg_type = USDT_ARG_REG_DEREF;
1399 		arg->val_off = 0;
1400 		reg_off = calc_pt_regs_off(reg_name);
1401 		if (reg_off < 0)
1402 			return reg_off;
1403 		arg->reg_off = reg_off;
1404 	} else if (sscanf(arg_str, " %d @ %%%15s %n", arg_sz, reg_name, &len) == 2) {
1405 		/* Register read case, e.g., -4@%eax */
1406 		arg->arg_type = USDT_ARG_REG;
1407 		/* register read has no memory offset */
1408 		arg->val_off = 0;
1409 
1410 		reg_off = calc_pt_regs_off(reg_name);
1411 		if (reg_off < 0)
1412 			return reg_off;
1413 		arg->reg_off = reg_off;
1414 	} else if (sscanf(arg_str, " %d @ $%ld %n", arg_sz, &off, &len) == 2) {
1415 		/* Constant value case, e.g., 4@$71 */
1416 		arg->arg_type = USDT_ARG_CONST;
1417 		arg->val_off = off;
1418 		arg->reg_off = 0;
1419 	} else {
1420 		pr_warn("usdt: unrecognized arg #%d spec '%s'\n", arg_num, arg_str);
1421 		return -EINVAL;
1422 	}
1423 
1424 	return len;
1425 }
1426 
1427 #elif defined(__s390x__)
1428 
parse_usdt_arg(const char * arg_str,int arg_num,struct usdt_arg_spec * arg,int * arg_sz)1429 static int parse_usdt_arg(const char *arg_str, int arg_num, struct usdt_arg_spec *arg, int *arg_sz)
1430 {
1431 	unsigned int reg;
1432 	int len;
1433 	long off;
1434 
1435 	if (sscanf(arg_str, " %d @ %ld ( %%r%u ) %n", arg_sz, &off, &reg, &len) == 3) {
1436 		/* Memory dereference case, e.g., -2@-28(%r15) */
1437 		arg->arg_type = USDT_ARG_REG_DEREF;
1438 		arg->val_off = off;
1439 		if (reg > 15) {
1440 			pr_warn("usdt: unrecognized register '%%r%u'\n", reg);
1441 			return -EINVAL;
1442 		}
1443 		arg->reg_off = offsetof(user_pt_regs, gprs[reg]);
1444 	} else if (sscanf(arg_str, " %d @ %%r%u %n", arg_sz, &reg, &len) == 2) {
1445 		/* Register read case, e.g., -8@%r0 */
1446 		arg->arg_type = USDT_ARG_REG;
1447 		arg->val_off = 0;
1448 		if (reg > 15) {
1449 			pr_warn("usdt: unrecognized register '%%r%u'\n", reg);
1450 			return -EINVAL;
1451 		}
1452 		arg->reg_off = offsetof(user_pt_regs, gprs[reg]);
1453 	} else if (sscanf(arg_str, " %d @ %ld %n", arg_sz, &off, &len) == 2) {
1454 		/* Constant value case, e.g., 4@71 */
1455 		arg->arg_type = USDT_ARG_CONST;
1456 		arg->val_off = off;
1457 		arg->reg_off = 0;
1458 	} else {
1459 		pr_warn("usdt: unrecognized arg #%d spec '%s'\n", arg_num, arg_str);
1460 		return -EINVAL;
1461 	}
1462 
1463 	return len;
1464 }
1465 
1466 #elif defined(__aarch64__)
1467 
calc_pt_regs_off(const char * reg_name)1468 static int calc_pt_regs_off(const char *reg_name)
1469 {
1470 	int reg_num;
1471 
1472 	if (sscanf(reg_name, "x%d", &reg_num) == 1) {
1473 		if (reg_num >= 0 && reg_num < 31)
1474 			return offsetof(struct user_pt_regs, regs[reg_num]);
1475 	} else if (strcmp(reg_name, "sp") == 0) {
1476 		return offsetof(struct user_pt_regs, sp);
1477 	}
1478 	pr_warn("usdt: unrecognized register '%s'\n", reg_name);
1479 	return -ENOENT;
1480 }
1481 
