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This is a sentence sanitizer.

function sanitize_sentence($string) {
    $pats = array(
    '/([.!?]\s{2}),/',      # Abc.  ,Def
    '/\.+(,)/',             # ......,
    '/(!|\?)\1+/',          # abc!!!!!!!!, abc?????????
    '/\s+(,)/',             # abc   , def
    '/([a-zA-Z])\1\1/');    # greeeeeeen
    $fixed = preg_replace($pats,'$1',$string); # apply pats
    $fixed = preg_replace('/(?:(?<=\s)|^)[^a-z0-9]+(?:(?=\s)|$)/i', '',$fixed); # bad chunks
    $fixed = preg_replace( '/([!?,.])(\S)/', '$1 $2', $fixed); # spaces after punctuation, if it doesn't exist already
    $fixed = preg_replace( '/[^a-zA-Z0-9!?.]+$/', '.', $fixed); # end of string must end in period
    $fixed = preg_replace('/,(?!\s)/',', ',$fixed); # spaces after commas
    return $fixed;
}

This is the test sentence:

hello [[[[[[]]]]]] friend.....? how are you [}}}}}}

It should return:

hello friend.....? how are you

But instead it is returning:

hello friend. .. .. ? how are you.

So there are 2 problems and I can't find a solution around them:

  1. the set of periods are being separated into ".. .. ." for some reason. They should remain as "....." next to the question mark.
  2. the end of the string must end in a period only and only if there is at least one of these characters anywhere in the string: !?,. (if at least one of those characters are not found in the string, that preg_replace should not be executed)

Examples for the second problem:

This sentence doesn't need an ending period because the mentioned characters are nowhere to be found

This other sentence, needs it! Why? Because it contains at least one of the mentioned characters

(of course, the ending period should only be placed if it doesn't exist yet)

Thanks for your help!

share|improve this question
5  
English grammar validation via regex is never going to end well. –  Dagon Nov 18 '12 at 21:35
    
If you can't parse (X)HTML via regular expression, how do you want to parse spoken languages? They're somewhat more irregular than some XML markup. –  ComFreek Nov 18 '12 at 21:37
    
when you have a hammer, everything looks like a nail... –  Toni Nov 18 '12 at 21:38
    
I have a pair of rubber gloves so everything looks like a .... –  Dagon Nov 18 '12 at 21:39
1  
It is not like the OP is really trying sanitize "spoken language". I believe some validation of punctuation can certainly be a regular problem. –  Martin Büttner Nov 18 '12 at 21:48

1 Answer 1

up vote 4 down vote accepted

Here is the answer to your first problem. The third-to-last replacement is the problem:

$fixed = preg_replace( '/([!?,.])(\S)/', '$1 $2', $fixed); # spaces after punctuation, if it doesn't exist already

It will match the first period with the character class, and the second period as a non-space character. Then insert a space. Since matches cannot overlap, it will then match the third and forth period and insert a space and so on. This is probably best fixed like this:

$fixed = preg_replace( '/[!?,.](?![!?,.\s])/', '$0 ', $fixed);

Here is how you could go about your second requirement (replace the second-to-last preg_replace):

$fixed = trim($fixed);
$fixed = preg_replace( '/[!?.,].*(?<![.!?])$/', '$0.', $fixed);

First we get rid of leading and trailing whitespace to separate this concern from the trailing period. Then the preg_replace will try to find a punctuation character in the string and if it does, it matches everything until the end of the string. The replacement puts the match back in place and appends the period. Note the negative lookbehind. It asserts that the string does not already end with a sentence-ending punctuation character.

share|improve this answer
    
i was testing your addition, it works great except on the last hack, hehe. Would it be posible to keep the original last character in case it is a ! or ? instead of replacing it with a period? –  andufo Nov 18 '12 at 23:00
1  
@andufo sure, using trim separately is probably a better approach anyway. see my edit –  Martin Büttner Nov 18 '12 at 23:08
    
thanks! works great! –  andufo Nov 18 '12 at 23:21

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