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javascript code:

$.getJSON("comprueba_login.php", {usuario:$("#usuario").val(), pwd:$("#contrasena").val()}, function(data){
            alert("resultado: " + data.resultado);
        });

php code:

<?php
    include 'db.php';
    $usuario = $_GET['usuario'];
    $pwd = $_GET['pwd'];
    $sql = "SELECT IDUSUARIO FROM USUARIOS WHERE USERUSUARIO = '" . $usuario . "' AND PWUSUARIO = '" . $pwd . "'";
    $res =  mysql_query($sql, $db) or die("fallo query: " . mysql_error());
    // echo $sql . "<br>";      

    if(mysql_num_rows($res)){?>
        {'resultado':'OK'}
    <?php }else{ ?> 
        {'resultado':'NO_OK'}
    <?php }?>

The alert in the javascript code never appears. What am I doing wrong?

Thanks in advance.

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Get firebug and see –  zerkms Jan 19 '12 at 20:03
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2 Answers

up vote 2 down vote accepted

JSON keys and string values MUST be enclosed in " double quotes. Single quotes (') WILL NOT work.

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It worked great! Thanks a lot. –  elvenbyte Jan 19 '12 at 20:11
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First and most importantly, don't put your database credentials in your web pages.

Silent failure from getJSON usually indicates a syntax error in the JSON string.

$.getJSON("comprueba_login.php", {usuario:$("#usuario").val(), pwd:$("#contrasena").val()}, function(data){
            alert("resultado: " + data.resultado);
        }).error(function() { alert("Error in getJSON") });

Will confirm this.

I believe the correct syntax for what you're trying to do is this:

   if(mysql_num_rows($res)){?>
        { resultado :"OK"}
    <?php }else{ ?> 
        { resultado : "NO_OK"}
    <?php }?>

But if you're going to be using JSON extensively, you should look into using a package to create it for you.

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Yes, I agree with you about the security, but I'm just learning how to do it in php. I use to develop in java and I didn't know how to do it in php. Thanks anyway. –  elvenbyte Jan 19 '12 at 20:17
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