890 lines
20 KiB
C
890 lines
20 KiB
C
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/////////////////////////////////////////////////////////////////////////////
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// FILE : fipsdll.c //
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// DESCRIPTION : //
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// AUTHOR : //
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// HISTORY : //
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// Nov 29 1999 jeffspel Created //
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// //
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// Copyright (C) 1999 Microsoft Corporation All Rights Reserved //
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/////////////////////////////////////////////////////////////////////////////
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#include <ntddk.h>
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#include <fipsapi.h>
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#include <rsa_fast.h>
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#include <rsa_math.h>
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#include <randlib.h>
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//
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// Fill in the DESTable struct with the decrypt and encrypt
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// key expansions.
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//
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// Assumes that the second parameter points to DES_BLOCKLEN
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// bytes of key.
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//
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//
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#pragma alloc_text(PAGER32C, FipsDesKey)
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#pragma alloc_text(PAGER32C, FipsDes)
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#pragma alloc_text(PAGER32C, Fips3Des3Key)
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#pragma alloc_text(PAGER32C, Fips3Des)
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#pragma alloc_text(PAGER32C, FipsSHAInit)
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#pragma alloc_text(PAGER32C, FipsSHAUpdate)
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#pragma alloc_text(PAGER32C, FipsSHAFinal)
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#pragma alloc_text(PAGER32C, FipsCBC)
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#pragma alloc_text(PAGER32C, FIPSGenRandom)
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#pragma alloc_text(PAGER32C, FipsCBC)
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#pragma alloc_text(PAGER32C, FIPSGenRandom)
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#pragma alloc_text(PAGER32C, FipsBlockCBC)
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#pragma alloc_text(PAGER32C, FipsHmacSHAInit)
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#pragma alloc_text(PAGER32C, FipsHmacSHAUpdate)
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#pragma alloc_text(PAGER32C, FipsHmacSHAFinal)
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#pragma alloc_text(PAGER32C, HmacMD5Init)
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#pragma alloc_text(PAGER32C, HmacMD5Update)
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#pragma alloc_text(PAGER32C, HmacMD5Final)
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void *
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__stdcall
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RSA32Alloc(
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unsigned long cb
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)
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{
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return (void *)ExAllocatePool(PagedPool, cb);
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}
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void
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__stdcall
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RSA32Free(
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void *pv
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)
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{
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ExFreePool( pv );
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}
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VOID FipsDesKey(DESTable *DesTable, UCHAR *pbKey)
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{
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UCHAR rgbTmpKey[DES_KEYSIZE];
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RtlCopyMemory(rgbTmpKey, pbKey, DES_KEYSIZE);
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deskey(DesTable, rgbTmpKey);
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RtlZeroMemory(rgbTmpKey, DES_KEYSIZE);
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}
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//
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// Encrypt or decrypt with the key in DESTable
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//
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//
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VOID FipsDes(UCHAR *pbOut, UCHAR *pbIn, void *pKey, int iOp)
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{
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DESTable TmpDESTable;
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RtlCopyMemory(&TmpDESTable, pKey, sizeof(DESTable));
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des(pbOut, pbIn, &TmpDESTable, iOp);
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RtlZeroMemory(&TmpDESTable, sizeof(DESTable));
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}
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//
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// Fill in the DES3Table structs with the decrypt and encrypt
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// key expansions.
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//
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// Assumes that the second parameter points to 3 * DES_BLOCKLEN
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// bytes of key.
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//
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//
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VOID Fips3Des3Key(PDES3TABLE pDES3Table, UCHAR *pbKey)
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{
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UCHAR rgbTmpKey[DES3_KEYSIZE];
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RtlCopyMemory(rgbTmpKey, pbKey, DES3_KEYSIZE);
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tripledes3key(pDES3Table, rgbTmpKey);
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RtlZeroMemory(rgbTmpKey, DES3_KEYSIZE);
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}
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//
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// Encrypt or decrypt with the key in pKey
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//
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VOID Fips3Des(UCHAR *pbIn, UCHAR *pbOut, void *pKey, int op)
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{
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DES3TABLE Tmp3DESTable;
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RtlCopyMemory(&Tmp3DESTable, pKey, sizeof(DES3TABLE));
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tripledes(pbIn, pbOut, &Tmp3DESTable, op);
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RtlZeroMemory(&Tmp3DESTable, sizeof(DES3TABLE));
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}
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//
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// Initialize the SHA context.
