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https://github.com/Telecominfraproject/OpenCellular.git
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347 lines
13 KiB
C
347 lines
13 KiB
C
/* Copyright (c) 2010 The Chromium OS Authors. All rights reserved.
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* Use of this source code is governed by a BSD-style license that can be
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* found in the LICENSE file.
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*
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* Functions for querying, manipulating and locking rollback indices
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* stored in the TPM NVRAM.
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*/
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#include "rollback_index.h"
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#include "tlcl.h"
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#include "tss_constants.h"
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#include "utility.h"
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static int g_rollback_recovery_mode = 0;
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/* disable MSVC warning on const logical expression (as in } while(0);) */
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__pragma(warning (disable: 4127))
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#define RETURN_ON_FAILURE(tpm_command) do { \
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uint32_t result; \
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if ((result = (tpm_command)) != TPM_SUCCESS) { \
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return result; \
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} \
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} while (0)
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static uint32_t TPMClearAndReenable() {
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RETURN_ON_FAILURE(TlclForceClear());
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RETURN_ON_FAILURE(TlclSetEnable());
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RETURN_ON_FAILURE(TlclSetDeactivated(0));
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return TPM_SUCCESS;
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}
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/* Like TlclWrite(), but checks for write errors due to hitting the 64-write
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* limit and clears the TPM when that happens. This can only happen when the
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* TPM is unowned, so it is OK to clear it (and we really have no choice).
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* This is not expected to happen frequently, but it could happen.
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*/
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static uint32_t SafeWrite(uint32_t index, uint8_t* data, uint32_t length) {
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uint32_t result = TlclWrite(index, data, length);
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if (result == TPM_E_MAXNVWRITES) {
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RETURN_ON_FAILURE(TPMClearAndReenable());
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return TlclWrite(index, data, length);
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} else {
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return result;
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}
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}
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static uint32_t InitializeKernelVersionsSpaces(void) {
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RETURN_ON_FAILURE(TlclDefineSpace(KERNEL_VERSIONS_NV_INDEX,
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TPM_NV_PER_PPWRITE, KERNEL_SPACE_SIZE));
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RETURN_ON_FAILURE(SafeWrite(KERNEL_VERSIONS_NV_INDEX, KERNEL_SPACE_INIT_DATA,
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KERNEL_SPACE_SIZE));
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return TPM_SUCCESS;
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}
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/* When the return value is TPM_SUCCESS, this function sets *|initialized| to 1
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* if the spaces have been fully initialized, to 0 if not. Otherwise
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* *|initialized| is not changed.
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*/
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static uint32_t GetSpacesInitialized(int* initialized) {
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uint32_t space_holder;
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uint32_t result;
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result = TlclRead(TPM_IS_INITIALIZED_NV_INDEX,
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(uint8_t*) &space_holder, sizeof(space_holder));
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switch (result) {
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case TPM_SUCCESS:
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*initialized = 1;
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break;
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case TPM_E_BADINDEX:
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*initialized = 0;
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result = TPM_SUCCESS;
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break;
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}
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return result;
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}
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/* Creates the NVRAM spaces, and sets their initial values as needed.
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*/
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static uint32_t InitializeSpaces(void) {
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uint32_t zero = 0;
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uint32_t firmware_perm = TPM_NV_PER_GLOBALLOCK | TPM_NV_PER_PPWRITE;
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VBDEBUG(("Initializing spaces\n"));
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RETURN_ON_FAILURE(TlclSetNvLocked());
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RETURN_ON_FAILURE(TlclDefineSpace(FIRMWARE_VERSIONS_NV_INDEX,
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firmware_perm, sizeof(uint32_t)));
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RETURN_ON_FAILURE(SafeWrite(FIRMWARE_VERSIONS_NV_INDEX,
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(uint8_t*) &zero, sizeof(uint32_t)));
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RETURN_ON_FAILURE(InitializeKernelVersionsSpaces());
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/* The space KERNEL_VERSIONS_BACKUP_NV_INDEX is used to protect the kernel
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* versions. The content of space KERNEL_MUST_USE_BACKUP determines whether
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* only the backup value should be trusted.
