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WebCryptoTask.cpp
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/* -*- Mode: C++; tab-width: 2; indent-tabs-mode: nil; c-basic-offset: 2 -*- */
/* vim:set ts=2 sw=2 sts=2 et cindent: */
/* This Source Code Form is subject to the terms of the Mozilla Public
* License, v. 2.0. If a copy of the MPL was not distributed with this
* file, You can obtain one at http://mozilla.org/MPL/2.0/. */
#include "pk11pub.h"
#include "cryptohi.h"
#include "secerr.h"
#include "ScopedNSSTypes.h"
#include "jsapi.h"
#include "mozilla/Telemetry.h"
#include "mozilla/dom/CryptoBuffer.h"
#include "mozilla/dom/CryptoKey.h"
#include "mozilla/dom/KeyAlgorithmProxy.h"
#include "mozilla/dom/TypedArray.h"
#include "mozilla/dom/WebCryptoCommon.h"
#include "mozilla/dom/WebCryptoTask.h"
namespace mozilla {
namespace dom {
// Pre-defined identifiers for telemetry histograms
enum TelemetryMethod {
TM_ENCRYPT = 0,
TM_DECRYPT = 1,
TM_SIGN = 2,
TM_VERIFY = 3,
TM_DIGEST = 4,
TM_GENERATEKEY = 5,
TM_DERIVEKEY = 6,
TM_DERIVEBITS = 7,
TM_IMPORTKEY = 8,
TM_EXPORTKEY = 9,
TM_WRAPKEY = 10,
TM_UNWRAPKEY = 11
};
enum TelemetryAlgorithm {
// Please make additions at the end of the list,
// to preserve comparability of histograms over time
TA_UNKNOWN = 0,
// encrypt / decrypt
TA_AES_CBC = 1,
TA_AES_CFB = 2,
TA_AES_CTR = 3,
TA_AES_GCM = 4,
TA_RSAES_PKCS1 = 5, // NB: This algorithm has been removed
TA_RSA_OAEP = 6,
// sign/verify
TA_RSASSA_PKCS1 = 7,
TA_RSA_PSS = 8,
TA_HMAC_SHA_1 = 9,
TA_HMAC_SHA_224 = 10,
TA_HMAC_SHA_256 = 11,
TA_HMAC_SHA_384 = 12,
TA_HMAC_SHA_512 = 13,
// digest
TA_SHA_1 = 14,
TA_SHA_224 = 15,
TA_SHA_256 = 16,
TA_SHA_384 = 17,
TA_SHA_512 = 18,
// Later additions
TA_AES_KW = 19,
TA_ECDH = 20,
TA_PBKDF2 = 21,
TA_ECDSA = 22,
};
// Convenience functions for extracting / converting information
// OOM-safe CryptoBuffer initialization, suitable for constructors
#define ATTEMPT_BUFFER_INIT(dst, src) \
if (!dst.Assign(src)) { \
mEarlyRv = NS_ERROR_DOM_UNKNOWN_ERR; \
return; \
}
// OOM-safe CryptoBuffer-to-SECItem copy, suitable for DoCrypto
#define ATTEMPT_BUFFER_TO_SECITEM(arena, dst, src) \
if (!src.ToSECItem(arena, dst)) { \
return NS_ERROR_DOM_UNKNOWN_ERR; \
}
// OOM-safe CryptoBuffer copy, suitable for DoCrypto
#define ATTEMPT_BUFFER_ASSIGN(dst, src) \
if (!dst.Assign(src)) { \
return NS_ERROR_DOM_UNKNOWN_ERR; \
}
// Safety check for algorithms that use keys, suitable for constructors
#define CHECK_KEY_ALGORITHM(keyAlg, algName) \
{ \
if (!NORMALIZED_EQUALS(keyAlg.mName, algName)) { \
mEarlyRv = NS_ERROR_DOM_INVALID_ACCESS_ERR; \
return; \
} \
}
class ClearException
{
public:
explicit ClearException(JSContext* aCx)
: mCx(aCx)
{}
~ClearException()
{
JS_ClearPendingException(mCx);
}
private:
JSContext* mCx;
};
template<class OOS>
static nsresult
GetAlgorithmName(JSContext* aCx, const OOS& aAlgorithm, nsString& aName)
{
ClearException ce(aCx);
if (aAlgorithm.IsString()) {
// If string, then treat as algorithm name
aName.Assign(aAlgorithm.GetAsString());
