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I have a JSON array that is on a page. It is added to as time goes on by some user interaction. When the user is done they need to submit this array to a page where their information is added to a mySQL table via php. My call to the page via AJAX is as follows where answersArray is the array

$.ajax({
    type: "POST",
    dataType: "json",
    data: answersArray,
    url: 'sendToUsersFeedback.php',
});

The array looks like this:

[
    {
        "USERID": "3",
        "INDVID": "0",
        "RATING": "1",
        "CONFIDENCE": "8"
    },
    {
        "USERID": "3",
        "INDVID": "1",
        "RATING": "1",
        "CONFIDENCE": "88"
    }
]

This is where I get confused. I need to decode this incoming json and then loop through it added a new record for each array item (USERID, INDVID, RATING and CONFIDENCE make up one record etc..) I could have as many as 20 in this array. I know USERID is not unique. Already have that set up.

It is the php side I get messed up on. How do I decode an incoming array and go through it. I have tried the following

$sql = json_decode(data,true);
foreach( $data as $row ) {
    $sql[] = '("'.mysql_real_escape_string($row['USERID']).'", '.$row['INDVID'].','.$row['RATING'].','.$row['CONFIDENCE'].')';
}
mysql_query('INSERT INTO users_feedback (USERID, INDVID, RATING. CONFIDENCE) VALUES '.implode(',', $sql));

Am I close? I'm very confused. Thanks in advance.

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1  
Please, format your code. –  Gabriel Santos Sep 11 '12 at 19:23
1  
You're sending json directly to PHP, but never declaring a $_POST variable name. Should probably look at using 'data':{'data':ansersArray} then change the PHP to use json_decode($_POST['data'],true). –  Brad Christie Sep 11 '12 at 19:27
    
Brad, still doesnt like the $_POST['data']. Tell me it isnt valid. I changed the js code to show $('.submitAll').click(function() { $.ajax({ type: "POST", dataType: "json", data:{'data':answersArray}, url: 'sendToUsersFeedback.php', }); }); –  jeynon Sep 11 '12 at 20:11
    
"RATING. CONFIDENCE" You have point instead comma –  4EACH Mar 20 at 4:44
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3 Answers

up vote 1 down vote accepted

First, give a name to your data you're posting :

$.ajax({
    type: "POST",
    dataType: "json",
    data: {
      my_data: answersArray
    },
    url: 'sendToUsersFeedback.php',
});

Then, in your PHP code, recover your data :

$data = $_POST['my_data'];
$sql = json_decode($data, true);
...

You should be aware that everybody can edit JSON in the client-side, so insert data into a database this way is extremely dangerous.

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this seems to be the hang up. Keeps telling the that $data is undefined. I know the JSON object is legit. Why isnt it coming over? –  jeynon Sep 11 '12 at 20:23
    
$('.submitAll').click(function() { $.ajax({ type: "POST", dataType: "json", data:{'data':answersArray}, url: 'sendToUsersFeedback.php', }); }); –  jeynon Sep 11 '12 at 20:28
1  
where is your answersArray declared? –  Alain Tiemblo Sep 11 '12 at 20:31
    
wrestore.iupui.edu/Jon/tool.php Take a look. Scroll down past the table. When you hit the Next button or the Back you will see the answersArray appear. Hitting Submit will fire the script. Thanks much for your help. –  jeynon Sep 11 '12 at 20:45
1  
Ham, you're using answersArray which is not declared. Replace data:{'data':answersArray}, by data:{'data':$('#JSONHolder').html()}, –  Alain Tiemblo Sep 11 '12 at 20:52
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You are doing:

$sql = json_decode(data,true); 

What is data? You probably missed the dollar sign. Are you actually getting your JSON in $data?

You're assigning json_decode() result to $sql; now your $sql variable will contain an associative array with your $data. $data is still a string because you didn't change it's value since retrieving it.

Then you're looping through the string (not happening) and running:

mysql_query('INSERT INTO users_feedback (USERID, INDVID, RATING. CONFIDENCE) VALUES '.implode(',', $sql));

$sql above will be your JSON, as a PHP array, something like:

array(array('USERID' => 1 ...), array('USERID' => 2 ...)); 

You should have:

$data = json_decode($data, true);
$sql = array();
foreach ($data as ...

Also, make sure you actually retrive $data:

$data = $_POST['data']
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Simple, you have the foreach using the $data array that it's from the json code.

You must set the decoded array as another variable and loop with it.

$j_decoded = json_decode(data,true);

foreach(j_decoded as $row ) {
$sql[] = '("'.mysql_real_escape_string($row['USERID']).'", '.$row['INDVID'].','.$row['RATING'].','.$row['CONFIDENCE'].')';
}
mysql_query('INSERT INTO users_feedback (USERID, INDVID, RATING. CONFIDENCE) VALUES '.implode(',', $sql));

Hope this helps you.

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