1 /*
2 * Copyright (C) 2018 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 * http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17 #define LOG_TAG "LibBpfLoader"
18
19 #include <errno.h>
20 #include <linux/bpf.h>
21 #include <linux/elf.h>
22 #include <log/log.h>
23 #include <stdint.h>
24 #include <stdio.h>
25 #include <stdlib.h>
26 #include <string.h>
27 #include <sysexits.h>
28 #include <sys/stat.h>
29 #include <sys/utsname.h>
30 #include <sys/wait.h>
31 #include <unistd.h>
32
33 // This is BpfLoader v0.19
34 #define BPFLOADER_VERSION_MAJOR 0u
35 #define BPFLOADER_VERSION_MINOR 19u
36 #define BPFLOADER_VERSION ((BPFLOADER_VERSION_MAJOR << 16) | BPFLOADER_VERSION_MINOR)
37
38 #include "bpf/BpfUtils.h"
39 #include "bpf/bpf_map_def.h"
40 #include "include/libbpf_android.h"
41
42 #include <bpf/bpf.h>
43
44 #include <cstdlib>
45 #include <fstream>
46 #include <iostream>
47 #include <optional>
48 #include <string>
49 #include <unordered_map>
50 #include <vector>
51
52 #include <android-base/cmsg.h>
53 #include <android-base/file.h>
54 #include <android-base/strings.h>
55 #include <android-base/unique_fd.h>
56
57 #define BPF_FS_PATH "/sys/fs/bpf/"
58
59 // Size of the BPF log buffer for verifier logging
60 #define BPF_LOAD_LOG_SZ 0xfffff
61
62 // Unspecified attach type is 0 which is BPF_CGROUP_INET_INGRESS.
63 #define BPF_ATTACH_TYPE_UNSPEC BPF_CGROUP_INET_INGRESS
64
65 using android::base::StartsWith;
66 using android::base::unique_fd;
67 using std::ifstream;
68 using std::ios;
69 using std::optional;
70 using std::string;
71 using std::vector;
72
73 namespace android {
74 namespace bpf {
75
lookupSelinuxContext(const domain d,const char * const unspecified="")76 constexpr const char* lookupSelinuxContext(const domain d, const char* const unspecified = "") {
77 switch (d) {
78 case domain::unspecified: return unspecified;
79 case domain::platform: return "fs_bpf";
80 case domain::tethering: return "fs_bpf_tethering";
81 case domain::net_private: return "fs_bpf_net_private";
82 case domain::net_shared: return "fs_bpf_net_shared";
83 case domain::netd_readonly: return "fs_bpf_netd_readonly";
84 case domain::netd_shared: return "fs_bpf_netd_shared";
85 case domain::vendor: return "fs_bpf_vendor";
86 default: return "(unrecognized)";
87 }
88 }
89
getDomainFromSelinuxContext(const char s[BPF_SELINUX_CONTEXT_CHAR_ARRAY_SIZE])90 domain getDomainFromSelinuxContext(const char s[BPF_SELINUX_CONTEXT_CHAR_ARRAY_SIZE]) {
91 for (domain d : AllDomains) {
92 // Not sure how to enforce this at compile time, so abort() bpfloader at boot instead
93 if (strlen(lookupSelinuxContext(d)) >= BPF_SELINUX_CONTEXT_CHAR_ARRAY_SIZE) abort();
94 if (!strncmp(s, lookupSelinuxContext(d), BPF_SELINUX_CONTEXT_CHAR_ARRAY_SIZE)) return d;
95 }
96 ALOGW("ignoring unrecognized selinux_context '%32s'", s);
97 // We should return 'unrecognized' here, however: returning unspecified will
98 // result in the system simply using the default context, which in turn
99 // will allow future expansion by adding more restrictive selinux types.
100 // Older bpfloader will simply ignore that, and use the less restrictive default.
101 // This does mean you CANNOT later add a *less* restrictive type than the default.
102 //
103 // Note: we cannot just abort() here as this might be a mainline module shipped optional update
104 return domain::unspecified;
105 }
106
lookupPinSubdir(const domain d,const char * const unspecified="")107 constexpr const char* lookupPinSubdir(const domain d, const char* const unspecified = "") {
108 switch (d) {
109 case domain::unspecified: return unspecified;
110 case domain::platform: return "/";
111 case domain::tethering: return "tethering/";
112 case domain::net_private: return "net_private/";
113 case domain::net_shared: return "net_shared/";
114 case domain::netd_readonly: return "netd_readonly/";
115 case domain::netd_shared: return "netd_shared/";
116 case domain::vendor: return "vendor/";
117 default: return "(unrecognized)";
118 }
119 };
120
getDomainFromPinSubdir(const char s[BPF_PIN_SUBDIR_CHAR_ARRAY_SIZE])121 domain getDomainFromPinSubdir(const char s[BPF_PIN_SUBDIR_CHAR_ARRAY_SIZE]) {
122 for (domain d : AllDomains) {
123 // Not sure how to enforce this at compile time, so abort() bpfloader at boot instead
124 if (strlen(lookupPinSubdir(d)) >= BPF_PIN_SUBDIR_CHAR_ARRAY_SIZE) abort();
125 if (!strncmp(s, lookupPinSubdir(d), BPF_PIN_SUBDIR_CHAR_ARRAY_SIZE)) return d;
126 }
127 ALOGE("unrecognized pin_subdir '%32s'", s);
128 // pin_subdir affects the object's full pathname,
129 // and thus using the default would change the location and thus our code's ability to find it,
130 // hence this seems worth treating as a true error condition.
131 //
132 // Note: we cannot just abort() here as this might be a mainline module shipped optional update
133 // However, our callers will treat this as an error, and stop loading the specific .o,
134 // which will fail bpfloader if the .o is marked critical.
135 return domain::unrecognized;
136 }
137
pathToFilename(const string & path,bool noext=false)138 static string pathToFilename(const string& path, bool noext = false) {
139 vector<string> spath = android::base::Split(path, "/");
140 string ret = spath.back();
141
142 if (noext) {
143 size_t lastindex = ret.find_last_of('.');
144 return ret.substr(0, lastindex);
145 }
146 return ret;
147 }
148
149 typedef struct {
150 const char* name;
151 enum bpf_prog_type type;
152 enum bpf_attach_type expected_attach_type;
153 } sectionType;
154
155 /*
156 * Map section name prefixes to program types, the section name will be:
157 * SECTION(<prefix>/<name-of-program>)
158 * For example:
159 * SECTION("tracepoint/sched_switch_func") where sched_switch_funcs
160 * is the name of the program, and tracepoint is the type.
161 *
162 * However, be aware that you should not be directly using the SECTION() macro.
163 * Instead use the DEFINE_(BPF|XDP)_(PROG|MAP)... & LICENSE/CRITICAL macros.