} else {
// Coerce to algorithm and extract name
JS::RootedValue value(aCx, JS::ObjectValue(*aAlgorithm.GetAsObject()));
Algorithm alg;
if (!alg.Init(aCx, value)) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
aName = alg.mName;
}
if (!NormalizeToken(aName, aName)) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
return NS_OK;
}
template<class T, class OOS>
static nsresult
Coerce(JSContext* aCx, T& aTarget, const OOS& aAlgorithm)
{
ClearException ce(aCx);
if (!aAlgorithm.IsObject()) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
JS::RootedValue value(aCx, JS::ObjectValue(*aAlgorithm.GetAsObject()));
if (!aTarget.Init(aCx, value)) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
return NS_OK;
}
inline size_t
MapHashAlgorithmNameToBlockSize(const nsString& aName)
{
if (aName.EqualsLiteral(WEBCRYPTO_ALG_SHA1) ||
aName.EqualsLiteral(WEBCRYPTO_ALG_SHA256)) {
return 512;
}
if (aName.EqualsLiteral(WEBCRYPTO_ALG_SHA384) ||
aName.EqualsLiteral(WEBCRYPTO_ALG_SHA512)) {
return 1024;
}
return 0;
}
inline nsresult
GetKeyLengthForAlgorithm(JSContext* aCx, const ObjectOrString& aAlgorithm,
size_t& aLength)
{
aLength = 0;
// Extract algorithm name
nsString algName;
if (NS_FAILED(GetAlgorithmName(aCx, aAlgorithm, algName))) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
// Read AES key length from given algorithm object.
if (algName.EqualsLiteral(WEBCRYPTO_ALG_AES_CBC) ||
algName.EqualsLiteral(WEBCRYPTO_ALG_AES_CTR) ||
algName.EqualsLiteral(WEBCRYPTO_ALG_AES_GCM) ||
algName.EqualsLiteral(WEBCRYPTO_ALG_AES_KW)) {
RootedDictionary<AesDerivedKeyParams> params(aCx);
if (NS_FAILED(Coerce(aCx, params, aAlgorithm))) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
if (params.mLength != 128 &&
params.mLength != 192 &&
params.mLength != 256) {
return NS_ERROR_DOM_DATA_ERR;
}
aLength = params.mLength;
return NS_OK;
}
// Read HMAC key length from given algorithm object or
// determine key length as the block size of the given hash.
if (algName.EqualsLiteral(WEBCRYPTO_ALG_HMAC)) {
RootedDictionary<HmacDerivedKeyParams> params(aCx);
if (NS_FAILED(Coerce(aCx, params, aAlgorithm))) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
// Return the passed length, if any.
if (params.mLength.WasPassed()) {
aLength = params.mLength.Value();
return NS_OK;
}
nsString hashName;
if (NS_FAILED(GetAlgorithmName(aCx, params.mHash, hashName))) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
// Return the given hash algorithm's block size as the key length.
size_t length = MapHashAlgorithmNameToBlockSize(hashName);
if (length == 0) {
return NS_ERROR_DOM_SYNTAX_ERR;
}
aLength = length;
return NS_OK;
}
return NS_ERROR_DOM_NOT_SUPPORTED_ERR;
}
inline bool
MapOIDTagToNamedCurve(SECOidTag aOIDTag, nsString& aResult)
{
switch (aOIDTag) {
case SEC_OID_SECG_EC_SECP256R1:
aResult.AssignLiteral(WEBCRYPTO_NAMED_CURVE_P256);
break;
case SEC_OID_SECG_EC_SECP384R1:
aResult.AssignLiteral(WEBCRYPTO_NAMED_CURVE_P384);
break;
case SEC_OID_SECG_EC_SECP521R1:
