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I've got a large string that I want to put in an array after each 50 words. I thought about using strsplit to cut, but realised that wont take the words in to consideration, just split when it gets to x char.

I've read about str_word_count but can't work out how to put the two together.

What I've got at the moment is:

$outputArr = str_split($output, 250);

foreach($outputArr as $arOut){

echo $arOut;
echo "<br />";

}

But I want to substitute that to form each item of the array at 50 words instead of 250 characters.

Any help will be much appreciated.

share|improve this question
1  
off-topic: your coming soon page is amazing =) – Gerep Aug 29 '12 at 10:45
    
related stackoverflow.com/questions/790596/… – kapa Aug 29 '12 at 10:45
up vote 2 down vote accepted

Assuming that str_word_count is sufficient for your needs¹, you can simply call it with 1 as the second parameter and then use array_chunk to group the words in groups of 50:

$words = str_word_count($string, 1);
$chunks = array_chunk($words, 50);

You now have an array of arrays; to join every 50 words together and make it an array of strings you can use

foreach ($chunks as &$chunk) { // important: iterate by reference!
    $chunk = implode(' ', $chunk);
}

¹ Most probably it is not. If you want to get what most humans consider acceptable results when processing written language you will have to use preg_split with some suitable regular expression instead.

share|improve this answer
    
What about words separated by something that is not ` `? – raina77ow Aug 29 '12 at 10:44
1  
@raina77ow: You would have to provide an ironclad definition of "word" first. Then, preg_split. – Jon Aug 29 '12 at 10:46
    
No, that is another question. For example, the previous sentence will be reconstructed as No that is another question - if , is not considered a part of word No, at least. – raina77ow Aug 29 '12 at 10:47
    
@raina77ow: That's because of how str_word_count processes text. I explicitly mention that it's unlikely to be sufficient for written language. Regexes are going to be ugly (e.g. see this‌​, and even that may not be good enough). – Jon Aug 29 '12 at 10:49
1  
If you want punctuation to be included then you can pass a string of punctuation as a third parameter. E.g. str_word_count($string, 1, ',!?.;:'); – James Arnold Aug 29 '12 at 11:28

There's another way:

<?php

$someBigString = <<<SAMPLE
  This, actually, is a nice' old'er string, as they said, "divided and conquered".
SAMPLE;

// change this to whatever you need to:     
$number_of_words = 7; 

$arr = preg_split("#([a-z]+[a-z'-]*(?<!['-]))#i", 
  $someBigString, $number_of_words + 1, PREG_SPLIT_DELIM_CAPTURE);

$res = implode('', array_slice($arr, 0, $number_of_words * 2));
echo $res;

Demo.

I consider preg_split a better tool (than str_word_count) here. Not because the latter is inflexible (it is not: you can define what symbols can make up a word with its third param), but because preg_split will essentially stop processing the string after getting N items.

The trick, as quite common with this function, is to capture delimiters as well, then use them to reconstruct the string with the first N words (where N is given) AND punctuation marks saved.

(of course, the regex used in my example does not strictly comply to str_word_count locale-dependent behavior. But it still restricts the words to consist of alpha, ' and - symbols, with the latter two not at the beginning and the end of any word).

share|improve this answer
    
If I misunderstood your question, and what you actually need is splitting the string by 50 words, this solution can be used too - but the main reason to use preg_split will be lost. ) So use Jon's solution instead. – raina77ow Aug 29 '12 at 11:30
    
Thanks for you input :) – Tom Aug 29 '12 at 12:11

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