164 */
165 sectionType sectionNameTypes[] = {
166 {"bind4/", BPF_PROG_TYPE_CGROUP_SOCK_ADDR, BPF_CGROUP_INET4_BIND},
167 {"bind6/", BPF_PROG_TYPE_CGROUP_SOCK_ADDR, BPF_CGROUP_INET6_BIND},
168 {"cgroupskb/", BPF_PROG_TYPE_CGROUP_SKB, BPF_ATTACH_TYPE_UNSPEC},
169 {"cgroupsock/", BPF_PROG_TYPE_CGROUP_SOCK, BPF_ATTACH_TYPE_UNSPEC},
170 {"kprobe/", BPF_PROG_TYPE_KPROBE, BPF_ATTACH_TYPE_UNSPEC},
171 {"perf_event/", BPF_PROG_TYPE_PERF_EVENT, BPF_ATTACH_TYPE_UNSPEC},
172 {"schedact/", BPF_PROG_TYPE_SCHED_ACT, BPF_ATTACH_TYPE_UNSPEC},
173 {"schedcls/", BPF_PROG_TYPE_SCHED_CLS, BPF_ATTACH_TYPE_UNSPEC},
174 {"skfilter/", BPF_PROG_TYPE_SOCKET_FILTER, BPF_ATTACH_TYPE_UNSPEC},
175 {"tracepoint/", BPF_PROG_TYPE_TRACEPOINT, BPF_ATTACH_TYPE_UNSPEC},
176 {"xdp/", BPF_PROG_TYPE_XDP, BPF_ATTACH_TYPE_UNSPEC},
177 };
178
179 typedef struct {
180 enum bpf_prog_type type;
181 enum bpf_attach_type expected_attach_type;
182 string name;
183 vector<char> data;
184 vector<char> rel_data;
185 optional<struct bpf_prog_def> prog_def;
186
187 unique_fd prog_fd; /* fd after loading */
188 } codeSection;
189
readElfHeader(ifstream & elfFile,Elf64_Ehdr * eh)190 static int readElfHeader(ifstream& elfFile, Elf64_Ehdr* eh) {
191 elfFile.seekg(0);
192 if (elfFile.fail()) return -1;
193
194 if (!elfFile.read((char*)eh, sizeof(*eh))) return -1;
195
196 return 0;
197 }
198
199 /* Reads all section header tables into an Shdr array */
readSectionHeadersAll(ifstream & elfFile,vector<Elf64_Shdr> & shTable)200 static int readSectionHeadersAll(ifstream& elfFile, vector<Elf64_Shdr>& shTable) {
201 Elf64_Ehdr eh;
202 int ret = 0;
203
204 ret = readElfHeader(elfFile, &eh);
205 if (ret) return ret;
206
207 elfFile.seekg(eh.e_shoff);
208 if (elfFile.fail()) return -1;
209
210 /* Read shdr table entries */
211 shTable.resize(eh.e_shnum);
212
213 if (!elfFile.read((char*)shTable.data(), (eh.e_shnum * eh.e_shentsize))) return -ENOMEM;
214
215 return 0;
216 }
217
218 /* Read a section by its index - for ex to get sec hdr strtab blob */
readSectionByIdx(ifstream & elfFile,int id,vector<char> & sec)219 static int readSectionByIdx(ifstream& elfFile, int id, vector<char>& sec) {
220 vector<Elf64_Shdr> shTable;
221 int ret = readSectionHeadersAll(elfFile, shTable);
222 if (ret) return ret;
223
224 elfFile.seekg(shTable[id].sh_offset);
225 if (elfFile.fail()) return -1;
226
227 sec.resize(shTable[id].sh_size);
228 if (!elfFile.read(sec.data(), shTable[id].sh_size)) return -1;
229
230 return 0;
231 }
232
233 /* Read whole section header string table */
readSectionHeaderStrtab(ifstream & elfFile,vector<char> & strtab)234 static int readSectionHeaderStrtab(ifstream& elfFile, vector<char>& strtab) {
235 Elf64_Ehdr eh;
236 int ret = readElfHeader(elfFile, &eh);
237 if (ret) return ret;
238
239 ret = readSectionByIdx(elfFile, eh.e_shstrndx, strtab);
240 if (ret) return ret;
241
242 return 0;
243 }
244
245 /* Get name from offset in strtab */
getSymName(ifstream & elfFile,int nameOff,string & name)246 static int getSymName(ifstream& elfFile, int nameOff, string& name) {
247 int ret;
248 vector<char> secStrTab;
249
250 ret = readSectionHeaderStrtab(elfFile, secStrTab);
251 if (ret) return ret;
252
253 if (nameOff >= (int)secStrTab.size()) return -1;
254
255 name = string((char*)secStrTab.data() + nameOff);
256 return 0;
257 }
258
259 /* Reads a full section by name - example to get the GPL license */
readSectionByName(const char * name,ifstream & elfFile,vector<char> & data)260 static int readSectionByName(const char* name, ifstream& elfFile, vector<char>& data) {
261 vector<char> secStrTab;
262 vector<Elf64_Shdr> shTable;
263 int ret;
264
265 ret = readSectionHeadersAll(elfFile, shTable);
266 if (ret) return ret;
267
268 ret = readSectionHeaderStrtab(elfFile, secStrTab);
269 if (ret) return ret;
270
271 for (int i = 0; i < (int)shTable.size(); i++) {
272 char* secname = secStrTab.data() + shTable[i].sh_name;
273 if (!secname) continue;
274
275 if (!strcmp(secname, name)) {
276 vector<char> dataTmp;
277 dataTmp.resize(shTable[i].sh_size);
278
279 elfFile.seekg(shTable[i].sh_offset);
280 if (elfFile.fail()) return -1;
281
282 if (!elfFile.read((char*)dataTmp.data(), shTable[i].sh_size)) return -1;
283
284 data = dataTmp;
285 return 0;
286 }
287 }
288 return -2;
289 }
290
readSectionUint(const char * name,ifstream & elfFile,unsigned int defVal)291 unsigned int readSectionUint(const char* name, ifstream& elfFile, unsigned int defVal) {
292 vector<char> theBytes;
293 int ret = readSectionByName(name, elfFile, theBytes);
294 if (ret) {
295 ALOGD("Couldn't find section %s (defaulting to %u [0x%x]).", name, defVal, defVal);
296 return defVal;
297 } else if (theBytes.size() < sizeof(unsigned int)) {
298 ALOGE("Section %s too short (defaulting to %u [0x%x]).", name, defVal, defVal);
299 return defVal;
300 } else {
301 // decode first 4 bytes as LE32 uint, there will likely be more bytes due to alignment.