aResult.AssignLiteral(WEBCRYPTO_NAMED_CURVE_P521);
break;
default:
return false;
}
return true;
}
// Helper function to clone data from an ArrayBuffer or ArrayBufferView object
inline bool
CloneData(JSContext* aCx, CryptoBuffer& aDst, JS::Handle<JSObject*> aSrc)
{
MOZ_ASSERT(NS_IsMainThread());
// Try ArrayBuffer
RootedTypedArray<ArrayBuffer> ab(aCx);
if (ab.Init(aSrc)) {
return !!aDst.Assign(ab);
}
// Try ArrayBufferView
RootedTypedArray<ArrayBufferView> abv(aCx);
if (abv.Init(aSrc)) {
return !!aDst.Assign(abv);
}
return false;
}
// Implementation of WebCryptoTask methods
void
WebCryptoTask::FailWithError(nsresult aRv)
{
MOZ_ASSERT(NS_IsMainThread());
Telemetry::Accumulate(Telemetry::WEBCRYPTO_RESOLVED, false);
// Blindly convert nsresult to DOMException
// Individual tasks must ensure they pass the right values
mResultPromise->MaybeReject(aRv);
// Manually release mResultPromise while we're on the main thread
mResultPromise = nullptr;
Cleanup();
}
nsresult
WebCryptoTask::CalculateResult()
{
MOZ_ASSERT(!NS_IsMainThread());
if (NS_FAILED(mEarlyRv)) {
return mEarlyRv;
}
if (isAlreadyShutDown()) {
return NS_ERROR_DOM_UNKNOWN_ERR;
}
return DoCrypto();
}
void
WebCryptoTask::CallCallback(nsresult rv)
{
MOZ_ASSERT(NS_IsMainThread());
if (NS_FAILED(rv)) {
FailWithError(rv);
return;
}
nsresult rv2 = AfterCrypto();
if (NS_FAILED(rv2)) {
FailWithError(rv2);
return;
}
Resolve();
Telemetry::Accumulate(Telemetry::WEBCRYPTO_RESOLVED, true);
// Manually release mResultPromise while we're on the main thread
mResultPromise = nullptr;
Cleanup();
}
// Some generic utility classes
class FailureTask : public WebCryptoTask
{
public:
explicit FailureTask(nsresult aRv) {
mEarlyRv = aRv;
}
};
class ReturnArrayBufferViewTask : public WebCryptoTask
{
protected:
CryptoBuffer mResult;
private:
// Returns mResult as an ArrayBufferView, or an error
virtual void Resolve() MOZ_OVERRIDE
{
TypedArrayCreator<ArrayBuffer> ret(mResult);
mResultPromise->MaybeResolve(ret);
}
};
class DeferredData
{
public:
template<class T>
void SetData(const T& aData) {
mDataIsSet = mData.Assign(aData);
}
protected:
DeferredData()
: mDataIsSet(false)
{}
CryptoBuffer mData;
bool mDataIsSet;
};
class AesTask : public ReturnArrayBufferViewTask,
public DeferredData
{
public:
AesTask(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, bool aEncrypt)
: mSymKey(aKey.GetSymKey())
, mEncrypt(aEncrypt)
{
Init(aCx, aAlgorithm, aKey, aEncrypt);
}
AesTask(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, const CryptoOperationData& aData,
bool aEncrypt)
: mSymKey(aKey.GetSymKey())
, mEncrypt(aEncrypt)
{
Init(aCx, aAlgorithm, aKey, aEncrypt);
SetData(aData);
}
void Init(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, bool aEncrypt)
{
nsString algName;
mEarlyRv = GetAlgorithmName(aCx, aAlgorithm, algName);
if (NS_FAILED(mEarlyRv)) {
return;
}
// Check that we got a reasonable key
if ((mSymKey.Length() != 16) &&
(mSymKey.Length() != 24) &&
(mSymKey.Length() != 32))
{
mEarlyRv = NS_ERROR_DOM_DATA_ERR;
return;
}
