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I want to use stripos() to filter a variable $background , if characters found return the keys value as $background ;

if(stripos($background, $color) !== false) { $background = the value of keys in $color } else { $Background = 'No Color Found'};

$color = array (
         'R' => "Red",
         'Y' => "Yellow",
         '$bgcolor' => array (
                       '#ffffd0' => "Yellow",
                       '#ddffdd' => "Green", ));

The variable $bgcolor is defined previously and returns hexadecimal color code. Is the above syntax correct ?

share|improve this question
    
where is the if condition of else. may be there should be error. – Code Lღver Apr 18 '13 at 8:48
up vote 0 down vote accepted

Use double quotes for variable key. Strings with single quotes are ignoring variables.

<?php
header('Content-Type: text/plain;');

$x = 'check';

$str = "$x";

echo $str, PHP_EOL;

$str = '$x';

echo $str, PHP_EOL;
?>

Shows:

check
$x

For the rest part of code you`ve provided, I guess you want something like this:

<?php
//header('Content-Type: text/plain;');

$background = '#ffffd0';

$color = array (
        'R' => "Red",
        'Y' => "Yellow",
        '#ffffd0' => "Yellow",
        '#ddffdd' => "Green"
    );

$result = array_key_exists($background, $color) ? $color[$background] : 'not set' ;

echo $result;
?>

Shows:

Yellow
share|improve this answer
    
Thanks. Will do.. using double quotes for "$bgcolor" ( a variable ) will work ? – user2286494 Apr 18 '13 at 8:48
    
It`s your code. It might. – Num6 Apr 18 '13 at 8:50
    
Thanks for the example. – user2286494 Apr 18 '13 at 8:55

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