VirtualBox

source: vbox/trunk/src/VBox/HostDrivers/Support/posix/SUPR3HardenedMain-posix.cpp

Last change on this file was 101541, checked in by vboxsync, 7 months ago

DIS,VMM,DBGC,IPRT,++: Some disassembler tweaks and TB disassembly work. [build fix, missed bits] bugref:10371 bugref:9898

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1/* $Id: SUPR3HardenedMain-posix.cpp 101541 2023-10-22 02:55:27Z vboxsync $ */
2/** @file
3 * VirtualBox Support Library - Hardened main(), posix bits.
4 */
5
6/*
7 * Copyright (C) 2017-2023 Oracle and/or its affiliates.
8 *
9 * This file is part of VirtualBox base platform packages, as
10 * available from https://www.virtualbox.org.
11 *
12 * This program is free software; you can redistribute it and/or
13 * modify it under the terms of the GNU General Public License
14 * as published by the Free Software Foundation, in version 3 of the
15 * License.
16 *
17 * This program is distributed in the hope that it will be useful, but
18 * WITHOUT ANY WARRANTY; without even the implied warranty of
19 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
20 * General Public License for more details.
21 *
22 * You should have received a copy of the GNU General Public License
23 * along with this program; if not, see <https://www.gnu.org/licenses>.
24 *
25 * The contents of this file may alternatively be used under the terms
26 * of the Common Development and Distribution License Version 1.0
27 * (CDDL), a copy of it is provided in the "COPYING.CDDL" file included
28 * in the VirtualBox distribution, in which case the provisions of the
29 * CDDL are applicable instead of those of the GPL.
30 *
31 * You may elect to license modified versions of this file under the
32 * terms and conditions of either the GPL or the CDDL or both.
33 *
34 * SPDX-License-Identifier: GPL-3.0-only OR CDDL-1.0
35 */
36
37
38/*********************************************************************************************************************************
39* Header Files *
40*********************************************************************************************************************************/
41#include <VBox/err.h>
42#include <VBox/dis.h>
43#include <VBox/sup.h>
44
45#include <iprt/path.h>
46#include <iprt/string.h>
47#include <iprt/x86.h>
48
49#include <dlfcn.h>
50#include <sys/mman.h>
51#if defined(RT_OS_SOLARIS)
52# include <link.h>
53#endif
54#include <stdio.h>
55#include <stdint.h>
56
57#include "SUPLibInternal.h"
58
59
60/*********************************************************************************************************************************
61* Defined Constants And Macros *
62*********************************************************************************************************************************/
63
64/**
65 * Memory for code patching.
66 */
67#define DLOPEN_PATCH_MEMORY_SIZE _4K
68
69
70/*********************************************************************************************************************************
71* Structures and Typedefs *
72*********************************************************************************************************************************/
73#ifndef SUP_HARDENED_WITHOUT_DLOPEN_PATCHING
74/**
75 * Callback (SUPHARDENEDPOSIXHOOK::pfnResolv) for triggering lazy GOT resolver.
76 *
77 * This generally just calls the API in a harmless manner and triggers the lazy
78 * resolving of the symbol, ensuring a proper address in the GOT/PLT entry.
79 *
80 * On Solaris dlsym() will return the value in the GOT/PLT entry. We don't wish
81 * to patch the lazy loader trampoline function, but rather the real function!
82 */
83typedef DECLCALLBACKTYPE(void, FNSUPHARDENEDSYMRESOLVE,(void));
84/** Pointer to FNSUPHARDENEDSYMRESOLVE. */
85typedef FNSUPHARDENEDSYMRESOLVE *PFNSUPHARDENEDSYMRESOLVE;
86
87/**
88 * A hook descriptor.
89 */
90typedef struct SUPHARDENEDPOSIXHOOK
91{
92 /** The symbol to hook. */
93 const char *pszSymbol;
94 /** The intercepting wrapper doing additional checks. */
95 PFNRT pfnHook;
96 /** Where to store the pointer to the code into patch memory
97 * which resumes the original call.
