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Consider the following java code:

KeySpec spec = new PBEKeySpec("pass".toCharArray(), "salt".getBytes(),
    10000, 512);
SecretKeyFactory f = SecretKeyFactory.getInstance("PBKDF2WithHmacSHA256");
System.out.println(f.generateSecret(spec).getEncoded().length);

This code outputs "64". So 64 bytes, while SHA-256 is a 32 byte hash.

I know I specified 512 bits (64 byte) as the key length.
However I would expect that the generated key (PBKDF2) will be hashed by SHA-256 so that the output should always be 32 bytes, irrespective what key size I am using.

What I am missing (or why are my expectations wrong)?

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    A main feature of PBKDF2, especially versus its predecessor now retronymed PBKDF1, is that its output can be almost any size and in particular larger than an output from the underlying hash. – dave_thompson_085 Oct 22 at 18:18
  • @dave_thompson_085 I agree. But I've chosen the PBKDF2WithHmacSHA256 variant so I would expect I always get an SHA256 (32 bytes) from the output. This seems to be not the case. Why? – MRalwasser Oct 22 at 18:32
  • @MRalwasser: You say you agree, but you ignored "... and in particular larger than an output from the underlying hash". – James Reinstate Monica Polk Oct 22 at 19:33
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We can write PBKDF as DK = PBKDF2(PRF, Password, Salt, c, dkLen)

  • PRF is pseudorandom function with output length hlen
  • dkLen is the desired bit-length of the derived key
  • 'c' is the number of iterations

How it is calculated;

DK = T1 ‖ T2 ‖ ... ‖ T_{dklen/hlen}

Where Ti = F(Password, Salt, c, i) and each has hlen sizes.

F(Password, Salt, c, i) = U1 ⊕ U2 ⊕ ... ⊕ Uc

and

U1 = PRF(Password, Salt + INT_32_BE(i))
U2 = PRF(Password, U1)
...
Uc = PRF(Password, Uc-1)

The dklen can be at most 2^32 - 1 times the size of the output of the backend hash (PRF).

as you can see, with little modification of the salt with 32-bit encoded value of i, PBKDF2 can output multiple hlen outputs.

  • Thank you for your explanation, but I am missing the SHA256 part in your answer which is the crucial component in my question. Following your functional definition, it looks that PBKDF2WithHmacSHA256 can be written as a function of SHA256(PBKDF2(..)). Is this true and if so, why is the output length not always 256 bit? – MRalwasser Oct 23 at 9:30
  • It means that it uses HmacSHA256 and the hlen bit size is 32 bytes. Now, if you ask more than that, dkLen the PBKDF2 will generate T2, T3,.. to produce keys for the desired length upto 2^32 - 1 * hLen – kelalaka Oct 23 at 9:36
  • So PRF is in my case SHA256? – MRalwasser Oct 23 at 9:48
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    HMACSHA256 is your PRF. HMAC uses SHA256. – kelalaka Oct 23 at 9:51
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    Thank you, I wasn't aware that the HMACSHA256 function is in fact an input argument of PBKDF2. I thought that it processes the outpuf of PBKDF2. Thanks! – MRalwasser Oct 23 at 9:53

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