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Say I had the following string:

var str = '(1 + foo + 3) / bar';

And I want to replace all strings just with the letter 'x'. I tried:

str = str.replace(/\w/g, 'x');

This results in:

(x + xxx + x) / xxx

Instead, I would like the result to be:

(1 + x + 3) / x

How would I do this? How would I find just the words that don't have digits and replace the word to a single letter?

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As others mentionned, use /a-zA-Z/ instead, since \w contains numbers : w3schools.com/jsref/jsref_regexp_wordchar.asp –  billy Sep 20 '12 at 3:28

5 Answers 5

up vote 3 down vote accepted

Why not just use [a-z]+ instead of \w? (Make sure to add the case-insensetive flag, or use [a-zA-Z] instead)

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Use:

str = str.replace(/[a-z]+/ig, 'x');
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You can try this regex:

str = str.replace(/[a-z]+/ig, 'x');

[a-z] - To indicate that you are looking for any letter.

+ To indicate that you are looking for a combination (xxx).

i To indicate that the text match can be case insensitive.

g - to indicate you are looking for all matches across the string.

or

you can use

   [a-zA-Z]

it will look for small letters a-z and capital letters A-Z. This is for use without the case modifier.

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str = str.replace(/\b[a-z]+\b/ig, 'x');

The \b matches a word boundary. That way 'foo2' won't turn into 'x'. As others mentioned \w includes numbers, but ALSO the underscore, so you won't want to use that. The i modifier does case insensitive matching (so that you can read a little easier).

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Try using [a-zA-Z] instead. \w is equivalent to [a-zA-Z0-9_].

str = str.replace(/[a-zA-Z]+/g, 'x');
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1  
Actually, \w is [a-zA-Z0-9_] –  FrankieTheKneeMan Sep 20 '12 at 4:25

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