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//
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VOID FipsSHAInit(A_SHA_CTX *pShaCtx)
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{
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A_SHAInit(pShaCtx);
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}
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//
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// Hash data into the hash context.
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//
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VOID FipsSHAUpdate(A_SHA_CTX *pShaCtx, UCHAR *pb, unsigned int cb)
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{
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A_SHAUpdate(pShaCtx, pb, cb);
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}
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//
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// Finish the SHA hash and copy the final hash value into the pbHash out param.
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//
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VOID FipsSHAFinal(A_SHA_CTX *pShaCtx, UCHAR *pbHash)
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{
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A_SHAFinal(pShaCtx, pbHash);
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}
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typedef void (*FIPSCIPHER)(UCHAR*, UCHAR*, void*, int);
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//
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// FipsCBC (cipher block chaining) performs a XOR of the feedback register
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// with the plain text before calling the block cipher
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//
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// NOTE - Currently this function assumes that the block length is
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// DES_BLOCKLEN (8 bytes).
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//
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// Return: Failure if FALSE is returned, TRUE if it succeeded.
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//
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BOOL FipsCBC(
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ULONG EncryptionAlg,
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PBYTE pbOutput,
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PBYTE pbInput,
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void *pKeyTable,
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int Operation,
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PBYTE pbFeedback
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)
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{
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UCHAR rgbTmpKeyTable[DES3_TABLESIZE]; // 3DES is the max table size
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ULONG cbKeyTable;
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FIPSCIPHER FipsCipher;
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BOOL fRet = TRUE;
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PBYTE pbOutputSave = NULL, pbInputSave = NULL, pbFeedbackSave = NULL;
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UINT64 OutputAlignedBuffer, InputAlignedBuffer, FeedbackAlignedBuffer;
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#ifdef IA64
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#define ALIGNMENT_BOUNDARY 7
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#else
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#define ALIGNMENT_BOUNDARY 3
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#endif
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// align input buffer
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if ((ULONG_PTR) pbInput & ALIGNMENT_BOUNDARY) {
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InputAlignedBuffer = *(UINT64 UNALIGNED *) pbInput;
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pbInputSave = pbInput;
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if (pbOutput == pbInput) {
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pbOutput = (PBYTE) &InputAlignedBuffer;
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}
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pbInput = (PBYTE) &InputAlignedBuffer;
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}
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// align output buffer
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if ((ULONG_PTR) pbOutput & ALIGNMENT_BOUNDARY) {
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OutputAlignedBuffer = *(UINT64 UNALIGNED *) pbOutput;
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pbOutputSave = pbOutput;
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pbOutput = (PBYTE) &OutputAlignedBuffer;
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}
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if ((ULONG_PTR) pbFeedback & ALIGNMENT_BOUNDARY) {
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FeedbackAlignedBuffer = *(UINT64 UNALIGNED *) pbFeedback;
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pbFeedbackSave = pbFeedback;
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pbFeedback = (PBYTE) &FeedbackAlignedBuffer;
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}
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//
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// determine the algorithm to use
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//
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switch(EncryptionAlg)
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{
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case FIPS_CBC_DES:
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{
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FipsCipher = des;
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cbKeyTable = DES_TABLESIZE;
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break;
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}
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case FIPS_CBC_3DES:
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{
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FipsCipher = tripledes;
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cbKeyTable = DES3_TABLESIZE;
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break;
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}
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default:
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fRet = FALSE;
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goto Ret;
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}
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RtlCopyMemory(rgbTmpKeyTable, (UCHAR*)pKeyTable, cbKeyTable);
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//
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// optimize very common codepath: 8 byte blocks
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//
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if (Operation == ENCRYPT)
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{
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((PUINT64) pbOutput)[0] =
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((PUINT64) pbInput)[0] ^ ((PUINT64) pbFeedback)[0];
