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I have the script below to subtract the counts of files between 2 directories but the COUNT= expression does not work, what is the correct syntax?

#!/usr/bin/env bash
FIRSTV=`ls -1 | wc -l`
cd ..
SECONDV=`ls -1 | wc -l`
echo $COUNT
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possible duplicate of How can I add numbers in a bash script –  Sorin Sep 8 '14 at 20:53

7 Answers 7

up vote 73 down vote accepted

You just need a little extra whitespace around the minus sign, and backticks:

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woooooooow this works! –  toop Dec 6 '11 at 9:13

Try this bash syntax instead of trying to use an external program expr:


btw correct syntax of using expr is:

count=$(expr $FIRSTV - $SECONDV)

but keep in mind using expr is going to be slower that internal bash syntax I provided you above.

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this gives me syntax error at line 6: `COUNT=$' unexpected –  toop Dec 5 '11 at 13:09
Which version of bash are you using and which command is giving you syntax error? –  anubhava Dec 5 '11 at 13:35
This form is magnitudes quicker than using the expr external program. –  Nate Jul 28 '13 at 2:37
Thanks. Backtick is old shell syntax. BASH supports new $(command) syntax for command substitution. Also since BASH support arithmetic operations in $(( ... )) it is better to not to use an external utility expr –  anubhava Feb 15 '14 at 10:53
This answer worked perfectly for me. –  Matt Williamson Mar 4 '14 at 3:16

White space is important, expr expects its operands and operators as separate arguments. You also have to capture the output. Like this:


but it's more common to use the builtin arithmetic expansion:

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syntax error at line 6: `COUNT=$' unexpected –  toop Dec 6 '11 at 9:05

You can use:

((count = FIRSTV - SECONDV))

to avoid invoking a separate process, as per the following transcript:

pax:~$ FIRSTV=7
pax:~$ SECONDV=2
pax:~$ ((count = FIRSTV - SECONDV))
pax:~$ echo $count
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This is how I always do maths in bash:

count=$(echo "$FIRSTV - $SECONDV"|bc)
echo $count
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that's only necessary if you're dealing with floating point numbers. –  glenn jackman Dec 6 '11 at 0:34
I realise that, but I'd rather make a habit of catching those cases with a |bc type command than miss it once or twice. Different strokes for different folks as they say. –  Pureferret Dec 6 '11 at 10:27

Alternatively to the suggested 3 methods you can try let which carries out arithmetic operations on variables as follows:




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For simple integer arithmetic, you can also use the builtin let command.

[me@home]$ ONE=1
[me@home]$ TWO=1
[me@home]$ let "THREE = $ONE + $TWO"
[me@home]$ echo $THREE

For more info on let, look here.

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aha ... different link! ^^ –  another.anon.coward Dec 5 '11 at 14:21
@another.anon.coward Your link's better than mine +1. (... and stealing link) –  Shawn Chin Dec 5 '11 at 14:28
Np ^^... TLDP is a very good source –  another.anon.coward Dec 5 '11 at 14:32
Isn't TWO supposed to be 2 –  kon psych Apr 29 at 17:02

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