parse_usdt_arg(const char * arg_str,int arg_num,struct usdt_arg_spec * arg,int * arg_sz)1482 static int parse_usdt_arg(const char *arg_str, int arg_num, struct usdt_arg_spec *arg, int *arg_sz)
1483 {
1484 	char reg_name[16];
1485 	int len, reg_off;
1486 	long off;
1487 
1488 	if (sscanf(arg_str, " %d @ \[ %15[a-z0-9] , %ld ] %n", arg_sz, reg_name, &off, &len) == 3) {
1489 		/* Memory dereference case, e.g., -4@[sp, 96] */
1490 		arg->arg_type = USDT_ARG_REG_DEREF;
1491 		arg->val_off = off;
1492 		reg_off = calc_pt_regs_off(reg_name);
1493 		if (reg_off < 0)
1494 			return reg_off;
1495 		arg->reg_off = reg_off;
1496 	} else if (sscanf(arg_str, " %d @ \[ %15[a-z0-9] ] %n", arg_sz, reg_name, &len) == 2) {
1497 		/* Memory dereference case, e.g., -4@[sp] */
1498 		arg->arg_type = USDT_ARG_REG_DEREF;
1499 		arg->val_off = 0;
1500 		reg_off = calc_pt_regs_off(reg_name);
1501 		if (reg_off < 0)
1502 			return reg_off;
1503 		arg->reg_off = reg_off;
1504 	} else if (sscanf(arg_str, " %d @ %ld %n", arg_sz, &off, &len) == 2) {
1505 		/* Constant value case, e.g., 4@5 */
1506 		arg->arg_type = USDT_ARG_CONST;
1507 		arg->val_off = off;
1508 		arg->reg_off = 0;
1509 	} else if (sscanf(arg_str, " %d @ %15[a-z0-9] %n", arg_sz, reg_name, &len) == 2) {
1510 		/* Register read case, e.g., -8@x4 */
1511 		arg->arg_type = USDT_ARG_REG;
1512 		arg->val_off = 0;
1513 		reg_off = calc_pt_regs_off(reg_name);
1514 		if (reg_off < 0)
1515 			return reg_off;
1516 		arg->reg_off = reg_off;
1517 	} else {
1518 		pr_warn("usdt: unrecognized arg #%d spec '%s'\n", arg_num, arg_str);
1519 		return -EINVAL;
1520 	}
1521 
1522 	return len;
1523 }
1524 
1525 #elif defined(__riscv)
1526 
calc_pt_regs_off(const char * reg_name)1527 static int calc_pt_regs_off(const char *reg_name)
1528 {
1529 	static struct {
1530 		const char *name;
1531 		size_t pt_regs_off;
1532 	} reg_map[] = {
1533 		{ "ra", offsetof(struct user_regs_struct, ra) },
1534 		{ "sp", offsetof(struct user_regs_struct, sp) },
1535 		{ "gp", offsetof(struct user_regs_struct, gp) },
1536 		{ "tp", offsetof(struct user_regs_struct, tp) },
1537 		{ "a0", offsetof(struct user_regs_struct, a0) },
1538 		{ "a1", offsetof(struct user_regs_struct, a1) },
1539 		{ "a2", offsetof(struct user_regs_struct, a2) },
1540 		{ "a3", offsetof(struct user_regs_struct, a3) },
1541 		{ "a4", offsetof(struct user_regs_struct, a4) },
1542 		{ "a5", offsetof(struct user_regs_struct, a5) },
1543 		{ "a6", offsetof(struct user_regs_struct, a6) },
1544 		{ "a7", offsetof(struct user_regs_struct, a7) },
1545 		{ "s0", offsetof(struct user_regs_struct, s0) },
1546 		{ "s1", offsetof(struct user_regs_struct, s1) },
1547 		{ "s2", offsetof(struct user_regs_struct, s2) },
1548 		{ "s3", offsetof(struct user_regs_struct, s3) },
1549 		{ "s4", offsetof(struct user_regs_struct, s4) },
1550 		{ "s5", offsetof(struct user_regs_struct, s5) },