302 unsigned int value = static_cast<unsigned char>(theBytes[3]);
303 value <<= 8;
304 value += static_cast<unsigned char>(theBytes[2]);
305 value <<= 8;
306 value += static_cast<unsigned char>(theBytes[1]);
307 value <<= 8;
308 value += static_cast<unsigned char>(theBytes[0]);
309 ALOGI("Section %s value is %u [0x%x]", name, value, value);
310 return value;
311 }
312 }
313
readSectionByType(ifstream & elfFile,int type,vector<char> & data)314 static int readSectionByType(ifstream& elfFile, int type, vector<char>& data) {
315 int ret;
316 vector<Elf64_Shdr> shTable;
317
318 ret = readSectionHeadersAll(elfFile, shTable);
319 if (ret) return ret;
320
321 for (int i = 0; i < (int)shTable.size(); i++) {
322 if ((int)shTable[i].sh_type != type) continue;
323
324 vector<char> dataTmp;
325 dataTmp.resize(shTable[i].sh_size);
326
327 elfFile.seekg(shTable[i].sh_offset);
328 if (elfFile.fail()) return -1;
329
330 if (!elfFile.read((char*)dataTmp.data(), shTable[i].sh_size)) return -1;
331
332 data = dataTmp;
333 return 0;
334 }
335 return -2;
336 }
337
symCompare(Elf64_Sym a,Elf64_Sym b)338 static bool symCompare(Elf64_Sym a, Elf64_Sym b) {
339 return (a.st_value < b.st_value);
340 }
341
readSymTab(ifstream & elfFile,int sort,vector<Elf64_Sym> & data)342 static int readSymTab(ifstream& elfFile, int sort, vector<Elf64_Sym>& data) {
343 int ret, numElems;
344 Elf64_Sym* buf;
345 vector<char> secData;
346
347 ret = readSectionByType(elfFile, SHT_SYMTAB, secData);
348 if (ret) return ret;
349
350 buf = (Elf64_Sym*)secData.data();
351 numElems = (secData.size() / sizeof(Elf64_Sym));
352 data.assign(buf, buf + numElems);
353
354 if (sort) std::sort(data.begin(), data.end(), symCompare);
355 return 0;
356 }
357
getSectionType(string & name)358 static enum bpf_prog_type getSectionType(string& name) {
359 for (auto& snt : sectionNameTypes)
360 if (StartsWith(name, snt.name)) return snt.type;
361
362 // TODO Remove this code when fuse-bpf is upstream and this BPF_PROG_TYPE_FUSE is fixed
363 if (StartsWith(name, "fuse/")) {
364 int result = BPF_PROG_TYPE_UNSPEC;
365 ifstream("/sys/fs/fuse/bpf_prog_type_fuse") >> result;
366 return static_cast<bpf_prog_type>(result);
367 }
368
369 return BPF_PROG_TYPE_UNSPEC;
370 }
371
getExpectedAttachType(string & name)372 static enum bpf_attach_type getExpectedAttachType(string& name) {
373 for (auto& snt : sectionNameTypes)
374 if (StartsWith(name, snt.name)) return snt.expected_attach_type;
375 return BPF_ATTACH_TYPE_UNSPEC;
376 }
377
getSectionName(enum bpf_prog_type type)378 static string getSectionName(enum bpf_prog_type type)
379 {
380 for (auto& snt : sectionNameTypes)
381 if (snt.type == type)
382 return string(snt.name);
383
384 return "UNKNOWN SECTION NAME " + std::to_string(type);
385 }
386
readProgDefs(ifstream & elfFile,vector<struct bpf_prog_def> & pd,size_t sizeOfBpfProgDef)387 static int readProgDefs(ifstream& elfFile, vector<struct bpf_prog_def>& pd,
388 size_t sizeOfBpfProgDef) {
389 vector<char> pdData;
390 int ret = readSectionByName("progs", elfFile, pdData);
391 // Older file formats do not require a 'progs' section at all.
392 // (We should probably figure out whether this is behaviour which is safe to remove now.)
393 if (ret == -2) return 0;
394 if (ret) return ret;
395
396 if (pdData.size() % sizeOfBpfProgDef) {
397 ALOGE("readProgDefs failed due to improper sized progs section, %zu %% %zu != 0",
398 pdData.size(), sizeOfBpfProgDef);
399 return -1;
400 };
401
402 int progCount = pdData.size() / sizeOfBpfProgDef;
403 pd.resize(progCount);
404 size_t trimmedSize = std::min(sizeOfBpfProgDef, sizeof(struct bpf_prog_def));
405
406 const char* dataPtr = pdData.data();
407 for (auto& p : pd) {
408 // First we zero initialize
409 memset(&p, 0, sizeof(p));
410 // Then we set non-zero defaults
411 p.bpfloader_max_ver = DEFAULT_BPFLOADER_MAX_VER; // v1.0
412 // Then we copy over the structure prefix from the ELF file.
413 memcpy(&p, dataPtr, trimmedSize);
414 // Move to next struct in the ELF file
415 dataPtr += sizeOfBpfProgDef;
416 }
417 return 0;
418 }
419
getSectionSymNames(ifstream & elfFile,const string & sectionName,vector<string> & names,optional<unsigned> symbolType=std::nullopt)420 static int getSectionSymNames(ifstream& elfFile, const string& sectionName, vector<string>& names,
421 optional<unsigned> symbolType = std::nullopt) {
422 int ret;
423 string name;
424 vector<Elf64_Sym> symtab;
425 vector<Elf64_Shdr> shTable;
426
427 ret = readSymTab(elfFile, 1 /* sort */, symtab);
428 if (ret) return ret;
429
430 /* Get index of section */
431 ret = readSectionHeadersAll(elfFile, shTable);
432 if (ret) return ret;
433
434 int sec_idx = -1;
435 for (int i = 0; i < (int)shTable.size(); i++) {
436 ret = getSymName(elfFile, shTable[i].sh_name, name);
437 if (ret) return ret;
438
439 if (!name.compare(sectionName)) {
440 sec_idx = i;
441 break;
442 }
443 }
444
445 /* No section found with matching name*/
446 if (sec_idx == -1) {
447 ALOGW("No %s section could be found in elf object", sectionName.c_str());
448 return -1;
449 }
450
451 for (int i = 0; i < (int)symtab.size(); i++) {
452 if (symbolType.has_value() && ELF_ST_TYPE(symtab[i].st_info) != symbolType) continue;
453
454 if (symtab[i].st_shndx == sec_idx) {
455 string s;
456 ret = getSymName(elfFile, symtab[i].st_name, s);
457 if (ret) return ret;
458 names.push_back(s);
459 }
460 }
461
462 return 0;
463 }
464
IsAllowed(bpf_prog_type type,const bpf_prog_type * allowed,size_t numAllowed)465 static bool IsAllowed(bpf_prog_type type, const bpf_prog_type* allowed, size_t numAllowed) {
466 if (allowed == nullptr) return true;
467
468 for (size_t i = 0; i < numAllowed; i++) {
469 if (type == allowed[i]) return true;
470 }
471
472 return false;
473 }
474
475 /* Read a section by its index - for ex to get sec hdr strtab blob */
readCodeSections(ifstream & elfFile,vector<codeSection> & cs,size_t sizeOfBpfProgDef,const bpf_prog_type * allowed,size_t numAllowed)476 static int readCodeSections(ifstream& elfFile, vector<codeSection>& cs, size_t sizeOfBpfProgDef,
477 const bpf_prog_type* allowed, size_t numAllowed) {
478 vector<Elf64_Shdr> shTable;
479 int entries, ret = 0;
480
481 ret = readSectionHeadersAll(elfFile, shTable);
482 if (ret) return ret;
483 entries = shTable.size();
484
485 vector<struct bpf_prog_def> pd;
486 ret = readProgDefs(elfFile, pd, sizeOfBpfProgDef);
487 if (ret) return ret;
488 vector<string> progDefNames;
489 ret = getSectionSymNames(elfFile, "progs", progDefNames);
490 if (!pd.empty() && ret) return ret;
491
492 for (int i = 0; i < entries; i++) {
493 string name;
494 codeSection cs_temp;
495 cs_temp.type = BPF_PROG_TYPE_UNSPEC;
496
497 ret = getSymName(elfFile, shTable[i].sh_name, name);
498 if (ret) return ret;
499
500 enum bpf_prog_type ptype = getSectionType(name);
501
502 if (ptype == BPF_PROG_TYPE_UNSPEC) continue;
503
504 if (!IsAllowed(ptype, allowed, numAllowed)) {
505 ALOGE("Program type %s not permitted here", getSectionName(ptype).c_str());
506 return -1;
507 }
508
509 // This must be done before '/' is replaced with '_'.