98 * @note uintptr_t instead of PFNRT is for Clang 11. */
99 uintptr_t *ppfnRealResume;
100 /** Pointer to the resolver method used on Solaris. */
101 PFNSUPHARDENEDSYMRESOLVE pfnResolve;
102} SUPHARDENEDPOSIXHOOK;
103/** Pointer to a hook descriptor. */
104typedef SUPHARDENEDPOSIXHOOK *PSUPHARDENEDPOSIXHOOK;
105/** Pointer to a const hook descriptor. */
106typedef const SUPHARDENEDPOSIXHOOK *PCSUPHARDENEDPOSIXHOOK;
107
108/** dlopen() declaration. */
109typedef void *FNDLOPEN(const char *pszFilename, int fFlags);
110/** Pointer to dlopen. */
111typedef FNDLOPEN *PFNDLOPEN;
112
113#ifdef SUP_HARDENED_WITH_DLMOPEN
114/** dlmopen() declaration */
115typedef void *FNDLMOPEN(Lmid_t idLm, const char *pszFilename, int fFlags);
116/** Pointer to dlmopen. */
117typedef FNDLMOPEN *PFNDLMOPEN;
118#endif
119
120#endif /* SUP_HARDENED_WITHOUT_DLOPEN_PATCHING */
121
122
123/*********************************************************************************************************************************
124* Internal Functions *
125*********************************************************************************************************************************/
126#ifndef SUP_HARDENED_WITHOUT_DLOPEN_PATCHING
127static FNSUPHARDENEDSYMRESOLVE supR3HardenedPosixMonitorDlopenResolve;
128#ifdef SUP_HARDENED_WITH_DLMOPEN
129static FNSUPHARDENEDSYMRESOLVE supR3HardenedPosixMonitorDlmopenResolve;
130#endif
131
132/* SUPR3HardenedMainA-posix.asm: */
133DECLASM(void) supR3HardenedPosixMonitor_Dlopen(const char *pszFilename, int fFlags);
134#ifdef SUP_HARDENED_WITH_DLMOPEN
135DECLASM(void) supR3HardenedPosixMonitor_Dlmopen(Lmid_t idLm, const char *pszFilename, int fFlags);
136#endif
137#endif /* SUP_HARDENED_WITHOUT_DLOPEN_PATCHING */
138
139
140/*********************************************************************************************************************************
141* Global Variables *
142*********************************************************************************************************************************/
143#ifndef SUP_HARDENED_WITHOUT_DLOPEN_PATCHING
144
145RT_C_DECLS_BEGIN
146/** Resume patch for dlopen(), jumped to form assembly stub. */
147DECL_HIDDEN_DATA(PFNDLOPEN) g_pfnDlopenReal = NULL;
148#ifdef SUP_HARDENED_WITH_DLMOPEN
149/** Resume patch for dlmopen(), jumped to form assembly stub. */
150DECL_HIDDEN_DATA(PFNDLMOPEN) g_pfnDlmopenReal = NULL;
151#endif
152RT_C_DECLS_END
153
154/** Memory allocated for the patches. */
155static uint8_t *g_pbExecMemory = NULL;
156/** Offset into the patch memory which is not used. */
157static uint32_t g_offExecMemory = 0;
158
159/**
160 * Array of hooks to install.
161 */
162static SUPHARDENEDPOSIXHOOK const g_aHooks[] =
163{
164 /* pszSymbol, pfnHook, ppfnRealResume, pfnResolve */
165 { "dlopen", (PFNRT)supR3HardenedPosixMonitor_Dlopen, (uintptr_t *)&g_pfnDlopenReal, supR3HardenedPosixMonitorDlopenResolve },
166#ifdef SUP_HARDENED_WITH_DLMOPEN
167 { "dlmopen", (PFNRT)supR3HardenedPosixMonitor_Dlmopen, (uintptr_t *)&g_pfnDlmopenReal, supR3HardenedPosixMonitorDlmopenResolve }
168#endif
169};
170
171
172
173/**
174 * Verifies the given library for proper access rights for further loading
175 * into the process.
176 *
177 * @returns Flag whether the access rights of the library look sane and loading
178 * it is not considered a security risk. Returns true if the library
179 * looks sane, false otherwise.
180 * @param pszFilename The library to load, this can be an absolute or relative path
181 * or just the filename of the library when the default paths should
182 * be searched. NULL is allowed too to indicate opening the main
183 * binary.
