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Now it's black.

function show(){
    $word=array("a","b","c","d","e","f");
    $name=$word[rand(0,5)];
    $im=imagecreatetruecolor(62,20);
    $black=imagecolorallocate($im,rand(20,100),rand(20,100),rand(20,100));
    $white=imagecolorallocate($im,255,255,255);

    imagettftext($im,14,1,15,17,$white,'simkai.ttf',$name);

    for($i=0;$i<200;$i++)
    {
    	   $randcolor  =  ImageColorallocate($im,rand(0,255),rand(0,255),rand(0,255));
    	   imagesetpixel($im,  rand()%70  ,  rand()%30  ,  $randcolor);
    }
    header("content-type: image/jpeg");
    imagejpeg($im);
}
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2 Answers 2

up vote 2 down vote accepted

you can use imagefill to fill the background with a give color. Also please not you add the $black variable but you never use it ? is that normal ?

function show(){
    $word=array("a","b","c","d","e","f");
    $name=$word[rand(0,5)];
    $im=imagecreatetruecolor(62,20);
    $black=imagecolorallocate($im,rand(20,100),rand(20,100),rand(20,100));
    $white=imagecolorallocate($im,255,255,255);
    imagefill ( $im , 0 ,0 , 0 )
    imagettftext($im,14,1,15,17,$white,'simkai.ttf',$name);

    for($i=0;$i<200;$i++)
    {
           $randcolor  =  ImageColorallocate($im,rand(0,255),rand(0,255),rand(0,255));
           imagesetpixel($im,  rand()%70  ,  rand()%30  ,  $randcolor);
    }
    header("content-type: image/jpeg");
 imagejpeg($im);
}
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if you iterate over the pixels and know which color is the ''background'', just add a condition. But a better aproach might be to use an image with transparency for the background.

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he seems to use jpeg which means there is no transparency would be another story with png –  RageZ Nov 8 '09 at 13:56

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