202

I use md5sum to generate a hash value for a file. But I only need to receive the hash value, not the file name.

md5=`md5sum ${my_iso_file}`
echo ${md5}

Output:

3abb17b66815bc7946cefe727737d295  ./iso/somefile.iso

How can I 'strip' the file name and only retain the value?

3
  • 39
    Very surprising this isn't an option for md5sum. – Sridhar Sarnobat Jan 10 '17 at 4:39
  • 13
    Agreed! Why isn't this an option? Can a GNU-Master shed some light? – rinogo Jul 28 '17 at 0:46
  • Why do you need to have a "only hash" flag when you can trim the result with some regex? (I am sarcastic) – Magnetic_dud Apr 21 '20 at 21:53

15 Answers 15

197

Using AWK:

md5=`md5sum ${my_iso_file} | awk '{ print $1 }'`
3
  • 7
    Or md5=`md5sum < ${my_iso_file}` However this still outputs " - " at the end. But for comparisons this should be enough. – Christophe De Troyer Mar 18 '15 at 15:33
  • Wrong it gives following output on Mac MD5 (/Users/hello.txt) = 24811012be8faa36c8f487bbaaadeb71 and your code returns MD5. – alper Aug 3 '18 at 21:06
  • You can get run of - by adding | awk '{print $1}' end of your code => md5sum < ${my_iso_file} | awk '{print $1}' @ChristopheDeTroyer – alper Aug 3 '18 at 21:11
208

A simple array assignment works... Note that the first element of a Bash array can be addressed by just the name without the [0] index, i.e., $md5 contains only the 32 characters of md5sum.

md5=($(md5sum file))
echo $md5
# 53c8fdfcbb60cf8e1a1ee90601cc8fe2
10
  • 2
    the first line doesn't work inside the do section of a for loop...as a Bash newb I don't yet know why – Andy Jul 29 '15 at 1:20
  • 1
    @Andy: If you try this line of code (in the terminal, or in a script): echo>file; for i in file; do md5=($(md5sum file)); echo $md5; done - It should output 68b329da9893e34099c7d8ad5cb9c940 – Peter.O Jul 29 '15 at 8:35
  • 1
    How come echo ($(echo -n foo | md5sum)) doesn't work? Errors out bash: syntax error near unexpected token $(echo -n foo | md5sum)' – lkraav Aug 26 '15 at 4:42
  • 3
    @lkraav: The command echo -n foo | md5sum outputs 2 shell words to stdout: acbd18db4cc2f85cedef654fccc4a4d8 and - (the - indicates the source as stdin). – You must tell bash to capture those words into a string, using Command Substitution: $( command ). – The ( brackets ) produce a bash array with 2 elements. However, you must assign that array construct ( … ) to an variable name; hence, using md5 as the array name: md5=($(echo -n foo | md5sum)). You haven't assigned the array to a variable name – Peter.O Aug 26 '15 at 7:04
  • 1
    This is a bash question, but note that this doesn't work in zsh. Instead you can echo $md5[1] to get only the hash (but this isn't portable to bash)... – Shane Mar 8 '16 at 9:04
66

You can use cut to split the line on spaces and return only the first such field:

md5=$(md5sum "$my_iso_file" | cut -d ' ' -f 1)
1
  • 7
    @CzarekTomczak True, but just by using this answer's method, you could reuse it with different hashing algorithms just by changing the command itself. md5sum -> sha256sum without remembering what amount of characters you need to "cut". – David Tabernero M. Aug 15 '18 at 1:05
27

On Mac OS X:

md5 -q file
2
  • 1
    doesn't work on my Mac OS X 10.7. But thanks for posting, for whatever version this works on. – Sridhar Sarnobat Jan 10 '17 at 4:38
  • Also gmd5sum from coreutils would work on MacOS like md5sum in other answers mentioned here. – Anton Tarasenko Nov 21 '18 at 16:00
16
md5="$(md5sum "${my_iso_file}")"
md5="${md5%% *}" # remove the first space and everything after it
echo "${md5}"
2
  • Nice. One note -- on the first line you don't need quotes around $() (although they do no harm) but certainly need them around ${}. – Roman Cheplyaka Sep 13 '10 at 20:26
  • 1
    @Roman: yeah, I tend to habitually quote any expansion (unless there's a reason not to) -- it's easier than keeping track of the cases where it's safe to skip the quotes. (Although in this case, I left them off the actual filename... stand by for an edit.) – Gordon Davisson Sep 14 '10 at 6:31
7

Another way is to do:

md5sum filename | cut -f 1 -d " "

cut will split the line to each space and return only the first field.

0
6

One way:

set -- $(md5sum $file)
md5=$1

Another way:

md5=$(md5sum $file | while read sum file; do echo $sum; done)

Another way:

md5=$(set -- $(md5sum $file); echo $1)

(Do not try that with backticks unless you're very brave and very good with backslashes.)

The advantage of these solutions over other solutions is that they only invoke md5sum and the shell, rather than other programs such as awk or sed. Whether that actually matters is then a separate question; you'd probably be hard pressed to notice the difference.

1
  • The question is tagged with Bash, but perhaps indicate how much of this is Bash-specific (e.g., would it work in Z shell (now allegedly the default shell in macOS v10.15 (Catalina) and later)). – Peter Mortensen Apr 19 at 15:46
3
md5=$(md5sum < $file | tr -d ' -')
3

If you need to print it and don't need a newline, you can use:

printf $(md5sum filename)
2
md5=`md5sum ${my_iso_file} | cut -b-32`
1

md5sum puts a backslash before the hash if there is a backslash in the file name. The first 32 characters or anything before the first space may not be a proper hash.

It will not happen when using standard input (file name will be just -), so pixelbeat's answer will work, but many others will require adding something like | tail -c 32.

0

Well, I had the same problem today, but I was trying to get the file MD5 hash when running the find command.

I got the most voted question and wrapped it in a function called md5 to run in the find command. The mission for me was to calculate the hash for all files in a folder and output it as hash:filename.

md5() { md5sum $1 | awk '{ printf "%s",$1 }'; }
export -f md5
find -type f -exec bash -c 'md5 "$0"' {} \; -exec echo -n ':' \; -print

So, I'd got some pieces from here and also from 'find -exec' a shell function in Linux

0

For the sake of completeness, a way with sed using a regular expression and a capture group:

md5=$(md5sum "${my_iso_file}" | sed -r 's:\\*([^ ]*).*:\1:')

The regular expression is capturing everything in a group until a space is reached. To get a capture group working, you need to capture everything in sed.

(More about sed and capture groups here: How can I output only captured groups with sed?)

As delimiter in sed, I use colons because they are not valid in file paths and I don't have to escape the slashes in the filepath.

1
  • Why capture? You can simply delete the space and what is behind: sed 's: .*::' does the same thing! – MoonCactus Oct 20 '20 at 7:18
-3

Another way:

md5=$(md5sum ${my_iso_file} | sed '/ .*//' )
-3
md5=$(md5sum < index.html | head -c -4)

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