1551 		{ "s6", offsetof(struct user_regs_struct, s6) },
1552 		{ "s7", offsetof(struct user_regs_struct, s7) },
1553 		{ "s8", offsetof(struct user_regs_struct, rv_s8) },
1554 		{ "s9", offsetof(struct user_regs_struct, s9) },
1555 		{ "s10", offsetof(struct user_regs_struct, s10) },
1556 		{ "s11", offsetof(struct user_regs_struct, s11) },
1557 		{ "t0", offsetof(struct user_regs_struct, t0) },
1558 		{ "t1", offsetof(struct user_regs_struct, t1) },
1559 		{ "t2", offsetof(struct user_regs_struct, t2) },
1560 		{ "t3", offsetof(struct user_regs_struct, t3) },
1561 		{ "t4", offsetof(struct user_regs_struct, t4) },
1562 		{ "t5", offsetof(struct user_regs_struct, t5) },
1563 		{ "t6", offsetof(struct user_regs_struct, t6) },
1564 	};
1565 	int i;
1566 
1567 	for (i = 0; i < ARRAY_SIZE(reg_map); i++) {
1568 		if (strcmp(reg_name, reg_map[i].name) == 0)
1569 			return reg_map[i].pt_regs_off;
1570 	}
1571 
1572 	pr_warn("usdt: unrecognized register '%s'\n", reg_name);
1573 	return -ENOENT;
1574 }
1575 
parse_usdt_arg(const char * arg_str,int arg_num,struct usdt_arg_spec * arg,int * arg_sz)1576 static int parse_usdt_arg(const char *arg_str, int arg_num, struct usdt_arg_spec *arg, int *arg_sz)
1577 {
1578 	char reg_name[16];
1579 	int len, reg_off;
1580 	long off;
1581 
1582 	if (sscanf(arg_str, " %d @ %ld ( %15[a-z0-9] ) %n", arg_sz, &off, reg_name, &len) == 3) {
1583 		/* Memory dereference case, e.g., -8@-88(s0) */
1584 		arg->arg_type = USDT_ARG_REG_DEREF;
1585 		arg->val_off = off;
1586 		reg_off = calc_pt_regs_off(reg_name);
1587 		if (reg_off < 0)
1588 			return reg_off;
1589 		arg->reg_off = reg_off;
1590 	} else if (sscanf(arg_str, " %d @ %ld %n", arg_sz, &off, &len) == 2) {
1591 		/* Constant value case, e.g., 4@5 */
1592 		arg->arg_type = USDT_ARG_CONST;
1593 		arg->val_off = off;
1594 		arg->reg_off = 0;
1595 	} else if (sscanf(arg_str, " %d @ %15[a-z0-9] %n", arg_sz, reg_name, &len) == 2) {
1596 		/* Register read case, e.g., -8@a1 */
1597 		arg->arg_type = USDT_ARG_REG;
1598 		arg->val_off = 0;
1599 		reg_off = calc_pt_regs_off(reg_name);
1600 		if (reg_off < 0)
1601 			return reg_off;
1602 		arg->reg_off = reg_off;
1603 	} else {
1604 		pr_warn("usdt: unrecognized arg #%d spec '%s'\n", arg_num, arg_str);
1605 		return -EINVAL;
1606 	}
1607 
1608 	return len;
1609 }
1610 
1611 #elif defined(__arm__)
1612 
calc_pt_regs_off(const char * reg_name)1613 static int calc_pt_regs_off(const char *reg_name)
1614 {
1615 	static struct {
1616 		const char *name;
1617 		size_t pt_regs_off;
1618 	} reg_map[] = {
1619 		{ "r0", offsetof(struct pt_regs, uregs[0]) },
1620 		{ "r1", offsetof(struct pt_regs, uregs[1]) },
1621 		{ "r2", offsetof(struct pt_regs, uregs[2]) },
1622 		{ "r3", offsetof(struct pt_regs, uregs[3]) },
1623 		{ "r4", offsetof(struct pt_regs, uregs[4]) },
