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I need to calculate a summary md5 checksum for all files of a particular type ( *.py for example ) placed under a directory and all subdirectories. What is the best way to do that? Thanks.

The proposed solutions are very nice, but this is not exactly what I need. I'm looking for a solution to get a single SUMMARY checksum which will uniquely identify the directory as a whole - including content of all its subdirs. Thanks a lot.

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1  
Seems like a superuser question to me. –  Noldorin Nov 1 '09 at 14:52
4  
Note that checksums don't uniquely identify anything. –  Hosam Aly Nov 1 '09 at 15:58
    
Why would you have two directory trees that may or may not be "the same" that you want to uniquely identify? Does file create/modify/access time matter? Is version control what you really need? –  jmucchiello Nov 1 '09 at 22:36
    
What is really matter in my case is similarity of the whole directory tree content which means AFAIK the following: 1) content of any file under the directory tree has not been changed 2) no new file was added to the directory tree 3) no file was deleted –  victorz Nov 3 '09 at 11:18

14 Answers 14

up vote 76 down vote accepted
find /path/to/dir/ -type f -name "*.py" -exec md5sum {} + | awk '{print $1}' | sort | md5sum

The find command lists all the files that end in .py. The md5sum is computed for each .py file. awk is used to pick off the md5sums (ignoring the filenames, which may not be unique). The md5sums are sorted. The md5sum of this sorted list is then returned.

I've tested this by copying a test directory:

rsync -a ~/pybin/ ~/pybin2/

I renamed some of the files in ~/pybin2.

The find...md5sum command returns the same output for both directories.

2bcf49a4d19ef9abd284311108d626f1  -
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This one really works as expected! Thanks a million! –  victorz Nov 3 '09 at 11:49
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Note that the same checksum will be generated if a file gets renamed. So this doesn't truly fit a "checksum which will uniquely identify the directory as a whole" if you consider file layout part of the signature. –  Valentin Milea Jan 27 '12 at 13:46
1  
you could slightly change the command-line to prefix each file checksum with the name of the file (or even better, the relative path of the file from /path/to/dir/) so it is taken into account in the final checksum. –  Michael Zilbermann May 16 '13 at 8:02
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@zim2001: Yes, it could be altered, but as I understood the problem (especially due to the OP's comment under the question), the OP wanted any two directories to be considered equal if the contents of the files were identical regardless of filename or even relative path. –  unutbu May 16 '13 at 9:31
    
@unutbu : I know; i was reacting to the previous note, from Valentin Milea. –  Michael Zilbermann May 22 '13 at 9:02

Create a tar archive file on the fly and pipe that to md5sum:

tar c dir | md5sum

This produces a single md5sum that should be unique to your file and sub-directory setup. No files are created on disk.

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4  
+1, simple and elegant –  Adam Rosenfield Nov 1 '09 at 22:48
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except if it differs, you don't know which dir or file is the culprit... –  CharlesB Nov 1 '11 at 16:42
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@CharlesB with a single check-sum you never know which file is different. The question was about a single check-sum for a directory. –  Hawken Jul 1 '12 at 16:11
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ls -alR dir | md5sum . This is even better no compression just a read. It is unique because the content contains the mod time and size of file ;) –  Putty Sid Dahari Oct 3 '12 at 1:14
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@Daps0l - there is no compression in my command. You need to add z for gzip, or j for bzip2. I've done neither. –  ire_and_curses Nov 7 '12 at 18:19

ire_and_curses's suggestion of using tar c <dir> has some issues:

  • tar processes directory entries in the order which they are stored in the filesystem, and there is no way to change this order. This effectively can yield completely different results if you have the "same" directory on different places, and I know no way to fix this (tar cannot "sort" its input files in a particular order).
  • I usually care about whether groupid and ownerid numbers are the same, not necessarily whether the string representation of group/owner are the same. This is in line with what for example rsync -a --delete does: it synchronizes virtually everything (minus xattrs and acls), but it will sync owner and group based on their ID, not on string representation. So if you synced to a different system that doesn't necessarily have the same users/groups, you should add the --numeric-owner flag to tar
  • tar will include the filename of the directory you're checking itself, just something to be aware of.

As long as there is no fix for the first problem (or unless you're sure it does not affect you), I would not use this approach.

The find based solutions proposed above are also no good because they only include files, not directories, which becomes an issue if you the checksumming should keep in mind empty directories.

Finally, most suggested solutions don't sort consistently, because the collation might be different across systems.

This is the solution I came up with:

dir=<mydir>; (find "$dir" -type f -exec md5sum {} +; find "$dir" -type d) | LC_ALL=C sort | md5sum

Notes about this solution:

  • The LC_ALL=C is to ensure reliable sorting order across systems
  • This doesn't differentiate between a directory "named\nwithanewline" and two directories "named" and "withanewline", but the chance of that occuring seems very unlikely. One usually fixes this with a -print0 flag for find but since there's other stuff going on here, I can only see solutions that would make the command more complicated then it's worth.

