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What is the fastest way to create a hash function which will be used to check if two files are equal?

Security is not very important.

Edit: I am sending a file over a network connection, and will be sure that the file on both sides are equal

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7  
A hash function can't tell you if two files are equal. It can only tell you if two files are not equal. If you're only comparing two files once, faster than any hash algorithm will be simple reading the files and comparing them. –  jemfinch May 17 '10 at 4:47

10 Answers 10

up vote 8 down vote accepted

One approach might be to use a simple CRC-32 algorithm, and only if the CRC values compare equal, rerun the hash with a SHA1 or something more robust. A fast CRC-32 will outperform a cryptographically secure hash any day.

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7  
I'd say that hashing a file is likely to be I/O-bound anyhow, so you might as well use a hash with good distribution and a large range (certainly any crypto hash qualifies). –  Steven Sudit Aug 12 '10 at 1:40
11  
I'm going to contradict myself here: if there are just two files of equal length, you're not going to get any faster with hashes than by direct comparison. If you have a number of files and want to find candidates for equality, a hash makes sense. –  Steven Sudit Feb 3 '11 at 7:39

Unless you're using a really complicated and/or slow hash, loading the data from the disk is going to take much longer than computing the hash.

So to compare two files, use this algorithm:

  • Compare sizes
  • Compare dates (be careful here: this can give you the wrong answer; you must test whether this is the case for you or not)
  • Compare the hashes

This allows for a fast fail (if the sizes are different, you know that the files are different).

To make things even faster, you can compute the hash once and save it along with the file. Also save the file date and size into this extra file, so you know quickly when you have to recompute the hash or delete the hash file when the main file changes.

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1  
I've implemented a working solution that uses alternate data streams under NTFS to store hashes. One thing I had to do, however, was to timestamp the hash so that I could tell if the file had been modified since it had last been hashed. –  Steven Sudit Feb 3 '11 at 7:44

Why do you want to hash it?

If you want to make sure that two files are equal then by definition you will have to read the entire file (unless they are literally the same file, in which case you can tell by looking at meta-data on the file system). Anyways, no reason to hash, just read over them and see if they are the same. Hashing will make it less efficient. And even if the hashes match, you still aren't sure if the files really are equal.

Edit: This answer was posted before the question specified anything about a network. It just asked about comparing two files. Now that I know there is a network hop between the files, I would say just use an MD5 hash and be done with it.

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2  
I am sending a file over a network connection, and will be sure that the file on both sides are equal. –  eflles Nov 19 '09 at 7:59
3  
Oh, well in that case just use a real hash algorithm. I guarantee your network will be slower than the hash. –  Greg Hewgill Nov 19 '09 at 8:01
    
In such a case, use an already existing hash function. Greg, posted some good examples. –  tster Nov 19 '09 at 8:01

xxhash purports itself as quite fast and strong:

https://code.google.com/p/xxhash

http://code.google.com/p/crcutil is also said to be quite fast (and leverages hardware CRC instructions where present, which are obviously fast). Don't know if CRC's are as good of a hash (in terms of random distribution) as xxhash or not.

https://code.google.com/p/cityhash/ seems similar to crcutil [can compile down to use hardware CRC instructions].

If you "just want raw speed" and don't care as much about quality of distribution of the hash output (which in some cases is enough), there are some good algorithms mentioned here: http://www.sanmayce.com/Fastest_Hash/

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You could try MurmurHash, which was specifically designed to be fast, and is pretty simple to code. You might want to and a second, more secure hash if MurmurHash returns a match though, just to be sure.

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The OP stated that security was not a consideration here, so I'm not sure why a second hash would help. Instead, I'd suggest using one of the 64-bit variants of Murmur. –  Steven Sudit Aug 12 '10 at 1:42
    
I'm going to contradict myself by suggesting that the newer 128-bit variant is better, and then contradict myself by adding that, for this use case, I'd stick with a proper crypto hash, such as SHA-256. –  Steven Sudit Feb 3 '11 at 7:41
    
cbloomrants.blogspot.com/2010/08/08-21-10-adler32.html and strchr.com/hash_functions seem to imply that murmurhash is faster, of only slightly, than adler/crc32. It may all depend on implementation, for instance this sse version says it is a "fast" crc-like hash: cessu.blogspot.com/2008/11/… –  rogerdpack Jun 21 '12 at 17:56

For this type of application, Adler32 is probably the fastest algorithm, with a reasonable level of security. For bigger files, you may calculate multiple hash values, for example one per block of 5 Mb of the file, hence decreasing the chances of errors (i.e. of cases when the hashes are same yet the file content differ). Furthermore this multi-hash values setup may allow the calculation of the hash to be implemented in a multi-thread fashion.

