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I am very new to PHP, and need to use an HTTP Request to download a URL that is external to my server. That URL is a PHP function that returns JSON code which I have decode. Any suggestions?

I have tried basic code:

    <?php   
    //Code for forming the url (which I'm sure is correct)
    $url = ...
    $response = fopen($url,"x+");
    $response = json_decode($response);
    echo $response;
    ?>
    //javascript in a seperate file that calls the php code
    var response = xmlhttp.responseText;
alert(response);
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What have you tried? Can you post some code and be clear on what you need? There is nothing in your question with which we can give you suggestions... –  Praveen Kumar Sep 3 '12 at 7:09
    
Dose the external uri write the json in the body –  Ruwantha Sep 3 '12 at 7:12
    
Note, fopen and file_get_contents and other functions that are meant to work with files and streams, will only work if allow_url_fopen is enabled in your PHP config. –  cHao Sep 3 '12 at 7:28
    
is that enabled by default? –  Sam Wilks Sep 3 '12 at 7:30
1  
@Sam: Yes, it's on by default. But it's often disabled by paranoid admins for security reasons. (If a script is too naive and blindly uses user input to build paths, it can be rather easily tricked into executing arbitrary remote content.) –  cHao Sep 6 '12 at 15:35
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5 Answers

up vote 1 down vote accepted

Try this:

<?php
$url = 'YOUR_URL_HERE';

$data = file_get_contents( $url ); // it is a JSON response as per your statement.

$data= json_decode($data);
print_r($data); // now, it's a normal array.
?>
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Remember "//" when commenting ;) –  Phorce Sep 3 '12 at 7:12
    
oops...will change it. :) –  web-nomad Sep 3 '12 at 7:37
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You may use fopen if config allows, or cURL or fsockopen functions to do that

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I tried fopen but it didn't work. My php code is called via ajax. It builds the URL (which I have checked multiple times for correctness) and then calls fopen with the url as the first parameter and w+ as the second (I just figured I needed read/write capabilities). I then use echo to pass the response back to my ajax function where I print out the result using xmlhttp.responseText and an alert. –  Sam Wilks Sep 3 '12 at 7:14
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You could use:

$json_str = file_get_contents($url);
$json = json_decode($json_str, true);
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You beat me to it lol! –  Phorce Sep 3 '12 at 7:11
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Couldn't you use file_get_contents? E.g.

<?php

$url = "YOUR_URL";
$json = file_get_contents($url);

// handle the data
$data = json_decode($json, TRUE);

    var_dump($data); // example
?>
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If you are doing a lot of requests you can try using a http class like Buzz which will Help clean up your code https://github.com/kriswallsmith/Buzz

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