In the Microsoft C sample code for RC4-encrypting a file using the CryptoAPI, the functions CryptGenKey and CryptDeriveKey are passed an undocumented flag

#define KEYLENGTH     0x00800000
...
if (CryptGenKey(
        hCryptProv, 
        ENCRYPT_ALGORITHM, 
        KEYLENGTH | CRYPT_EXPORTABLE, 
        &hKey))
...    

There is no flag with this value defined in the CryptoAPI header file wincrypt.h. Leaving it out doesn't seem to do any harm. In fact, when I change the algorithm from RC4 to AES, using this flag results in an ERROR_INVALID_PARAMETER.

What is it there for?

up vote 1 down vote accepted

It's not undocumented, and it's not a flag. From the page you linked for CryptGenKey (emphasis mine):

Specifies the type of key generated. The sizes of a session key, RSA signature key, and RSA key exchange keys can be set when the key is generated. The key size, representing the length of the key modulus in bits, is set with the upper 16 bits of this parameter. Thus, if a 2,048-bit RSA signature key is to be generated, the value 0x08000000 is combined with any other dwFlags predefined value with a bitwise-OR operation. The upper 16 bits of 0x08000000 is 0x0800, or decimal 2,048. The RSA1024BIT_KEY value can be used to specify a 1024-bit RSA key

The #define provides the key size used to represent the length of the key modulus in bytes in the upper 16 bits, exactly like the above states. The code sample you've included uses 0x00800000 instead, to indicate a 128-bit key.

The quote goes on to explain:

The upper 16 bits of 0x08000000 is 0x0800, or decimal 2,048.

The key size (in the upper 16 bits) is combined with a bitwise OR of one of the predefined flag values.

  • Oh, I didn't read thus far! Thanks a lot. The sample code uses 0x80 (128) instead of 0x800, though. – Felix Dombek Feb 27 '14 at 21:56
  • Yes, you're correct. I'll edit to fix that - thanks. :-) – Ken White Feb 27 '14 at 22:01

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.