8

I'm trying to get trim off trailing decimal zeroes off a floating point number, but no luck so far.

echo "3/2" | bc -l | sed s/0\{1,\}\$//
1.50000000000000000000

I was hoping to get 1.5 but somehow the trailing zeroes are not truncated. If instead of 0\{1,\} I explicitly write 0 or 000000 etc, it chops off the zeroes as entered, but obviously I need it to be dynamic.

What's wrong with 0\{1,\} ?

1
  • 1
    Presumably this is a test case, otherwise you could change the scale parameter in bc to reduce the number of decimal places.
    – Tom Fenech
    May 4, 2015 at 15:23

7 Answers 7

15
echo "3/2" | bc -l | sed '/\./ s/\.\{0,1\}0\{1,\}$//'
  • remove trailing 0 IF there is a decimal separator
  • remove the separator if there are only 0 after separator also (assuming there is at least a digit before like BC does)
3
  • Thanks! Yes, I didn't cover the exception yet to only remove zeroes after separator (I wouldn't want 3500 to be trimmed to 35) or removal of the separator itself if applicable. Wanted to wrap my head around getting the regex to work at all in the first place :) But great addition, thx!
    – RocketNuts
    May 6, 2015 at 9:19
  • Actually, I don't fully understand the first part of the sed parameter. Being a sed noob, I'm only familiar with sed using s/<searchpattern>/<replacepattern>/. Looking thru man sed, I understand the dot before the s is an 'address', which behaves as an extra filter, i.e. sed /<filter>/s/<search>/<replace>/ will only replace search with replace for input that also matches filter, is that correct?
    – RocketNuts
    May 6, 2015 at 9:34
  • /\./is a pattern filter on line that contain a dot in it (avoiding to remove trailing 0 on a multiple of 10 like 25000). Filter, activate following action (or group if a {} is used ) only when pattern (or address) of the filter is compliant. So yes, you are correct May 6, 2015 at 9:39
13

Why don't you just set the number of digits you want with scale?

$ echo "scale=1; 3/2" | bc -l 
1.5
$ echo "scale=2; 3/2" | bc -l 
1.50
$ echo "scale=5; 3/2" | bc -l 
1.50000

I recommend you to go through man bc, since it contains many interesting ways to present your result.

5
  • 1
    Thanks, I'll look into man bc as it's quite new to me. However in this particular case, I don't want a specific number of digits, but rather maximum precision and just ditch any unnecessary trailing zeroes.
    – RocketNuts
    May 4, 2015 at 15:42
  • 1
    Trailing zeros are necessary for maximum precision. 1.5000 is far more precise than 1.5 (which may be anything between 1.45 and 1.54.
    – chepner
    May 4, 2015 at 15:57
  • it does not reply to question but do the request behind . Let assume that in your reply in case of bc -l is just the sample generator (you still get my vote) May 5, 2015 at 9:17
  • @NeronLeVelu yep, I was going to the core of the problem instead of the sed problem the OP found in his workaround. However, to me the best way to control the format is by using printf, like Pedro Lobito's answer shows.
    – fedorqui
    May 5, 2015 at 9:20
  • @chepner I agree that in general 1.5000 is different (more precise) than 1.5, but in this particular case I want to get rid of remaining zeroes.
    – RocketNuts
    May 6, 2015 at 9:17
6

$ must not be escaped and quote sed pattern:

echo "3/2" | bc -l | sed 's/0\{1,\}$//'
1.5
1
2

@anubhava has the right reason for your failed command, but just use awk instead:

$ awk 'BEGIN{print 3/2}'
1.5
0

You can use printf for that:

printf "%.1f" $(bc -l <<< '3/2')
1.5
2
  • 1
    good one! I thought about using printf but failed to make it work, since I was using printf "%f" $(( 3/2 )) and $(( )) just does int arithmetic.
    – fedorqui
    May 5, 2015 at 9:15
  • 1
    That will round every result to 1 decimal place, not strip off trailing zeros as the OP wants.
    – Ed Morton
    May 5, 2015 at 15:14
0

One of the handy way to trim off trailing zeroes of a floating number is grep --only-matching option:

$ echo 1 + 0.1340000010202010000012301000000000 | bc -l | grep -o '.*[1-9]'
1.1340000010202010000012301

-o, --only-matching

Print only the matched (non-empty) parts of a matching line, with each such part on a separate output line.

0

Here's my take. It removes leading zeros, and then if there is a decimal anywhere in the number, it also removes trailing zeros. This expression also works for numbers preceded or followed by space characters if present.

sed -e "s/^\s*0*//" -e "/\./ s/0*\s*$//"

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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