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FipsCipher(pbOutput, pbOutput, rgbTmpKeyTable, ENCRYPT);
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((PUINT64) pbFeedback)[0] = ((PUINT64) pbOutput)[0];
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}
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else
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{
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//
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// two cases for output:
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// input and output are separate buffers
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// input and output are same buffers
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//
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if( pbOutput != pbInput )
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{
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FipsCipher(pbOutput, pbInput, rgbTmpKeyTable, DECRYPT);
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((PUINT64) pbOutput)[0] ^= ((PUINT64) pbFeedback)[0];
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((PUINT64) pbFeedback)[0] = ((PUINT64) pbInput)[0];
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} else {
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UINT64 inputTemp;
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inputTemp = ((PUINT64) pbInput)[0];
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FipsCipher(pbOutput, pbInput, rgbTmpKeyTable, DECRYPT);
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((PUINT64) pbOutput)[0] ^= ((PUINT64) pbFeedback)[0];
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((PUINT64) pbFeedback)[0] = inputTemp;
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}
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}
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RtlZeroMemory(rgbTmpKeyTable, DES3_TABLESIZE);
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if (pbInputSave) {
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*(UINT64 UNALIGNED *) pbInputSave = InputAlignedBuffer;
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}
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if (pbOutputSave) {
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*(UINT64 UNALIGNED *) pbOutputSave = OutputAlignedBuffer;
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}
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|
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if (pbFeedbackSave) {
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|
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*(UINT64 UNALIGNED *) pbFeedbackSave = FeedbackAlignedBuffer;
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}
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Ret:
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return fRet;
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}
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|
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//
|
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// FipsBlockCBC (cipher block chaining) performs a XOR of the feedback register
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// with the plain text before calling the block cipher
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|
//
|
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|
// NOTE - Currently this function assumes that the block length is
|
||
|
// DES_BLOCKLEN (8 bytes).
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||
|
//
|
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// Return: Failure if FALSE is returned, TRUE if it succeeded.
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//
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||
|
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BOOL FipsBlockCBC(
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ULONG EncryptionAlg,
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PBYTE pbOutput,
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PBYTE pbInput,
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|
ULONG Length,
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||
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void *pKeyTable,
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int Operation,
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PBYTE pbFeedback
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)
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{
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UCHAR rgbTmpKeyTable[DES3_TABLESIZE]; // 3DES is the max table size
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||
|
ULONG cbKeyTable;
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||
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FIPSCIPHER FipsCipher;
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BOOL fRet = TRUE;
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|
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ASSERT ((Length % DESX_BLOCKLEN == 0) && (Length > 0));
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if ((Length % DESX_BLOCKLEN != 0) || (Length == 0)) {
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return FALSE;
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}
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|
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|
//
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// determine the algorithm to use
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//
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switch(EncryptionAlg)
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{
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case FIPS_CBC_DES:
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{
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FipsCipher = des;
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cbKeyTable = DES_TABLESIZE;
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break;
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}
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case FIPS_CBC_3DES:
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{
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FipsCipher = tripledes;
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cbKeyTable = DES3_TABLESIZE;
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break;
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}
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default:
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fRet = FALSE;
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goto Ret;
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}
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RtlCopyMemory(rgbTmpKeyTable, (UCHAR*)pKeyTable, cbKeyTable);
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//
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// optimize very common codepath: 8 byte blocks
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//
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|
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if (Operation == ENCRYPT)
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{
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ULONGLONG tmpData; // Make sure the input buffer not touched more than once. Else EFS will break mysteriously.
