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What would the syntax be to pull an external data source,which has the data in JSON format into a variable to be worked with. I understand using json_decode($variable) but how would i load the actual data into that variable for decoding?

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4 Answers 4

If by external you mean that it's hosted on a 3rd-party domain name, then you open a socket and GET the data:

$variable = file_get_contents('http://example.com/data.json');
$decoded = json_decode($variable);
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With fopen(), fread(), and fclose(), or with file_get_contents().

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Using file_get_contents() ? (You must have allow_url_fopen true)

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on my test server ive got fopen working but i will need an alternative solution if any for the actual lauch server with the hosting company refusing to support fopen? –  Baadier Oct 7 '10 at 8:32
    
Would cURL be an alternative for a lack of fopen() support? –  Baadier Oct 7 '10 at 8:33
    
I think but I don't know anything about this ^^' –  MatTheCat Oct 7 '10 at 8:36

Use anything from fopen + fread to php curl library. With fopen you could open a remote file if php settings allows you to. I think you should be able to do it now. If you still can't do it, let us know.

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