510 cs_temp.expected_attach_type = getExpectedAttachType(name);
511
512 string oldName = name;
513
514 // convert all slashes to underscores
515 std::replace(name.begin(), name.end(), '/', '_');
516
517 cs_temp.type = ptype;
518 cs_temp.name = name;
519
520 ret = readSectionByIdx(elfFile, i, cs_temp.data);
521 if (ret) return ret;
522 ALOGD("Loaded code section %d (%s)", i, name.c_str());
523
524 vector<string> csSymNames;
525 ret = getSectionSymNames(elfFile, oldName, csSymNames, STT_FUNC);
526 if (ret || !csSymNames.size()) return ret;
527 for (size_t i = 0; i < progDefNames.size(); ++i) {
528 if (!progDefNames[i].compare(csSymNames[0] + "_def")) {
529 cs_temp.prog_def = pd[i];
530 break;
531 }
532 }
533
534 /* Check for rel section */
535 if (cs_temp.data.size() > 0 && i < entries) {
536 ret = getSymName(elfFile, shTable[i + 1].sh_name, name);
537 if (ret) return ret;
538
539 if (name == (".rel" + oldName)) {
540 ret = readSectionByIdx(elfFile, i + 1, cs_temp.rel_data);
541 if (ret) return ret;
542 ALOGD("Loaded relo section %d (%s)", i, name.c_str());
543 }
544 }
545
546 if (cs_temp.data.size() > 0) {
547 cs.push_back(std::move(cs_temp));
548 ALOGD("Adding section %d to cs list", i);
549 }
550 }
551 return 0;
552 }
553
getSymNameByIdx(ifstream & elfFile,int index,string & name)554 static int getSymNameByIdx(ifstream& elfFile, int index, string& name) {
555 vector<Elf64_Sym> symtab;
556 int ret = 0;
557
558 ret = readSymTab(elfFile, 0 /* !sort */, symtab);
559 if (ret) return ret;
560
561 if (index >= (int)symtab.size()) return -1;
562
563 return getSymName(elfFile, symtab[index].st_name, name);
564 }
565
waitpidTimeout(pid_t pid,int timeoutMs)566 static bool waitpidTimeout(pid_t pid, int timeoutMs) {
567 // Add SIGCHLD to the signal set.
568 sigset_t child_mask, original_mask;
569 sigemptyset(&child_mask);
570 sigaddset(&child_mask, SIGCHLD);
571 if (sigprocmask(SIG_BLOCK, &child_mask, &original_mask) == -1) return false;
572
573 // Wait for a SIGCHLD notification.
574 errno = 0;
575 timespec ts = {0, timeoutMs * 1000000};
576 int wait_result = TEMP_FAILURE_RETRY(sigtimedwait(&child_mask, nullptr, &ts));
577
578 // Restore the original signal set.
579 sigprocmask(SIG_SETMASK, &original_mask, nullptr);
580
581 if (wait_result == -1) return false;
582
583 int status;
584 return TEMP_FAILURE_RETRY(waitpid(pid, &status, WNOHANG)) == pid;
585 }
586
getMapBtfInfo(const char * elfPath,std::unordered_map<string,std::pair<uint32_t,uint32_t>> & btfTypeIds)587 static std::optional<unique_fd> getMapBtfInfo(const char* elfPath,
588 std::unordered_map<string, std::pair<uint32_t, uint32_t>> &btfTypeIds) {
589 unique_fd bpfloaderSocket, btfloaderSocket;
590 if (!android::base::Socketpair(AF_UNIX, SOCK_DGRAM | SOCK_NONBLOCK, 0, &bpfloaderSocket,
591 &btfloaderSocket)) {
592 return {};
593 }
594
595 unique_fd pipeRead, pipeWrite;
596 if (!android::base::Pipe(&pipeRead, &pipeWrite, O_NONBLOCK)) {
597 return {};
598 }
599
600 pid_t pid = fork();
601 if (pid < 0) return {};
602 if (!pid) {
603 bpfloaderSocket.reset();
604 pipeRead.reset();
605 auto socketFdStr = std::to_string(btfloaderSocket.release());
606 auto pipeFdStr = std::to_string(pipeWrite.release());
607
608 if (execl("/system/bin/btfloader", "/system/bin/btfloader", socketFdStr.c_str(),
609 pipeFdStr.c_str(), elfPath, NULL) == -1) {
610 ALOGW("exec btfloader failed with errno %d (%s)", errno, strerror(errno));
611 exit(EX_UNAVAILABLE);
612 }
613 }
614 btfloaderSocket.reset();
615 pipeWrite.reset();
616 if (!waitpidTimeout(pid, 100)) {
617 kill(pid, SIGKILL);
618 return {};
619 }
620
621 unique_fd btfFd;
622 if (android::base::ReceiveFileDescriptors(bpfloaderSocket, nullptr, 0, &btfFd)) return {};
623
624 std::string btfTypeIdStr;
625 if (!android::base::ReadFdToString(pipeRead, &btfTypeIdStr)) return {};
626 if (!btfFd.ok()) return {};
627
628 const auto mapTypeIdLines = android::base::Split(btfTypeIdStr, "\n");
629 for (const auto &line : mapTypeIdLines) {
630 const auto vec = android::base::Split(line, " ");
631 // Splitting on newline will give us one empty line
632 if (vec.size() != 3) continue;
633 const int kTid = atoi(vec[1].c_str());
634 const int vTid = atoi(vec[2].c_str());
635 if (!kTid || !vTid) return {};
636 btfTypeIds[vec[0]] = std::make_pair(kTid, vTid);
637 }
638 return btfFd;
639 }
640
mapMatchesExpectations(unique_fd & fd,string & mapName,struct bpf_map_def & mapDef,enum bpf_map_type type)641 static bool mapMatchesExpectations(unique_fd& fd, string& mapName, struct bpf_map_def& mapDef,
642 enum bpf_map_type type) {
643 // bpfGetFd... family of functions require at minimum a 4.14 kernel,
644 // so on 4.9 kernels just pretend the map matches our expectations.
645 // This isn't really a problem as we only really support 4.14+ anyway...
646 // Additionally we'll get almost equivalent test coverage on newer devices/kernels.
647 // This is because the primary failure mode we're trying to detect here
648 // is either a source code misconfiguration (which is likely kernel independent)
649 // or a newly introduced kernel feature/bug (which is unlikely to get backported to 4.9).
650 if (!isAtLeastKernelVersion(4, 14, 0)) return true;
651
652 // These asserts should *never* trigger, if one of them somehow does,
653 // it probably means a bpf .o file has been changed/replaced at runtime
654 // and bpfloader was manually rerun (normally it should only run *once*
655 // early during the boot process).
656 // Another possibility is that something is misconfigured in the code:
657 // most likely a shared map is declared twice differently.
658 // But such a change should never be checked into the source tree...