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ULONGLONG chainBlock;
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chainBlock = *(ULONGLONG *)pbFeedback;
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while (Length > 0){
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tmpData = *(ULONGLONG *)pbInput;
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tmpData ^= chainBlock;
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|
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FipsCipher(pbOutput, (PUCHAR)&tmpData, rgbTmpKeyTable, ENCRYPT);
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chainBlock = *(ULONGLONG *)pbOutput;
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|
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Length -= DES_BLOCKLEN;
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pbInput += DES_BLOCKLEN;
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pbOutput += DES_BLOCKLEN;
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||
|
|
||
|
|
||
|
}
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((PUINT64) pbFeedback)[0] = chainBlock;
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||
|
}
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||
|
else
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||
|
{
|
||
|
|
||
|
PUCHAR pBuffer;
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||
|
PUCHAR pOutBuffer;
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|
ULONGLONG SaveFeedBack;
|
||
|
|
||
|
//
|
||
|
// two cases for output:
|
||
|
// input and output are separate buffers
|
||
|
// input and output are same buffers
|
||
|
//
|
||
|
|
||
|
pBuffer = pbInput + Length - DES_BLOCKLEN;
|
||
|
pOutBuffer = pbOutput + Length - DES_BLOCKLEN;
|
||
|
SaveFeedBack = *(ULONGLONG *)pBuffer;
|
||
|
|
||
|
while (pBuffer > pbInput) {
|
||
|
|
||
|
FipsCipher(pOutBuffer, pBuffer, rgbTmpKeyTable, DECRYPT);
|
||
|
((PUINT64) pOutBuffer)[0] ^= *(ULONGLONG *)( pBuffer - DES_BLOCKLEN );
|
||
|
|
||
|
pBuffer -= DES_BLOCKLEN;
|
||
|
pOutBuffer -= DES_BLOCKLEN;
|
||
|
|
||
|
}
|
||
|
|
||
|
FipsCipher(pOutBuffer, pBuffer, rgbTmpKeyTable, DECRYPT);
|
||
|
((PUINT64) pOutBuffer)[0] ^= *(ULONGLONG *)pbFeedback;
|
||
|
((PUINT64) pbFeedback)[0] = SaveFeedBack;
|
||
|
|
||
|
}
|
||
|
|
||
|
RtlZeroMemory(rgbTmpKeyTable, DES3_TABLESIZE);
|
||
|
|
||
|
|
||
|
Ret:
|
||
|
return fRet;
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Function: FipsHmacSHAInit
|
||
|
//
|
||
|
// Description: Initialize a SHA-HMAC context
|
||
|
//
|
||
|
|
||
|
VOID FipsHmacSHAInit(
|
||
|
OUT A_SHA_CTX *pShaCtx,
|
||
|
IN UCHAR *pKey,
|
||
|
IN unsigned int cbKey)
|
||
|
{
|
||
|
PUCHAR key = pKey;
|
||
|
ULONG key_len = cbKey;
|
||
|
UCHAR k_ipad[MAX_LEN_PAD]; /* inner padding - key XORd with ipad */
|
||
|
UCHAR tk[A_SHA_DIGEST_LEN];
|
||
|
ULONG i;
|
||
|
UCHAR tmpKey[MAX_KEYLEN_SHA];
|
||
|
|
||
|
//
|
||
|
// if key is longer than 64 bytes reset it to key=A_SHA_(key) */
|
||
|
