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I am looking for a way to find the number of sentence occurrences in another sentence

For example (I have):

Do you have a different language or operating system? JavaScript is currently disabled in your browser and is required to

and I am searching for:

a

This should present me the result of:

result = 1

because if you count a as a word and not as a char you will get 1 as result:

"Do you have a different language or operating system? JavaScript is currently disabled in your browser and is required to" Din.

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marked as duplicate by Dagon, Charles, Jay Gilford, X.L.Ant, jeb Mar 4 '13 at 8:49

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
i thin you are looking for substr_count() –  Dagon Mar 3 '13 at 21:31

3 Answers 3

Indeed use substr_count.

To make sure you only match words: add a space before and after the word before using substr_count and explicitly check for the word at the start or end of the string using substr.

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Or add a space to the start and end of a word, like " " . $string . " ", which would then allow you to count " a " with one call to substr_count(). –  Eric Mar 3 '13 at 21:36
    
That is exactly what I meant Eric, but you then miss the 'a ' at the start and ' a' at the end of the string, so therefore do two additional substr checks. –  Coert Metz Mar 3 '13 at 21:38
    
You can explicitly check that case as well. With regular expressions you can match an optional dot. –  Coert Metz Mar 3 '13 at 21:42
    
@dinbrca That's exactly what Coert and I are talking about: Putting a space on either side of the string to search will allow that. See: codepad.org/fORXYur3 –  Eric Mar 3 '13 at 21:42
    
@Eric but what if you have "a potato is a.." how would u count the last a? ("a..") –  dinbrca Mar 4 '13 at 14:45

As far as counting the number of times the WORD "a" is used in a string quickly/simply:

$sent = "Do you have a different language or operating system? JavaScript is currently disabled in your browser and is required to";

if( preg_match( '/ a /', $sent, $matches ) ) { # a space before and after makes it a word not a letter.
    echo count( $matches );            
}

But that still won't tell you how many sentences there are for sure in all cases; to do that would require a pretty complicated regex.

--> EDIT:

To get the word "a" at the beginning of a sentence and anywhere else, you could do this:

$sent = "A different language or operating system? JavaScript is currently disabled in your browser and is required to eat a walrus";

$patterns = array( '/ a /', '/A /' );
$ctr = 0;

foreach( $patterns as $p ) {

    if( preg_match( $p, $sent, $matches ) ) {
        $ctr += count( $matches );             
    }

}

echo $ctr;  
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The OP asked for it without regex, if possible (and it is possible). –  Eric Mar 3 '13 at 21:42
    
He also is "looking for a way to find the number of sentence occurrences in another sentence" which may not be possible without regex. @Eric –  BIT CHEETAH Mar 3 '13 at 21:52
    
That is possible without regex as well. –  Eric Mar 3 '13 at 21:55
    
How would you do it without regex with a sentence like this: 'Mr. Ree gasped, "My God! Where is my cheese!?" and then watched TV.' @Eric –  BIT CHEETAH Mar 3 '13 at 22:00
    
If he doesn't care what the word boundary is, you can do it with a simple substr_count(), again. Even if this is the case, though, the OP never specified that he would need a word boundary other than " ". –  Eric Mar 3 '13 at 22:05

Not the most efficient solution but seems to give you what you need.

$search = 'a';
$str = "Do you have a different language or operating system? JavaScript is currently disabled in your browser and is required to";
$count = array_sum(array_map(function($val) use ($search) {if ($val == $search) { return 1; } else { return 0; }}, str_word_count($str, 1)));
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See docs for str_word_count. Note: this could get pretty gnarly with large chunks of text –  GeoffK Mar 3 '13 at 21:45
    
seems like Coert Metz solution can be better, am I wrong? –  dinbrca Mar 4 '13 at 14:46
    
It's an altogether better solution probably if speed of execution is a concern. Still - they both do the trick :) You could replace the array_map in my solution with a call to array_count_values which would probably make it LOOK a little less complicated but ultimately amounts to the same thing. –  GeoffK Mar 4 '13 at 17:47

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