// Cache parameters depending on the specific algorithm
TelemetryAlgorithm telemetryAlg;
if (algName.EqualsLiteral(WEBCRYPTO_ALG_AES_CBC)) {
CHECK_KEY_ALGORITHM(aKey.Algorithm(), WEBCRYPTO_ALG_AES_CBC);
mMechanism = CKM_AES_CBC_PAD;
telemetryAlg = TA_AES_CBC;
AesCbcParams params;
nsresult rv = Coerce(aCx, params, aAlgorithm);
if (NS_FAILED(rv)) {
mEarlyRv = NS_ERROR_DOM_INVALID_ACCESS_ERR;
return;
}
ATTEMPT_BUFFER_INIT(mIv, params.mIv)
if (mIv.Length() != 16) {
mEarlyRv = NS_ERROR_DOM_DATA_ERR;
return;
}
} else if (algName.EqualsLiteral(WEBCRYPTO_ALG_AES_CTR)) {
CHECK_KEY_ALGORITHM(aKey.Algorithm(), WEBCRYPTO_ALG_AES_CTR);
mMechanism = CKM_AES_CTR;
telemetryAlg = TA_AES_CTR;
AesCtrParams params;
nsresult rv = Coerce(aCx, params, aAlgorithm);
if (NS_FAILED(rv)) {
mEarlyRv = NS_ERROR_DOM_SYNTAX_ERR;
return;
}
ATTEMPT_BUFFER_INIT(mIv, params.mCounter)
if (mIv.Length() != 16) {
mEarlyRv = NS_ERROR_DOM_DATA_ERR;
return;
}
mCounterLength = params.mLength;
} else if (algName.EqualsLiteral(WEBCRYPTO_ALG_AES_GCM)) {
CHECK_KEY_ALGORITHM(aKey.Algorithm(), WEBCRYPTO_ALG_AES_GCM);
mMechanism = CKM_AES_GCM;
telemetryAlg = TA_AES_GCM;
AesGcmParams params;
nsresult rv = Coerce(aCx, params, aAlgorithm);
if (NS_FAILED(rv)) {
mEarlyRv = NS_ERROR_DOM_SYNTAX_ERR;
return;
}
ATTEMPT_BUFFER_INIT(mIv, params.mIv)
if (params.mAdditionalData.WasPassed()) {
ATTEMPT_BUFFER_INIT(mAad, params.mAdditionalData.Value())
}
// 32, 64, 96, 104, 112, 120 or 128
mTagLength = 128;
if (params.mTagLength.WasPassed()) {
mTagLength = params.mTagLength.Value();
if ((mTagLength > 128) ||
!(mTagLength == 32 || mTagLength == 64 ||
(mTagLength >= 96 && mTagLength % 8 == 0))) {
mEarlyRv = NS_ERROR_DOM_SYNTAX_ERR;
return;
}
}
} else {
mEarlyRv = NS_ERROR_DOM_NOT_SUPPORTED_ERR;
return;
}
Telemetry::Accumulate(Telemetry::WEBCRYPTO_ALG, telemetryAlg);
}
private:
CK_MECHANISM_TYPE mMechanism;
CryptoBuffer mSymKey;
CryptoBuffer mIv; // Initialization vector
CryptoBuffer mAad; // Additional Authenticated Data
uint8_t mTagLength;
uint8_t mCounterLength;
bool mEncrypt;
virtual nsresult DoCrypto() MOZ_OVERRIDE
{
nsresult rv;
if (!mDataIsSet) {
return NS_ERROR_DOM_OPERATION_ERR;
}
ScopedPLArenaPool arena(PORT_NewArena(DER_DEFAULT_CHUNKSIZE));
if (!arena) {
return NS_ERROR_DOM_OPERATION_ERR;
}
// Construct the parameters object depending on algorithm
SECItem param = { siBuffer, nullptr, 0 };
CK_AES_CTR_PARAMS ctrParams;
CK_GCM_PARAMS gcmParams;
switch (mMechanism) {
case CKM_AES_CBC_PAD:
ATTEMPT_BUFFER_TO_SECITEM(arena, ¶m, mIv);
break;
case CKM_AES_CTR:
ctrParams.ulCounterBits = mCounterLength;
MOZ_ASSERT(mIv.Length() == 16);
memcpy(&ctrParams.cb, mIv.Elements(), 16);
param.type = siBuffer;
param.data = (unsigned char*) &ctrParams;
param.len = sizeof(ctrParams);
break;
case CKM_AES_GCM:
gcmParams.pIv = mIv.Elements();
gcmParams.ulIvLen = mIv.Length();
gcmParams.pAAD = mAad.Elements();
gcmParams.ulAADLen = mAad.Length();
gcmParams.ulTagBits = mTagLength;
param.type = siBuffer;
param.data = (unsigned char*) &gcmParams;
param.len = sizeof(gcmParams);