1624 		{ "r5", offsetof(struct pt_regs, uregs[5]) },
1625 		{ "r6", offsetof(struct pt_regs, uregs[6]) },
1626 		{ "r7", offsetof(struct pt_regs, uregs[7]) },
1627 		{ "r8", offsetof(struct pt_regs, uregs[8]) },
1628 		{ "r9", offsetof(struct pt_regs, uregs[9]) },
1629 		{ "r10", offsetof(struct pt_regs, uregs[10]) },
1630 		{ "fp", offsetof(struct pt_regs, uregs[11]) },
1631 		{ "ip", offsetof(struct pt_regs, uregs[12]) },
1632 		{ "sp", offsetof(struct pt_regs, uregs[13]) },
1633 		{ "lr", offsetof(struct pt_regs, uregs[14]) },
1634 		{ "pc", offsetof(struct pt_regs, uregs[15]) },
1635 	};
1636 	int i;
1637 
1638 	for (i = 0; i < ARRAY_SIZE(reg_map); i++) {
1639 		if (strcmp(reg_name, reg_map[i].name) == 0)
1640 			return reg_map[i].pt_regs_off;
1641 	}
1642 
1643 	pr_warn("usdt: unrecognized register '%s'\n", reg_name);
1644 	return -ENOENT;
1645 }
1646 
parse_usdt_arg(const char * arg_str,int arg_num,struct usdt_arg_spec * arg,int * arg_sz)1647 static int parse_usdt_arg(const char *arg_str, int arg_num, struct usdt_arg_spec *arg, int *arg_sz)
1648 {
1649 	char reg_name[16];
1650 	int len, reg_off;
1651 	long off;
1652 
1653 	if (sscanf(arg_str, " %d @ \[ %15[a-z0-9] , #%ld ] %n",
1654 		   arg_sz, reg_name, &off, &len) == 3) {
1655 		/* Memory dereference case, e.g., -4@[fp, #96] */
1656 		arg->arg_type = USDT_ARG_REG_DEREF;
1657 		arg->val_off = off;
1658 		reg_off = calc_pt_regs_off(reg_name);
1659 		if (reg_off < 0)
1660 			return reg_off;
1661 		arg->reg_off = reg_off;
1662 	} else if (sscanf(arg_str, " %d @ \[ %15[a-z0-9] ] %n", arg_sz, reg_name, &len) == 2) {
1663 		/* Memory dereference case, e.g., -4@[sp] */
1664 		arg->arg_type = USDT_ARG_REG_DEREF;
1665 		arg->val_off = 0;
1666 		reg_off = calc_pt_regs_off(reg_name);
1667 		if (reg_off < 0)
1668 			return reg_off;
1669 		arg->reg_off = reg_off;
1670 	} else if (sscanf(arg_str, " %d @ #%ld %n", arg_sz, &off, &len) == 2) {
1671 		/* Constant value case, e.g., 4@#5 */
1672 		arg->arg_type = USDT_ARG_CONST;
1673 		arg->val_off = off;
1674 		arg->reg_off = 0;
1675 	} else if (sscanf(arg_str, " %d @ %15[a-z0-9] %n", arg_sz, reg_name, &len) == 2) {
1676 		/* Register read case, e.g., -8@r4 */
1677 		arg->arg_type = USDT_ARG_REG;
1678 		arg->val_off = 0;
1679 		reg_off = calc_pt_regs_off(reg_name);
1680 		if (reg_off < 0)
1681 			return reg_off;
1682 		arg->reg_off = reg_off;
1683 	} else {
1684 		pr_warn("usdt: unrecognized arg #%d spec '%s'\n", arg_num, arg_str);
1685 		return -EINVAL;
1686 	}
1687 
1688 	return len;
1689 }
1690 
1691 #else
1692 
parse_usdt_arg(const char * arg_str,int arg_num,struct usdt_arg_spec * arg,int * arg_sz)1693 static int parse_usdt_arg(const char *arg_str, int arg_num, struct usdt_arg_spec *arg, int *arg_sz)
1694 {
1695 	pr_warn("usdt: libbpf doesn't support USDTs on current architecture\n");
1696 	return -ENOTSUP;
1697 }
1698 
1699 #endif
1700