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*/
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RETURN_ON_FAILURE(TlclDefineSpace(KERNEL_VERSIONS_BACKUP_NV_INDEX,
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firmware_perm, sizeof(uint32_t)));
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RETURN_ON_FAILURE(SafeWrite(KERNEL_VERSIONS_BACKUP_NV_INDEX,
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(uint8_t*) &zero, sizeof(uint32_t)));
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RETURN_ON_FAILURE(TlclDefineSpace(KERNEL_MUST_USE_BACKUP_NV_INDEX,
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firmware_perm, sizeof(uint32_t)));
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RETURN_ON_FAILURE(SafeWrite(KERNEL_MUST_USE_BACKUP_NV_INDEX,
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(uint8_t*) &zero, sizeof(uint32_t)));
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RETURN_ON_FAILURE(TlclDefineSpace(DEVELOPER_MODE_NV_INDEX,
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firmware_perm, sizeof(uint32_t)));
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RETURN_ON_FAILURE(SafeWrite(DEVELOPER_MODE_NV_INDEX,
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(uint8_t*) &zero, sizeof(uint32_t)));
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/* The space TPM_IS_INITIALIZED_NV_INDEX is used to indicate that the TPM
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* initialization has completed. Without it we cannot be sure that the last
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* space to be created was also initialized (power could have been lost right
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* after its creation).
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*/
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RETURN_ON_FAILURE(TlclDefineSpace(TPM_IS_INITIALIZED_NV_INDEX,
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firmware_perm, sizeof(uint32_t)));
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return TPM_SUCCESS;
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}
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static uint32_t SetDistrustKernelSpaceAtNextBoot(uint32_t distrust) {
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uint32_t must_use_backup;
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RETURN_ON_FAILURE(TlclRead(KERNEL_MUST_USE_BACKUP_NV_INDEX,
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(uint8_t*) &must_use_backup, sizeof(uint32_t)));
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if (must_use_backup != distrust) {
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RETURN_ON_FAILURE(SafeWrite(KERNEL_MUST_USE_BACKUP_NV_INDEX,
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(uint8_t*) &distrust, sizeof(uint32_t)));
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}
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return TPM_SUCCESS;
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}
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/* Checks if the kernel version space has been mucked with. If it has,
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* reconstructs it using the backup value.
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*/
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uint32_t RecoverKernelSpace(void) {
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uint32_t perms = 0;
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uint8_t buffer[KERNEL_SPACE_SIZE];
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uint32_t backup_combined_versions;
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uint32_t must_use_backup;
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uint32_t zero = 0;
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RETURN_ON_FAILURE(TlclRead(KERNEL_MUST_USE_BACKUP_NV_INDEX,
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(uint8_t*) &must_use_backup, sizeof(uint32_t)));
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/* must_use_backup is true if the previous boot entered recovery mode. */
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/* If we can't read the kernel space, or it has the wrong permission, or it
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* doesn't contain the right identifier, we give up. This will need to be
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* fixed by the recovery kernel. We have to worry about this because at any
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* time (even with PP turned off) the TPM owner can remove and redefine a
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* PP-protected space (but not write to it).
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*/
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RETURN_ON_FAILURE(TlclRead(KERNEL_VERSIONS_NV_INDEX, (uint8_t*) &buffer,
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KERNEL_SPACE_SIZE));
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RETURN_ON_FAILURE(TlclGetPermissions(KERNEL_VERSIONS_NV_INDEX, &perms));
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if (perms != TPM_NV_PER_PPWRITE ||
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!Memcmp(buffer + sizeof(uint32_t), KERNEL_SPACE_UID,
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KERNEL_SPACE_UID_SIZE)) {
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return TPM_E_CORRUPTED_STATE;
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}
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if (must_use_backup) {
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/* We must use the backup space because in the preceding boot cycle the
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* primary space was left unlocked and cannot be trusted.