Edit: (Following Steven Sudit's remark)
A word of caution if the files are small!
Adler32's "cryptographic" properties, or rather its weaknesses are well known particularly for short messages. For this reason the solution proposed should be avoided for files smaller than than a few kilobytes.
Never the less, in the question, the OP explicitly seeks a fast algorithm and waives concerns about security. Furthermore the quest for speed may plausibly imply that one is dealing with "big" files rather than small ones. In this context, Adler32, possibly applied in parallel for files chunks of say 5Mb remains a very valid answer. Alder32 is reputed for its simplicity and speed. Also, its reliability, while remaining lower than that of CRCs of the same length, is quite acceptable for messages over 4000 bytes.

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I would not recommend Adler32 for any purpose. It has terrible characteristics, particularly for short files. –  Steven Sudit Aug 12 '10 at 1:43
    
There are faster algorithms that are nonetheless much better. MurmurHash3 comes to mind, but for this use case, I'd suggest that I/O speed is the limit so SHA-256 would be good. –  Steven Sudit Feb 3 '11 at 7:42
    
(Also, please use the comment option instead of editing your remark, else I'll only know about your response if I get lucky.) –  Steven Sudit Feb 3 '11 at 7:43
    
apparently adler32 is "bad for numbers" strchr.com/hash_functions but CRC32 is ok, at least distribution wise. –  rogerdpack Jun 21 '12 at 17:50

In any case, you should read each file fully (except case when sizes mismatch), so just read both file and compare block-to-block.

Using hash just gain CPU usage and nothing more. As you do not write anything, cache of OS will effectively DROP data you read, so, under Linux, just use cmp tool

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If it's only a one off then given that you'll have to read both files to generate a hash of both of them, why not just read through a small amount of each at a time and compare?

Failing that CRC is a very simple algorithm.

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+1 for suggesting direct comparison, -1 for suggesting CRC. –  Steven Sudit Feb 3 '11 at 7:41
    
+1 for CRC, since the OP asked for "fastest". Of course, then he asked for "making sure the files are the same" which contradicts itself LOL. –  rogerdpack Jun 21 '12 at 17:27
    
@rogerdpack crc isn't close to fastest hash, even with asm. –  OneOfOne Aug 14 at 0:00
1  
@OneOfOne true I believe I didn't realize that at the time. These days I recommend xxhash or cityhash, see my other answer here stackoverflow.com/a/11422479/32453 [apparently with crc32c it can compile down to a CPU instruction which is very fast...though that's not what I was referring to initially here I don't think so your comment is right] –  rogerdpack Aug 15 at 16:05

you might check out the algorithm that the samba/rsync developers use. I haven't looked at it in depth, but i see it mentioned all the time. apparently its quite good.

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rsync is actually using a "rolling checksum" version of the Adler32 algorithm, as of Wikipedia: en.wikipedia.org/wiki/Adler-32 –  Bigue Nique Jun 16 at 12:28

The following is the code to find duplicate files from my personal project to sort pictures which also removes duplicates. As per my experience, first using fast hashing algo like CRC32 and then doing MD5 or SHA1 was even slower and didn't made any improvement as most of the files with same sizes were indeed duplicate so running hashing twice was more expensive from cpu time perspective, this approach may not be correct for all type of projects but it definitely true for image files. Here I am doing MD5 or SHA1 hashing only on the files with same size.

PS: It depends on Apache commons codec to generate hash efficiently.

