author | asimpson@symbian.org |
Thu, 15 Oct 2009 17:48:29 +0100 | |
branch | RCL_1 |
changeset 13 | e60b2dbc57a0 |
parent 0 | 2c201484c85f |
permissions | -rw-r--r-- |
0
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/** |
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@page asymmetric_cryptography Asymmetric Cryptography |
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- @ref asymmetricWhat |
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- @ref asymmetricHow |
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@section asymmetricWhat What is asymmetric cryptography? |
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- @ref asymmetricWhatEncryption |
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- @ref asymmetricWhatSignature |
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The base concept of asymmetric cryptography revolves around the existence of two |
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keys (instead of a single secret key as in a symmetric system). In an |
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asymmetric cryptosystem, each participant has both a public and a private key. |
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For schemes which are thought to be secure, it is believed that deriving the |
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private key from the public key, or any transformation resulting from the public |
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key, is computationally infeasible. There are four basic primitives in |
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asymmetric cryptography: encryption and decryption, and signing and |
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verification. |
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@subsection asymmetricWhatEncryption Encryption schemes. |
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|
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In order to encrypt a message with an asymmetric scheme, one peforms a |
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well-known transformation on the message using the public key of the intended |
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recipient. Upon receipt, the receiver can decrypt this message using the inverse |
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transformation and the associated private key. Provided that only the intended |
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recipient knows the associated private key, it is believed that message secrecy |
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between the sender and receiver is achieved. |
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|
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@subsection asymmetricWhatSignature Signature schemes. |
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|
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Conversely, in order to digitally sign a message with an asymmetric scheme, one |
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performs another well-known transformation on the message using one's own |
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private key. Both the original message and the resulting transformation are |
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sent to the intended receipient. Upon receipt, the receiver can verify that the |
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message was signed by the associated private key by peforming the inverse |
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operation with the public key as input, and then comparing the received message |
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with the message obtained from the transformation of the signature. |
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@section asymmetricHow How do I use the asymmetric crypto framework? |
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The asymmetric crypto framework consists of the following logically separate |
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concepts: |
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-# Key storage classes (For instance, CRSAPublicKey, CDSAPrivateKey) |
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-# Cipher transformation classes (CRSAPKCS1v15Encryptor, CDSASigner) |
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-# Signature representative classes (CRSASignature, CDSASignature) |
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The first and third are simply containers for their represpective concepts. |
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Each implementation of item two is responsible for performing one of the four |
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primitive operations on some data using a key specified at construction. If the |
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operation is signing or verification, then the transformation outputs a |
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signature representative class. On the other hand, in the case of encryption or |
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decryption, input and output consist of binary descriptor data. |
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|
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Before showing some example code, an important note about object ownership. In |
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general, unless otherwise stated, the following three rules apply. |
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-# All key storage and signature representative constructors <B>take |
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ownership</B> of objects given to them (typically RIntegers). |
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-# All cipher transformation classes <B>only use</B> objects given to them |
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(typically key storage classes, signature representatives, and descriptors). |
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-# Any functions that return pointers to objects (typically the Signer classes) |
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<B>transfer ownership</B> of the returned object to the caller. |
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|
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@subsection asymmetricHowEncryption Sample code for Encryption/Decryption |
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The following code illustrates how to encrypt data using an RSA PKCS1 v1.5 |
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encryptor. It assumes you already have access to the CRSAPublicKey, rsaPublicKey, |
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you wish to encrypt to. |
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|
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@code |
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CRSAPKCS1v15Encryptor* encryptor = CRSAPKCS1v15Encryptor::NewLC(rsaPublicKey); |
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//As per rules described above, encryptor does not own rsaPublicKey |
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HBufC8* encryptedMessage = HBufC8::NewLC(encryptor->MaxOutputLength()); |
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encryptor->EncryptL(messageToEncrypt, *encryptedMessage); |
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CleanupStack::Pop(encryptedMessage); |
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CleanupStack::PopAndDestroy(encryptor); |
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@endcode |
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79 |
|
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To subsequently decrypt, again presuming access to a CRSAPrivateKey, |
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rsaPrivateKey. |
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|
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@code |
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CRSAPKCS1v15Decryptor* decryptor = CRSAPKCS1v15Decryptor::NewLC(rsaPrivateKey); |
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//As per rules described above, decryptor does not own rsaPrivateKey |
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HBufC8* decryptedMessage = HBufC8::NewLC(decryptor->MaxOutputLength()); |
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encryptor->EncryptL(*decryptedMessage, *encryptedMessage); |
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CleanupStack::Pop(decryptedMessage); |
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CleanupStack::PopAndDestroy(decryptor); |
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@endcode |
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91 |
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@subsection asymmetricHowSigner Sample code for Signing/Verifying |
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93 |
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All implemented signature systems (both signing and verifying) do not perform |
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any manipulation of the input message prior to performing their internal signing |
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mechanism. For instance, both CRSAPKCS1v15Signer and CDSASigner do not hash the |
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data to be signed prior to signing it. Some people refer to this as a "raw sign |
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primitive". The decision to operate this way was taken because large numbers of |
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99 |
higher level standards dictate different ways for the data to be hashed prior to |
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100 |
signing (and similarly for verification) and accomadating all of them |
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101 |
significantly confused the api. Instead it is suggested a class that handles |
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102 |
specification specific (for example, RSA signatures for TLS or X509), |
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103 |
pre-signing transformation is created. Upon calling a Final()-like call on such |
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104 |
a class, it shall return a descriptor that can be "raw signed" by the |
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105 |
implemented signing primitives. |
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106 |
|
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107 |
The following code illustrates how to DSA sign an unhashed descriptor, |
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108 |
messageToBeSigned given a CDSAPrivateKey, dsaPrivateKey. In this case, the |
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109 |
pre-signing transformation required by the DSA is simply a SHA1 hash. As a |
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110 |
result, CSHA1 is used as the specification specific, pre-signing transformation |
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111 |
class. |
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112 |
|
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113 |
@code |
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114 |
CDSASigner* signer = CDSASigner::NewLC(dsaPrivateKey); |
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115 |
//As per rules described above, signer does not own dsaPrivateKey |
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116 |
CSHA1* sha1 = CSHA1::NewLC(); |
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117 |
CDSASignature* signature = signer->SignL(sha1->Final(messageToBeSigned)); |
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118 |
//Caller owns signature as per rules described above. |
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119 |
CleanupStack::PopAndDestroy(2, signer); //sha1, signer |
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120 |
CleanupStack::PushL(signature); |
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121 |
@endcode |
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122 |
|
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123 |
To subsequently verify given a CDSAPublicKey, dsaPublicKey, and a CDSASignature, |
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124 |
signature: |
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125 |
|
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126 |
@code |
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127 |
CDSAVerifier* verifier = CDSAVerifier::NewLC(dsaPublicKey); |
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128 |
//As per rules described above, verifier does not own dsaPublicKey |
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129 |
CSHA1* sha1 = CSHA1::NewLC(); |
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130 |
TBool result = verifier->VerifyL(sha1->Final(messageToBeVerified), *signature); |
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131 |
CleanupStack::PopAndDestroy(2, verifier); //sha1, verifier |
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132 |
@endcode |
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133 |
|
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134 |
|
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135 |
*/ |