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*/
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RETURN_ON_FAILURE(TlclRead(KERNEL_VERSIONS_BACKUP_NV_INDEX,
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(uint8_t*) &backup_combined_versions,
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sizeof(uint32_t)));
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RETURN_ON_FAILURE(SafeWrite(KERNEL_VERSIONS_NV_INDEX,
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(uint8_t*) &backup_combined_versions,
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sizeof(uint32_t)));
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RETURN_ON_FAILURE(SafeWrite(KERNEL_MUST_USE_BACKUP_NV_INDEX,
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(uint8_t*) &zero, 0));
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}
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return TPM_SUCCESS;
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}
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static uint32_t BackupKernelSpace(void) {
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uint32_t kernel_versions;
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uint32_t backup_versions;
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RETURN_ON_FAILURE(TlclRead(KERNEL_VERSIONS_NV_INDEX,
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(uint8_t*) &kernel_versions, sizeof(uint32_t)));
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RETURN_ON_FAILURE(TlclRead(KERNEL_VERSIONS_BACKUP_NV_INDEX,
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(uint8_t*) &backup_versions, sizeof(uint32_t)));
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if (kernel_versions == backup_versions) {
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return TPM_SUCCESS;
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} else if (kernel_versions < backup_versions) {
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/* This cannot happen. We're screwed. */
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return TPM_E_INTERNAL_INCONSISTENCY;
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}
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RETURN_ON_FAILURE(SafeWrite(KERNEL_VERSIONS_BACKUP_NV_INDEX,
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(uint8_t*) &kernel_versions, sizeof(uint32_t)));
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return TPM_SUCCESS;
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}
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/* Checks for transitions between protected mode to developer mode. When going
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* into developer mode, clear the TPM.
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*/
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static uint32_t CheckDeveloperModeTransition(uint32_t current_developer) {
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uint32_t past_developer;
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RETURN_ON_FAILURE(TlclRead(DEVELOPER_MODE_NV_INDEX,
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(uint8_t*) &past_developer,
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sizeof(past_developer)));
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if (past_developer != current_developer) {
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RETURN_ON_FAILURE(TPMClearAndReenable());
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RETURN_ON_FAILURE(SafeWrite(DEVELOPER_MODE_NV_INDEX,
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(uint8_t*) ¤t_developer,
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sizeof(current_developer)));
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}
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return TPM_SUCCESS;
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}
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/* SetupTPM starts the TPM and establishes the root of trust for the
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* anti-rollback mechanism. SetupTPM can fail for three reasons. 1 A bug. 2 a
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* TPM hardware failure. 3 An unexpected TPM state due to some attack. In
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* general we cannot easily distinguish the kind of failure, so our strategy is
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* to reboot in recovery mode in all cases. The recovery mode calls SetupTPM
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* again, which executes (almost) the same sequence of operations. There is a
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* good chance that, if recovery mode was entered because of a TPM failure, the
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* failure will repeat itself. (In general this is impossible to guarantee
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* because we have no way of creating the exact TPM initial state at the
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* previous boot.) In recovery mode, we ignore the failure and continue, thus
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* giving the recovery kernel a chance to fix things (that's why we don't set
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* bGlobalLock). The choice is between a knowingly insecure device and a
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* bricked device.
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*
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* As a side note, observe that we go through considerable hoops to avoid using
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* the STCLEAR permissions for the index spaces. We do this to avoid writing
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* to the TPM flashram at every reboot or wake-up, because of concerns about
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* the durability of the NVRAM.
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*/
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static uint32_t SetupTPM(int recovery_mode,
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int developer_mode) {
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uint8_t disable;
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uint8_t deactivated;
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TlclLibInit();
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RETURN_ON_FAILURE(TlclStartup());
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RETURN_ON_FAILURE(TlclContinueSelfTest());
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RETURN_ON_FAILURE(TlclAssertPhysicalPresence());
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/* Checks that the TPM is enabled and activated. */
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RETURN_ON_FAILURE(TlclGetFlags(&disable, &deactivated));
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if (disable || deactivated) {
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RETURN_ON_FAILURE(TlclSetEnable());
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RETURN_ON_FAILURE(TlclSetDeactivated(0));
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return TPM_E_MUST_REBOOT;
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}
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/* We expect this to fail the first time we run on a device, because the TPM
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* has not been initialized yet.
