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I am searching a regex to find next word after "dog" for example, and delete it

"123 dog rabbit cat".replace(myregex, "");
"123 dog cat"

Thanks

edit: but

"123 dog <b> ok</b> cat".replace(myregex, "");

should not do anything

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3 Answers

up vote 2 down vote accepted

Simplest way to do that:

"123 dog rabbit cat".replace(/(dog) \w+/, '$1')
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Expressions posted so far will fail on e.g. 123 dog <more spaces> rabbit cat, so I think the \s+\S+ or \s+\w+ would be more accurate:

console.log("123 dog     rabbit! cat".replace(/(dog)\s+\S+/, '$1'))  // 123 dog cat
console.log("123 dog     rabbit! cat".replace(/(dog)\s+\w+/, '$1'))  // 123 dog! cat

I added ! to your string to show the difference between \S and \w.

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good I prefer WTK's answer though because I need to exclude other patterns: "123 dog <span> cat" should not remove anuthing after dog for example –  user1125394 Feb 24 '12 at 13:03
    
@ca11111, I as wrote above, that pattern will fail if you happen to have two spaces after "dog" –  thg435 Feb 24 '12 at 13:41
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You could use:

"123 dog rabbit cat".replace(/dog (.*?)( |$)/, "dog ");
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beat me to it :) –  WTK Feb 24 '12 at 12:13
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It could help to change the .* to .*? so that it is non-greedy. For example, "123 dog rabbit cat owls" would turn into "123 dog owls" with the .*, whereas it would be "123 dog cat owls" with the '.*?'. You may also want to replace the trailing ' ' with ( |$) in case the word after "dog" is at the end of the string, e.g. "123 dog cat". –  mathematical.coffee Feb 24 '12 at 12:15
    
@mathematical.coffee both good points, I'll update. –  jabclab Feb 24 '12 at 12:16
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