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Im trying to write an if function which checks the width of an image, and then apply a css class.

I want the function to work like this

if image is in an range from 150px to 189px, apply css class "span-4"

190px to 229px: css class "span-5"

230px to 269px: css class "span-6"

I have tried like this:

list($width, $height, $type, $attr) = getimagesize($article_image);

if(strlen($width) < 189 && strlen($width) > 150) { $cssClass = "span-4"; }
if(strlen($width) < 229 && strlen($width) > 190) { $cssClass = "span-5"; }
if(strlen($width) < 269 && strlen($width) > 230) { $cssClass = "span-6"; }

That does not work. Do anyone see what Im doing wrong?

Edit: Added the function to explaine where Im getteing the $width variable from

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What does $width contain? –  Pekka 웃 Mar 24 '11 at 9:59

5 Answers 5

up vote 0 down vote accepted

strlen is, like the function name indicate, for strings.

I'm not sure I correctly understood what you want to do, but if you have an image file and you want to check it's size, you can use getimagesize.

If you already have the image's width in the $width variable, you must do your checks like this :

if($width > 150 && $width < 190) { $cssClass = "span-4"; }
else if($width < 230) { $cssClass = "span-5"; }
else if($width < 270) { $cssClass = "span-6"; }
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Thank you. That was what I was looking for! –  Garreth 00 Mar 24 '11 at 10:43

Just a guess: why are you using strlen()? I think just $width will do it...?! Or what´s the content of $width?

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It's probably because you're treating $width like a string, and getting its length. Try treating it like a number instead.

if(($width < 189) && ($width > 150)) { $cssClass = "span-4"; }
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first of all calculate the string's length only once and put it into a variable. Secondly use else if on the second and third statements.

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strlen gets the string length of the $width variable. I don't think you want to do that. You most probably want to lose strlen() from every $width.

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