184 */
185DECLASM(bool) supR3HardenedPosixMonitor_VerifyLibrary(const char *pszFilename)
186{
187 /*
188 * Giving NULL as the filename indicates opening the main program which is fine
189 * We are already loaded and executing after all.
190 *
191 * Filenames without any path component (whether absolute or relative) are allowed
192 * unconditionally too as the loader will only search the default paths configured by root.
193 */
194 bool fAllow = true;
195
196 if ( pszFilename
197 && strchr(pszFilename, '/') != NULL)
198 {
199#if defined(RT_OS_LINUX)
200 int rc = supR3HardenedVerifyFileFollowSymlinks(pszFilename, RTHCUINTPTR_MAX, true /* fMaybe3rdParty */,
201 NULL /* pErrInfo */);
202#else
203 int rc = supR3HardenedVerifyFile(pszFilename, RTHCUINTPTR_MAX, true /* fMaybe3rdParty */,
204 NULL /* pErrInfo */);
205#endif
206
207 if (RT_FAILURE(rc))
208 fAllow = false;
209 }
210
211 return fAllow;
212}
213
214
215/**
216 * Returns the start address of the given symbol if found or NULL otherwise.
217 *
218 * @returns Start address of the symbol or NULL if not found.
219 * @param pszSymbol The symbol name.
220 * @param pfnResolve The resolver to call before trying to query the start address.
221 */
222static void *supR3HardenedMainPosixGetStartBySymbol(const char *pszSymbol, PFNSUPHARDENEDSYMRESOLVE pfnResolve)
223{
224#ifndef RT_OS_SOLARIS
225 RT_NOREF(pfnResolve);
226 return dlsym(RTLD_DEFAULT, pszSymbol);
227
228#else /* RT_OS_SOLARIS */
229 /*
230 * Solaris is tricky as dlsym doesn't return the actual start address of
231 * the symbol but the start of the trampoline in the PLT of the caller.
232 *
233 * Disassemble the first jmp instruction to get at the entry in the global
234 * offset table where the actual address is stored.
235 *
236 * To counter lazy symbol resolving, we first have to call the API before
237 * trying to resolve and disassemble it.
238 */
239 pfnResolve();
240
241 uint8_t *pbSym = (uint8_t *)dlsym(RTLD_DEFAULT, pszSymbol);
242
243# ifdef RT_ARCH_AMD64
244 DISSTATE Dis;
245 uint32_t cbInstr = 1;
246 int rc = DISInstr(pbSym, DISCPUMODE_64BIT, &Dis, &cbInstr);
247 if ( RT_FAILURE(rc)
248 || Dis.pCurInstr->uOpcode != OP_JMP
249 || !(Dis.x86.ModRM.Bits.Mod == 0 && Dis.x86.ModRM.Bits.Rm == 5 /* wrt RIP */))
250 return NULL;
251
252 /* Extract start address. */
253 pbSym = (pbSym + cbInstr + Dis.Param1.x86.uDisp.i32);
254 pbSym = (uint8_t *)*((uintptr_t *)pbSym);
255# else
256# error "Unsupported architecture"
257# endif
258
259 return pbSym;
260#endif /* RT_OS_SOLARIS */
261}
262
263
264/**
265 * Allocates executable patch memory with the given constraints.
266 *
267 * @returns VBox status code.
268 * @param cb Size of the patch memory in bytes.
269 * @param pvHint Where to try allocating nearby.
