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In my foreach, I see the following error:

Fatal error: Cannot use string offset as an array [..] on line 97

 88.    foreach ($response as $result) {
 89.        if($result['provider'] == 'Facebook') {
 90.            $provider = 'facebook';
 91.        }else{
 92.            $provider = 'twitter';
 93.        }
 94.        $user = array(
 95.            'provider' => $result['provider'],
 96.            'id' => $result['uid'],
 97.            'name' => $result['info']['name'],
 98.            'image' => $result['info']['image'],
 99.            'link' => $result['info']['urls'][$provider],
100.        );
101.        echo "<h1>".$user['provider']."</h1>";
102.        echo "<p>".$user['id']."</p>";
103.        echo '<p><img src="'.$user['image'].'" /></p>';
105.        echo "<p>".$user['name']."</p>";
106.        echo "<p>".$user['link']."</p>";
107.    }

I've tried reading around the web to understand what the problem is but it seems that some issues are unrelated to mine. I should also just come out with it and let you know I'm not that great with PHP. Can someone lend a hand?

P.S. I added break; after the last echo and that solved it but I don't think that's the way to go about it.

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what is the output of var_dump($response); or var_dump($result['provider']); – rccoros Jan 17 '14 at 8:37
4  
Do a var_dump of $result['info']. Probably doesn't contain what the code suggests it should. – inquam Jan 17 '14 at 8:37
    
@rccoros var_dump($result['provider'] returns string(1) "2". That's weird. – Chris Burton Jan 17 '14 at 8:41
    
it mean's that $response is string not array – sanjeev Jan 17 '14 at 8:46
    
@sanjeev is_array($response); returns true. – Chris Burton Jan 17 '14 at 8:50
up vote 0 down vote accepted

you have used $result['info'] in a loop. it should be sometimes sub array of $result['info'] is not set. It seems that you do not need to run loop. because you will have single user info at a time. or you can use break like this:

foreach ($response as $result) {
    $provider = strtolower($result['provider']);
    $user = array(
        'provider' => $result['provider'],
        'id' => $result['uid'],
        'name' => isset($result['info']['name']) ? $result['info']['name'] : '',
        'image' => isset($result['info']['image']) ? $result['info']['image'] : '',
        'link' => isset($result['info']['urls'][$provider]) ? $result['info']['urls'][$provider] : ''
    );
print_r($user);
    echo "<h1>" . $user['provider'] . "</h1>";
    echo "<p>" . $user['id'] . "</p>";
    echo '<p><img src="' . $user['image'] . '" /></p>';
    echo "<p>" . $user['name'] . "</p>";
    echo "<p>" . $user['link'] . "</p>";
    break;
}
share|improve this answer
    
Still receiving an error on that last 'link' => ... – Chris Burton Jan 17 '14 at 9:25
    
@Chris Burton : i have updated my answer. can you try this now? – Awlad Liton Jan 17 '14 at 9:26
    
Still the same error. – Chris Burton Jan 17 '14 at 9:28
    
@Chris Burton : can you just remove this line and test if it worked then i will try differently – Awlad Liton Jan 17 '14 at 9:31
    
That didn't work either. – Chris Burton Jan 17 '14 at 9:34

Try This.In line 99 you should not use , at the end...

 88.    foreach ($response as $result) {
 89.        if($result['provider'] == 'Facebook') {
 90.            $provider = 'facebook';
 91.        }else{
 92.            $provider = 'twitter';
 93.        }
 94.        $user = array(
 95.            'provider' => $result['provider'],
 96.            'id' => $result['uid'],
 97.            'name' => $result['info']['name'],
 98.            'image' => $result['info']['image'],
 99.            'link' => $result['info']['urls'][$provider]
 100.        );
 101.        echo "<h1>".$user['provider']."</h1>";
 102.        echo "<p>".$user['id']."</p>";
 103.        echo '<p><img src="'.$user['image'].'" /></p>';
 105.        echo "<p>".$user['name']."</p>";
 106.        echo "<p>".$user['link']."</p>";
 107.    }
share|improve this answer
1  
I don't think that is the problem... – L.C. Echo Chan Jan 17 '14 at 8:57
    
Thanks. I do have a comma in place. I must have deleted it when I was formatting the code. – Chris Burton Jan 17 '14 at 8:58
    
Does that work? – EniGma Jan 17 '14 at 9:00
1  
In php is perfectly valid to leave a trailing comma at the end of an array, it won't complain at all. In fact if it weren't valid it would have been a syntax error, not a runtime fatal error – Antonio E. Jan 17 '14 at 9:02
    
@Enigma No, sorry. – Chris Burton Jan 17 '14 at 9:10

$result['info'] is obviously a string and not an array.

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cloud.chrisburton.me/TQZC – Chris Burton Jan 17 '14 at 10:04

You declare $result['info'] as a string somewhere then later try to use it as an array. Try to var_dump $result['info'].

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