break;
default:
return NS_ERROR_DOM_NOT_SUPPORTED_ERR;
}
// Import the key
SECItem keyItem = { siBuffer, nullptr, 0 };
ATTEMPT_BUFFER_TO_SECITEM(arena, &keyItem, mSymKey);
ScopedPK11SlotInfo slot(PK11_GetInternalSlot());
MOZ_ASSERT(slot.get());
ScopedPK11SymKey symKey(PK11_ImportSymKey(slot, mMechanism, PK11_OriginUnwrap,
CKA_ENCRYPT, &keyItem, nullptr));
if (!symKey) {
return NS_ERROR_DOM_INVALID_ACCESS_ERR;
}
// Initialize the output buffer (enough space for padding / a full tag)
uint32_t dataLen = mData.Length();
uint32_t maxLen = dataLen + 16;
if (!mResult.SetLength(maxLen)) {
return NS_ERROR_DOM_UNKNOWN_ERR;
}
uint32_t outLen = 0;
// Perform the encryption/decryption
if (mEncrypt) {
rv = MapSECStatus(PK11_Encrypt(symKey.get(), mMechanism, ¶m,
mResult.Elements(), &outLen, maxLen,
mData.Elements(), mData.Length()));
} else {
rv = MapSECStatus(PK11_Decrypt(symKey.get(), mMechanism, ¶m,
mResult.Elements(), &outLen, maxLen,
mData.Elements(), mData.Length()));
}
NS_ENSURE_SUCCESS(rv, NS_ERROR_DOM_OPERATION_ERR);
mResult.SetLength(outLen);
return rv;
}
};
// This class looks like an encrypt/decrypt task, like AesTask,
// but it is only exposed to wrapKey/unwrapKey, not encrypt/decrypt
class AesKwTask : public ReturnArrayBufferViewTask,
public DeferredData
{
public:
AesKwTask(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, bool aEncrypt)
: mMechanism(CKM_NSS_AES_KEY_WRAP)
, mSymKey(aKey.GetSymKey())
, mEncrypt(aEncrypt)
{
Init(aCx, aAlgorithm, aKey, aEncrypt);
}
AesKwTask(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, const CryptoOperationData& aData,
bool aEncrypt)
: mMechanism(CKM_NSS_AES_KEY_WRAP)
, mSymKey(aKey.GetSymKey())
, mEncrypt(aEncrypt)
{
Init(aCx, aAlgorithm, aKey, aEncrypt);
SetData(aData);
}
void Init(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, bool aEncrypt)
{
CHECK_KEY_ALGORITHM(aKey.Algorithm(), WEBCRYPTO_ALG_AES_KW);
nsString algName;
mEarlyRv = GetAlgorithmName(aCx, aAlgorithm, algName);
if (NS_FAILED(mEarlyRv)) {
return;
}
// Check that we got a reasonable key
if ((mSymKey.Length() != 16) &&
(mSymKey.Length() != 24) &&
(mSymKey.Length() != 32))
{
mEarlyRv = NS_ERROR_DOM_DATA_ERR;
return;
}
Telemetry::Accumulate(Telemetry::WEBCRYPTO_ALG, TA_AES_KW);
}
private:
CK_MECHANISM_TYPE mMechanism;
CryptoBuffer mSymKey;
bool mEncrypt;
virtual nsresult DoCrypto() MOZ_OVERRIDE
{
nsresult rv;
if (!mDataIsSet) {
return NS_ERROR_DOM_OPERATION_ERR;
}
// Check that the input is a multiple of 64 bits long
if (mData.Length() == 0 || mData.Length() % 8 != 0) {
return NS_ERROR_DOM_DATA_ERR;
}
ScopedPLArenaPool arena(PORT_NewArena(DER_DEFAULT_CHUNKSIZE));
if (!arena) {
return NS_ERROR_DOM_OPERATION_ERR;
}
// Import the key
SECItem keyItem = { siBuffer, nullptr, 0 };
ATTEMPT_BUFFER_TO_SECITEM(arena, &keyItem, mSymKey);
ScopedPK11SlotInfo slot(PK11_GetInternalSlot());
MOZ_ASSERT(slot.get());
ScopedPK11SymKey symKey(PK11_ImportSymKey(slot, mMechanism, PK11_OriginUnwrap,
CKA_WRAP, &keyItem, nullptr));
if (!symKey) {
return NS_ERROR_DOM_INVALID_ACCESS_ERR;