270 * @param fRipRelAddr Flag whether the executable memory must be within
271 * 2GB before or after the hint as it will contain
272 * instructions using RIP relative addressing
273 */
274static uint8_t *supR3HardenedMainPosixExecMemAlloc(size_t cb, void *pvHint, bool fRipRelAddr)
275{
276 AssertReturn(cb < _1K, NULL);
277
278 /* Lazy allocation of exectuable memory. */
279 if (!g_pbExecMemory)
280 {
281 g_pbExecMemory = (uint8_t *)mmap(pvHint, DLOPEN_PATCH_MEMORY_SIZE, PROT_READ | PROT_WRITE | PROT_EXEC,
282 MAP_SHARED | MAP_ANONYMOUS, -1, 0);
283 g_offExecMemory = 0;
284 if (g_pbExecMemory == MAP_FAILED)
285 return NULL;
286
287 memset(g_pbExecMemory, 0xcc, DLOPEN_PATCH_MEMORY_SIZE);
288 }
289
290 if (g_offExecMemory + cb >= DLOPEN_PATCH_MEMORY_SIZE)
291 return NULL;
292
293 uint8_t *pb = &g_pbExecMemory[g_offExecMemory];
294
295 if (fRipRelAddr)
296 {
297 /* Check that we allocated within 2GB of the hint. */
298 uintptr_t uPtrHint = (uintptr_t)pvHint;
299 uintptr_t uPtrPatchMem = (uintptr_t)pb;
300 uintptr_t cbDistance = uPtrHint < uPtrPatchMem
301 ? uPtrPatchMem - uPtrHint
302 : uPtrHint - uPtrPatchMem;
303
304 if (cbDistance >= _2G - _4K)
305 return NULL;
306 }
307
308 g_offExecMemory = RT_ALIGN_32(g_offExecMemory + cb, 16);
309 return pb;
310}
311
312
313/**
314 * Hooks the given method to execute the given one first.
315 *
316 * @returns VBox status code.
317 * @param pszSymbol The symbol to hook.
318 * @param pfnHook The hook to install.
319 * @param ppfnReal Where to store the pointer to entry point of the real method
320 * (somewhere in patch memory).
321 * @param pfnResolve The resolver to call before trying to query the start address.
322 */
323static int supR3HardenedMainPosixHookOne(const char *pszSymbol, PFNRT pfnHook, uintptr_t /*PFNRT*/ *ppfnReal,
324 PFNSUPHARDENEDSYMRESOLVE pfnResolve)
325{
326 void *pfnTarget = supR3HardenedMainPosixGetStartBySymbol(pszSymbol, pfnResolve);
327 if (!pfnTarget)
328 return VERR_NOT_FOUND;
329
330 /*
331 * Make the target memory writeable to be able to insert the patch.
332 * Unprotect two pages in case the code crosses a page boundary.
333 */
334 void *pvTargetBase = (void *)(((uintptr_t)pfnTarget) & ~(uintptr_t)(_4K - 1));
335 int rcPsx = mprotect(pvTargetBase, 2 * _4K, PROT_WRITE | PROT_READ | PROT_EXEC);
336 if (rcPsx == -1)
337 return VERR_SUPLIB_TEXT_NOT_WRITEABLE;
338
339 uint8_t * const pbTarget = (uint8_t *)(uintptr_t)pfnTarget;
340
341 DISSTATE Dis;
342 uint32_t cbInstr;
343 uint32_t offJmpBack = 0;
344 uint32_t cbPatchMem = 0;
345
346#ifdef RT_ARCH_AMD64
347 /*
348 * Patch 64-bit hosts.
349 */
350 uint32_t cRipRelMovs = 0;
351 uint32_t cRelCalls = 0;
352
353 /* Just use the disassembler to skip 12 bytes or more, we might need to
354 rewrite mov instructions using RIP relative addressing. */
355 while (offJmpBack < 12)
356 {
357 cbInstr = 1;
358 int rc = DISInstr(pbTarget + offJmpBack, DISCPUMODE_64BIT, &Dis, &cbInstr);
359 if ( RT_FAILURE(rc)
360 || ( Dis.pCurInstr->fOpType & DISOPTYPE_CONTROLFLOW
361 && Dis.pCurInstr->uOpcode != OP_CALL)
362 || ( Dis.x86.ModRM.Bits.Mod == 0
363 && Dis.x86.ModRM.Bits.Rm == 5 /* wrt RIP */
364 && Dis.pCurInstr->uOpcode != OP_MOV))
365 return VERR_SUPLIB_UNEXPECTED_INSTRUCTION;
366
367 if (Dis.x86.ModRM.Bits.Mod == 0 && Dis.x86.ModRM.Bits.Rm == 5 /* wrt RIP */)
368 cRipRelMovs++;
369 if ( Dis.pCurInstr->uOpcode == OP_CALL
370 && (Dis.pCurInstr->fOpType & DISOPTYPE_RELATIVE_CONTROLFLOW))
371 cRelCalls++;
372
373 offJmpBack += cbInstr;
374 cbPatchMem += cbInstr;
375 }
376
377 /*
378 * Each relative call requires extra bytes as it is converted to a pushq imm32
379 * + mov [RSP+4], imm32 + a jmp qword [$+8 wrt RIP] to avoid clobbering registers.