PS: one of my systems uses a limited busybox find which does not support -exec nor -print0 flags, and also it appends '/' to denote directories, while findutils find doesn't seem to, so for this machine I need to run:

dir=<mydir>; (find "$dir" -type f | while read f; do md5sum "$f"; done; find "$dir" -type d | sed 's#/$##') | LC_ALL=C sort | md5sum

Luckily, I have no files/directories with newlines in their names, so this is not an issue on that system.

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+1: Very interesting! Are you saying that the order might differ between different filesystem types, or within the same filesystem? –  ire_and_curses Nov 1 '11 at 17:10
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both. it just depends on the order of the directory entries within each directory. AFAIK directory entries (in the filesystem) are just created in the order in which you "create files in the directory". A simple example: $ mkdir a; touch a/file-1; touch a/file-2 $ mkdir b; touch b/file-2; touch b/file-1 $ (cd a; tar -c . | md5sum) fb29e7af140aeea5a2647974f7cdec77 - $ (cd b; tar -c . | md5sum) a3a39358158a87059b9f111ccffa1023 - –  Dieter_be Nov 14 '11 at 13:01

Take a look at this and this for a more detailed explanation.

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nice! your link shows how to sum individual files in a folder and pipe to a file, just what I wanted. With that I am making a script to check web integrity regularly. Thanks (3 years on...) –  sdjuan Jun 13 '12 at 3:44

For the sake of completeness, there's md5deep(1); it's not directly applicable due to *.py filter requirement but should do fine together with find(1).

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If you only care about files and not empty directories, this works nicely:

find /path -type f | sort -u | xargs cat | md5sum
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If you want one md5sum spanning the whole directory, I would do something like

cat *.py | md5sum
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Great, but doesn't include those of subdirectories content... –  victorz Nov 1 '09 at 14:57
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For subdirs use something like cat **.py | md5sum –  Ramon Nov 1 '09 at 15:05

GNU find

find /path -type f -name "*.py" -exec md5sum "{}" +;
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Should the last token be \;? –  Dan Moulding Nov 1 '09 at 15:03
    
its valid for GNU find. check the man page for more info. –  ghostdog74 Nov 1 '09 at 15:11

Technically you only need to run ls -lR *.py | md5sum. Unless you are worried about someone modifying the files and touching them back to their original dates and never changing the files' sizes, the output from ls should tell you if the file has changed. My unix-foo is weak so you might need some more command line parameters to get the create time and modification time to print. ls will also tell you if permissions on the files have changed (and I'm sure there are switches to turn that off if you don't care about that).

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3  
This may fit some use cases, but generally you would want the checksum to reflect only the content and not the dates at all. For example, if I touch a file to change its date (but not its contents) then I would expect the checksum to be unchanged. –  Todd Owen Oct 2 '12 at 6:22

I use HashCopy to do this. It can generate and verify MD5 and SHA on a single file or a directory. It can be downloaded from www.jdxsoftware.org.

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If you want really independance from the filesystem attributes and from the bit-level differences of some tar versions, you could use cpio:

cpio -i -e theDirname | md5sum
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I had the same problem so I came up with this script that just lists the md5sums of the files in the directory and if it finds a subdirectory it runs again from there, for this to happen the script has to be able to run through the current directory or from a subdirectory if said argument is passed in $1

#!/bin/bash

if [ -z "$1" ] ; then

# loop in current dir
ls | while read line; do
  ecriv=`pwd`"/"$line
if [ -f $ecriv ] ; then
    md5sum "$ecriv"
elif [ -d $ecriv ] ; then
    sh myScript "$line" # call this script again
fi

done


else # if a directory is specified in argument $1

ls "$1" | while read line; do
  ecriv=`pwd`"/$1/"$line

if [ -f $ecriv ] ; then
    md5sum "$ecriv"

elif [ -d $ecriv ] ; then
    sh myScript "$line"
fi

done


fi
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I'm pretty sure that this script will fail if filenames contain spaces or quotes. I find this annoying with bash scripting, but what I do is change the IFS. –  localhost Jun 24 '13 at 23:36

I think I have found the final word in the "entire directory comparison". the article propose several conditions or several definition of equality between directories :

http://unix.stackexchange.com/questions/35832/how-do-i-get-the-md5-sum-of-a-directorys-contents-as-one-sum

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1  
Note that link-only answers are discouraged, SO answers should be the end-point of a search for a solution (vs. yet another stopover of references, which tend to get stale over time). Please consider adding a stand-alone synopsis here, keeping the link as a reference. –  kleopatra Sep 1 '13 at 21:14
    
Yes, indeed but I cannot make a more complete answer... Me, I am interested in my link, that is enough for me. And, it is positive, because people looking for the same answer could follow the link and find a more complete answer. –  MUY Belgium Sep 2 '13 at 21:48

Using md5deep:

md5deep -r FOLDER | awk '{print $1}' | sort | md5sum

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