}
// Import the data to a SECItem
SECItem dataItem = { siBuffer, nullptr, 0 };
ATTEMPT_BUFFER_TO_SECITEM(arena, &dataItem, mData);
// Parameters for the fake keys
CK_MECHANISM_TYPE fakeMechanism = CKM_SHA_1_HMAC;
CK_ATTRIBUTE_TYPE fakeOperation = CKA_SIGN;
if (mEncrypt) {
// Import the data into a fake PK11SymKey structure
ScopedPK11SymKey keyToWrap(PK11_ImportSymKey(slot, fakeMechanism,
PK11_OriginUnwrap, fakeOperation,
&dataItem, nullptr));
if (!keyToWrap) {
return NS_ERROR_DOM_OPERATION_ERR;
}
// Encrypt and return the wrapped key
// AES-KW encryption results in a wrapped key 64 bits longer
if (!mResult.SetLength(mData.Length() + 8)) {
return NS_ERROR_DOM_OPERATION_ERR;
}
SECItem resultItem = {siBuffer, mResult.Elements(),
(unsigned int) mResult.Length()};
rv = MapSECStatus(PK11_WrapSymKey(mMechanism, nullptr, symKey.get(),
keyToWrap.get(), &resultItem));
NS_ENSURE_SUCCESS(rv, NS_ERROR_DOM_OPERATION_ERR);
} else {
// Decrypt the ciphertext into a temporary PK11SymKey
// Unwrapped key should be 64 bits shorter
int keySize = mData.Length() - 8;
ScopedPK11SymKey unwrappedKey(PK11_UnwrapSymKey(symKey, mMechanism, nullptr,
&dataItem, fakeMechanism,
fakeOperation, keySize));
if (!unwrappedKey) {
return NS_ERROR_DOM_OPERATION_ERR;
}
// Export the key to get the cleartext
rv = MapSECStatus(PK11_ExtractKeyValue(unwrappedKey));
if (NS_FAILED(rv)) {
return NS_ERROR_DOM_UNKNOWN_ERR;
}
ATTEMPT_BUFFER_ASSIGN(mResult, PK11_GetKeyData(unwrappedKey));
}
return rv;
}
};
class RsaOaepTask : public ReturnArrayBufferViewTask,
public DeferredData
{
public:
RsaOaepTask(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, bool aEncrypt)
: mPrivKey(aKey.GetPrivateKey())
, mPubKey(aKey.GetPublicKey())
, mEncrypt(aEncrypt)
{
Init(aCx, aAlgorithm, aKey, aEncrypt);
}
RsaOaepTask(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, const CryptoOperationData& aData,
bool aEncrypt)
: mPrivKey(aKey.GetPrivateKey())
, mPubKey(aKey.GetPublicKey())
, mEncrypt(aEncrypt)
{
Init(aCx, aAlgorithm, aKey, aEncrypt);
SetData(aData);
}
void Init(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey, bool aEncrypt)
{
Telemetry::Accumulate(Telemetry::WEBCRYPTO_ALG, TA_RSA_OAEP);
CHECK_KEY_ALGORITHM(aKey.Algorithm(), WEBCRYPTO_ALG_RSA_OAEP);
if (mEncrypt) {
if (!mPubKey) {
mEarlyRv = NS_ERROR_DOM_INVALID_ACCESS_ERR;
return;
}
mStrength = SECKEY_PublicKeyStrength(mPubKey);
} else {
if (!mPrivKey) {
mEarlyRv = NS_ERROR_DOM_INVALID_ACCESS_ERR;
return;
}
mStrength = PK11_GetPrivateModulusLen(mPrivKey);
}
// The algorithm could just be given as a string
// in which case there would be no label specified.
if (!aAlgorithm.IsString()) {
RootedDictionary<RsaOaepParams> params(aCx);
mEarlyRv = Coerce(aCx, params, aAlgorithm);
if (NS_FAILED(mEarlyRv)) {
mEarlyRv = NS_ERROR_DOM_SYNTAX_ERR;
return;
}
if (params.mLabel.WasPassed()) {
ATTEMPT_BUFFER_INIT(mLabel, params.mLabel.Value());
}
}
// Otherwise mLabel remains the empty octet string, as intended
// Look up the MGF based on the KeyAlgorithm.
