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I've my jquery code as

 $(function() {
    $("#addline").click(function() {
        $.ajax({
            type: "POST",
            url: "proc/add-line.php",
            data: // some string,
            cache: false,
            success: function(html){
                $("ul#nextLines").append(html);

                if(lineId == 10) {                // lineId value to be passed from add-line.php
                    $("#addForm").hide();
                }
            }
        });
        }return false;
    }); 
});

In the line commented as "// lineId to be passed from add-line.php" [refer to code above], I want the php processing page add-line.php to pass the value of the var lineId.

At present, the add-line.php gives out a html code <li><?php echo $line; ?></li>. Along with that, I want to send the value of the lineId so that I can implement that conditioning.

So how should I send and then retrieve the value of the lineId (retrieved in the form of a PHP variable) from add-line.php??

Update

I've made changes to my code above as

$.ajax({
                type: "POST",
                url: "proc/add-line.php",
                data: dataString,
                dataType: 'json',
                cache: false,
                success: function(data){
                    alert(data.html);
                    $("ul#nextLines").append(data.html);
                    $("ul#nextLines li:last").fadeIn("slow");
                    $("#flash").hide();

                    if(data.lineId == 10) {
                        $("#addForm").hide();
                    }
                }

            });

And PHP code is

    // Header type
    header('Content-Type: application/json; charset=utf-8');
    $data = array(
        "html"=> "test",
        "lineId" => "1" 
    );

    echo json_encode($data);

I've not been able to retrieve the json. (even the alert(data.html) in the success function call doesn't show up).

Can you help me figure this out?? Thanks.

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2 Answers 2

up vote 3 down vote accepted

One option would be to return JSON with json_encode:

$data = array('html'=> "<li>$line</li>",
    'lineId' => $lineId //wherever that comes from
);

echo json_encode($data);

JavaScript:

$.ajax({
        type: "POST",
        url: "proc/add-line.php",
        data: // some string,
        dataType: 'json',
        cache: false,
        success: function(data){
            $("ul#nextLines").append(data.html);

            if(data.lineId == 10) {
                $("#addForm").hide();
            }
        }
});
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Can you please explain what is the 'data' in "function(data)" called at success?? Does it have to do anything with the data string being passed over to the php processing page?? –  ptamzz Jan 31 '11 at 6:26
    
@ptamzz: No, it is the name I gave the parameter, you can call it whatever you want. It is the data you get from the PHP script and the value will be a JavaScript object with two properties, html and lineId. –  Felix Kling Jan 31 '11 at 8:47
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Two solutions:

Either return JSON from your PHP script:

// In PHP:
header('Content-Type: application/json; charset=utf-8');
echo json_encode(array(
    'html' => '<li>' . intval($lineId) . '</li>',
    'lineId' => $lineId,
));

// In JS:
success: function(json){
    var lineId = json.lineId;
    var html = json.html;
    // ...
}

Due to the Content-Type header being set to application/json, jQuery will automatically parse the result as JSON. So the first parameter of the success callback is the parsed JSON object.

Or return the lineId in a HTTP header:

// In PHP
header('X-LineId: ' . $lineId);

// In JS
success: function(html, textStatus, xhr){
    var lineId = xhr.getResponseHeader('X-LineId');
    // ...
}
share|improve this answer
    
in the JS part (first example), I had put "alert(lineId);" after the line "var lineId = json.lineId;" but the alert pops up with an 'undefined'?? Do you know what could be the problem?? –  ptamzz Jan 31 '11 at 6:25
    
have you added the header('Content-Type: ...) line ? what the PHP script is returning exactly ? what alert(json) prints ? –  arnaud576875 Jan 31 '11 at 8:56
    
yes I've put the header('Content-Type: ...) line (please refer to the updated section in my question above for the PHP code). Now I implemented your first example. alert(json) doesn't print anything. Do you think it is a issue from my PHP code?? I read in another Question here at stackoverflow, someone wrote it may not work at localhost with Windows. Do you know if it is true?? (As im working on that environment only) –  ptamzz Jan 31 '11 at 10:33
    
Given your updated question, it looks like the success callback is never executed. There must be an error with the PHP script. –  arnaud576875 Jan 31 '11 at 10:35
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