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I need to calculate checksums of quite large files (gigabytes). This can be accomplished using the following method:

    private byte[] calcHash(string file)
        System.Security.Cryptography.HashAlgorithm ha = System.Security.Cryptography.MD5.Create();
        FileStream fs = new FileStream(file, FileMode.Open, FileAccess.Read);
        byte[] hash = ha.ComputeHash(fs);
        return hash;

However, the files are normally written just beforehand in a buffered manner (say writing 32mb's at a time). I am so convinced that I saw an override of a hash function that allowed me to calculate a MD5 (or other) hash at the same time as writing, ie: calculating the hash of one buffer, then feeding that resulting hash into the next iteration.

Something like this: (pseudocode-ish)

byte [] hash = new byte [] { 0,0,0,0,0,0,0,0 };
   buffer = readFromSourceFile();
   hash = calchash(buffer, hash);

hash is now sililar to what would be accomplished by running the calcHash function on the entire file.

Now, I can't find any overrides like that in the.Net 3.5 Framework, am I dreaming ? Has it never existed, or am I just lousy at searching ? The reason for doing both writing and checksum calculation at once is because it makes sense due to the large files.

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4 Answers 4

up vote 35 down vote accepted

You use the TransformBlock and TransformFinalBlock methods to process the data in chunks.

// Init
MD5 md5 = MD5.Create();
int offset = 0;

// For each block:
offset += md5.TransformBlock(block, 0, block.Length, block, 0);

// For last block:
md5.TransformFinalBlock(block, 0, block.Length);

// Get the has code
byte[] hash = md5.Hash;

Note: It works (at least with the MD5 provider) to send all blocks to TransformBlock and then send an empty block to TransformFinalBlock to finalise the process.

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omg, just posted same suggestion, using same formatting =) – Rubens Farias Jan 23 '10 at 20:03
Ok, but +1 for also providing a reference! – Adam Liss Jan 23 '10 at 20:05
Ay caramba! There it is! That was the function I was searching for. Good to know I wasn't making it all up. Thanks to Guffa and Rubens for providing the correct answer so promptly. +1 to you both, I will accept this answer because of the included code example. – sindre j Jan 23 '10 at 20:31
Note that you can equivalently replace the second instance of block by null in the call to TransformBlock; you don't actually want any copying to occur; the output parameter isn't actually doing anything with respect to the hashing. – Eamon Nerbonne May 23 '11 at 11:47
Also, TransformFinalBlock can take zero for the length. – RandomInsano Nov 29 '11 at 23:41

I like the answer above but for the sake of completeness, and being a more general solution, refer to the CryptoStream class. If you are already handling streams, it is easy to wrap your stream in a CryptoStream, passing a HashAlgorithm as the ICryptoTransform parameter.

var file = new FileStream("foo.txt", FileMode.Open, FileAccess.Write);
var md5 = MD5.Create();
var cs = new CryptoStream(file, md5, CryptoStreamMode.Write);
while (notDoneYet)
    buffer = Get32MB();
    cs.Write(buffer, 0, buffer.Length);

You might have to close the stream before getting the hash (so the HashAlgorithm knows it's done).

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needs way more upvotes. very nice hint to CryptoStream – sehe Apr 8 '11 at 15:14
I wouldn't notice CryptoStream otherwise... – IgorK Aug 8 '12 at 11:56

Seems you can to use TransformBlock / TransformFinalBlock, as shown in this sample: Displaying progress updates when hashing large files

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That link is dead, try this instead:… – Cumbayah Oct 19 '11 at 8:26

Hash algorithms are expected to handle this situation and are typically implemented with 3 functions:

hash_init() - Called to allocate resources and begin the hash.
hash_update() - Called with new data as it arrives.
hash_final() - Complete the calculation and free resources.

Look at or for good, standard examples in C; I'm sure there are similar libraries for your platform.

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Good answer, but the "where is it in .net?" part of the question remains open. – Pascal Cuoq Jan 23 '10 at 19:58
@Pascal: See the 2 good answers below, both of which had been posted before your comment. – Adam Liss Jan 23 '10 at 20:06

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