659 int fd_type = bpfGetFdMapType(fd);
660 int fd_key_size = bpfGetFdKeySize(fd);
661 int fd_value_size = bpfGetFdValueSize(fd);
662 int fd_max_entries = bpfGetFdMaxEntries(fd);
663 int fd_map_flags = bpfGetFdMapFlags(fd);
664
665 // DEVMAPs are readonly from the bpf program side's point of view, as such
666 // the kernel in kernel/bpf/devmap.c dev_map_init_map() will set the flag
667 int desired_map_flags = (int)mapDef.map_flags;
668 if (type == BPF_MAP_TYPE_DEVMAP || type == BPF_MAP_TYPE_DEVMAP_HASH)
669 desired_map_flags |= BPF_F_RDONLY_PROG;
670
671 // If anything doesn't match, just close the fd - it's of no use anyway.
672 if (fd_type != type) fd.reset();
673 if (fd_key_size != (int)mapDef.key_size) fd.reset();
674 if (fd_value_size != (int)mapDef.value_size) fd.reset();
675 if (fd_max_entries != (int)mapDef.max_entries) fd.reset();
676 if (fd_map_flags != desired_map_flags) fd.reset();
677
678 if (fd.ok()) return true;
679
680 ALOGE("bpf map name %s mismatch: desired/found: "
681 "type:%d/%d key:%u/%d value:%u/%d entries:%u/%d flags:%u/%d",
682 mapName.c_str(), type, fd_type, mapDef.key_size, fd_key_size, mapDef.value_size,
683 fd_value_size, mapDef.max_entries, fd_max_entries, desired_map_flags, fd_map_flags);
684 return false;
685 }
686
createMaps(const char * elfPath,ifstream & elfFile,vector<unique_fd> & mapFds,const char * prefix,const unsigned long long allowedDomainBitmask,const size_t sizeOfBpfMapDef)687 static int createMaps(const char* elfPath, ifstream& elfFile, vector<unique_fd>& mapFds,
688 const char* prefix, const unsigned long long allowedDomainBitmask,
689 const size_t sizeOfBpfMapDef) {
690 int ret;
691 vector<char> mdData, btfData;
692 vector<struct bpf_map_def> md;
693 vector<string> mapNames;
694 std::unordered_map<string, std::pair<uint32_t, uint32_t>> btfTypeIdMap;
695 string fname = pathToFilename(string(elfPath), true);
696
697 ret = readSectionByName("maps", elfFile, mdData);
698 if (ret == -2) return 0; // no maps to read
699 if (ret) return ret;
700
701 if (mdData.size() % sizeOfBpfMapDef) {
702 ALOGE("createMaps failed due to improper sized maps section, %zu %% %zu != 0",
703 mdData.size(), sizeOfBpfMapDef);
704 return -1;
705 };
706
707 int mapCount = mdData.size() / sizeOfBpfMapDef;
708 md.resize(mapCount);
709 size_t trimmedSize = std::min(sizeOfBpfMapDef, sizeof(struct bpf_map_def));
710
711 const char* dataPtr = mdData.data();
712 for (auto& m : md) {
713 // First we zero initialize
714 memset(&m, 0, sizeof(m));
715 // Then we set non-zero defaults
716 m.bpfloader_max_ver = DEFAULT_BPFLOADER_MAX_VER; // v1.0
717 m.max_kver = 0xFFFFFFFFu; // matches KVER_INF from bpf_helpers.h
718 // Then we copy over the structure prefix from the ELF file.
719 memcpy(&m, dataPtr, trimmedSize);
720 // Move to next struct in the ELF file
721 dataPtr += sizeOfBpfMapDef;
722 }
723
724 ret = getSectionSymNames(elfFile, "maps", mapNames);
725 if (ret) return ret;
726
727 unsigned btfMinBpfLoaderVer = readSectionUint("btf_min_bpfloader_ver", elfFile, 0);
728 unsigned btfMinKernelVer = readSectionUint("btf_min_kernel_ver", elfFile, 0);
729 unsigned kvers = kernelVersion();
730
731 std::optional<unique_fd> btfFd;
732 if ((BPFLOADER_VERSION >= btfMinBpfLoaderVer) && (kvers >= btfMinKernelVer) &&
733 (!readSectionByName(".BTF", elfFile, btfData))) {
734 btfFd = getMapBtfInfo(elfPath, btfTypeIdMap);
735 }
736
737 for (int i = 0; i < (int)mapNames.size(); i++) {
738 if (BPFLOADER_VERSION < md[i].bpfloader_min_ver) {
739 ALOGI("skipping map %s which requires bpfloader min ver 0x%05x", mapNames[i].c_str(),
740 md[i].bpfloader_min_ver);
741 mapFds.push_back(unique_fd());
742 continue;
743 }
744
745 if (BPFLOADER_VERSION >= md[i].bpfloader_max_ver) {
746 ALOGI("skipping map %s which requires bpfloader max ver 0x%05x", mapNames[i].c_str(),
747 md[i].bpfloader_max_ver);
748 mapFds.push_back(unique_fd());
749 continue;
750 }
751
752 if (kvers < md[i].min_kver) {
753 ALOGI("skipping map %s which requires kernel version 0x%x >= 0x%x",
754 mapNames[i].c_str(), kvers, md[i].min_kver);
755 mapFds.push_back(unique_fd());
756 continue;
757 }
758
759 if (kvers >= md[i].max_kver) {
760 ALOGI("skipping map %s which requires kernel version 0x%x < 0x%x",
761 mapNames[i].c_str(), kvers, md[i].max_kver);
762 mapFds.push_back(unique_fd());
763 continue;
764 }
765
766 enum bpf_map_type type = md[i].type;
767 if (type == BPF_MAP_TYPE_DEVMAP && !isAtLeastKernelVersion(4, 14, 0)) {
768 // On Linux Kernels older than 4.14 this map type doesn't exist, but it can kind
769 // of be approximated: ARRAY has the same userspace api, though it is not usable
770 // by the same ebpf programs. However, that's okay because the bpf_redirect_map()
771 // helper doesn't exist on 4.9 anyway (so the bpf program would fail to load,
772 // and thus needs to be tagged as 4.14+ either way), so there's nothing useful you
773 // could do with a DEVMAP anyway (that isn't already provided by an ARRAY)...
774 // Hence using an ARRAY instead of a DEVMAP simply makes life easier for userspace.
775 type = BPF_MAP_TYPE_ARRAY;
776 }
777 if (type == BPF_MAP_TYPE_DEVMAP_HASH && !isAtLeastKernelVersion(5, 4, 0)) {
778 // On Linux Kernels older than 5.4 this map type doesn't exist, but it can kind
779 // of be approximated: HASH has the same userspace visible api.
780 // However it cannot be used by ebpf programs in the same way.
781 // Since bpf_redirect_map() only requires 4.14, a program using a DEVMAP_HASH map
782 // would fail to load (due to trying to redirect to a HASH instead of DEVMAP_HASH).
783 // One must thus tag any BPF_MAP_TYPE_DEVMAP_HASH + bpf_redirect_map() using
784 // programs as being 5.4+...
