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I got a lot of files whose names are like this:

tmp1.csv
tmp32.csv
tmp9.csv
tmp76.csv
...

They are in the same dir, and I want to extract the numbers in the file name. How can I do that in bash?

PS

I tried grep, but can't make it. Also I tried ${filename##[a-z]}. Are they the right way to go?

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5 Answers 5

up vote 3 down vote accepted
for f in *.csv; do echo $f | egrep -o "[0-9]+" ; done

If you have other csv file with digits in their filenames use:

for f in *.csv; do echo $f | sed -re 's/^tmp([0-9]+)\.csv$/\1/' ; done
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This is the right way to do it. –  lukecampbell May 3 '12 at 13:17
    
@lukecampbell I disagree that this is canonically correct -- there's no need for grep when bash can do matching internally. Parameter expansion, regexp matching -- it's all built-in, no subprocesses needed. Nothing wrong with this answer, but it's not the only Right Way. –  Charles Duffy May 3 '12 at 13:20
1  
...actually, I take that back -- there's plenty wrong with this answer; starting a new echo | grep pipeline per-file is evil. –  Charles Duffy May 3 '12 at 13:21
3  
**** CORRECTION **** : This is A correct way to do it. –  lukecampbell May 3 '12 at 13:28
2  
@codaddict maybe it's that I've spent too much time working on servers hosting maildirs with tens of thousands of files in a directory, but I'm accustomed to that kind of thing mattering. –  Charles Duffy May 3 '12 at 13:39

Easy peasy, using no subprocesses or other tools external to bash itself:

for f in *[0-9]*; do
  if [[ $f =~ [0-9]+ ]] ; then
    echo "$BASH_REMATCH"
  fi
done
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ls |grep -o "[0-9]\+"

Example:

$ ls *.csv
3tmp44.csv  newdata_write.csv  tmp1.csv  tmp2.csv

$ ls *.csv |grep -o "[0-9]\+"
3
44
1
2

Edit:

From grep man page:

Basic vs Extended Regular Expressions

   In basic regular expressions the meta-characters ?, +, {, |, (, and )  lose  their  special  meaning;  instead  use  the  backslashed
   versions \?, \+, \{, \|, \(, and \).

That is why you need to use \+

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2 questions. first, what do you mean by only get you the first number? second, why escape +? –  Alcott May 3 '12 at 13:24
    
@Alcott the escape for the + is necessary in Basic RE syntax (as opposed to ERE syntax, as enabled by egrep or grep -E rather than traditional grep). –  Charles Duffy May 3 '12 at 13:26
    
Sorry, I was wrong, it returns every number. –  F.C. May 3 '12 at 13:27
    
@CharlesDuffy, yes, I maned, but I can't seem to understand what is ERE, and why I can't get the right answer with `grep -o "[0-9]+"? –  Alcott May 3 '12 at 13:29
    
@Alcott EREs are "extended regular expressions", which are what you're probably used to (basically every modern language or tool uses EREs or PCREs by default rather than old-style Basic REs). In a basic RE, an unquoted + matches a literal + character, rather than modifying what comes before it. See man 7 regex. –  Charles Duffy May 3 '12 at 13:30

I would probably use a couple of invocations of cut:

$ ls -1 *.csv | cut -dp -f 2 | cut -d. -f1

This pipe does:

  1. List all files matching the *.csv pattern, one per line
  2. Use the letter 'p' as the delimiter, and cut out the second field on each line. This transforms e.g. tmp4711.csv into 4711.csv.
  3. Use the letter '.' as the delimiter, and cut out the first field on each line. This transforms 4711.csv into just 4711, leaving the number isolated and we're done.
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Fragile, particularly in that behavior is undefined with files not matching the tmp###.csv pattern. –  Charles Duffy May 3 '12 at 13:37
    
I agree; if you're going to cut -dp, you should at least ls -1 tmp[0-9]*.csv to mitigate some potential errors. –  ghoti Jul 18 '12 at 14:05
find . -maxdepth 1 -type f -name 'tmp[0-9]*.csv' | sed 's/tmp\([0-9]\+\).csv/\1/'
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Awfully fragile, given that it simply prints any other csv file's name unmodified. –  Charles Duffy May 3 '12 at 13:36
    
@CharlesDuffy Duly noted. Updated my answer. Thanks. –  Tim Pote May 3 '12 at 13:39

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