380 */
381 cbPatchMem += cRelCalls * RT_ALIGN_32(13 + 6 + 8, 8);
382 cbPatchMem += 14; /* jmp qword [$+8 wrt RIP] + 8 byte address to jump to. */
383 cbPatchMem = RT_ALIGN_32(cbPatchMem, 8);
384
385 /* Allocate suitable executable memory available. */
386 bool fConvRipRelMovs = false;
387 uint8_t *pbPatchMem = supR3HardenedMainPosixExecMemAlloc(cbPatchMem, pbTarget, cRipRelMovs > 0);
388 if (!pbPatchMem)
389 {
390 /*
391 * Try to allocate memory again without the RIP relative mov addressing constraint
392 * Makes it a bit more difficult for us later on but there is no way around it.
393 * We need to increase the patch memory because we create two instructions for one
394 * (7 bytes for the RIP relative mov vs. 13 bytes for the two instructions replacing it ->
395 * need to allocate 6 bytes more per RIP relative mov).
396 */
397 fConvRipRelMovs = true;
398 if (cRipRelMovs > 0)
399 pbPatchMem = supR3HardenedMainPosixExecMemAlloc(cbPatchMem + cRipRelMovs * 6,
400 pbTarget, false /*fRipRelAddr*/);
401
402 if (!pbPatchMem)
403 return VERR_NO_MEMORY;
404 }
405
406 /* Assemble the code for resuming the call.*/
407 *ppfnReal = (uintptr_t)pbPatchMem;
408
409 /* Go through the instructions to patch and fixup any rip relative mov instructions. */
410 uint32_t offInsn = 0;
411 while (offInsn < offJmpBack)
412 {
413 cbInstr = 1;
414 int rc = DISInstr(pbTarget + offInsn, DISCPUMODE_64BIT, &Dis, &cbInstr);
415 if ( RT_FAILURE(rc)
416 || ( Dis.pCurInstr->fOpType & DISOPTYPE_CONTROLFLOW
417 && Dis.pCurInstr->uOpcode != OP_CALL))
418 return VERR_SUPLIB_UNEXPECTED_INSTRUCTION;
419
420 if ( Dis.x86.ModRM.Bits.Mod == 0
421 && Dis.x86.ModRM.Bits.Rm == 5 /* wrt RIP */
422 && Dis.pCurInstr->uOpcode == OP_MOV)
423 {
424 /* Deduce destination register and write out new instruction. */
425 if (RT_UNLIKELY(!( (Dis.Param1.fUse & (DISUSE_BASE | DISUSE_REG_GEN64))
426 && (Dis.Param2.fUse & DISUSE_RIPDISPLACEMENT32))))
427 return VERR_SUPLIB_UNEXPECTED_INSTRUCTION;
428
429 uintptr_t uAddr = (uintptr_t)&pbTarget[offInsn + cbInstr] + (intptr_t)Dis.Param2.x86.uDisp.i32;
430
431 if (fConvRipRelMovs)
432 {
433 /*
434 * Create two instructions, first one moves the address as a constant to the destination register
435 * and the second one loads the data from the memory into the destination register.