//
|
||
|
if (key_len > MAX_KEYLEN_SHA) {
|
||
|
A_SHA_CTX tctx;
|
||
|
|
||
|
A_SHAInit(&tctx);
|
||
|
A_SHAUpdate(&tctx, key, key_len);
|
||
|
A_SHAFinal(&tctx, tk);
|
||
|
|
||
|
key = tk;
|
||
|
key_len = A_SHA_DIGEST_LEN;
|
||
|
}
|
||
|
|
||
|
// For FIPS compliance
|
||
|
RtlCopyMemory(tmpKey, key, key_len);
|
||
|
|
||
|
//
|
||
|
// Zero out the scratch arrays
|
||
|
//
|
||
|
RtlZeroMemory(k_ipad, sizeof(k_ipad));
|
||
|
|
||
|
RtlCopyMemory(k_ipad, tmpKey, key_len);
|
||
|
|
||
|
//
|
||
|
// XOR key with ipad and opad values
|
||
|
//
|
||
|
for (i = 0; i < MAX_KEYLEN_SHA/sizeof(unsigned __int64); i++) {
|
||
|
((unsigned __int64*)k_ipad)[i] ^= 0x3636363636363636;
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Init the algorithm context
|
||
|
//
|
||
|
A_SHAInit(pShaCtx);
|
||
|
|
||
|
//
|
||
|
// Inner A_SHA_: start with inner pad
|
||
|
//
|
||
|
A_SHAUpdate(pShaCtx, k_ipad, MAX_KEYLEN_SHA);
|
||
|
|
||
|
RtlZeroMemory(tmpKey, key_len);
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Function: FipsHmacSHAUpdate
|
||
|
//
|
||
|
// Description: Add more data to a SHA-HMAC context
|
||
|
//
|
||
|
|
||
|
VOID FipsHmacSHAUpdate(
|
||
|
IN OUT A_SHA_CTX *pShaCtx,
|
||
|
IN UCHAR *pb,
|
||
|
IN unsigned int cb)
|
||
|
{
|
||
|
A_SHAUpdate(pShaCtx, pb, cb);
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Function: FipsHmacSHAFinal
|
||
|
//
|
||
|
// Description: Return result of SHA-HMAC
|
||
|
//
|
||
|
|
||
|
VOID FipsHmacSHAFinal(
|
||
|
IN A_SHA_CTX *pShaCtx,
|
||
|
IN UCHAR *pKey,
|
||
|
IN unsigned int cbKey,
|
||
|
OUT UCHAR *pHash)
|
||
|
{
|
||
|
UCHAR k_opad[MAX_LEN_PAD]; /* outer padding - key XORd with opad */
|
||
|
UCHAR tk[A_SHA_DIGEST_LEN];
|
||
|
PUCHAR key = pKey;
|
||
|
ULONG key_len = cbKey;
|
||
|
ULONG i;
|
||
|
UCHAR tmpKey[MAX_KEYLEN_SHA];
|
||
|
|
||
|
A_SHAFinal(pShaCtx, pHash);
|
||
|
|
||
|
//
|
||
|
// if key is longer than 64 bytes reset it to key=A_SHA_(key) */
|
||
|
//
|
||
|
if (key_len > MAX_KEYLEN_SHA) {
|
||
|
A_SHA_CTX tctx;
|
||
|
|
||
|
A_SHAInit(&tctx);
|
||
|
A_SHAUpdate(&tctx, key, key_len);
|
||
|
A_SHAFinal(&tctx, tk);
|
||
|
|
||
|
key = tk;
|
||
|
key_len = A_SHA_DIGEST_LEN;
|
||
|
}
|
||
|
|
||
|
// For FIPS Compliance
|
||
|
RtlCopyMemory(tmpKey, key, key_len);
|
||
|
|
||
|
RtlZeroMemory(k_opad, sizeof(k_opad));
|
||
|
RtlCopyMemory(k_opad, tmpKey, key_len);
|
||
|
|
||
|
//
|
||
|
// XOR key with ipad and opad values
|
||
|
//
|
||
|
for (i = 0; i < MAX_KEYLEN_SHA/sizeof(unsigned __int64); i++) {
|
||
|
((unsigned __int64*)k_opad)[i] ^= 0x5c5c5c5c5c5c5c5c;
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Now do outer A_SHA_
|
||
|
//
|
||
|
A_SHAInit(pShaCtx);
|
||
|
|
||
|
//
|
||
|
// start with outer pad
|
||
|
//
|
||
|
A_SHAUpdate(pShaCtx, k_opad, MAX_KEYLEN_SHA);
|
||
|
|
||
|
//
|
||
|
// then results of 1st hash
|
||
|
//
|
||
|
A_SHAUpdate(pShaCtx, pHash, A_SHA_DIGEST_LEN);
|
||
|
|
||
|
A_SHAFinal(pShaCtx, pHash);
|
||
|
|
||
|
