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I am looking for a regular expression for replacing words written like "w o r d", "o v e r f low" to "word" and "overflow", respectively, all over the input string (including at the beginning and the end).

I'm using PHP & preg_replace. And need to detect those words before splitting string by space and further filtering. Any combinations for the time gives no due result.

Thanks in advance!

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i guess it has to ignore the spaces between words? tricky –  Dale Nov 23 '12 at 10:16
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how do you handle this for example : it is a code ==> it isacode, or u are dealing only words, no sentense –  Talha Ahmed Khan Nov 23 '12 at 10:16
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You need a dictionary of valid words and a language more powerful than regex. There will also be some ambiguous cases. Should a b r o a d become abroad or a broad? –  Mark Byers Nov 23 '12 at 10:17
    

2 Answers 2

this one is hard because: what is a word? what is a part of a word?

What is different between in cr e di ble and it is a dog ?

For that to work with regex you need to set rules, for example:

  • How many whitespaces can be between words, and between word parts?
  • How long are the parts a word can be divided in?
  • Are ALL the words in the string divided in parts?

If you can't be sure of any of those rules then you can't write a regex that will solve the problem. Comparing the words to a dictionary to know if they are valid or not should prove more useful.

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Yes, "in cr e di ble" and "it is a dog" is different. I'm checking, if a symbol(limited by spaces) not a "a|&" and there are more than one symbol previously, and there are more than 1 symbol nextly. And then remove spaces around it or something else... –  Chadiso Nov 23 '12 at 10:43
$ string = "w o r d", "o v e r f low"
$ echo 'word w o r d' | sed '/\([^ ][^ ]\)[ ]/s::\1\n:g ' | sed '/[ ]\([^ ][^ ]\)/s::\n\1:g' | sed ':r /\([^ ]\)[ ]/s::\1: ; tr' | sed 'H; ${x;/\n/s:: :g;sc[ ]cc;p};d'
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Ok, but what if: echo "trololo w o r d lolo", "trolo o v e r f low lololo" | sed ':r /([^ ]) ([^ ])/s::\1\2: ; tr' ? –  Chadiso Nov 23 '12 at 10:52
    
You forgot to insert the backslash before the parenthesis. –  alinsoar Nov 23 '12 at 11:03
    
I wrote \([^ ]\) , not /([^ ]) –  alinsoar Nov 23 '12 at 11:04
    
Still the same. If string will contain a few words it will merge them all: # echo 'word w o r d' | sed ':r /([^ ]) ([^ ])/s::\1\2: ; tr' wordword –  Chadiso Nov 23 '12 at 12:17
    
By the way, an onsite editor trims slashes, not me) –  Chadiso Nov 23 '12 at 12:20

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