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I am working arround get url in php

my url is

http://localhost/my__file.php?location=http://www.testsite.com/photo-gifts/custom_photo_necklace_oval_charm#design=68793492

when i am printing url using

$_GET['location'];

it prints only

http://www.testsite.com/photo-gifts/custom_photo_necklace_oval_charm

it not displaying me full url i.e. #design=68793492

Please help me on this

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1  
#design=68793492 is not part of the location parameter. If it should, then the URL is invalid. There's not much you can do from the PHP side that consumes the data. –  Álvaro G. Vicario May 3 '13 at 9:16

5 Answers 5

The last part separated by # is the fragment, which is never submitted to the server. You should URL encode the entire location value so special characters are preserved/lose their meaning.

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The anchor tag (#example) won't be detected by PHP as it doesn't get passed on to the server...

You will need to use JavaScript window.location.hash

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1  
The question doesn't ask for $_SERVER['REQUEST_URI']. OP is simply trying to pass a url as a GET parameter. –  biztiger May 3 '13 at 9:18

replace # by %2C in you url or use urlencode

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You've to encode the location parameter.

First use php urlencode function to encode the url. Then pass the encoded value as a get parameter. "#" and "=" character need to encoded. It is always better to encode the whole URL.

For your example, Try

http://localhost/my__file.php?location=http%3A%2F%2Flocalhost%2Fmy__file.php%3Flocation%3Dhttp%3A%2F%2Fwww.testsite.com%2Fphoto-gifts%2Fcustom_photo_necklace_oval_charm%23design%3D68793492
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You can not capture value after # in php but if you will pass encoded location value with # value you can get this value.

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