RtlZeroMemory(tmpKey, key_len);
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Function: HmacMD5Init
|
||
|
//
|
||
|
// Description: Initialize a MD5-HMAC context
|
||
|
//
|
||
|
|
||
|
VOID HmacMD5Init(
|
||
|
OUT MD5_CTX *pMD5Ctx,
|
||
|
IN UCHAR *pKey,
|
||
|
IN unsigned int cbKey)
|
||
|
{
|
||
|
PUCHAR key = pKey;
|
||
|
ULONG key_len = cbKey;
|
||
|
UCHAR k_ipad[MAX_LEN_PAD]; /* inner padding - key XORd with ipad */
|
||
|
UCHAR tk[MD5DIGESTLEN];
|
||
|
ULONG i;
|
||
|
|
||
|
//
|
||
|
// if key is longer than 64 bytes reset it to key=MD5(key) */
|
||
|
//
|
||
|
if (key_len > MAX_KEYLEN_MD5) {
|
||
|
MD5_CTX tctx;
|
||
|
|
||
|
MD5Init(&tctx);
|
||
|
MD5Update(&tctx, key, key_len);
|
||
|
MD5Final(&tctx);
|
||
|
|
||
|
//
|
||
|
// Copy out the partial hash
|
||
|
//
|
||
|
RtlCopyMemory (tk, tctx.digest, MD5DIGESTLEN);
|
||
|
|
||
|
key = tk;
|
||
|
key_len = MD5DIGESTLEN;
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Zero out the scratch arrays
|
||
|
//
|
||
|
RtlZeroMemory(k_ipad, sizeof(k_ipad));
|
||
|
|
||
|
RtlCopyMemory(k_ipad, key, key_len);
|
||
|
|
||
|
//
|
||
|
// XOR key with ipad and opad values
|
||
|
//
|
||
|
for (i = 0; i < MAX_KEYLEN_MD5/sizeof(unsigned __int64); i++) {
|
||
|
((unsigned __int64*)k_ipad)[i] ^= 0x3636363636363636;
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Init the algorithm context
|
||
|
//
|
||
|
MD5Init(pMD5Ctx);
|
||
|
|
||
|
//
|
||
|
// Inner MD5: start with inner pad
|
||
|
//
|
||
|
MD5Update(pMD5Ctx, k_ipad, MAX_KEYLEN_MD5);
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Function: HmacMD5Update
|
||
|
//
|
||
|
// Description: Add more data to a MD5-HMAC context
|
||
|
//
|
||
|
|
||
|
VOID HmacMD5Update(
|
||
|
IN OUT MD5_CTX *pMD5Ctx,
|
||
|
IN UCHAR *pb,
|
||
|
IN unsigned int cb)
|
||
|
{
|
||
|
MD5Update(pMD5Ctx, pb, cb);
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Function: HmacMD5Final
|
||
|
//
|
||
|
// Description: Return result of MD5-HMAC
|
||
|
//
|
||
|
|
||
|
VOID HmacMD5Final(
|
||
|
IN MD5_CTX *pMD5Ctx,
|
||
|
IN UCHAR *pKey,
|
||
|
IN unsigned int cbKey,
|
||
|
OUT UCHAR *pHash)
|
||
|
{
|
||
|
UCHAR k_opad[MAX_LEN_PAD]; /* outer padding - key XORd with opad */
|
||
|
UCHAR tk[MD5DIGESTLEN];
|
||
|
PUCHAR key = pKey;
|
||
|
ULONG key_len = cbKey;
|
||
|
ULONG i;
|
||
|
|
||
|
MD5Final(pMD5Ctx);
|
||
|
|
||
|
//
|
||
|
// Copy out the partial hash
|
||
|
//
|
||
|
RtlCopyMemory (pHash, pMD5Ctx->digest, MD5DIGESTLEN);
|
||
|
|
||
|
//
|
||
|
// if key is longer than 64 bytes reset it to key=MD5(key) */
|
||
|
//
|
||
|
if (key_len > MAX_KEYLEN_MD5) {
|
||
|
MD5_CTX tctx;
|
||
|
|
||
|
MD5Init(&tctx);
|
||
|
MD5Update(&tctx, key, key_len);
|
||
|
MD5Final(&tctx);
|
||
|
|
||
|
//
|
||
|
// Copy out the partial hash
|
||
|
//
|
||
|
RtlCopyMemory (tk, tctx.digest, MD5DIGESTLEN);
|
||
|
|
||
|
key = tk;
|
||
|
key_len = MD5DIGESTLEN;
|
||
|
}
|
||
|
|
||
|
RtlZeroMemory(k_opad, sizeof(k_opad));
|
||
|
RtlCopyMemory(k_opad, key, key_len);
