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I've got a file called 'res' that's 29374 characters of http data in a one-line string. Inside it, there are several http links, but I only want to be display those that end in '/idNNNNNNNNN' where N is a digit. In fact I'm only interested in the string 'idNNNNNNNNN'. I've tried with:

cat res | sed -n '0,/.*\(id[0-9]*\).*/s//\1/p'

but I get the whole file. Do you know a way to do it?

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4 Answers 4

up vote 2 down vote accepted
perl -n -E 'say $1 while m!/id(\d{9})!g' input-file

should work. That assumes exactly 9 digits; that's the {9} in the above. You can match 8 or 9 ({8,9}), 8 or more ({8,}), up to 9 ({0,9}), etc.

Example of this working:

$ echo -n 'junk jumk http://foo/id231313 junk lalala http://bar/id23123 asda' | perl -n -E 'say $1 while m!id(\d{0,9})!g'
231313
23123

That's with the 0 to 9 variant, of course.

If you're stuck with a pre-5.10 perl, use -e instead of -E and print "$1\n" instead of say $1.

How it works

First is the two command-line arguments to Perl. -n tells Perl to read input from standard input or files given on the command line, line by line, setting $_ to each line. $_ is perl's default target for a lot of things, including regular expression matches. -E merely tells Perl that the next argument is a Perl one-liner, using the new language features (vs. -e which does not use the 5.10 extensions).

So, looking at the one liner: say means to print out some value, followed by a newline. $1 is the first regular expression capture (captures are made by parentheses in regular expressions). while is a looping construct, which you're probably familiar with. m is the match operator, the ! after it is the regular expression delimiter (normally, you see / here, but since the pattern contains / it's easier to use something else, so you don't have to escape the / as \/). /id(\d{9}) is the regular expression to match. Keep in mind that the delimiter is !, so the / is not special, it just matches a literal /. The parentheses form a capture group, so $1 will be the number. The ! is the delimiter, followed by g which means to match as many times as possible (as opposed to once). This is what makes it pick up all the URLs in the line, not just the first. As long as there is a match, the m operator will return a true value, so the loop will continue (and run that say $1, printing out the match).

Two-sed solution

I think this is one way to do this with only sed. Much more complicated!

echo 'junk jumk http://foo/id231313 junk lalala http://bar/id23123 asda' | \
    sed 's!http://!\nhttp://!g' | \
    sed 's!^.*/id\([0-9]*\).*$!\1!' 
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That's pretty cool! Two things: 1) I'm not very used to perl syntax, so could you please explain it? 2) Is it possible to do with awk-gawk-sed? –  Morphy Feb 24 '11 at 18:52
    
@Morphy: If you routinely do text processing like this, perl is the tool for the job. I'll add in an explanation as to how that works. Sed can definitely do it, but I'm not sure how (worst case, you could probably split the lines with one sed, then match with a second). –  derobert Feb 24 '11 at 18:54
    
Good work derobert. Thanks –  Morphy Feb 24 '11 at 19:05
    
@Morphy: I found you a sed-only solution, too. Much more complicated, but it appears to work. –  derobert Feb 24 '11 at 19:19
    
derobert, what if I need the whole http http://blah.com/../id23456723? –  Morphy Feb 24 '11 at 19:24
cat res | perl -ne 'chomp; print "$1\n" if m/\/(id\d*)/'
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That will display the entire line ("29374 chars http data one line string" from the question) –  derobert Feb 24 '11 at 18:46
    
Thanks, but I don't get anything –  Morphy Feb 24 '11 at 18:48
    
do you actually mean each of these lines have a html text with several links ?? –  Zimbabao Feb 24 '11 at 18:52
    
There is only one line in the file! –  Jonathan Leffler Feb 24 '11 at 18:56
    
Thanks Zimbabao it works but it displays only one occurence, where there're 6 –  Morphy Feb 24 '11 at 18:57

The trouble is that sed and grep and awk work on lines, and you've only got one line. So, you probably need to split things up so you have more than one line -- then you can make the normal tools work.

tr ':' '\012' < res |
sed -n 's%.*/\(id[0-9][0-9]*\).*%\1%p'

This takes advantage of URLs containing colons and maps colons to newlines with tr, then uses sed to pick up anything up to a slash, followed by id and one or more digits, followed by anything, and prints out the id and digit string (only). Since these only occur in URLs, they will only appear one per line and relatively near the start of the line too.

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Almost! That, returns: id257593647 id257593647 id257593647�</a></div></li><li><div class="res indent"><div><h3><a class="yschttl spt" href="http id257593647 id257593647 id257593647�</a></div></li><li><div class="res"><div><h3><a class="yschttl spt" href="http Anyway, thanks again and if you please, add a short explanation to this newbie ;) –  Morphy Feb 24 '11 at 19:01

Here's a solution using only one invocation of sed:

sed -n 's| |\n|g;/^http/{s|http://[^/]*/id\([0-9]*\)|\1|;P};D' inputfile

Explanation:

  • s| |\n|g; - Divide and conquer
  • /^http/{ - If pattern space begins with "http"
    • s|http://[^/]*/id\([0-9]*\)|\1|; - capture the id
    • P - Print the string preceding the first newline
  • }; - end if
  • D - Delete the string preceding the first newline regardless of whether it contains "http"

Edit:

This version uses the same technique but is more selective.

sed -n 's|http://|\n&|g;/^\n*http/{s|\n*http://[^/]*/id\([0-9]*\)|\1\n|;P};D' inputfile
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Sorry Dennis, but that returns http-equiv="content-type" –  Morphy Feb 25 '11 at 2:38
    
@Morphy: See my edit. –  Dennis Williamson Feb 25 '11 at 3:53

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