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I it possible to cache results from TransformBlock so they can then be re-used for further hashing without the need to re-calculate the same hash each time. Given the following small sample.

    static void Main(string[] args)
    {
        for (int i = 0; i < 100000; ++i)
        {
            MD5 md5 = new MD5CryptoServiceProvider();
            byte[] exe = File.ReadAllBytes(@"..\..\..\md5cache\bin\Debug\md5cache.exe");
            byte[] wrk = Encoding.UTF8.GetBytes(Path.GetFullPath(@"..\..\..\md5cache\bin\Debug"));
            byte[] cmd = Encoding.UTF8.GetBytes(@"test" + i.ToString() + ".bin");
            md5.TransformBlock(exe, 0, exe.Length, null, 0);
            md5.TransformBlock(wrk, 0, wrk.Length, null, 0);
            md5.TransformFinalBlock(cmd, 0, cmd.Length);
            byte[] hash = md5.Hash;
            string hexHash = BitConverter.ToString(hash);
            Console.WriteLine(hexHash.Replace("-", ""));
        }
    }

exe and wrk's data never changes throughout the lifetime of the app but I can't find anyway of caching this to avoid needlessly recalculating the data each pass.

I've seen the property CanReuseTransform, but I'm not sure how this is used and as it appears to only be a getter I guess it is used to see if you can stack TransformBlock/TransformFinalBlock.

So does anyone know if this is possible? I guess I could create a new clonable MD5CryptoServiceProvider class assuming all the bits I need are available.

share|improve this question
    
Given the size of the blocks we're talking about, have you considered what level of benefit this would actually provide? I suspect it's considerably less over the lifetime of a busy app than the time it took you to ask the question :) –  Jon Skeet Nov 2 '12 at 11:58
    
If you're not bound by an existing protocol, you can simply switch to Hash(Hash(exe)+Hash(wrk)+Hash(cmd)) preferably with (truncated) SHA-256 instead of MD5. Your scheme also doesn't mark the boundaries between the three parts, allowing different triples match a hash. –  CodesInChaos Nov 2 '12 at 12:06
    
@Jon, This is just a minimal sample case to give an idea of the flow, the real usage would have many more blocks and many more reads. If it was a trivial as the sample code posted, I wouldn't have asked. ;) –  Niksan Nov 2 '12 at 12:21
    
@CodesInChaos, unfortuantly I'm bound to MD5 due to pre-existing tools outside of my control, there can be clashes but this is for file caching and the cached data has extra blobs for resolving conflicts, I'm not sure what you mean by marking boundries though. –  Niksan Nov 2 '12 at 12:26
    
(exe="A", wrk="BC") and (exe="AB", wrk="C") result in the same hash. –  CodesInChaos Nov 2 '12 at 12:27

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