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$arrg = array();
if( str_word_count( $str ) > 1 ) {
    $input_arr = explode(' ', $str);
    die(print_r($input_arr));
    $count = count($input_arr);
    die($count);

above is part of a function. when i run i get;

Array (
    [0] => luke
    [1] => snowden
    [2] => create
    [3] => develop
    [4] => web
    [5] => applications
    [6] => sites
    [7] => alse
    [8] => dab
    [9] => hand
    [10] => design
    [11] => love
    [12] => helping
    [13] => business
    [14] => thrive
    [15] => latest
    [16] => industry
    [17] => developer
    [18] => act
    [19] => designs
    [20] => php
    [21] => mysql
    [22] => jquery
    [23] => ajax
    [24] => xhtml
    [25] => css
    [26] => de
    [27] => montfont
    [28] => award
    [29] => advanced
    [30] => programming
    [31] => taught
    [32] => development
    [33] => years
    [34] => experience
    [35] => topic
    [36] => fully
    [37] => qualified
    [38] => electrician
    [39] => city
    [40] => amp
    [41] => guilds
    [42] => level )

Which im expecting;

run this however and nothing is returned:

$arrg = array();
if( str_word_count( $str ) > 1 ) {
    $input_arr = explode(' ', $str);
    //die(print_r($input_arr));
    $count = count($input_arr);
    die($count);
share|improve this question

6 Answers 6

die($count);

Kills your script with $count (an integer) as an exit code.

You'll want:

die((string) $count);

(Or comparable.)

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From http://www.php.net/manual/en/function.exit.php (same as die()):

If status is a string, this function prints the status just before exiting.

If status is an integer , that value will also be used as the exit status. Exit statuses should be in the range 0 to 254, the exit status 255 is reserved by PHP and shall not be used. The status 0 is used to terminate the program successfully.

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2  
Arguably this is worded wrong, isn't it? "Will also be" should be "will be". :) –  deceze Apr 23 '10 at 8:48
1  
You should pass that on to the php documentation team, eh? –  zaf Apr 23 '10 at 9:06
2  
Done. :) bugs.php.net/bug.php?id=51644 –  deceze Apr 23 '10 at 9:26
1  
Nice one dude.. –  zaf Apr 23 '10 at 9:34

Hmm. Is it doing this because $count is an integer, I wonder? What happens if you die(strval($count))?

share|improve this answer

die() will not print the argument if it is numeric, it'll use it as exit status code instead.

The problem is only your debugging technique... :o)

share|improve this answer

have you tried to output $count? at the moment you kill your scrippt with $count as errorcode. simly do

die(print($count));

to get what you want.

share|improve this answer
    
This is actually a pretty neat solution, since print returns 1, so after printing, die(); still gets an error code to work with. Of course, this is debugging code, so it's not as useful as it could be, but the construct in general is worth keeping in mind. +1 –  pinkgothic Apr 23 '10 at 9:00

Integer parameter to die is used as exit code of the process (die is equivalent to exit). Just check the documentation.

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