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I'm starting to learn about writing scripts for the bash terminal, but I can't work out how to get the comparisons to work properly. I'm sure this is very basic to many of you I just can't seem to find the answer to my question anywhere (or at least I'm not totally sure what to search for). The script I'm using is:

echo "enter two numbers";

read a b;

echo "a=$a";
echo "b=$b";

if [ $a \> $b ];

then 

echo "a is greater than b";

else 

echo "b is greater than a";

fi;

The problem I have is that it compares the number from the first digit on, i.e. 9 is bigger than 10000, but 1 is greater than 09. How can I convert the numbers into a type to do a true comparison? I realise that this is probably irritatingly simple, but any help would be greatly appreciated!

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Basic reading: BashFAQ –  Édouard Lopez Sep 7 '13 at 0:51
    
BTW, in bash a semi-colon is a statement separator, not a statement terminator, which is a new-line. So if you only have one statement on a line then the ; at end-of-line are superfluous. Not doing any harm, just a waste of keystrokes (unless you enjoy typing semi-colons). –  cdarke Sep 15 '13 at 21:37
    
To force numbers with leading zeros into decimals: 10#$number so number=09; echo "$((10#$number))" will output 9 while echo $((number)) will produce a "value too great for base" error. –  Dennis Williamson Dec 4 '13 at 17:36

4 Answers 4

up vote 56 down vote accepted

In bash, you should do your check in arithmetic context:

if (( a > b )); then
    ...
fi

For POSIX shells that don't support (()), you can use -lt and -gt.

if [ "$a" -gt "$b" ]; then
    ...
fi

You can get a full list of comparison operators with help test.

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1  
As said by @jordanm "$a" -gt "$b" is the right answer. Here is a good list of test operator: Test Constructs. –  Jeffery Thomas Sep 7 '13 at 0:51
    
@Aleks-DanielJakimenko I agree that teaching wrong stuff is wrong, but there is nothing wrong about using the $. Not doing so just saves typing two characters. It's functionally equivalent. –  jordanm Sep 7 '13 at 0:52
    
That is definitely working but I'm still getting "((: 09: value too great for base (error token is "09")" if I compare 1 and 09 but not 01 and 09 which is odd, but that has basically solved my problem so thanks! –  advert2013 Sep 7 '13 at 1:02
    
@advert2013 you shouldn't prefix numbers with zeros. zero-prefixed numbers are octal in bash –  Aleks-Daniel Jakimenko Sep 7 '13 at 1:03
1  
Thank you so much for the help test advice.. I've always wondered where to find that info but wasn't sure what to look for. –  aggregate1166877 Nov 25 '14 at 13:41

There is also one nice thing some people might not know about:

echo $(( a < b ? a : b ))

This code will print the smallest number out of a and b

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1  
That's not true. It would also print b if a == b. –  konsolebox Sep 7 '13 at 1:13
8  
@konsolebox is it just me, or the smallest number out of 5 and 5 is 5? –  Aleks-Daniel Jakimenko Sep 7 '13 at 1:14
2  
Your statement is ambiguous. Even applying on a command like this won't do: echo "The smaller number is $(( a < b ? a : b ))." –  konsolebox Sep 7 '13 at 1:16

In bash I prefer this as it address itself more as a conditional operation unlike (( )) which is more of arithmetic.

[[ N -gt M ]]

Unless I do complex stuffs like

(( (N + 1) > M ))

But everyone just has their own preferences. Sad thing is that some people impose their unofficial standards.

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This code can also compare floats. It is using awk (it is not pure bash), however this shouldn't be a problem, as awk is a standard POSIX command that is most likely shipped by default with your operating system.

$ awk 'BEGIN {return_code=(-1.2345 == -1.2345) ? 0 : 1; exit} END {exit return_code}'
$ echo $?
0
$ awk 'BEGIN {return_code=(-1.2345 >= -1.2345) ? 0 : 1; exit} END {exit return_code}'
$ echo $?
0
$ awk 'BEGIN {return_code=(-1.2345 < -1.2345) ? 0 : 1; exit} END {exit return_code}'
$ echo $?
1
$ awk 'BEGIN {return_code=(-1.2345 < 2) ? 0 : 1; exit} END {exit return_code}'
$ echo $?
0
$ awk 'BEGIN {return_code=(-1.2345 > 2) ? 0 : 1; exit} END {exit return_code}'
$ echo $?

To make it shorter for use, use this function:

compare_nums()
{
   # Function to compare two numbers (float or integers) by using awk.
   # The function will not print anything, but it will return 0 (if the comparison is true) or 1
   # (if the comparison is false) exit codes, so it can be used directly in shell one liners.
   #############
   ### Usage ###
   ### Note that you have to enclose the comparison operator in quotes.
   #############
   # compare_nums 1 ">" 2 # returns false
   # compare_nums 1.23 "<=" 2 # returns true
   # compare_nums -1.238 "<=" -2 # returns false
   #############################################
   num1=$1
   op=$2
   num2=$3
   E_BADARGS=65

   # Make sure that the provided numbers are actually numbers.
   if ! [[ $num1 =~ ^-?[0-9]+([.][0-9]+)?$ ]]; then >&2 echo "$num1 is not a number"; return $E_BADARGS; fi
   if ! [[ $num2 =~ ^-?[0-9]+([.][0-9]+)?$ ]]; then >&2 echo "$num2 is not a number"; return $E_BADARGS; fi

   # If you want to print the exit code as well (instead of only returning it), uncomment
   # the awk line below and comment the uncommented one which is two lines below.
   #awk 'BEGIN {print return_code=('$num1' '$op' '$num2') ? 0 : 1; exit} END {exit return_code}'
   awk 'BEGIN {return_code=('$num1' '$op' '$num2') ? 0 : 1; exit} END {exit return_code}'
   return_code=$?
   return $return_code
}

$ compare_nums -1.2345 ">=" -1.2345 && echo true || echo false
true
$ compare_nums -1.2345 ">=" 23 && echo true || echo false
false
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