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I'm trying to user jquery and ajax function in order to not reload the page.

So I have a basic form and I sent datas to the php file here I have no problem.

The trouble I have is to treat the return, because it return to me always sucess even if querry failed.

in php file I have that

<?php

//Instantiation de la connexion
require_once('../../config/connexion.php');
//Initialisation des fichiers requis
include_once('../../lib_php/librairie.php');


//Initialisation des variables
function RecordObjectif(){
    //On cherche l'id de l'utilisateur
    $id_student = fetchUserId();
    if(isset($_POST['objectif'])){
        $objectif = mysql_real_escape_string($_POST['objectif']);
        $query = "INSERT INTO ...";
        mysql_query($query);
        if(mysql_affected_rows()>=0){
            $out['erreur'] = 1;
        }else{
            $out['erreur'] = 0;
        }
        echo $out;
    }else{
        return null;
    }
}

echo RecordObjectif();

in jquery I mean Html page I have this

 $.ajax({
                    type: 'POST',
                    url: 'pages_ajax/mes-objectifs.php',
                    data: { objectif: objectif,  nom_programme: nom_programme, date_depart : date_depart, date_fin: date_fin, statut:statut},
                    dataType: "json",
                    beforeSend:function(){
                        // this is where we append a loading image
                        $('#resultat').empty()
                        $('#resultat').attr('style','text-align:center');
                        $('#resultat').append('<img src="images/loading.gif" alt="Loading..." />');
                    },
                     success:function(data){
                    // successful request; do something with the data
                    if(data.erreur==1){
                        $('#resultat').empty().removeAttr('style');
                        $('#resultat').attr('class','success').empty().append('<b>Enregistrement de votre programme terminé.</b>')
                    }
                },
                error:function(){
                    if(data.erreur==0){
                        // failed request; give feedback to user
                        $('#resultat').empty().removeAttr('style');
                        $('#resultat').attr('class','error').empty().append('<b>Erreur lors de l\'enregistrement, veuillez recommencer dans quelques minutes.</b>');
                        }
}

I do not know how to treat the return, It always return to me success.

I would like to display error if $out['erreur'] = 0 what I do not understand is that I'm having always success return.

the result is not interpreted and I have still the loading icon.

anykind of help will be much appreciated.

share|improve this question
1  
You should write your code in English instead of your native language. mysql_query is deprecated, you should use PDO instead. By the way to treat data in that way you should make PHP return a JSON array. –  Fez Vrasta Oct 29 '13 at 12:54
    
the success function in your jQuery ajax method doesn't care what the value of the response is, only that there is one. So if your php returns a '1' or a '0' its still a successful ajax request. –  Moob Oct 29 '13 at 12:57
    
I added this header('Content-Type: application/json; charset=utf8'); into php file byt it is not enough –  user2506760 Oct 29 '13 at 12:59

3 Answers 3

up vote 0 down vote accepted

Remove the below block of code from error:function(){

if(data.erreur==0){
    // failed request; give feedback to user
    $('#resultat').empty().removeAttr('style');
    $('#resultat').attr('class','error').empty().append('<b>Erreur lors de l\'enregistrement, veuillez recommencer dans quelques minutes.</b>');
}

and put this in success:function(data){ as shown below :

success:function(data){
    // successful request; do something with the data
    if(data.erreur==1){
        $('#resultat').empty().removeAttr('style');
        $('#resultat').attr('class','success').empty().append('<b>Enregistrement de votre programme terminé.</b>')
    }
    // if faliure
    else if(data.erreur==0){
        // failed request; give feedback to user
        $('#resultat').empty().removeAttr('style');
        $('#resultat').attr('class','error').empty().append('<b>Erreur lors de l\'enregistrement, veuillez recommencer dans quelques minutes.</b>');
    }
}

This should do the work !

share|improve this answer
    
thank you verry much for the help I appreciate that –  user2506760 Oct 29 '13 at 13:10

Ok, there are quite a few things in your code on which you'll need to take a look:

  • You're echoing the result of the RecordObjectif function. That's perfectly fine, but then in the function itsself you should return the values instead of just echoing it.
  • The $.ajax success function is called when the ajax request itsself was successfull, and doesn't depend on what you're php function is outputting
  • To access the data you return from php, you've got jsonencode the php output, and use JSON.parse in javascript again

Just giving you some working code for this very problem won't help you, as, as far as I can see, you're lacking some basic understanding of how ajax requests work. My advice is to search some easy examples for ajax requests, and try to really understand what which part of the code is doing.

share|improve this answer
    
thanks for the help –  user2506760 Oct 29 '13 at 13:09

You can not access PHP variables in the callback of an ajax request with a selector ".". But you can access the data echo'ed by the script like this:

.success(function(data) {
    if(data.response == 1) {
        alert('okay');
    }
});

The next thing is, that the error callback will be called if you return an http error code (else than 200 OK). And you always return a "200 OK" as long as your script runs without a serverside error. So the error function you define will therefore never be called. My solution for you is the following one:

$.ajax({
    type: 'POST',
    url: 'pages_ajax/mes-objectifs.php',
    data: { objectif: objectif,  nom_programme: nom_programme, date_depart : date_depart, date_fin: date_fin, statut:statut},
    dataType: "json",
    beforeSend:function(){
        // this is where we append a loading image
        $('#resultat').empty()
        $('#resultat').attr('style','text-align:center');
        $('#resultat').append('<img src="images/loading.gif" alt="Loading..." />');
   },
   always:function(data){
         $('#resultat').empty().removeAttr('style');

        if(data.response==1){
               // successful request; do something with the data
               $('#resultat').attr('class','success').empty().append('<b>Enregistrement de votre programme terminé.</b>')
        } else {
               // failed request; give feedback to user
               $('#resultat').attr('class','error').empty().append('<b>Erreur lors de l\'enregistrement, veuillez recommencer dans quelques minutes.</b>');
        }
   }
   });

And alter the line of your php script from

echo $out;

to

echo $out['erreur'];

You could also do a json_encode() on the array and return the json data of the php array, but this is an overhead in my opinion.

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