149

When I run commands in my shell as below, it returns an expr: non-integer argument error. Can someone please explain this to me?

$ x=20
$ y=5
$ expr x / y 
expr: non-integer argument
3
  • 4
    @ShivanRaptor While one might argue that the question is an RTFM question, it is certainly a valid shell programming question. It is also a reasonable question for someone coming from languages that don't require dereferencing (e.g. Ruby or JavaScript). It should be left open. – Todd A. Jacobs Aug 7 '13 at 3:14
  • 6
    @ShivanRaptor No, this is on topic here. It's about programming in Bash. Unix/Linux is primarily for using the system, not programming. Now, shell scripting does span the boundary between programming and using the system, so this could be on topic on either site. If there were a question about "how do I set up networking", that would definitely belong on Unix/Linux. If it were a question about interactive keybindings in Bash, that would also belong there. But a question about shell scripting is definitely on topic here as well as there. – Brian Campbell Aug 7 '13 at 3:14
  • See my answer here, that illustrates subtraction and division of $BASH variables, using a call to Python from the shell (to convert int to float ...): stackoverflow.com/questions/8385627/… – Victoria Stuart Apr 25 '19 at 19:22
212

Those variables are shell variables. To expand them as parameters to another program (ie expr), you need to use the $ prefix:

expr $x / $y

The reason it complained is because it thought you were trying to operate on alphabetic characters (ie non-integer)

If you are using the Bash shell, you can achieve the same result using expression syntax:

echo $((x / y))

Or:

z=$((x / y))
echo $z
2
  • 1
    You can find out a lot by reading through the man-page for bash. Type man bash at the prompt (q to exit) – paddy Aug 7 '13 at 3:07
  • 71
    It has to be noted somewhere on this page that most (if not all) GNU/Linux shells only perform integer operations. – Skippy le Grand Gourou Sep 19 '14 at 12:47
40

I believe it was already mentioned in other threads:

calc(){ awk "BEGIN { print "$*" }"; }

then you can simply type :

calc 7.5/3.2
  2.34375

In your case it will be:

x=20; y=3;
calc $x/$y

or if you prefer, add this as a separate script and make it available in $PATH so you will always have it in your local shell:

#!/bin/bash
calc(){ awk "BEGIN { print $* }"; }
1
  • 6
    You may also use echo '1 / 3' | bc -l – Eugene Oct 17 '17 at 11:28
20

Why not use let; I find it much easier. Here's an example you may find useful:

start=`date +%s`
# ... do something that takes a while ...
sleep 71

end=`date +%s`
let deltatime=end-start
let hours=deltatime/3600
let minutes=(deltatime/60)%60
let seconds=deltatime%60
printf "Time spent: %d:%02d:%02d\n" $hours $minutes $seconds

Another simple example - calculate number of days since 1970:

let days=$(date +%s)/86400
0
15

Referencing Bash Variables Requires Parameter Expansion

The default shell on most Linux distributions is Bash. In Bash, variables must use a dollar sign prefix for parameter expansion. For example:

x=20
y=5
expr $x / $y

Of course, Bash also has arithmetic operators and a special arithmetic expansion syntax, so there's no need to invoke the expr binary as a separate process. You can let the shell do all the work like this:

x=20; y=5
echo $((x / y))
6
  • 1
    See Arithmetic Expansion and Shell Arithmetic in the Bash Reference Manual for all the gory details. – Todd A. Jacobs Aug 7 '13 at 3:26
  • 1
    This has nothing to do with dereferencing but interpolating and expr is discouraged in 2013. – Gilles Quenot Aug 7 '13 at 4:15
  • @sputnick You are clearly confused. Please feel free to consult a dictionary. See dereference and interpolate. – Todd A. Jacobs Aug 7 '13 at 4:25
  • 1
    A better word is expanding, but not dereferencing. dereferencing is used when we use pointers, that's not the case here, that's just simple variables. – Gilles Quenot Aug 7 '13 at 4:40
  • 1
    @Prashant: tldp is not known to be a good reference in the bash world. – Gilles Quenot Aug 7 '13 at 4:44
2

To get the numbers after decimal point, you can do this:-

read num1 num2
div=`echo $num1 / $num2 | bc -l`
echo $div
1

let's suppose

x=50
y=5

then

z=$((x/y))

this will work properly . But if you want to use / operator in case statements than it can't resolve it. enter code here In that case use simple strings like div or devide or something else. See the code

1
  • This is wrong. / works fine as a shell-case label. What doesn't work is to use * for multiply without quoting it, which might be what you actually did; that causes it to effectively override all following items in the case, which in your example is 'devide' and 'modulo' – dave_thompson_085 Apr 25 '20 at 6:11

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.