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I am taking the result of a query and converting it to json. See my code here -

$sql = "select * from students";
$query = $this->db->query($sql);
if($query->num_rows() != 0 ){
    $result = $query->result();
    $data = json_encode($result);
}

So, for the two rows in my table students the data is like -

[{"id": "1", "name": "foo", "email": "foo@example.com"}, {"id": "2", "name": "bar", "email": "bar@example.com"}]

So basically I get an array. But I want to encode it like -

{"1": {"id": "1", "name": "foo", "email": "foo@example.com"}, "2": {"id": "2", "name": "bar", "email": "bar@example.com"}}

So that my data is like index: {key1: val1, key2: val2} where index is key1. How do I do this?

The reason for the data in this for is my js which uses above data to give ids to my checkboxes -

destTable = $('#dataTable');
$.post("/examplec/getData",
        params, function(data) {
        var newRow;
        var json = $.parseJSON(data);
        $(json).each(function(i,val){
            newRow = "<tr><td style='right:10px'><input type='checkbox' name = 'case' class = 'case' id=" + i + " onclick='checkAll();'></td>";
            $.each(val,function(k,v){
                newRow = newRow + "<td>" + v + "</td>";
            });
            newRow = newRow + "</tr>";
            destTable.append(newRow);
        });

});

A model from MVC patter returns a data to the controller examplec.php . But I want the id of each checkbox to be the id from my data.

share|improve this question
    
Why would you want to do this? Accessing either object would work in exactly the same way. –  Asad Dec 18 '12 at 11:36
1  
php.net/json_encode - check the second parameter –  hakre Dec 18 '12 at 11:40
    
@Asad see the modified question for the reason I want the data in that form. –  Hussain Dec 18 '12 at 11:45
    
Also even when I get the data in the form I have said I want it to be, how do I parse it with jquery's parseJSON? –  Hussain Dec 18 '12 at 12:01

3 Answers 3

up vote 3 down vote accepted

On PHP 5.3+ you can do:

$data = json_encode($result, JSON_FORCE_OBJECT);

From the Manual:

JSON_FORCE_OBJECT
Outputs an object rather than an array when a non-associative array is used. Especially useful when the recipient of the output is expecting an object and the array is empty. Available since PHP 5.3.0.

Edit: you don't need the ID as the key, doing that you're just duplicating data. You can access the id property and assign it as the checkbox id:

newRow = "<tr><td style='right:10px'><input type='checkbox' name = 'case' class = 'case' id='" + val.id + "' onclick='checkAll();'></td>";
share|improve this answer
    
This pretty much gives the OP what he wants but the index starts at 0, I think he wanted 1,2,3, etc –  Carlton Dec 18 '12 at 12:04
    
I want to put the index as the id of each check box. So with this id I can do the transactions with the db because this id of checkbox will be the id of students table. So how do I parse this form in jquery? –  Hussain Dec 18 '12 at 12:07
    
@HussainTamboli see my edit, you can still access the ID and set it to the checkbox id. –  MrCode Dec 18 '12 at 12:21
    
yes. +1 to you. –  Hussain Dec 18 '12 at 12:46

You could go like this:

$results = $query->result();

$data = array();

foreach($results as $result)
{
    // Assuming it returns objects, not arrays, else use $result["id"]
    $data[$result->id] = $result;
}

echo json_encode($data);
share|improve this answer
    
hi, With your code I get the json in the required form but jquery's parseJSON can't parse this. any idea why? –  Hussain Dec 18 '12 at 11:55
    
What response are you getting from the PHP? I got... {"1":{"id":"1","name":"foo","email":"foo@example.com"},"2":{"id":"2","name":"bar‌​","email":"bar@example.com"}} to me it looks like it's already an object You could surround it in single quotes and then parse but I don't think it's necessary jsfiddle.net/AnpnZ –  Carlton Dec 18 '12 at 12:09
$sql = "select * from students";
$query = $this->db->query($sql);
$res=array();
if($query->num_rows() != 0 ){
    $result = $query->result();
    $res[]=$result;

}
$data = json_encode($res);
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