436 */
437
438 *pbPatchMem++ = 0x48;
439 *pbPatchMem++ = 0xb8 + Dis.Param1.x86.Base.idxGenReg;
440 *(uintptr_t *)pbPatchMem = uAddr;
441 pbPatchMem += sizeof(uintptr_t);
442
443 *pbPatchMem++ = 0x48;
444 *pbPatchMem++ = 0x8b;
445 *pbPatchMem++ = (Dis.Param1.x86.Base.idxGenReg << X86_MODRM_REG_SHIFT) | Dis.Param1.x86.Base.idxGenReg;
446 }
447 else
448 {
449 intptr_t iDispNew = uAddr - (uintptr_t)&pbPatchMem[3 + sizeof(int32_t)];
450 Assert(iDispNew == (int32_t)iDispNew);
451
452 /* Assemble the mov to register instruction with the updated rip relative displacement. */
453 *pbPatchMem++ = 0x48;
454 *pbPatchMem++ = 0x8b;
455 *pbPatchMem++ = (Dis.Param1.x86.Base.idxGenReg << X86_MODRM_REG_SHIFT) | 5;
456 *(int32_t *)pbPatchMem = (int32_t)iDispNew;
457 pbPatchMem += sizeof(int32_t);
458 }
459 }
460 else if ( Dis.pCurInstr->uOpcode == OP_CALL
461 && (Dis.pCurInstr->fOpType & DISOPTYPE_RELATIVE_CONTROLFLOW))
462 {
463 /* Convert to absolute jump. */
464 uintptr_t uAddr = (uintptr_t)&pbTarget[offInsn + cbInstr] + (intptr_t)Dis.Param1.uValue;
465
466 /* Skip the push instructions till the return address is known. */
467 uint8_t *pbPatchMemPush = pbPatchMem;
468 pbPatchMem += 13;
469
470 *pbPatchMem++ = 0xff; /* jmp qword [$+8 wrt RIP] */
471 *pbPatchMem++ = 0x25;
472 *(uint32_t *)pbPatchMem = (uint32_t)(RT_ALIGN_PT(pbPatchMem + 4, 8, uint8_t *) - (pbPatchMem + 4));
473 pbPatchMem = RT_ALIGN_PT(pbPatchMem + 4, 8, uint8_t *);
474 *(uint64_t *)pbPatchMem = uAddr;
475 pbPatchMem += sizeof(uint64_t);
476
477 /* Push the return address onto stack. Difficult on amd64 without clobbering registers... */
478 uintptr_t uAddrReturn = (uintptr_t)pbPatchMem;
479 *pbPatchMemPush++ = 0x68; /* push imm32 sign-extended as 64-bit*/
480 *(uint32_t *)pbPatchMemPush = RT_LO_U32(uAddrReturn);
481 pbPatchMemPush += sizeof(uint32_t);
482 *pbPatchMemPush++ = 0xc7;
483 *pbPatchMemPush++ = 0x44;
484 *pbPatchMemPush++ = 0x24;
485 *pbPatchMemPush++ = 0x04; /* movl [RSP+4], imm32 */
486 *(uint32_t *)pbPatchMemPush = RT_HI_U32(uAddrReturn);
487 }
488 else
489 {
490 memcpy(pbPatchMem, pbTarget + offInsn, cbInstr);
491 pbPatchMem += cbInstr;
492 }
493
494 offInsn += cbInstr;
495 }
496
497 *pbPatchMem++ = 0xff; /* jmp qword [$+8 wrt RIP] */
498 *pbPatchMem++ = 0x25;
499 *(uint32_t *)pbPatchMem = (uint32_t)(RT_ALIGN_PT(pbPatchMem + 4, 8, uint8_t *) - (pbPatchMem + 4));
500 pbPatchMem = RT_ALIGN_PT(pbPatchMem + 4, 8, uint8_t *);
501 *(uint64_t *)pbPatchMem = (uintptr_t)&pbTarget[offJmpBack];
502
503 /* Assemble the patch. */
504 Assert(offJmpBack >= 12);
505 pbTarget[0] = 0x48; /* mov rax, qword */
506 pbTarget[1] = 0xb8;
507 *(uintptr_t *)&pbTarget[2] = (uintptr_t)pfnHook;
508 pbTarget[10] = 0xff; /* jmp rax */
509 pbTarget[11] = 0xe0;
510
511#else /* !RT_ARCH_AMD64 */
512 /*
513 * Patch 32-bit hosts.
