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i've been playing around w/ these things and it seems that the callback function has only one response variable..

$.post(link, $("#form").serializeArray(), sendFormResponse);

where sendFormResponse function does the magic ...

however i have only 1 variable (response) to play with..

i needed at least 2

if i could get this .post method to return 2 variables: 1) status = (ok,error,adjust, etc) 2) statusMessage (or response) = (more strings)

both of w/c are generated from php side, that would be super.. coz i can evaluate what to do depending on my php's responses..

share|improve this question
    
you can return an array which has multiple values. –  mamdouh alramadan Jan 12 '13 at 15:18

3 Answers 3

up vote 2 down vote accepted

The argument passed to the callback (or returned in the response) can be an object, which can have unlimited properties or an array containing multiple elements.

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You should be looking at data in the success method. Usually I would setup a standard response json object which I can validate myself.

$.post('ajax/test.php', function(response) {
  if (response.success) {
      alert(response.data.key1);
      // will display "value1"
  } else {
      alert(response.errorText);
  }
});

test.php

<?php
// so ajax client can interpret content appropriately
header('Content-Type: application/json');

// hide all php notices/warnings/errors 
// (you really should be logging them)
// ** Any text other than the json encoded string
// will break the clients parsing abilities **
ini_set('display_errors', false);


$response = array(
    "success" => true,
    "errorText" => "",
    "data" => array(
        "key1" => "value1"
    )
);

echo json_encode($response, JSON_FORCE_OBJECT);
?>
share|improve this answer
    
im getting an undefined response this this one as well. –  BrownChiLD Jan 12 '13 at 16:07
    
What version of jQuery are you using? –  J.Romero Jan 12 '13 at 18:08
    
latest always (loaded off google) –  BrownChiLD Jan 14 '13 at 11:18
    
i copied ur code exactly.. it's returning undefined –  BrownChiLD Jan 14 '13 at 12:14
    
hmm.. ok i got it to work but not w/ post.. but w/ .getJSON.. but shouldnt this work w/ .post? –  BrownChiLD Jan 14 '13 at 12:19

From your PHP send an JSON encoded array

echo json_encode(array('success' => 'ok', 'data1' => $data1, 'data2' => $data2)); //etc.

Then you can reference both the success flag and the data in your Javascript.

$.post(link, $("#form").serializeArray(), function(data) {
   if (data.success == 'ok') {
       alert('data1 = ' + data.data1);
   } 
   else {
      alert (data.error);
   }
});
share|improve this answer
    
I think it's $.post(link, $("#form").serializeArray(), sendFormResponse); not $.post(link, $("#form").serializeArray(), sendFormResponse(data)); As far as I know the (data) is omitted when passing a function as an argument or the function is executed right there and then instead. Any parameters are passed automatically when sendFormResponse is executed. –  François Wahl Jan 12 '13 at 15:27
    
@FrançoisWahl you are correct - answer edited. –  PassKit Jan 12 '13 at 15:37
    
ok so i tried it but im getting "undefined" –  BrownChiLD Jan 12 '13 at 15:41
    
...decided to go w/ a character delimited return string, where i split into array in JS Eg. echo "ok--**--my message here"; lolz.. –  BrownChiLD Jan 12 '13 at 15:47
1  
Assuming that you are getting just undefined, implies that the data.success is not present or != 'ok'. –  PassKit Jan 12 '13 at 15:52

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