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In a given shell, normally I'd set a variable or variables and then run a command. Recently I learned about the concept of prepending a variable definition to a command:

FOO=bar somecommand someargs

This works... kind of. It doesn't work when you're changing a LC_* variable (which seems to affect the command but NOT its arguments, e.g., '[a-z]' char ranges) or when piping output to another command thusly:

FOO=bar somecommand someargs | somecommand2  # somecommand2 is unaware of FOO

I can prepend somecommand2 with "FOO=bar" as well, which works but which adds unwanted duplication, and it doesn't help with arguments that are interpreted depending on the variable (e.g. '[a-z]')

So, what's a good way to do this on a single line? I'm thinking something on the order of:

FOO=bar (somecommand someargs | somecommand2)  # Doesn't actually work

Edit: I got lots of good answers! The goal is to keep this a one-liner, preferably without using "export". The method using a call to bash was best overall, though the parenthetical version with "export" in it was a little more compact. The method of using redirection rather than a pipe is interesting as well.

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4 Answers 4

up vote 82 down vote accepted
FOO=bar bash -c 'somecommand someargs | somecommand2'
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This satisfies my criteria (one-liner without needing "export")... I take it there's no way to do this without calling "bash -c" (e.g., creative use of parentheses)? – MartyMacGyver Jun 1 '12 at 19:44
@MartyMacGyver: None that I can think of. It won't work with curly braces either. – Dennis Williamson Jun 1 '12 at 19:45
Note that if you need to run your somecommand as sudo, you need to pass sudo the -E flag to pass though variables. Because variables can introduce vulnerabilities. – ThorSummoner Mar 24 at 20:17

How about exporting the variable, but only inside the subshell?:

(export FOO=bar && somecommand someargs | somecommand2)

Keith has a point, to unconditionally execute the commands, do this:

(export FOO=bar; somecommand someargs | somecommand2)
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This appears to work, though it's not quite what I was looking for (it may be that there is no way to do what I'm describing above in one command without explicitly using export first...) Thoughts? – MartyMacGyver Jun 1 '12 at 19:33
I'd use ; rather than &&; there's no way export FOO=bar is going to fail. – Keith Thompson Jun 1 '12 at 19:40
@Keith - I always wondered about the difference between && and ; (like most non-word questions it's not exactly easy to search for... I do know Windows supports && but evidently nothing like ";", FWIW). I may find myself using either this construction or the bash construction depending on the audience. – MartyMacGyver Jun 1 '12 at 19:58
@KeithThompson: good point, I edited it into my answer. Thanks. – 0xC0000022L Jun 1 '12 at 20:21
@PopePoopinpants: why not use source (aka .) in that case? Also, the backticks shouldn't be used anymore these days and this is one of the reasons why, using $(command) is waaaaay safer. – 0xC0000022L Jan 8 '14 at 1:04

Process redirection (if available) should work, too.

FOO=bar somecommand2 < <(somecommand someargs)
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That does seem to work, though the syntax is a little non-intuitive (to me) - I'll add it to my list of possibilities. – MartyMacGyver Jun 3 '12 at 8:17

How about using a shell script?

# myscript
somecommand someargs | somecommand2

> ./myscript
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You still need export; otherwise $FOO will be a shell variable, not an environment variable, and therefore not visible to somecommand or somecommand2. – Keith Thompson Jun 1 '12 at 19:41
It'd work but it defeats the purpose of having a one-line command (I'm trying to learn more creative ways to avoid multi-liners and/or scripts for relatively simple cases). And what @Keith said, though at least the export would stay scoped to the script. – MartyMacGyver Jun 1 '12 at 19:47

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