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I am trying to get bash to process data from stdin that gets piped it, but no luck, what I mean is none of the following work:

echo "hello world" | test=($(< /dev/stdin)); echo test=$test

echo "hello world" | read test; echo test=$test

echo "hello world" | test=`cat`; echo test=$test

where I want the output to be test=hello world. Note I've tried putting "" quotes around "$test" that doesn't work either.

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Your example.. echo "hello world" | read test; echo test=$test worked fine for me.. result: test=hello world ; what environment are running this under? I'm using bash 4.2.. – alex.pilon Jul 21 '12 at 14:43
Do you want multiple lines in a single read? Your example only shows one line, but the problem description is unclear. – Charles Duffy Oct 4 '12 at 14:08
@alex.pilon, I'm running Bash version 4.2.25, and his example does not work for me too. May be that's a matter of a Bash runtime option or environment variable? I've the example does not work with Sh neither, so may be Bash can try to be compatible with Sh? – Hibou57 Jul 15 '14 at 23:45
@Hibou57 - I tried this again in bash 4.3.25 and it no longer works. My memory is fuzzy on this and I'm not sure what I may have done to get it to work. – alex.pilon Oct 24 '14 at 18:20

12 Answers 12

up vote 77 down vote accepted


IFS= read var << EOF

You can trick read into accepting from a pipe like this:

echo "hello world" | { read test; echo test=$test; }

or even write a function like this:

read_from_pipe() { read "$@" <&0; }

But there's no point - your variable assignments may not last! A pipeline may spawn a subshell, where the environment is inherited by value, not by reference. This is why read doesn't bother with input from a pipe - it's undefined.

FYI, is a nifty collection of the cruft necessary to fight the oddities and incompatibilities of bourne shells, sh.

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Other people edited "won't" into "may not" and "spans" into "may spawn". It's more technically correct, but now it reads awkwardly! – yardena Oct 19 '12 at 1:08
You can make the assignment last by doing this instead: `test=``echo "hello world" | { read test; echo $test; }``` – Compholio Oct 31 '12 at 15:22
Let's try this again (apparently escaping backticks in this markup is fun): test=`echo "hello world" | { read test; echo $test; }` – Compholio Oct 31 '12 at 15:29
can I ask why you used {} instead of () in grouping those two commands? – Michelle Aug 10 '13 at 13:42
The trick is not in making read take input from the pipe, but in using the variable in the same shell that executes the read. – chepner Oct 2 '13 at 17:02

if you want to read in lots of data and work on each line separately you could use something like this:

cat myFile | while read x ; do echo $x ; done

if you want to split the lines up into multiple words you can use multiple variables in place of x like this:

cat myFile | while read x y ; do echo $y $x ; done


while read x y ; do echo $y $x ; done < myFile

But as soon as you start to want to do anything really clever with this sort of thing you're better going for some scripting language like perl where you could try something like this:

perl -ane 'print "$F[0]\n"' < myFile

There's a fairly steep learning curve with perl (or I guess any of these languages) but you'll find it a lot easier in the long run if you want to do anything but the simplest of scripts. I'd recommend the Perl Cookbook and, of course, The Perl Programming Language by Larry Wall et al.

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"alternatively" is the correct way. No UUoC and no subshell. See BashFAQ/024. – Dennis Williamson Feb 26 '12 at 17:50

read won't read from a pipe (or possibly the result is lost because the pipe creates a subshell). You can, however, use a here string in Bash:

$ read a b c <<< $(echo 1 2 3)
$ echo $a $b $c
1 2 3
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This is another option

$ read test < <(echo hello world)

$ echo $test
hello world
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The significant advantage that <(..) has over $(..) is that <(..) returns each line to the caller as soon as the command that it executes makes it available. $(..), however, waits for the command to complete and generate all of its output before it makes any output available to the caller. – Derek Mahar Feb 26 '13 at 16:19

I'm no expert in Bash, but I wonder why this hasn't been proposed:


echo "$stdin"

One-liner proof that it works for me:

$ fortune | eval 'stdin=$(cat); echo "$stdin"'
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That's probably because "read" is a bash command, and cat is a separate binary that will be launched in a subprocess, so it's less efficient. – dj_segfault Feb 8 '13 at 14:25
Helped me to solve a related issue - thx – pagid May 7 '13 at 9:30
sometimes simplicity and clarity trump efficiency :) – Rondo Dec 18 '14 at 4:05
definitely the most straight-forward answer – ricovox Mar 6 at 16:38
The problem I ran in to with this is that if a pipe isn't used, the script hangs. – Dale A Oct 26 at 19:43

The syntax for an implicit pipe from a shell command into a bash variable is




In your examples, you are piping data to an assignment statement, which does not expect any input.

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The first form, var=$(command), is preferable. – Kevin Little Apr 30 '10 at 22:13
For what reason? – rneatherway Oct 18 '12 at 10:37
Because $() can be nested easily. Think in JAVA_DIR=$(dirname $(readlink -f $(which java))), and try it with `. You will need to escape three times! – albfan Oct 20 '12 at 20:17
Cool, thanks for the answer – rneatherway Jan 10 '13 at 13:48

bash 4.2 introduces the lastpipe option, which allows your code to work as written, by executing the last command in a pipeline in the current shell, rather than a subshell.

shopt -s lastpipe
echo "hello world" | read test; echo test=$test
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Piping something into an expression involving an assignment doesn't behave like that.

Instead, try:

test=$(echo "hello world"); echo test=$test
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The first attempt was pretty close. This variation should work:

echo "hello world" | { test=$(< /dev/stdin); echo "test=$test"; };

and the output is:

test=hello world

You need braces after the pipe to enclose the assignment to test and the echo.

Without the braces, the assignment to test (after the pipe) is in one shell, and the echo "test=$test" is in a separate shell which doesn't know about that assignment. That's why you were getting "test=" in the output instead of "test=hello world".

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I think you were trying to write a shell script which could take input from stdin. but while you are trying it to do it inline, you got lost trying to create that test= variable. I think it does not make much sense to do it inline, and that's why it does not work the way you expect.

I was trying to reduce

$( ... | head -n $X | tail -n 1 )

to get a specific line from various input. so I could type...

cat program_file.c | line 34

so I need a small shell program able to read from stdin. like you do.

22:14 ~ $ cat ~/bin/line 

if [ $# -ne 1 ]; then echo enter a line number to display; exit; fi
cat | head -n $1 | tail -n 1
22:16 ~ $ 

there you go.

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How about this:

echo "hello world" | echo test=$(cat)
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Basically a dupe from my answer below. – djanowski Oct 27 at 12:22

The following code:

echo "hello world" | ( test=($(< /dev/stdin)); echo test=$test )

will work too, but it will open another new sub-shell after the pipe, where

echo "hello world" | { test=($(< /dev/stdin)); echo test=$test; }


I had to disable job control to make use of chepnars' method (I was running this command from terminal):

set +m;shopt -s lastpipe
echo "hello world" | read test; echo test=$test
echo "hello world" | test="$(</dev/stdin)"; echo test=$test

Bash Manual says:


If set, and job control is not active, the shell runs the last command of a pipeline not executed in the background in the current shell environment.

Note: job control is turned off by default in a non-interactive shell and thus you don't need the set +m inside a script.

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