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i need to replace a href using preg_replace with seo link , like

<a href="blabla" class="bla" style="bla">bla</a>

with

<a href="blabla.html" class="bla" style="bla">bla</a>

i need to get 2 vars first one to second one

i made this regex

preg_replace('#<a href="(.*?)" (.*?)>(.*?)</a>#',
             '<a href="$1.html">$3</a>'
               );

its work but if their is nothing after href="" tag like style or class the regex not work so the A must have style and class or somthing else to work

is their any way to ignore the class or style tag after href="" or any way to use this regext

preg_replace('#<a href="(.*?)"(>.*?)</a>#',
             '<a href="$1.html">$2</a>'
               );

or somthing like that to make it work as 1$ and 2$ only without 3$ ? i mean let the second one get every thing after href"" to </a> !

share|improve this question
    
Why don't you ignore them in your regex, i.e, just match the href part. –  Tamer Shlash Apr 19 '12 at 13:43
    
Also you should go to your previous questions and accept the answers you find best. –  Tamer Shlash Apr 19 '12 at 13:46

1 Answer 1

Why not just leave it as it is and use mod_rewrite?

RewriteEngine on
RewriteCond %{REQUEST_FILENAME} !\.html
RewriteCond %{REQUEST_FILENAME}.html -f
RewriteRule ^(.*)$ $1.html

Trying to parse HTML with regex may result in the pony he comes.

share|improve this answer
    
He is not necessarily working for a website. –  Tamer Shlash Apr 19 '12 at 13:45
    
my issue not with mod_write its with this regex only if someone help me to catch every thing after href="" to </a> i well be very much appreciated –  Jack K Fouani Apr 19 '12 at 13:46

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