What is the difference between ampersand and semicolon in Linux Bash?
For example,
$ command1 && command2
vs
$ command1; command2
asked Sep 4, 2014 at 15:36
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6I answered this here: superuser.com/a/619019/107862– Etan ReisnerSep 4, 2014 at 15:40
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19Regarding the off-topicness, last time I checked, bash was still a programming language, but I was wrong before and it could be some dried fruit candy.– Stephan KristynApr 17, 2015 at 9:27
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It is, and were you asking a question about a specific behavior or the right way to do a certain thing it would certainly be on topic. This falls into a greyer category of "question about the syntax of a language" which isn't as clearly a "programming" question as far as I'm concerned.– Etan ReisnerApr 17, 2015 at 11:41
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4bash is in some ways dry, and in some ways sweet. At the end of the day it is quite pleasant and digestible. It cannot, however, be easily stolen from babies.– code_monkAug 16, 2015 at 14:21
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4 Answers
The && operator is a boolean AND operator: if the left side returns a non-zero exit status, the operator returns that status and does not evaluate the right side (it short-circuits), otherwise it evaluates the right side and returns its exit status. This is commonly used to make sure that command2 is only run if command1 ran successfully.
The ; token just separates commands, so it will run the second command regardless of whether or not the first one succeeds.
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23is the double ampersand
&&different from a single ampersand&in bash? Jan 16, 2017 at 21:40 -
38@CharlieParker
&causes the command to be run in the background, so yes. "Run this in the background" is very different from "run this next command only if this other one succeeds."– cdhowieJan 18, 2017 at 15:39 -
The command2 will only run command1 returned zero exit status, meaning it finished successfully..– NikJan 23, 2019 at 7:01
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6
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1@rfii Yes, but it executes the second command without regard for whether the first command succeeded.
a;bmeans "runaand then runb."a&&bmeans "runa, and then runbonly ifawas successful."– cdhowieAug 14, 2020 at 4:49
command1 && command2
command1 && command2 executes command2 if (and only if) command1 execution ends up successfully. In Unix jargon, that means exit code / return code equal to zero.
command1; command2
command1; command2 executes command2 after executing command1, sequentially. It does not matter whether the commands were successful or not.
The former is a simple logic AND using short circuit evaluation, the latter simply delimits two commands.
What happens in real is that when the first program returns a nonzero exit code, the whole AND is evaluated to FALSE and the second command won't be executed. The later simply executes them both in order.
cmd1 ; cmd2
... runs cmd1 then cmd2.
cmd1 && cmd2
... runs cmd2 if cmd1 exited with a code of zero.
Both yield a status code of the last executed command.
However, what other answers miss...
You might think that cmd1 && cmd2 and (cmd1 && cmd2) are identical. In fact, they're very different. As is which command fails without the parens.
Consider the following. The status codes are determined by uncommenting set -e
#!/bin/bash
set -e # exit on error
set -x
# false # Yields status 1 and would cause the script to exit if -x is left uncommented
true && true # Does not exit script! Good
echo A $? # 0
false && true # Does not exit script! Wut?
echo B $? # 1
true && false # Exits the script. Wut? Wut?
echo C $? # 1, if not -e
(false && true) # Exits the script
echo D $? # 1, if not -e
(true && false) # Exits the script
echo E $? # 1, if not -e
D and E make sense, and the difference with the others makes sense - parens creates a subshell. However that both of the following yield a status of 1, but that only the seconds exits the script is truly bizarre:
false && true
true && false