// static_cast is safe because we only get here if the algorithm name
// is RSA-OAEP, and that only happens if we've constructed
// an RsaHashedKeyAlgorithm.
mHashMechanism = KeyAlgorithmProxy::GetMechanism(aKey.Algorithm().mRsa.mHash);
switch (mHashMechanism) {
case CKM_SHA_1:
mMgfMechanism = CKG_MGF1_SHA1; break;
case CKM_SHA256:
mMgfMechanism = CKG_MGF1_SHA256; break;
case CKM_SHA384:
mMgfMechanism = CKG_MGF1_SHA384; break;
case CKM_SHA512:
mMgfMechanism = CKG_MGF1_SHA512; break;
default:
mEarlyRv = NS_ERROR_DOM_NOT_SUPPORTED_ERR;
return;
}
}
private:
CK_MECHANISM_TYPE mHashMechanism;
CK_MECHANISM_TYPE mMgfMechanism;
ScopedSECKEYPrivateKey mPrivKey;
ScopedSECKEYPublicKey mPubKey;
CryptoBuffer mLabel;
uint32_t mStrength;
bool mEncrypt;
virtual nsresult DoCrypto() MOZ_OVERRIDE
{
nsresult rv;
if (!mDataIsSet) {
return NS_ERROR_DOM_OPERATION_ERR;
}
// Ciphertext is an integer mod the modulus, so it will be
// no longer than mStrength octets
if (!mResult.SetLength(mStrength)) {
return NS_ERROR_DOM_UNKNOWN_ERR;
}
CK_RSA_PKCS_OAEP_PARAMS oaepParams;
oaepParams.source = CKZ_DATA_SPECIFIED;
oaepParams.pSourceData = mLabel.Length() ? mLabel.Elements() : nullptr;
oaepParams.ulSourceDataLen = mLabel.Length();
oaepParams.mgf = mMgfMechanism;
oaepParams.hashAlg = mHashMechanism;
SECItem param;
param.type = siBuffer;
param.data = (unsigned char*) &oaepParams;
param.len = sizeof(oaepParams);
uint32_t outLen = 0;
if (mEncrypt) {
// PK11_PubEncrypt() checks the plaintext's length and fails if it is too
// long to encrypt, i.e. if it is longer than (k - 2hLen - 2) with 'k'
// being the length in octets of the RSA modulus n and 'hLen' being the
// output length in octets of the chosen hash function.
// <https://tools.ietf.org/html/rfc3447#section-7.1>
rv = MapSECStatus(PK11_PubEncrypt(
mPubKey.get(), CKM_RSA_PKCS_OAEP, ¶m,
mResult.Elements(), &outLen, mResult.Length(),
mData.Elements(), mData.Length(), nullptr));
} else {
rv = MapSECStatus(PK11_PrivDecrypt(
mPrivKey.get(), CKM_RSA_PKCS_OAEP, ¶m,
mResult.Elements(), &outLen, mResult.Length(),
mData.Elements(), mData.Length()));
}
NS_ENSURE_SUCCESS(rv, NS_ERROR_DOM_OPERATION_ERR);
mResult.SetLength(outLen);
return NS_OK;
}
};
class HmacTask : public WebCryptoTask
{
public:
HmacTask(JSContext* aCx, const ObjectOrString& aAlgorithm,
CryptoKey& aKey,
const CryptoOperationData& aSignature,
const CryptoOperationData& aData,
bool aSign)
: mMechanism(aKey.Algorithm().Mechanism())
, mSymKey(aKey.GetSymKey())
, mSign(aSign)
{
CHECK_KEY_ALGORITHM(aKey.Algorithm(), WEBCRYPTO_ALG_HMAC);
ATTEMPT_BUFFER_INIT(mData, aData);
if (!aSign) {
ATTEMPT_BUFFER_INIT(mSignature, aSignature);
}
// Check that we got a symmetric key
if (mSymKey.Length() == 0) {
mEarlyRv = NS_ERROR_DOM_DATA_ERR;
return;
}
TelemetryAlgorithm telemetryAlg;
switch (mMechanism) {
case CKM_SHA_1_HMAC: telemetryAlg = TA_HMAC_SHA_1; break;
case CKM_SHA224_HMAC: telemetryAlg = TA_HMAC_SHA_224; break;
