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Im trying to display some data via JSON using ajax but for some reason when i submit the form im not getting any result, any suggestions?..

project_view.php

   <form id="formProjectsRepSearch" action="controller.php" method="post" onsubmit="searchFormProjectsRep();
            return false">
            <label>Project Name </label>
            <input name="terbusqueda" id="term" type="text">
            <button id="btnBuscar">Search</button>
            <input type="hidden" name="search" value="go">
  </form>
  <div id="ajaxProjectsRep">        
  </div>

controller.php

  if (isset($_POST["search"]) && $_POST["search"] == "go"){

      $name = $_POST['terbusqueda'];

      $project = new Project();
      $pro = $project->get_project($name);  
      $serv = $project->get_project_service_by_id($pro);

      echo json_encode($serv);       
}
require_once("../views/project_view.php");

JS

function searchFormProjectsRep() {
var $form = $('#formProjectsRepSearch');

$.ajax({
    url: $form.attr('action'),
    data: $form.serialize(),
    type:'POST',
    success: function (resp) {
        var resp_object = $.parseJSON(resp); 
        $("#ajaxProjectsRep").html(resp_object.service);
    },
    dataType: "json"
});
}
share|improve this question
    
get rid of $.parseJSON(resp);, it's already parsed. You should see an error in your console. Why are you including project_view.php after echoing json? –  Kevin B Jun 18 '13 at 18:50
    
please post the console error message. –  Nirus Jun 18 '13 at 18:52

1 Answer 1

up vote 2 down vote accepted

You are parsing JSON twice in your code.

When $.ajax() is used with dataType: "json", jQuery automatically parse the response string, so in your case resp is alreay a Javascript object. Since resp is an object and $.parseJSON() expects a string, resp_object is null. Try using resp directly, it should work.

You can use console.log(resp) to see what's the actual result returned by your PHP script.

(Also, I see you are converting the response into an HTML element with .html(), in that case you could pass dataType: "html" to $.ajax() and resp would alreay be a jQuery node, but that's not the question here.)

share|improve this answer
    
Im checking the console and for some reason im only seeing that i get the json echo out from the php at the top [{"service":"Reparacion 60kVA","status":"2"},{"service":"Instalaciones 2+1","status":"1"},{"service":"Mantenimiento Gen","status":"4"}] and all the html below, which is weird. Also i tried doing $("#ajaxProjectsRep").append(resp.service); but nothing, same thing. –  Andrés Da Viá Jun 18 '13 at 19:12
    
Does your require_once("../views/project_view.php"); outputs HTML? If yes, then it's normal that the HTML is after the JSON response. You can't do both; The first echo outputs the JSON text you pasted, and then the project_view.php echoes some HTML. You'll have to remove the echo json_encode or make the view outputs in an object before encoding and echoing it. What does project_view.php do? –  Max-P Jun 18 '13 at 19:37
    
It outputs the html of the page as i showed above.. Im separating the code using MVC thats why im requiring project_view.php from the controller. Before this i was displaying the data using a simple foreach in project_view.php among the html but now im required to show the data using json –  Andrés Da Viá Jun 18 '13 at 19:46
    
If you want the data in JSON format, you will have to make a completely different view that generates JSON instead of HTML. Or, if you intend to display the HTML directly, get rid of the first echo json_encode( so it outputs only HTML, then use dataType: "html" and $("#ajaxProjectsRep").append(resp). I you need only HTML data, you don't need JSON at all. –  Max-P Jun 18 '13 at 19:53

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