514 */
515 /* Just use the disassembler to skip 5 bytes or more. */
516 while (offJmpBack < 5)
517 {
518 cbInstr = 1;
519 int rc = DISInstr(pbTarget + offJmpBack, DISCPUMODE_32BIT, &Dis, &cbInstr);
520 if ( RT_FAILURE(rc)
521 || ( (Dis.pCurInstr->fOpType & DISOPTYPE_CONTROLFLOW)
522 && Dis.pCurInstr->uOpcode != OP_CALL))
523 return VERR_SUPLIB_UNEXPECTED_INSTRUCTION;
524
525 if ( Dis.pCurInstr->uOpcode == OP_CALL
526 && (Dis.pCurInstr->fOpType & DISOPTYPE_RELATIVE_CONTROLFLOW))
527 cbPatchMem += 10; /* push imm32 + jmp rel32 */
528 else
529 cbPatchMem += cbInstr;
530
531 offJmpBack += cbInstr;
532 }
533
534 /* Allocate suitable exectuable memory available. */
535 uint8_t *pbPatchMem = supR3HardenedMainPosixExecMemAlloc(cbPatchMem, pbTarget, false /* fRipRelAddr */);
536 if (!pbPatchMem)
537 return VERR_NO_MEMORY;
538
539 /* Assemble the code for resuming the call.*/
540 *ppfnReal = (uintptr_t)pbPatchMem;
541
542 /* Go through the instructions to patch and fixup any relative call instructions. */
543 uint32_t offInsn = 0;
544 while (offInsn < offJmpBack)
545 {
546 cbInstr = 1;
547 int rc = DISInstr(pbTarget + offInsn, DISCPUMODE_32BIT, &Dis, &cbInstr);
548 if ( RT_FAILURE(rc)
549 || ( (Dis.pCurInstr->fOpType & DISOPTYPE_CONTROLFLOW)
550 && Dis.pCurInstr->uOpcode != OP_CALL))
551 return VERR_SUPLIB_UNEXPECTED_INSTRUCTION;
552
553 if ( Dis.pCurInstr->uOpcode == OP_CALL
554 && (Dis.pCurInstr->fOpType & DISOPTYPE_RELATIVE_CONTROLFLOW))
555 {
556 /*
557 * Don't use a call instruction directly but push the original return address
558 * onto the stack and use a relative jump to the call target.
559 * The reason here is that on Linux the called method saves the return
560 * address from the stack which will be different from the original because
561 * the code is executed from our patch memory.
562 *
563 * Luckily the call instruction is 5 bytes long which means it is always the
564 * last instruction to patch and we don't need to return from the call
565 * to patch memory anyway but can use this method to resume the original call.
566 */
567 AssertReturn(offInsn + cbInstr >= offJmpBack, VERR_SUPLIB_UNEXPECTED_INSTRUCTION); /* Must be last instruction! */
568
569 /* push return address */
570 uint32_t const uAddrReturn = (uintptr_t)&pbTarget[offInsn + cbInstr]; /* The return address to push to the stack. */
571
572 *pbPatchMem++ = 0x68; /* push dword */
573 *(uint32_t *)pbPatchMem = uAddrReturn;
574 pbPatchMem += sizeof(uint32_t);
575
576 /* jmp rel32 to the call target */
577 uintptr_t const uAddr = uAddrReturn + (int32_t)Dis.Param1.uValue;
578 int32_t const i32DispNew = uAddr - (uintptr_t)&pbPatchMem[5];
579
580 *pbPatchMem++ = 0xe9; /* jmp rel32 */
581 *(int32_t *)pbPatchMem = i32DispNew;
582 pbPatchMem += sizeof(int32_t);
583 }
584 else
585 {
586 memcpy(pbPatchMem, pbTarget + offInsn, cbInstr);
587 pbPatchMem += cbInstr;
588 }
589
590 offInsn += cbInstr;
591 }
592
593 *pbPatchMem++ = 0xe9; /* jmp rel32 */
594 *(uint32_t *)pbPatchMem = (uintptr_t)&pbTarget[offJmpBack] - ((uintptr_t)pbPatchMem + 4);
595
596 /* Assemble the patch. */
597 Assert(offJmpBack >= 5);
598 pbTarget[0] = 0xe9;
599 *(uint32_t *)&pbTarget[1] = (uintptr_t)pfnHook - (uintptr_t)&pbTarget[1+4];
600#endif /* !RT_ARCH_AMD64 */
601
602 /*
603 * Re-seal target (ASSUMING that the shared object either has page aligned
604 * section or that the patch target is far enough from the writable parts).
