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I'm writing a bash script which analyses a html file and I want to get the content of each single <tr>...</tr>. So my command looks like:

$ tr -d \\012 < price.html | grep -oE '<tr>.*?</tr>'

But it seems that grep gives me the result of:

$ tr -d \\012 < price.html | grep -oE '<tr>.*</tr>'

How can I make .* non-greedy?

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The obligatory: You can't parse html with regular expressions –  glenn jackman Oct 1 '13 at 21:06

4 Answers 4

up vote 4 down vote accepted

If you have GNU Grep you can use -P to make the match non-greedy:

$ tr -d \\012 < price.html | grep -Po '<tr>.*?</tr>'

The -P option enables Perl Compliant Regular Expression (PCRE) which is needed for non-greedy matching with ? as Basic Regular Expression (BRE) and Extended Regular Expression (ERE) do not support it.

If you are using -P you could also use look arounds to avoid printing the tags in the match like so:

$ tr -d \\012 < price.html | grep -Po '(?<=<tr>).*?(?=</tr>)'

If you don't have GNU grep and the HTML is well formed you could just do:

$ tr -d \\012 < price.html | grep -o '<tr>[^<]*</tr>'
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3  
The last example (using "[^<]*" is unlikely to work since there will inevitably be "td" or "th" tags within "tr". –  glenn jackman Oct 1 '13 at 21:05
    
@glennjackman good point, I will leave it in the answers however as the general principle might be useful to on lookers. –  iiSeymour Oct 1 '13 at 21:10

.*? is a Perl regular expression. Change your grep to

grep -oP '<tr>.*?</tr>'
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1  
Or, if he only wants the contents of the tr tag: grep -oP '(?<=<tr>).*?(?=</tr>)' -- using look-arounds to omit the actual tags –  glenn jackman Oct 1 '13 at 20:42

Try perl-style-regexp

$ grep -Po '<tr>.*?</tr>' input
<tr>stuff</tr>
<tr>more stuff</tr>
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Non-greedy matching is not part of the Extended Regular Expression syntax supported by grep -E. Use grep -P instead if you have that, or switch to Perl / Python / Ruby / what have you. (Oh, and pcregrep.)

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