|
||
|
|
||
|
//
|
||
|
// XOR key with ipad and opad values
|
||
|
//
|
||
|
for (i = 0; i < MAX_KEYLEN_MD5/sizeof(unsigned __int64); i++) {
|
||
|
((unsigned __int64*)k_opad)[i] ^= 0x5c5c5c5c5c5c5c5c;
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Now do outer MD5
|
||
|
//
|
||
|
MD5Init(pMD5Ctx);
|
||
|
|
||
|
//
|
||
|
// start with outer pad
|
||
|
//
|
||
|
MD5Update(pMD5Ctx, k_opad, MAX_KEYLEN_MD5);
|
||
|
|
||
|
//
|
||
|
// then results of 1st hash
|
||
|
//
|
||
|
MD5Update(pMD5Ctx, pHash, MD5DIGESTLEN);
|
||
|
|
||
|
MD5Final(pMD5Ctx);
|
||
|
|
||
|
RtlCopyMemory(pHash, pMD5Ctx->digest, MD5DIGESTLEN);
|
||
|
}
|
||
|
|
||
|
static UCHAR DSSPRIVATEKEYINIT[] =
|
||
|
{ 0x67, 0x45, 0x23, 0x01, 0xef, 0xcd, 0xab, 0x89,
|
||
|
0x98, 0xba, 0xdc, 0xfe, 0x10, 0x32, 0x54, 0x76,
|
||
|
0xc3, 0xd2, 0xe1, 0xf0};
|
||
|
|
||
|
static UCHAR MODULUS[] =
|
||
|
{ 0xf5, 0xc1, 0x56, 0xb1, 0xd5, 0x48, 0x42, 0x2e,
|
||
|
0xbd, 0xa5, 0x44, 0x41, 0xc7, 0x1c, 0x24, 0x08,
|
||
|
0x3f, 0x80, 0x3c, 0x90};
|
||
|
|
||
|
|
||
|
UCHAR g_rgbRNGState[A_SHA_DIGEST_LEN];
|
||
|
|
||
|
//
|
||
|
// Function : AddSeeds
|
||
|
//
|
||
|
// Description : This function adds the 160 bit seeds pointed to by pdwSeed1 and
|
||
|
// pdwSeed2, it also adds 1 to this sum and mods the sum by
|
||
|
// 2^160.
|
||
|
//
|
||
|
|
||
|
VOID AddSeeds(
|
||
|
IN ULONG *pdwSeed1,
|
||
|
IN OUT ULONG *pdwSeed2
|
||
|
)
|
||
|
{
|
||
|
ULONG dwTmp;
|
||
|
ULONG dwOverflow = 1;
|
||
|
ULONG i;
|
||
|
|
||
|
for (i = 0; i < 5; i++)
|
||
|
{
|
||
|
dwTmp = dwOverflow + pdwSeed1[i];
|
||
|
dwOverflow = (dwOverflow > dwTmp);
|
||
|
pdwSeed2[i] = pdwSeed2[i] + dwTmp;
|
||
|
dwOverflow = ((dwTmp > pdwSeed2[i]) || dwOverflow);
|
||
|
}
|
||
|
}
|
||
|
|
||
|
|
||
|
void SHA_mod_q(
|
||
|
IN UCHAR *pbHash,
|
||
|
IN UCHAR *pbQ,
|
||
|
OUT UCHAR *pbNewHash
|
||
|
)
|
||
|
//
|
||
|
// Given SHA(message), compute SHA(message) mod qdigit.
|
||
|
// Output is in the interval [0, qdigit-1].
|
||
|
// Although SHA(message) may exceed qdigit,
|
||
|
// it cannot exceed 2*qdigit since the leftmost bit
|
||
|
// of qdigit is 1.
|
||
|
//
|
||
|
|
||
|
{
|
||
|
UCHAR rgbHash[A_SHA_DIGEST_LEN];
|
||
|
|
||
|
if (-1 != Compare((DWORD*)rgbHash, // hash is greater so subtract
|
||
|
(DWORD*)pbQ,
|
||
|
A_SHA_DIGEST_LEN / sizeof(ULONG)))
|
||
|
{
|
||
|
Sub((DWORD*)pbNewHash,
|
||
|
(DWORD*)rgbHash,
|
||
|
(DWORD*)pbQ,
|
||
|
A_SHA_DIGEST_LEN / sizeof(ULONG));
|
||
|
}
|
||
|
else
|
||
|
{
|
||
|
memcpy(pbNewHash, pbHash, A_SHA_DIGEST_LEN / sizeof(ULONG));
|
||
|
}
|
||
|
} // SHA_mod_q
|
||
|
|
||
|
//
|
||
|
// Function : RNG16BitStateCheck
|
||
|
//
|
||
|
// Description : This function compares each 160 bits of the buffer with
|
||
|
// the next 160 bits and if they are the same the function
|
||
|
// errors out. The IN buffer is expected to be A_SHA_DIGEST_LEN
|
||
|
// bytes long. The function fails if the RNG is gets the same
|
||
|
// input buffer of 160 bits twice in a row.