785 type = BPF_MAP_TYPE_HASH;
786 }
787
788 domain selinux_context = getDomainFromSelinuxContext(md[i].selinux_context);
789 if (specified(selinux_context)) {
790 if (!inDomainBitmask(selinux_context, allowedDomainBitmask)) {
791 ALOGE("map %s has invalid selinux_context of %d (allowed bitmask 0x%llx)",
792 mapNames[i].c_str(), selinux_context, allowedDomainBitmask);
793 return -EINVAL;
794 }
795 ALOGI("map %s selinux_context [%32s] -> %d -> '%s' (%s)", mapNames[i].c_str(),
796 md[i].selinux_context, selinux_context, lookupSelinuxContext(selinux_context),
797 lookupPinSubdir(selinux_context));
798 }
799
800 domain pin_subdir = getDomainFromPinSubdir(md[i].pin_subdir);
801 if (unrecognized(pin_subdir)) return -ENOTDIR;
802 if (specified(pin_subdir)) {
803 if (!inDomainBitmask(pin_subdir, allowedDomainBitmask)) {
804 ALOGE("map %s has invalid pin_subdir of %d (allowed bitmask 0x%llx)",
805 mapNames[i].c_str(), pin_subdir, allowedDomainBitmask);
806 return -EINVAL;
807 }
808 ALOGI("map %s pin_subdir [%32s] -> %d -> '%s'", mapNames[i].c_str(), md[i].pin_subdir,
809 pin_subdir, lookupPinSubdir(pin_subdir));
810 }
811
812 // Format of pin location is /sys/fs/bpf/<pin_subdir|prefix>map_<filename>_<mapname>
813 // except that maps shared across .o's have empty <filename>
814 // Note: <filename> refers to the extension-less basename of the .o file.
815 string mapPinLoc = string(BPF_FS_PATH) + lookupPinSubdir(pin_subdir, prefix) + "map_" +
816 (md[i].shared ? "" : fname) + "_" + mapNames[i];
817 bool reuse = false;
818 unique_fd fd;
819 int saved_errno;
820
821 if (access(mapPinLoc.c_str(), F_OK) == 0) {
822 fd.reset(bpf_obj_get(mapPinLoc.c_str()));
823 saved_errno = errno;
824 ALOGD("bpf_create_map reusing map %s, ret: %d", mapNames[i].c_str(), fd.get());
825 reuse = true;
826 } else {
827 struct bpf_create_map_attr attr = {
828 .name = mapNames[i].c_str(),
829 .map_type = type,
830 .map_flags = md[i].map_flags,
831 .key_size = md[i].key_size,
832 .value_size = md[i].value_size,
833 .max_entries = md[i].max_entries,
834 };
835 if (btfFd.has_value() && btfTypeIdMap.find(mapNames[i]) != btfTypeIdMap.end()) {
836 attr.btf_fd = btfFd->get();
837 attr.btf_key_type_id = btfTypeIdMap.at(mapNames[i]).first;
838 attr.btf_value_type_id = btfTypeIdMap.at(mapNames[i]).second;
839 }
840 fd.reset(bcc_create_map_xattr(&attr, true));
841 saved_errno = errno;
842 ALOGD("bpf_create_map name %s, ret: %d", mapNames[i].c_str(), fd.get());
843 }
844
845 if (!fd.ok()) return -saved_errno;
846
847 // When reusing a pinned map, we need to check the map type/sizes/etc match, but for
848 // safety (since reuse code path is rare) run these checks even if we just created it.
849 // We assume failure is due to pinned map mismatch, hence the 'NOT UNIQUE' return code.
850 if (!mapMatchesExpectations(fd, mapNames[i], md[i], type)) return -ENOTUNIQ;
851
852 if (!reuse) {
853 if (specified(selinux_context)) {
854 string createLoc = string(BPF_FS_PATH) + lookupPinSubdir(selinux_context) +
855 "tmp_map_" + fname + "_" + mapNames[i];
856 ret = bpf_obj_pin(fd, createLoc.c_str());
857 if (ret) {
858 int err = errno;
859 ALOGE("create %s -> %d [%d:%s]", createLoc.c_str(), ret, err, strerror(err));
860 return -err;
861 }
862 ret = rename(createLoc.c_str(), mapPinLoc.c_str());
863 if (ret) {
864 int err = errno;
865 ALOGE("rename %s %s -> %d [%d:%s]", createLoc.c_str(), mapPinLoc.c_str(), ret,
866 err, strerror(err));
867 return -err;
868 }
869 } else {
870 ret = bpf_obj_pin(fd, mapPinLoc.c_str());
871 if (ret) return -errno;
872 }
873 ret = chown(mapPinLoc.c_str(), (uid_t)md[i].uid, (gid_t)md[i].gid);
874 if (ret) {
875 int err = errno;
876 ALOGE("chown(%s, %u, %u) = %d [%d:%s]", mapPinLoc.c_str(), md[i].uid, md[i].gid,
877 ret, err, strerror(err));
878 return -err;
879 }
880 ret = chmod(mapPinLoc.c_str(), md[i].mode);
881 if (ret) {
882 int err = errno;
883 ALOGE("chmod(%s, 0%o) = %d [%d:%s]", mapPinLoc.c_str(), md[i].mode, ret, err,
884 strerror(err));
885 return -err;
886 }
887 }
888
889 struct bpf_map_info map_info = {};
890 __u32 map_info_len = sizeof(map_info);
891 int rv = bpf_obj_get_info_by_fd(fd, &map_info, &map_info_len);
892 if (rv) {
893 ALOGE("bpf_obj_get_info_by_fd failed, ret: %d [%d]", rv, errno);
894 } else {
895 ALOGI("map %s id %d", mapPinLoc.c_str(), map_info.id);
896 }
897
898 mapFds.push_back(std::move(fd));
899 }
900
901 return ret;
902 }
903
904 /* For debugging, dump all instructions */
dumpIns(char * ins,int size)905 static void dumpIns(char* ins, int size) {
906 for (int row = 0; row < size / 8; row++) {
907 ALOGE("%d: ", row);
908 for (int j = 0; j < 8; j++) {
909 ALOGE("%3x ", ins[(row * 8) + j]);
910 }
911 ALOGE("\n");
912 }
913 }
914
915 /* For debugging, dump all code sections from cs list */
dumpAllCs(vector<codeSection> & cs)916 static void dumpAllCs(vector<codeSection>& cs) {
917 for (int i = 0; i < (int)cs.size(); i++) {
918 ALOGE("Dumping cs %d, name %s", int(i), cs[i].name.c_str());
919 dumpIns((char*)cs[i].data.data(), cs[i].data.size());
920 ALOGE("-----------");
921 }
922 }
923
applyRelo(void * insnsPtr,Elf64_Addr offset,int fd)924 static void applyRelo(void* insnsPtr, Elf64_Addr offset, int fd) {
925 int insnIndex;
926 struct bpf_insn *insn, *insns;
927
928 insns = (struct bpf_insn*)(insnsPtr);
929
930 insnIndex = offset / sizeof(struct bpf_insn);
931 insn = &insns[insnIndex];
932
933 ALOGD(
934 "applying relo to instruction at byte offset: %d, \
935 insn offset %d , insn %lx\n",
936 (int)offset, (int)insnIndex, *(unsigned long*)insn);
937