case CKM_SHA256_HMAC: telemetryAlg = TA_HMAC_SHA_256; break;
case CKM_SHA384_HMAC: telemetryAlg = TA_HMAC_SHA_384; break;
case CKM_SHA512_HMAC: telemetryAlg = TA_HMAC_SHA_512; break;
default: telemetryAlg = TA_UNKNOWN;
}
Telemetry::Accumulate(Telemetry::WEBCRYPTO_ALG, telemetryAlg);
}
private:
CK_MECHANISM_TYPE mMechanism;
CryptoBuffer mSymKey;
CryptoBuffer mData;
CryptoBuffer mSignature;
CryptoBuffer mResult;
bool mSign;
virtual nsresult DoCrypto() MOZ_OVERRIDE
{
// Initialize the output buffer
if (!mResult.SetLength(HASH_LENGTH_MAX)) {
return NS_ERROR_DOM_UNKNOWN_ERR;
}
ScopedPLArenaPool arena(PORT_NewArena(DER_DEFAULT_CHUNKSIZE));
if (!arena) {
return NS_ERROR_DOM_OPERATION_ERR;
}
// Import the key
uint32_t outLen;
SECItem keyItem = { siBuffer, nullptr, 0 };
ATTEMPT_BUFFER_TO_SECITEM(arena, &keyItem, mSymKey);
ScopedPK11SlotInfo slot(PK11_GetInternalSlot());
MOZ_ASSERT(slot.get());
ScopedPK11SymKey symKey(PK11_ImportSymKey(slot, mMechanism, PK11_OriginUnwrap,
CKA_SIGN, &keyItem, nullptr));
if (!symKey) {
return NS_ERROR_DOM_INVALID_ACCESS_ERR;
}
// Compute the MAC
SECItem param = { siBuffer, nullptr, 0 };
ScopedPK11Context ctx(PK11_CreateContextBySymKey(mMechanism, CKA_SIGN,
symKey.get(), ¶m));
if (!ctx.get()) {
return NS_ERROR_DOM_OPERATION_ERR;
}
nsresult rv = MapSECStatus(PK11_DigestBegin(ctx.get()));
NS_ENSURE_SUCCESS(rv, NS_ERROR_DOM_OPERATION_ERR);
rv = MapSECStatus(PK11_DigestOp(ctx.get(), mData.Elements(), mData.Length()));
NS_ENSURE_SUCCESS(rv, NS_ERROR_DOM_OPERATION_ERR);
rv = MapSECStatus(PK11_DigestFinal(ctx.get(), mResult.Elements(),
&outLen, HASH_LENGTH_MAX));
NS_ENSURE_SUCCESS(rv, NS_ERROR_DOM_OPERATION_ERR);
mResult.SetLength(outLen);
return rv;
}
// Returns mResult as an ArrayBufferView, or an error
virtual void Resolve() MOZ_OVERRIDE
{
if (mSign) {
// Return the computed MAC
TypedArrayCreator<ArrayBuffer> ret(mResult);
mResultPromise->MaybeResolve(ret);
} else {
// Compare the MAC to the provided signature
// No truncation allowed
bool equal = (mResult.Length() == mSignature.Length());
if (equal) {
int cmp = NSS_SecureMemcmp(mSignature.Elements(),
mResult.Elements(),
mSignature.Length());
equal = (cmp == 0);
}
mResultPromise->MaybeResolve(equal);
}
}
};
class AsymmetricSignVerifyTask : public WebCryptoTask
{
public:
AsymmetricSignVerifyTask(JSContext* aCx,
const ObjectOrString& aAlgorithm,
CryptoKey& aKey,
const CryptoOperationData& aSignature,
const CryptoOperationData& aData,
bool aSign)
: mOidTag(SEC_OID_UNKNOWN)
, mPrivKey(aKey.GetPrivateKey())
, mPubKey(aKey.GetPublicKey())
, mSign(aSign)
, mVerified(false)
, mEcdsa(false)
{
ATTEMPT_BUFFER_INIT(mData, aData);
if (!aSign) {
ATTEMPT_BUFFER_INIT(mSignature, aSignature);
}
nsString algName;
mEarlyRv = GetAlgorithmName(aCx, aAlgorithm, algName);
if (NS_FAILED(mEarlyRv)) {
return;
}
// Look up the SECOidTag
if (algName.EqualsLiteral(WEBCRYPTO_ALG_RSASSA_PKCS1)) {
mEcdsa = false;
Telemetry::Accumulate(Telemetry::WEBCRYPTO_ALG, TA_RSASSA_PKCS1);