Sample usage: new DuplicateFileFinder("MD5").findDuplicateFilesList(filesList);

    import java.io.File;
    import java.io.FileInputStream;
    import java.io.IOException;
    import java.util.ArrayList;
    import java.util.Collection;
    import java.util.HashMap;
    import java.util.Iterator;
    import java.util.List;
    import java.util.Map;

    import org.apache.commons.codec.digest.DigestUtils;

    /**
     * Finds the duplicate files using md5/sha1 hashing, which is used only for the sizes which are of same size.
     *  
     * @author HemantSingh
     *
     */
    public class DuplicateFileFinder {

        private HashProvider hashProvider;
        // Used only for logging purpose.
        private String hashingAlgo;

        public DuplicateFileFinder(String hashingAlgo) {
            this.hashingAlgo = hashingAlgo;
            if ("SHA1".equalsIgnoreCase(hashingAlgo)) {
                hashProvider = new Sha1HashProvider();
            } else if ("MD5".equalsIgnoreCase(hashingAlgo)) {
                hashProvider = new Md5HashProvider();
            } else {
                throw new RuntimeException("Unsupported hashing algorithm:" + hashingAlgo + " Please use either SHA1 or MD5.");
            }
        }

        /**
         * This API returns the list of duplicate files reference.
         * 
         * @param files
         *            - List of all the files which we need to check for duplicates.
         * @return It returns the list which contains list of duplicate files for
         *         e.g. if a file a.JPG have 3 copies then first element in the list
         *         will be list with three references of File reference.
         */
        public List<List<File>> findDuplicateFilesList(List<File> files) {
            // First create the map for the file size and file reference in the array list.
            Map<Long, List<File>> fileSizeMap = new HashMap<Long, List<File>>();
            List<Long> potDuplicateFilesSize = new ArrayList<Long>();

            for (Iterator<File> iterator = files.iterator(); iterator.hasNext();) {
                File file = (File) iterator.next();
                Long fileLength = new Long(file.length());
                List<File> filesOfSameLength = fileSizeMap.get(fileLength);
                if (filesOfSameLength == null) {
                    filesOfSameLength = new ArrayList<File>();
                    fileSizeMap.put(fileLength, filesOfSameLength);
                } else {
                    potDuplicateFilesSize.add(fileLength);
                }
                filesOfSameLength.add(file);
            }

            // If we don't have any potential duplicates then skip further processing.
            if (potDuplicateFilesSize.size() == 0) {
                return null;
            }

            System.out.println(potDuplicateFilesSize.size() + " files will go thru " + hashingAlgo + " hash check to verify if they are duplicate.");

            // Now we will scan the potential duplicate files, and eliminate false positives using md5 hash check.
            List<List<File>> finalListOfDuplicates = new ArrayList<List<File>>();
            for (Iterator<Long> potDuplicatesFileSizeIterator = potDuplicateFilesSize
                    .iterator(); potDuplicatesFileSizeIterator.hasNext();) {
                Long fileSize = (Long) potDuplicatesFileSizeIterator.next();
                List<File> potDupFiles = fileSizeMap.get(fileSize);
                Map<String, List<File>> trueDuplicateFiles = new HashMap<String, List<File>>();
                for (Iterator<File> potDuplicateFilesIterator = potDupFiles.iterator(); potDuplicateFilesIterator
                        .hasNext();) {
                    File file = (File) potDuplicateFilesIterator.next();
                    try {
                        String md5Hex = hashProvider.getHashHex(file);
                        List<File> listOfDuplicatesOfAFile = trueDuplicateFiles.get(md5Hex);
                        if (listOfDuplicatesOfAFile == null) {
                            listOfDuplicatesOfAFile = new ArrayList<File>();
                            trueDuplicateFiles.put(md5Hex, listOfDuplicatesOfAFile);
                        }
                        listOfDuplicatesOfAFile.add(file);
                    } catch (IOException e) {
                        e.printStackTrace();
                    }
                }
                Collection<List<File>> dupsOfSameSizeList = trueDuplicateFiles.values();
                for (Iterator<List<File>> dupsOfSameSizeListIterator = dupsOfSameSizeList.iterator(); dupsOfSameSizeListIterator
                        .hasNext();) {
                    List<File> list = (List<File>) dupsOfSameSizeListIterator.next();
                    // It will be duplicate only if we have more then one copy of it.
                    if (list.size() > 1) {
                        finalListOfDuplicates.add(list);
                        System.out.println("Duplicate sets found: " + finalListOfDuplicates.size());
                    }
                }
            }

            return finalListOfDuplicates;
        }

        abstract class HashProvider {
            abstract String getHashHex(File file) throws IOException ;
        }

        class Md5HashProvider extends HashProvider {
            String getHashHex(File file) throws IOException {
                return DigestUtils.md5Hex(new FileInputStream(file));
            }
        }
        class Sha1HashProvider extends HashProvider {
            String getHashHex(File file) throws IOException {
                return DigestUtils.sha1Hex(new FileInputStream(file));
            }
        }
    }
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