38

I've got a shell script outputting data like this:

1234567890  *
1234567891  *

I need to remove JUST the last three characters " *". I know I can do it via

(whatever) | sed 's/\(.*\).../\1/'

But I DON'T want to use sed for speed purposes. It will always be the same last 3 characters.

Any quick way of cleaning up the output?

  • 1
    @RubiCon, you're starting your question with an incorrect assumption (that sed will slow you down). – paxdiablo Jul 24 '10 at 4:47
  • 1
    pax - i believe that regular expressions take longer than simple operations on character strings. I dont think I'm wrong, but feel free to show otherwise... – RubiCon10 Jul 24 '10 at 4:54
  • 1
    Ah, a challenge. I love challenges :-) See my update. Short answer. Complex REs (with lookaheads and trackbacks and all that sort of stuff) are slower than dedicated code. But yours is not a complex RE. The compiled parser will be pretty fast even compared to dedicated code. Certainly the time difference will not be relevant for something happening once an hour (whether it takes 0.4 seconds or 0.8 seconds should not be a concern). – paxdiablo Jul 24 '10 at 5:13
  • Can you say anything else about the data? (e.g. will it always be 13 characters per line?) Also what platform will you be using? – Zac Thompson Jul 24 '10 at 5:41
  • 6
    @RubiCon10 it's kind of hard to accept your assertion that sed will somehow not be fast enough ... you've already stated that the output is coming from a shell script. It's virtually impossible for sed to be the bottleneck in such a pipeline! In other words, if speed is such a concern then you might get more benefit from focusing on the rest of your code. – Zac Thompson Jul 24 '10 at 5:57

12 Answers 12

12

Assuming all data is formatted like your example, use 'cut' to get the first column only.

cat $file | cut -d ' ' -f 1  

or to get the first 10 chars.

cat $file | cut -c 1-10
  • @Zac: You're right. I saw that his answer looked clunky, but didn't read the comment underneath. He didn't mention selecting only the first 10 chars per line though. – Larry Wang Jul 24 '10 at 6:05
  • 41
    Useless use of cat. Save a process today and run cut -c 1-10 $file. – Jens Aug 23 '11 at 19:51
  • 1
    Still slower than sed on mine. – lip May 27 '15 at 21:25
162

Here's an old-fashioned unix trick for removing the last 3 characters from a line that makes no use of sed OR awk...

> echo 987654321 | rev | cut -c 4- | rev

987654

Unlike the earlier example using 'cut', this does not require knowledge of the line length.

  • 22
    If I could, I'd buy you beer and send it your way. – James Boutcher Oct 30 '13 at 21:44
  • 6
    This must be the accepted answer :) – Arunprasad Rajkumar Jul 31 '14 at 7:44
  • Technically, the request was for an answer without sed, perl or etc. I took that to mean any external tool. – paxdiablo Mar 1 '16 at 2:55
  • OK this is pure genius – Merc May 15 '16 at 6:23
  • 1
    old school as hell – andras Sep 9 '16 at 14:10
30

I can guarantee you that bash alone won't be any faster than sed for this task. Starting up external processes in bash is a generally bad idea but only if you do it a lot.

So, if you're starting a sed process for each line of your input, I'd be concerned. But you're not. You only need to start one sed which will do all the work for you.

You may however find that the following sed will be a bit faster than your version:

(whatever) | sed 's/...$//'

All this does is remove the last three characters on each line, rather than substituting the whole line with a shorter version of itself. Now maybe more modern RE engines can optimise your command but why take the risk.

To be honest, about the only way I can think of that would be faster would be to hand-craft your own C-based filter program. And the only reason that may be faster than sed is because you can take advantage of the extra knowledge you have on your processing needs (sed has to allow for generalised procession so may be slower because of that).

Don't forget the optimisation mantra: "Measure, don't guess!"


If you really want to do this one line at a time in bash (and I still maintain that it's a bad idea), you can use:

pax> line=123456789abc
pax> line2=${line%%???}
pax> echo ${line2}
123456789
pax> _

You may also want to investigate whether you actually need a speed improvement. If you process the lines as one big chunk, you'll see that sed is plenty fast. Type in the following:

#!/usr/bin/bash

echo This is a pretty chunky line with three bad characters at the end.XXX >qq1
for i in 4 16 64 256 1024 4096 16384 65536 ; do
    cat qq1 qq1 >qq2
    cat qq2 qq2 >qq1
done

head -20000l qq1 >qq2
wc -l qq2

date
time sed 's/...$//' qq2 >qq1
date
head -3l qq1

and run it. Here's the output on my (not very fast at all) R40 laptop:

pax> ./chk.sh
20000 qq2
Sat Jul 24 13:09:15 WAST 2010

real    0m0.851s
user    0m0.781s
sys     0m0.050s
Sat Jul 24 13:09:16 WAST 2010
This is a pretty chunky line with three bad characters at the end.
This is a pretty chunky line with three bad characters at the end.
This is a pretty chunky line with three bad characters at the end.

That's 20,000 lines in under a second, pretty good for something that's only done every hour.

