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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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(T=$(date) echo $T) will work – vp_arth Nov 3 '15 at 12:28
up vote 127 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
4  
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. stackoverflow.com/a/8633575/1695680 – ThorSummoner Mar 24 '15 at 20:17
3  
Note that if your command already has two levels of quotes then this method becomes extremely unsatisfactory because of quote hell. In that situation exporting in subshell is much better. – Pushpendre Jan 22 at 19:07

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
5  
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
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In zsh I don't seem to need the export for this version: (FOO=XXX ; echo FOO=$FOO) ; echo FOO=$FOO yields FOO=XXX\nFOO=\n. – rampion Apr 16 '13 at 19:45
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@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

You can also use eval:

FOO=bar eval 'somecommand someargs | somecommand2'
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6  
@Alfe: Did you also downvote the accepted answer? because it exhibits the same “problems” as eval. – gniourf_gniourf Jan 28 at 12:51
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@Alfe: unfortunately I don't agree with your critique. This command is perfectly safe. You really sound like a guy who once read eval is evil without understanding what's evil about eval. And maybe you're not really understanding this answer after all (and really there's nothing wrong with it). On the same level: would you say that ls is bad because for file in $(ls) is ,bad? (and yeah, you didn't downvote the accepted answer, and you didn't leave a comment either). SO is such a weird and absurd place sometimes. – gniourf_gniourf Jan 29 at 8:43
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@Alfe: when I say You really sound like a guy who once read eval is evil without understanding what's evil about eval, I'm referring to your sentence: This answer lacks all the warnings and explanations necessary when talking about eval. eval is not bad or dangerous; no more than bash -c. – gniourf_gniourf Jan 29 at 8:54
    
Votes aside, the comment provided @Alfe does somehow imply that the accepted answer is somehow safer. What would have been more helpful would have been for you to describe what you believe to be unsafe about the usage of eval. In the answer provided the args have been single quoted protecting from variable expansion, so I see no problem with the answer. – Brett Ryan Jun 27 at 5:42
    
I removed my comments to concentrate my concern in one new comment: eval is a security issue in general (like bash -c but less obvious), so the dangers should be mentioned in an answer proposing its use. Careless users may take the answer (FOO=bar eval …) and apply it to their situation so that it raises problems. But it obviously was more important to the answerer to figure out whether I downvoted his and/or other answers than to improve anything. As I wrote before, fairness shouldn't be the main concern; being no worse than any other given answer also is irregardless. – Alfe Jun 27 at 12:39

How about using a shell script?

#!/bin/bash
# myscript
FOO=bar
somecommand someargs | somecommand2

> ./myscript
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7  
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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