938 if (insn->code != (BPF_LD | BPF_IMM | BPF_DW)) {
939 ALOGE("Dumping all instructions till ins %d", insnIndex);
940 ALOGE("invalid relo for insn %d: code 0x%x", insnIndex, insn->code);
941 dumpIns((char*)insnsPtr, (insnIndex + 3) * 8);
942 return;
943 }
944
945 insn->imm = fd;
946 insn->src_reg = BPF_PSEUDO_MAP_FD;
947 }
948
applyMapRelo(ifstream & elfFile,vector<unique_fd> & mapFds,vector<codeSection> & cs)949 static void applyMapRelo(ifstream& elfFile, vector<unique_fd> &mapFds, vector<codeSection>& cs) {
950 vector<string> mapNames;
951
952 int ret = getSectionSymNames(elfFile, "maps", mapNames);
953 if (ret) return;
954
955 for (int k = 0; k != (int)cs.size(); k++) {
956 Elf64_Rel* rel = (Elf64_Rel*)(cs[k].rel_data.data());
957 int n_rel = cs[k].rel_data.size() / sizeof(*rel);
958
959 for (int i = 0; i < n_rel; i++) {
960 int symIndex = ELF64_R_SYM(rel[i].r_info);
961 string symName;
962
963 ret = getSymNameByIdx(elfFile, symIndex, symName);
964 if (ret) return;
965
966 /* Find the map fd and apply relo */
967 for (int j = 0; j < (int)mapNames.size(); j++) {
968 if (!mapNames[j].compare(symName)) {
969 applyRelo(cs[k].data.data(), rel[i].r_offset, mapFds[j]);
970 break;
971 }
972 }
973 }
974 }
975 }
976
loadCodeSections(const char * elfPath,vector<codeSection> & cs,const string & license,const char * prefix,const unsigned long long allowedDomainBitmask)977 static int loadCodeSections(const char* elfPath, vector<codeSection>& cs, const string& license,
978 const char* prefix, const unsigned long long allowedDomainBitmask) {
979 unsigned kvers = kernelVersion();
980 int ret, fd;
981
982 if (!kvers) return -1;
983
984 string fname = pathToFilename(string(elfPath), true);
985
986 for (int i = 0; i < (int)cs.size(); i++) {
987 string name = cs[i].name;
988 unsigned bpfMinVer = DEFAULT_BPFLOADER_MIN_VER; // v0.0
989 unsigned bpfMaxVer = DEFAULT_BPFLOADER_MAX_VER; // v1.0
990 domain selinux_context = domain::unspecified;
991 domain pin_subdir = domain::unspecified;
992
993 if (cs[i].prog_def.has_value()) {
994 unsigned min_kver = cs[i].prog_def->min_kver;
995 unsigned max_kver = cs[i].prog_def->max_kver;
996 ALOGD("cs[%d].name:%s min_kver:%x .max_kver:%x (kvers:%x)", i, name.c_str(), min_kver,
997 max_kver, kvers);
998 if (kvers < min_kver) continue;
999 if (kvers >= max_kver) continue;
1000
1001 bpfMinVer = cs[i].prog_def->bpfloader_min_ver;
1002 bpfMaxVer = cs[i].prog_def->bpfloader_max_ver;
1003 selinux_context = getDomainFromSelinuxContext(cs[i].prog_def->selinux_context);
1004 pin_subdir = getDomainFromPinSubdir(cs[i].prog_def->pin_subdir);
1005 // Note: make sure to only check for unrecognized *after* verifying bpfloader
1006 // version limits include this bpfloader's version.
1007 }
1008
1009 ALOGD("cs[%d].name:%s requires bpfloader version [0x%05x,0x%05x)", i, name.c_str(),
1010 bpfMinVer, bpfMaxVer);
1011 if (BPFLOADER_VERSION < bpfMinVer) continue;
1012 if (BPFLOADER_VERSION >= bpfMaxVer) continue;
1013 if (unrecognized(pin_subdir)) return -ENOTDIR;
1014
1015 if (specified(selinux_context)) {
1016 if (!inDomainBitmask(selinux_context, allowedDomainBitmask)) {
1017 ALOGE("prog %s has invalid selinux_context of %d (allowed bitmask 0x%llx)",
1018 name.c_str(), selinux_context, allowedDomainBitmask);
1019 return -EINVAL;
1020 }
1021 ALOGI("prog %s selinux_context [%32s] -> %d -> '%s' (%s)", name.c_str(),
1022 cs[i].prog_def->selinux_context, selinux_context,
1023 lookupSelinuxContext(selinux_context), lookupPinSubdir(selinux_context));
1024 }
1025
1026 if (specified(pin_subdir)) {
1027 if (!inDomainBitmask(pin_subdir, allowedDomainBitmask)) {
1028 ALOGE("prog %s has invalid pin_subdir of %d (allowed bitmask 0x%llx)", name.c_str(),
1029 pin_subdir, allowedDomainBitmask);
1030 return -EINVAL;
1031 }
1032 ALOGI("prog %s pin_subdir [%32s] -> %d -> '%s'", name.c_str(),
1033 cs[i].prog_def->pin_subdir, pin_subdir, lookupPinSubdir(pin_subdir));
1034 }
1035
1036 // strip any potential $foo suffix
1037 // this can be used to provide duplicate programs
1038 // conditionally loaded based on running kernel version
1039 name = name.substr(0, name.find_last_of('$'));
1040
1041 bool reuse = false;
1042 // Format of pin location is
1043 // /sys/fs/bpf/<prefix>prog_<filename>_<mapname>
1044 string progPinLoc = string(BPF_FS_PATH) + lookupPinSubdir(pin_subdir, prefix) + "prog_" +
1045 fname + '_' + string(name);
1046 if (access(progPinLoc.c_str(), F_OK) == 0) {
1047 fd = retrieveProgram(progPinLoc.c_str());
1048 ALOGD("New bpf prog load reusing prog %s, ret: %d (%s)", progPinLoc.c_str(), fd,
1049 (fd < 0 ? std::strerror(errno) : "no error"));
1050 reuse = true;
1051 } else {
1052 vector<char> log_buf(BPF_LOAD_LOG_SZ, 0);
1053
1054 struct bpf_load_program_attr attr = {
1055 .prog_type = cs[i].type,
1056 .name = name.c_str(),
1057 .insns = (struct bpf_insn*)cs[i].data.data(),
1058 .license = license.c_str(),
1059 .log_level = 0,
1060 .expected_attach_type = cs[i].expected_attach_type,
1061 };
1062
1063 fd = bcc_prog_load_xattr(&attr, cs[i].data.size(), log_buf.data(), log_buf.size(),
1064 true);
1065
1066 ALOGD("bpf_prog_load lib call for %s (%s) returned fd: %d (%s)", elfPath,
1067 cs[i].name.c_str(), fd, (fd < 0 ? std::strerror(errno) : "no error"));
1068
1069 if (fd < 0) {
1070 vector<string> lines = android::base::Split(log_buf.data(), "\n");
1071
1072 ALOGW("bpf_prog_load - BEGIN log_buf contents:");
1073 for (const auto& line : lines) ALOGW("%s", line.c_str());
1074 ALOGW("bpf_prog_load - END log_buf contents.");
1075
1076 if (cs[i].prog_def->optional) {
