472

I have this bash script and I had a problem in line 16. How can I take the previous result of line 15 and add it to the variable in line 16?

#!/bin/bash

num=0
metab=0

for ((i=1; i<=2; i++)); do      
    for j in `ls output-$i-*`; do
        echo "$j"

        metab=$(cat $j|grep EndBuffer|awk '{sum+=$2} END { print sum/120}') (line15)
        num= $num + $metab   (line16)
    done
    echo "$num"
 done
  • 2
    I think you will print a zero value even using following answer. There's a trick, e.g. process substition, to bring the final value of "inside num" to "outside num". – Scott Chu Feb 13 '15 at 6:45

10 Answers 10

830

For integers:

  • Use arithmetic expansion: $((EXPR))

    num=$((num1 + num2))
    num=$(($num1 + $num2))       # also works
    num=$((num1 + 2 + 3))        # ...
    num=$[num1+num2]             # old, deprecated arithmetic expression syntax
    
  • Using the external expr utility. Note that this is only needed for really old systems.

    num=`expr $num1 + $num2`     # whitespace for expr is important
    

For floating point:

Bash doesn't directly support this, but there's a couple of external tools you can use:

num=$(awk "BEGIN {print $num1+$num2; exit}")
num=$(python -c "print $num1+$num2")
num=$(perl -e "print $num1+$num2")
num=$(echo $num1 + $num2 | bc)   # whitespace for echo is important

You can also use scientific notation (e.g.: 2.5e+2)


Common pitfalls:

  • When setting a variable, you cannot have whitespace on either side of =, otherwise it will force the shell to interpret the first word as the name of the application to run (eg: num= or num)

    num= 1 num =2

  • bc and expr expect each number and operator as a separate argument, so whitespace is important. They cannot process arguments like 3+ +4.

    num=`expr $num1+ $num2`

  • 1
    In the first answer it prints me expr:non-numeric argument The second doesn't work.. – Nick Jun 14 '11 at 19:35
  • 1
    @Nick: Did you try this while variables named num1 and num2 existed and had integer values? – Sorpigal Jun 14 '11 at 20:20
  • 1
    Yew they are existed but the one variable is double.. is that a problem?? – Nick Jun 14 '11 at 20:35
  • 2
    Yeah, that's a problem :) Note: the $((..)) arithmetic evaluation is executed in bash. expr is executed as a separate process, so it's going to be a lot slower. use the latter one on systems where the arithemtic evaluation isn't supported (sh!=bash) – Karoly Horvath Jun 14 '11 at 21:52
  • 4
    Since $((…)) is standardized by POSIX, it should become increasingly rare that expr is necessary. – chepner Oct 28 '13 at 20:50
85

Use the $(( )) arithmetic expansion.

num=$(( $num + $metab ))

See http://tldp.org/LDP/abs/html/arithexp.html for more information.

  • 2
    Not working for CentOS and RedHat – Jayant Varshney Jun 30 '14 at 12:24
  • 1
    Strange. It does not work here when I try to compute 191.003 + 190. – Sigur Apr 7 '17 at 23:02
25

There are a thousand and one ways to do it. Here's one using dc:

dc <<<"$num1 $num2 + p"

But if that's too bash-y for you (or portability matters) you could say

echo $num1 $num2 + p | dc

But maybe you're one of those people who thinks RPN is icky and weird; don't worry! bc is here for you:

bc <<< "$num1 + $num2"
echo $num1 + $num2 | bc

That said, there are a some unrelated improvements you could be making to your script

#!/bin/bash

num=0
metab=0

for ((i=1; i<=2; i++)); do
    for j in output-$i-* ; do # for can glob directly, no need to ls
            echo "$j"

             # grep can read files, no need to use cat
            metab=$(grep EndBuffer "$j" | awk '{sum+=$2} END { print sum/120}')
            num=$(( $num + $metab ))
    done
    echo "$num"
done

EDIT:

As described in BASH FAQ 022, bash does not natively support floating point numbers. If you need to sum floating point numbers the use of an external tool (like bc or dc) is required.

In this case the solution would be

num=$(dc <<<"$num $metab + p")

To add accumulate possibly-floating-point numbers into num.

  • 1
    @Sorpigal Thankssss a lot.. Can i ask you something else..how can i print at the end not the num but the num/10 ?? – Nick Jun 14 '11 at 21:03
21

In bash,

 num=5
 x=6
 (( num += x ))
 echo $num   # ==> 11

Note that bash can only handle integer arithmetic, so if your awk command returns a fraction, then you'll want to redesign: here's your code rewritten a bit to do all math in awk.

num=0
for ((i=1; i<=2; i++)); do      
    for j in output-$i-*; do
        echo "$j"
        num=$(
           awk -v n="$num" '
               /EndBuffer/ {sum += $2}
               END {print n + (sum/120)}
           ' "$j"
        )
    done
    echo "$num"
done
16

I always forget the syntax so I come to google, but then I never find the one I'm familiar with :P. This is the cleanest to me and more true to what I'd expect in other languages.

i=0
((i++))

echo $i;
  • 1
    wish it worked with decimals and not just integers – geekzspot Nov 5 '15 at 6:35
15

I really like this method as well, less clutter:

count=$[count+1]
  • 1
    Why is this working, by the way? How do we call this? I can't find docs about these. – skyline75489 Jun 18 '15 at 12:27
  • 1
    wish it worked with decimals and not just integers – geekzspot Nov 5 '15 at 6:37
  • 4
    Less clutter, but deprecated. – Camille Goudeseune Oct 27 '16 at 21:16
9
 #!/bin/bash
read X
read Y
echo "$(($X+$Y))"
  • Works well in macOS. – Tmx Jan 17 at 17:50
7

You should declare metab as integer and then use arithmetic evaluation

declare -i metab num
...
num+=metab
...

For more information see https://www.gnu.org/software/bash/manual/html_node/Shell-Arithmetic.html#Shell-Arithmetic

6

Another portable POSIX compliant way to do in bash, which can be defined as a function in .bashrc for all the arithmetic operators of convenience.

addNumbers () {
    local IFS='+'
    printf "%s\n" "$(( $* ))"
}

and just call it in command-line as,

addNumbers 1 2 3 4 5 100
115

The idea is to use the Input-Field-Separator(IFS), a special variable in bash used for word splitting after expansion and to split lines into words. The function changes the value locally to use word-splitting character as the sum operator +.

Remember the IFS is changed locally and does NOT take effect on the default IFS behaviour outside the function scope. An excerpt from the man bash page,

The shell treats each character of IFS as a delimiter, and splits the results of the other expansions into words on these characters. If IFS is unset, or its value is exactly , the default, then sequences of , , and at the beginning and end of the results of the previous expansions are ignored, and any sequence of IFS characters not at the beginning or end serves to delimit words.

The "$(( $* ))" represents the list of arguments passed to be split by + and later the sum value is output using the printf function. The function can be extended to add scope for other arithmetic operations also.

1
#!/bin/bash

num=0
metab=0

for ((i=1; i<=2; i++)); do      
    for j in `ls output-$i-*`; do
        echo "$j"

        metab=$(cat $j|grep EndBuffer|awk '{sum+=$2} END { print sum/120}') (line15)
        let num=num+metab (line 16)
    done
    echo "$num"
done

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