  • ... actually yes, this is for every line of input say ~200 lines in one case and ~20000 in another... run every 5 mins and 60 mins for the second... – RubiCon10 Jul 24 '10 at 4:49
  • 1
    Why are you doing it for every line? If you want to process 200/20K lines, do it once (with one sed). That sed command will breeze through 20K lines in under a second on my crappy old IBM ThinkPad R40. – paxdiablo Jul 24 '10 at 4:51
  • 1
    Wow! Nice script! for i in {1..20000}; do echo "line of text...XXX"; done | time -p sed 's/...$//' >/dev/null - eliminating cat and head and at least one file. Even if you added back in some of the diagnostic output, "for i in 4 16 64 256 1024 4096 16384 65536" really? This is the same: for i in x x x x x x x x – Dennis Williamson Jul 24 '10 at 8:41
  • I really don't know why people concentrate on throwaway parts of scripts. The bit being questioned is DEBUG code for setting up test data solely for measuring the speed at the request of the OP, and it doesn't matter one bit whether it's done one way or another. The important bit is the single line containing the sed command! – paxdiablo Jul 24 '10 at 11:01
  • Hi pax - thanks for your input - I did rework the code to generate all the lines at once... and then did speed measurements as you suggested!! And I found that the cut -d statement was faster than sed in this case (it took half the time). – RubiCon10 Jul 24 '10 at 12:30
11
$ x="can_haz"
$ echo "${x%???}"
can_
  • This answer is super simple. Unless it is slower than cut, sed, etc., it seems best to me. – Micah Smith Aug 18 '14 at 18:04
  • Question: What is the difference between using one '%' and two '%%' ?, what is '%' and '?' for? – Zloy Smiertniy Apr 14 '15 at 14:44
5

Both awk and sed are plenty fast, but if you think it matters feel free to use one of the following:

If the characters that you want to delete are always at the end of the string

echo '1234567890  *' | tr -d ' *'

If they can appear anywhere within the string and you only want to delete those at the end

echo '1234567890  *' | rev | cut -c 4- | rev

The man pages of all the commands will explain what's going on.

I think you should use sed, though.

  • Hi majhool - see comment above to paxdiablo - will tr be faster or the rev/cut/rev combination? – RubiCon10 Jul 24 '10 at 4:50
  • 1
    tr. You could also use the venerable cut -d ' ' -f 1 if the tr line will work for you. Though again, I'd recommend sed, since this will break if you end up with more spaces than you expect. – majhool Jul 24 '10 at 4:52
2

Note: This answer is somewhat intended to be a joke, but it actually does work...

#!/bin/bash
outfile="/tmp/$RANDOM"
cfile="$outfile.c"
echo '#include <stdio.h>
int main(void){int e=1;char c;while((c=getc(stdin))!=-1){if(c==10)e=1;if(c==32)e=0;if(e)putc(c,stdout);}}' >> "$cfile"
gcc -o "$outfile" "$cfile"
rm "$cfile"
cat somedata.txt | "$outfile"
rm "$outfile"

You can replace cat somedata.txt with a different command.

  • 1
    This actually would be quite fast if it didn't compile it each time, I believe. – icktoofay Jul 24 '10 at 5:07
  • Replace gcc with tcc (tinyc) and I'm pretty sure the 'compiling' overhead will be trivial. Especially if you never write a binary but have tcc run it immediately. – R.. Jul 29 '10 at 20:19
  • How about a script that uploads your text to a webserver, then downloads it again using HTTP's Range: bytes=0-... header. ;-) – Beejor Nov 8 '18 at 22:47
2

You could try

(whatever) | while read line; do echo $line | head --bytes -3; done;

head itself should be faster than sed or cut because there's no regex or delimeter matching, but invoking a for every line separately would probably outweigh that.

1

If the script always outputs lines of 10 characters followed by 3 extra (in other words, you just want the first 10 characters), you can use

script | cut -c 1-10

If it outputs an uncertain number of non-space characters, followed by a space and then 2 other extra characters (in other words, you just want the first field), you can use

script | cut -d ' ' -f 1

... as in majhool's comment earlier. Depending on your platform, you may also have colrm, which, again, would work if the lines are a fixed length:

script | colrm 11
1

Another answer relies on the third-to-last character being a space. This will work with (almost) any character in that position and does it "WITHOUT using sed, or perl, etc.":

while read -r line
do
    echo ${line:0:${#line}-3}
done

If your lines are fixed length change the echo to:

echo ${line:0:9}

or

printf "%.10s\n" "$line"

but each of these is definitely much slower than sed.

1

No need for cut or magic, in bash you can cut a string like so:

  ORGSTRING="123456"
  CUTSTRING=${ORGSTRING:0:-3}
  echo "The original string: $ORGSTRING"
  echo "The new, shorter and faster string: $CUTSTRING"

See http://tldp.org/LDP/abs/html/string-manipulation.html

0

You can use awk just to print the first 'field' if there won't be any spaces (or if there will be, change the separator'.

I put the fields you had above into a file and did this

awk '{ print $1 }' < test.txt 
1234567890
1234567891

I don't know if that's any better.

  • Thanks sdeer - but dont want to use awk either... really need the speed on this one... – RubiCon10 Jul 24 '10 at 4:34
0

what do you mean don't want to use sed/awk for speed purposes? sed/awk are faster than the shell's while read loop for processing files.

$ sed 's/[ \t]*\*$//' file
1234567890
1234567891

$ sed 's/..\*$//' file
1234567890
1234567891

with bash shell

while read -r a b
do
 echo $a
done <file

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