1077 ALOGW("failed program is marked optional - continuing...");
1078 continue;
1079 }
1080 ALOGE("non-optional program failed to load.");
1081 }
1082 }
1083
1084 if (fd < 0) return fd;
1085 if (fd == 0) return -EINVAL;
1086
1087 if (!reuse) {
1088 if (specified(selinux_context)) {
1089 string createLoc = string(BPF_FS_PATH) + lookupPinSubdir(selinux_context) +
1090 "tmp_prog_" + fname + '_' + string(name);
1091 ret = bpf_obj_pin(fd, createLoc.c_str());
1092 if (ret) {
1093 int err = errno;
1094 ALOGE("create %s -> %d [%d:%s]", createLoc.c_str(), ret, err, strerror(err));
1095 return -err;
1096 }
1097 ret = rename(createLoc.c_str(), progPinLoc.c_str());
1098 if (ret) {
1099 int err = errno;
1100 ALOGE("rename %s %s -> %d [%d:%s]", createLoc.c_str(), progPinLoc.c_str(), ret,
1101 err, strerror(err));
1102 return -err;
1103 }
1104 } else {
1105 ret = bpf_obj_pin(fd, progPinLoc.c_str());
1106 if (ret) {
1107 int err = errno;
1108 ALOGE("create %s -> %d [%d:%s]", progPinLoc.c_str(), ret, err, strerror(err));
1109 return -err;
1110 }
1111 }
1112 if (chmod(progPinLoc.c_str(), 0440)) {
1113 int err = errno;
1114 ALOGE("chmod %s 0440 -> [%d:%s]", progPinLoc.c_str(), err, strerror(err));
1115 return -err;
1116 }
1117 if (cs[i].prog_def.has_value()) {
1118 if (chown(progPinLoc.c_str(), (uid_t)cs[i].prog_def->uid,
1119 (gid_t)cs[i].prog_def->gid)) {
1120 int err = errno;
1121 ALOGE("chown %s %d %d -> [%d:%s]", progPinLoc.c_str(), cs[i].prog_def->uid,
1122 cs[i].prog_def->gid, err, strerror(err));
1123 return -err;
1124 }
1125 }
1126 }
1127
1128 struct bpf_prog_info prog_info = {};
1129 __u32 prog_info_len = sizeof(prog_info);
1130 int rv = bpf_obj_get_info_by_fd(fd, &prog_info, &prog_info_len);
1131 if (rv) {
1132 ALOGE("bpf_obj_get_info_by_fd failed, ret: %d [%d]", rv, errno);
1133 } else {
1134 ALOGI("prog %s id %d", progPinLoc.c_str(), prog_info.id);
1135 }
1136
1137 cs[i].prog_fd.reset(fd);
1138 }
1139
1140 return 0;
1141 }
1142
loadProg(const char * elfPath,bool * isCritical,const char * prefix,const unsigned long long allowedDomainBitmask,const bpf_prog_type * allowed,size_t numAllowed)1143 int loadProg(const char* elfPath, bool* isCritical, const char* prefix,
1144 const unsigned long long allowedDomainBitmask, const bpf_prog_type* allowed,
1145 size_t numAllowed) {
1146 vector<char> license;
1147 vector<char> critical;
1148 vector<codeSection> cs;
1149 vector<unique_fd> mapFds;
1150 int ret;
1151
1152 if (!isCritical) return -1;
1153 *isCritical = false;
1154
1155 ifstream elfFile(elfPath, ios::in | ios::binary);
1156 if (!elfFile.is_open()) return -1;
1157
1158 ret = readSectionByName("critical", elfFile, critical);
1159 *isCritical = !ret;
1160
1161 ret = readSectionByName("license", elfFile, license);
1162 if (ret) {
1163 ALOGE("Couldn't find license in %s", elfPath);
1164 return ret;
1165 } else {
1166 ALOGD("Loading %s%s ELF object %s with license %s",
1167 *isCritical ? "critical for " : "optional", *isCritical ? (char*)critical.data() : "",
1168 elfPath, (char*)license.data());
1169 }
1170
1171 // the following default values are for bpfloader V0.0 format which does not include them
1172 unsigned int bpfLoaderMinVer =
1173 readSectionUint("bpfloader_min_ver", elfFile, DEFAULT_BPFLOADER_MIN_VER);
1174 unsigned int bpfLoaderMaxVer =
1175 readSectionUint("bpfloader_max_ver", elfFile, DEFAULT_BPFLOADER_MAX_VER);
1176 size_t sizeOfBpfMapDef =
1177 readSectionUint("size_of_bpf_map_def", elfFile, DEFAULT_SIZEOF_BPF_MAP_DEF);
1178 size_t sizeOfBpfProgDef =
1179 readSectionUint("size_of_bpf_prog_def", elfFile, DEFAULT_SIZEOF_BPF_PROG_DEF);
1180
1181 // inclusive lower bound check
1182 if (BPFLOADER_VERSION < bpfLoaderMinVer) {
1183 ALOGI("BpfLoader version 0x%05x ignoring ELF object %s with min ver 0x%05x",
1184 BPFLOADER_VERSION, elfPath, bpfLoaderMinVer);
1185 return 0;
1186 }
1187
1188 // exclusive upper bound check
1189 if (BPFLOADER_VERSION >= bpfLoaderMaxVer) {
1190 ALOGI("BpfLoader version 0x%05x ignoring ELF object %s with max ver 0x%05x",
1191 BPFLOADER_VERSION, elfPath, bpfLoaderMaxVer);
1192 return 0;
1193 }
1194
1195 ALOGI("BpfLoader version 0x%05x processing ELF object %s with ver [0x%05x,0x%05x)",
1196 BPFLOADER_VERSION, elfPath, bpfLoaderMinVer, bpfLoaderMaxVer);
1197
1198 if (sizeOfBpfMapDef < DEFAULT_SIZEOF_BPF_MAP_DEF) {
1199 ALOGE("sizeof(bpf_map_def) of %zu is too small (< %d)", sizeOfBpfMapDef,
1200 DEFAULT_SIZEOF_BPF_MAP_DEF);
1201 return -1;
1202 }
1203
1204 if (sizeOfBpfProgDef < DEFAULT_SIZEOF_BPF_PROG_DEF) {
1205 ALOGE("sizeof(bpf_prog_def) of %zu is too small (< %d)", sizeOfBpfProgDef,
1206 DEFAULT_SIZEOF_BPF_PROG_DEF);
1207 return -1;
1208 }
1209
1210 ret = readCodeSections(elfFile, cs, sizeOfBpfProgDef, allowed, numAllowed);
1211 if (ret) {
1212 ALOGE("Couldn't read all code sections in %s", elfPath);
1213 return ret;
1214 }
1215
1216 /* Just for future debugging */
1217 if (0) dumpAllCs(cs);
1218
1219 ret = createMaps(elfPath, elfFile, mapFds, prefix, allowedDomainBitmask, sizeOfBpfMapDef);
1220 if (ret) {
1221 ALOGE("Failed to create maps: (ret=%d) in %s", ret, elfPath);
1222 return ret;
1223 }
1224
1225 for (int i = 0; i < (int)mapFds.size(); i++)
1226 ALOGD("map_fd found at %d is %d in %s", i, mapFds[i].get(), elfPath);
1227
1228 applyMapRelo(elfFile, mapFds, cs);
1229
1230 ret = loadCodeSections(elfPath, cs, string(license.data()), prefix, allowedDomainBitmask);
1231 if (ret) ALOGE("Failed to load programs, loadCodeSections ret=%d", ret);
1232
1233 return ret;
1234 }
1235
1236 } // namespace bpf
1237 } // namespace android
1238