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*/
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if (RecoverKernelSpace() != TPM_SUCCESS) {
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int initialized = 0;
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RETURN_ON_FAILURE(GetSpacesInitialized(&initialized));
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if (initialized) {
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return TPM_E_ALREADY_INITIALIZED;
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} else {
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RETURN_ON_FAILURE(InitializeSpaces());
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RETURN_ON_FAILURE(RecoverKernelSpace());
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}
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}
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RETURN_ON_FAILURE(BackupKernelSpace());
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RETURN_ON_FAILURE(SetDistrustKernelSpaceAtNextBoot(recovery_mode));
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RETURN_ON_FAILURE(CheckDeveloperModeTransition(developer_mode));
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if (recovery_mode) {
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/* In recovery mode global variables are usable. */
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g_rollback_recovery_mode = 1;
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}
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return TPM_SUCCESS;
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}
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/* disable MSVC warnings on unused arguments */
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__pragma(warning (disable: 4100))
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uint32_t RollbackFirmwareSetup(int developer_mode) {
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return SetupTPM(0, developer_mode);
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}
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uint32_t RollbackFirmwareRead(uint16_t* key_version, uint16_t* version) {
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uint32_t firmware_versions;
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/* Gets firmware versions. */
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RETURN_ON_FAILURE(TlclRead(FIRMWARE_VERSIONS_NV_INDEX,
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(uint8_t*) &firmware_versions,
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sizeof(firmware_versions)));
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*key_version = (uint16_t) (firmware_versions >> 16);
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*version = (uint16_t) (firmware_versions & 0xffff);
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return TPM_SUCCESS;
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}
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uint32_t RollbackFirmwareWrite(uint16_t key_version, uint16_t version) {
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uint32_t combined_version = (key_version << 16) & version;
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return SafeWrite(FIRMWARE_VERSIONS_NV_INDEX,
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(uint8_t*) &combined_version,
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sizeof(uint32_t));
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}
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uint32_t RollbackFirmwareLock(void) {
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return TlclSetGlobalLock();
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}
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uint32_t RollbackKernelRecovery(int developer_mode) {
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(void) SetupTPM(1, developer_mode);
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/* In recovery mode we ignore TPM malfunctions or corruptions, and leave the
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* TPM completely unlocked if and only if the dev mode switch is ON. The
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* recovery kernel will fix the TPM (if needed) and lock it ASAP. We leave
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* Physical Presence on in either case.
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*/
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if (!developer_mode) {
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RETURN_ON_FAILURE(TlclSetGlobalLock());
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}
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return TPM_SUCCESS;
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}
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uint32_t RollbackKernelRead(uint16_t* key_version, uint16_t* version) {
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uint32_t kernel_versions;
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if (g_rollback_recovery_mode) {
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*key_version = 0;
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*version = 0;
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} else {
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/* Reads kernel versions from TPM. */
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RETURN_ON_FAILURE(TlclRead(KERNEL_VERSIONS_NV_INDEX,
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(uint8_t*) &kernel_versions,
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sizeof(kernel_versions)));
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*key_version = (uint16_t) (kernel_versions >> 16);
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*version = (uint16_t) (kernel_versions & 0xffff);
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}
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return TPM_SUCCESS;
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}
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uint32_t RollbackKernelWrite(uint16_t key_version, uint16_t version) {
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if (!g_rollback_recovery_mode) {
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uint32_t combined_version = (key_version << 16) & version;
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return SafeWrite(KERNEL_VERSIONS_NV_INDEX,
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(uint8_t*) &combined_version,
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sizeof(uint32_t));
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}
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return TPM_SUCCESS;
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}
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uint32_t RollbackKernelLock(void) {
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if (!g_rollback_recovery_mode) {
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return TlclLockPhysicalPresence();
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} else {
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return TPM_SUCCESS;
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}
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}
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