605 */
606 rcPsx = mprotect(pvTargetBase, 2 * _4K, PROT_READ | PROT_EXEC);
607 if (rcPsx == -1)
608 return VERR_SUPLIB_TEXT_NOT_SEALED;
609
610 return VINF_SUCCESS;
611}
612
613
614/**
615 * @callback_method_impl{FNSUPHARDENEDSYMRESOLVE, dlopen}
616 */
617static DECLCALLBACK(void) supR3HardenedPosixMonitorDlopenResolve(void)
618{
619 /* Make harmless dlopen call. */
620 void *pv = dlopen(NULL, RTLD_LAZY);
621 if (pv)
622 dlclose(pv);
623}
624
625
626#ifdef SUP_HARDENED_WITH_DLMOPEN
627/**
628 * @callback_method_impl{FNSUPHARDENEDSYMRESOLVE, dlmopen}
629 */
630static DECLCALLBACK(void) supR3HardenedPosixMonitorDlmopenResolve(void)
631{
632 /* Make harmless dlmopen call. */
633 void *pv = dlmopen(LM_ID_BASE, NULL, RTLD_LAZY);
634 if (pv)
635 dlclose(pv);
636}
637#endif
638
639#endif /* SUP_HARDENED_WITHOUT_DLOPEN_PATCHING */
640
641
642/**
643 * Hardening initialization for POSIX compatible hosts.
644 *
645 * @note Doesn't return on error.
646 */
647DECLHIDDEN(void) supR3HardenedPosixInit(void)
648{
649#ifndef SUP_HARDENED_WITHOUT_DLOPEN_PATCHING
650 for (unsigned i = 0; i < RT_ELEMENTS(g_aHooks); i++)
651 {
652 PCSUPHARDENEDPOSIXHOOK pHook = &g_aHooks[i];
653 int rc = supR3HardenedMainPosixHookOne(pHook->pszSymbol, pHook->pfnHook, pHook->ppfnRealResume, pHook->pfnResolve);
654 if (RT_FAILURE(rc))
655 supR3HardenedFatalMsg("supR3HardenedPosixInit", kSupInitOp_Integrity, rc,
656 "Failed to hook the %s interface", pHook->pszSymbol);
657 }
658#endif
659}
660
661
662
663/*
664 * assert.cpp
665 *
666 * ASSUMES working DECLHIDDEN or there will be symbol confusion!
667 */
668
669RTDATADECL(char) g_szRTAssertMsg1[1024];
670RTDATADECL(char) g_szRTAssertMsg2[4096];
671RTDATADECL(const char * volatile) g_pszRTAssertExpr;
672RTDATADECL(const char * volatile) g_pszRTAssertFile;
673RTDATADECL(uint32_t volatile) g_u32RTAssertLine;
674RTDATADECL(const char * volatile) g_pszRTAssertFunction;
675
676RTDECL(bool) RTAssertMayPanic(void)
677{
678 return true;
679}
680
681
682RTDECL(void) RTAssertMsg1(const char *pszExpr, unsigned uLine, const char *pszFile, const char *pszFunction)
683{
684 /*
685 * Fill in the globals.
686 */
687 g_pszRTAssertExpr = pszExpr;
688 g_pszRTAssertFile = pszFile;
689 g_pszRTAssertFunction = pszFunction;
690 g_u32RTAssertLine = uLine;
691 snprintf(g_szRTAssertMsg1, sizeof(g_szRTAssertMsg1),
692 "\n!!Assertion Failed!!\n"
693 "Expression: %s\n"
694 "Location : %s(%u) %s\n",
695 pszExpr, pszFile, uLine, pszFunction);
696}
697
698
699RTDECL(void) RTAssertMsg2V(const char *pszFormat, va_list va)
700{
701 vsnprintf(g_szRTAssertMsg2, sizeof(g_szRTAssertMsg2), pszFormat, va);
702 if (g_enmSupR3HardenedMainState < SUPR3HARDENEDMAINSTATE_CALLED_TRUSTED_MAIN)
703 supR3HardenedFatalMsg(g_pszRTAssertExpr, kSupInitOp_Misc, VERR_INTERNAL_ERROR,
704 "%s%s", g_szRTAssertMsg1, g_szRTAssertMsg2);
705 else
706 supR3HardenedError(VERR_INTERNAL_ERROR, false/*fFatal*/, "%s%s", g_szRTAssertMsg1, g_szRTAssertMsg2);
707}
708
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