|
||
|
//
|
||
|
|
||
|
BOOL RNG16BitStateCheck(
|
||
|
IN OUT ULONG *pdwOut,
|
||
|
IN ULONG *pdwIn,
|
||
|
IN ULONG cbNeeded
|
||
|
)
|
||
|
{
|
||
|
BOOL fRet = FALSE;
|
||
|
|
||
|
if (RtlEqualMemory(g_rgbRNGState, pdwIn, A_SHA_DIGEST_LEN))
|
||
|
{
|
||
|
RtlCopyMemory(g_rgbRNGState, (BYTE*)pdwIn, A_SHA_DIGEST_LEN);
|
||
|
goto Ret;
|
||
|
}
|
||
|
|
||
|
RtlCopyMemory(g_rgbRNGState, (BYTE*)pdwIn, A_SHA_DIGEST_LEN);
|
||
|
|
||
|
RtlCopyMemory((BYTE*)pdwOut, (BYTE*)pdwIn, cbNeeded);
|
||
|
|
||
|
fRet = TRUE;
|
||
|
Ret:
|
||
|
return fRet;
|
||
|
}
|
||
|
|
||
|
//
|
||
|
// Function : FIPSGenRandom
|
||
|
//
|
||
|
// Description : FIPS 186 RNG, the seed is generated by calling NewGenRandom.
|
||
|
//
|
||
|
|
||
|
BOOL FIPSGenRandom(
|
||
|
IN OUT UCHAR *pb,
|
||
|
IN ULONG cb
|
||
|
)
|
||
|
{
|
||
|
ULONG rgdwSeed[A_SHA_DIGEST_LEN/sizeof(ULONG)]; // 160 bits
|
||
|
ULONG rgdwNewSeed[A_SHA_DIGEST_LEN/sizeof(ULONG)]; // 160 bits
|
||
|
A_SHA_CTX SHACtxt;
|
||
|
UCHAR rgbBuf[A_SHA_DIGEST_LEN];
|
||
|
ULONG cbBuf;
|
||
|
UCHAR *pbTmp = pb;
|
||
|
ULONG cbTmp = cb;
|
||
|
ULONG i;
|
||
|
BOOL fRet = FALSE;
|
||
|
|
||
|
while (cbTmp)
|
||
|
{
|
||
|
// get a 160 bit random seed
|
||
|
NewGenRandom(NULL, NULL, (BYTE*)rgdwNewSeed, sizeof(rgdwNewSeed));
|
||
|
|
||
|
for (i = 0; i < A_SHA_DIGEST_LEN/sizeof(ULONG); i++)
|
||
|
{
|
||
|
rgdwSeed[i] ^= rgdwNewSeed[i];
|
||
|
}
|
||
|
|
||
|
A_SHAInit (&SHACtxt);
|
||
|
RtlCopyMemory(SHACtxt.state, DSSPRIVATEKEYINIT, A_SHA_DIGEST_LEN);
|
||
|
|
||
|
// perform the one way function
|
||
|
A_SHAUpdate(&SHACtxt, (BYTE*)rgdwSeed, sizeof(rgdwSeed));
|
||
|
A_SHAFinal(&SHACtxt, rgbBuf);
|
||
|
|
||
|
// continuous 16 bit state check
|
||
|
if (A_SHA_DIGEST_LEN < cbTmp)
|
||
|
{
|
||
|
cbBuf = A_SHA_DIGEST_LEN;
|
||
|
}
|
||
|
else
|
||
|
{
|
||
|
cbBuf = cbTmp;
|
||
|
}
|
||
|
if (!RNG16BitStateCheck((ULONG*)pbTmp, (ULONG*)rgbBuf, cbBuf))
|
||
|
{
|
||
|
goto Ret;
|
||
|
}
|
||
|
pbTmp += cbBuf;
|
||
|
cbTmp -= cbBuf;
|
||
|
if (0 == cbTmp)
|
||
|
break;
|
||
|
|
||
|
// modular reduction with modulus Q
|
||
|
SHA_mod_q(rgbBuf, MODULUS, (UCHAR*)rgdwNewSeed);
|
||
|
|
||
|
// (1 + previous seed + new random) mod 2^160
|
||
|
AddSeeds(rgdwNewSeed, rgdwSeed);
|
||
|
}
|
||
|
|
||
|
fRet = TRUE;
|
||
|
Ret:
|
||
|
return fRet;
|
||
|
}
|
||
|
|