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How can i use (str_word_count($str, 1)); as an array and omit words assigned a number by leaving them out... So Hello [1] => World [2] => This [3] => Is [4] => a [5] => Test ) 6 only outputs the numbers i define, such as [1] and [2] to omit This is a test leaving only leaving Hello World, or [1] and [6] for Hello Test...

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2 Answers 2

up vote 3 down vote accepted

You can do that with array_intersect and str_word_count or explode

$input  = 'Hello World This Is a Test';
$allow  = array('Hello', 'Test');

$data   = explode(' ', $input);
// or your way
$data   = str_word_count($input, 1);


$output = array_intersect($data, $allow);
$count  = count($output);

echo 'Found ' + $count;

var_dump($output);
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Ah! I see, I see –  John Giotta May 3 '11 at 15:49
    
@HSZ IDK what the allowed words will always be, its for a cipher that has fake words.. so i was hoping to be able to define a number for each word as its count and then print the the words that i need to decode the cipher one step further... So JACK 1 JILL 2 BOB 3 HARRY 4 SECRET 5 SALLY 6 SUE 7 CODE 8 TOM 9... I would print the match or word count id for 5 and 8... –  Ryan Cooper May 3 '11 at 15:56
    
You mean you just want to get that elements of array by their index? echo $data[4] + ' ' + $data[7]; ? –  hsz May 3 '11 at 16:00
    
Yes exactly, however when i try to use that instead of echoing SECRET CODE its just returning 0? –  Ryan Cooper May 3 '11 at 16:16
    
@HSZ Messed around with it a little and using only one index match returns the 4th letter instead of word? Any idea why? –  Ryan Cooper May 3 '11 at 16:35

PHP 5.3 solution

$input  = 'Hello World This Is a Test';
$allow  = array('Hello', 'World');

$array = array_filter(
    str_word_count( $input, 1 ),
    function( $v ) use( $allow ) {
        return in_array( $v, $allow ) ? $v : false;
    }
);

print_r( $array );
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