Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

What I'm looking for is a way to merge the contents of two md5 files (let's call them a.md5 and b.md5) in an automated fashion. Ideally I would like to do this from a bash script, but I am willing to explore alternatives.

I generate a.md5 by doing:

cd a && find . -type f -print0 | xargs -0 md5sum > ../a.md5

Where folder a has a number of files and directories within. From another folder b, I similarly generate b.md5.
Here is a snippet of what the contents of the .md5 files will look like:

8f56e29ec16b2d59949c4a95b5607574  ./usr/share/man/man1/infocmp.1.gz
f245d527f4dd1fabab719b64414dccf7  ./usr/share/man/man1/clear.1.gz
c0ae88d29fc406c937c3f64511fa1ab0  ./usr/share/man/man1/modeline2fb.1
3b83017b7acd38a553c3132a0ccb1fd8  ./usr/share/man/man1/fbset.1
83530bf6b1a19ca69022536e7ca810b5  ./usr/share/man/man1/sqlite3.1

At a later time, folder a will have new files added to it (such as log files), and then be overwritten with folder b, so all unique files of folders a and b are present, and for all collisions, the file from a is replaced by the file from b.

Similarly, I would like to merge the contents of a.md5 and b.md5 so that in any collisions the b.md5 value replaces the a.md5 one for a particular file; however, since there are files added prior to the merge that I don't want in the results, I cannot simply recompute a new md5 file.

As a file note to give some context to the above needs, a and b are each the contents of embedded linux filesystems; the contents of a are programmed onto a clean file system, and the contents of b are unpacked into the filesystem at run-time. The goal of the md5 is to verify the contents have been deployed without error, and ignore the files that are generated by various things at run-time. I will be generating the md5 on my PC, and doing the md5sum -c on the embedded system.

As stated above, a bash script would be ideal, but I'm open to other suggestions as long as the process can be automated.

share|improve this question
I'll have to do some checking (I'm still a padawan when it comes to more complex shell stuff); but the issue would be that the md5 sums will be theoretically different between duplicate files in a and b. –  DjScribbles Oct 9 '12 at 15:02
Actually, that seems to have worked rather nicely (thankfully, I was balking at the complexity of sed). I did: cat b.md5 a.md5 | sort -k2 -u > c.md5, this does exactly what I needed. Thanks very much! –  DjScribbles Oct 9 '12 at 20:24

2 Answers 2

One possilbe way: You can sort -k2 both the lists and use join -1 2 -2 2 to merge a.md5 and b.md5. Finally, you should remove the dupicate information for files present in both locations, sed should be able to do that.

share|improve this answer
Actually, you could use join to output in the format you want: join -1 2 -2 2 a.md5 b.md5 -o '2.1,0', where the -o specifies the output format, where 2.1 uses the first field of the second file, and the 0 uses the "join field" (in this case the second field of either file). –  Janito Vaqueiro Ferreira Filho Oct 5 '12 at 21:12

How about this:

cat a.md5 b.md5|sort|uniq
share|improve this answer
Wound up tweaking this a bit to get it to work for me: cat b.md5 a.md5 | sort -k2 -u > c.md5 this keeps all the entries from b only when a duplicate file name with a different md5sum. –  DjScribbles Oct 9 '12 at 20:21

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.