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Hi i have this simple code:

var datastring="123";
$.ajax({ 
        url: 'actualizarimagen.php',
        type: 'post',
        dataType: 'text',
        data: datastring,
        cache: false,
        success: function(response){
            $('.msg1').html(response);

         },
        error: function(response){
            $('.msg1').html(response);
         }

    });

And in actualizarimagen.php:

$desc_larga = print('<pre>') & print_R($_POST) & print('</pre>');
$insertSQL = sprintf("INSERT INTO prueba (texto) VALUES ($desc_larga)");

I get the success message, but in the database always saves 1. I tried changing everything, the dataType, the success, error, complete functions but it doesn't work. I was searching but any answers couldn't help me.

Thanks.

Edit: Added response

share|improve this question
    
The datastring is just a value, shouldn't it be a key/value pair? How would $_POST contain the value if there's no key for it? Or what value would it contain if given only a key? Also, what does print_R() do when given an array of key/value pairs like $_POST? – David May 17 '12 at 16:37
    
If you fix your input, then your output to the browser is vulnerable to XSS and your output to the database is vulnerable to SQL Injection. – Quentin May 17 '12 at 16:41
    
How should i change it to stop the sql injection? with php or js? thanks – Jorge Bellido May 17 '12 at 16:46
up vote 5 down vote accepted

Your datastring should contain data encoded as application/x-www-form-urlencoded

e.g.: var datastring="foo=123";

It is better not to pass a string to jQuery at all. Pass it an object and let it handle the encoding for you.

e.g.: data: { "foo": "123" }

share|improve this answer
    
Yes, that was the problem. Thanks. I need to wait 2 min to vote... – Jorge Bellido May 17 '12 at 16:47

data Object, String

Data to be sent to the server. It is converted to a query string, if not already a string. It's appended to the url for GET-requests. See processData option to prevent this automatic processing. Object must be Key/Value pairs. If value is an Array, jQuery serializes multiple values with same key based on the value of the traditional setting (described below).

You are just sending up 123 to the server.

It should be something like

var datastring="myField=123";

or

var datastring = {"myField" : 123 };

and with the PHP you would read it

$_POST["myField"]  
share|improve this answer

to send the data, there are format to be followed. Like

var datastring="var1=123&var2=abcd";

or

var datastring=[{name:'var1',value:123},{name:'var2',value:'abcd'}];

The second format (array of object name value) is like <input type="text" name="var1" value="123"> where html input element has name and value to be posted.

Then, you can get the value by :

$_POST['var1']  

or

$_POST['var2']  
share|improve this answer
    
A string containing a JavaScript object literal is not a suitable format. – Quentin May 17 '12 at 16:40
    
@Quentin But this link tells that it is the format – bitoshi.n May 17 '12 at 16:58

An example to achieve this easily could be:

JS:

var datastring="123";

$.post('actualizarimagen.php', { datastring:datastring }, function(data){
     if(data != 0){
        $('.msg1').html('correcto');
     } else {
        $('.msg1').html('error');
     } 
});

In your actualizarimagen.php:

if($_POST() && isset($_POST['datastring'])){

/* Connect to DB */
$link = mysql_connect('server', 'user', 'pwd');
if (!$link) {
    // No connection
    print(0);
    exit();
}

$db = mysql_select_db('db', $link);
if (!$db) {
    // DB selection error
    print(0);
    exit();
}

/* Sanitize the value */
$datastring = mysql_real_escape_string($_POST['datastring']);

// I don't understand here what you tried to do with $dec_larga but this is what I thought
$desc_larga = "<pre>".$datastring."</pre>";

/* Insert to DB */
$sql = "INSERT INTO prueba (texto) VALUES ('$desc_larga')";

if(mysql_query($sql,$link)){
    // Everything is Ok at this point
    print(1);
} else {
    // Error happened in your SQL query
    print(0);
}

}
share|improve this answer

In the ajax call:

data: my_var : datastring,

in the php:

$desc_larga = '<pre>'.$_POST['my_var'].'</pre>';
share|improve this answer
    
data: my_var : datastring, will produce a syntax error. – Quentin May 17 '12 at 16:40

try replacing

type: "post",

with

type: "POST",

and your datastring should be like this :

single=Single&multiple=Multiple&multiple=Multiple3&check=check2&radio=radio1

as explained here:

http://api.jquery.com/serialize/

share|improve this answer
var datastring = "123";
$.ajax({ 
   url: 'actualizarimagen.php',
   type: 'post',
   dataType: 'text',
   data: {data : datastring},
   cache: false
}).always(function(response) {
   $('.msg1').html(response);
});

And in actualizarimagen.php:

$desc_larga = '<pre>'.$_POST['data'].'</pre>';
$query =  '"INSERT INTO prueba (texto) VALUES ('.$desc_larga.')"';
share|improve this answer

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