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  $.ajax({  
            type: "POST",  
            url: "contacts.php",  
            data: dataString,  
            cache: false,  
            success: function(data, status, settings)  
            {  
               alert(The request URL and DATA);
            }  
            ,
            error: function(ajaxrequest, ajaxOptions, thrownError)  
            {  

            }  
        });

How can I alert the The request URL and DATA parameters inside the Success function?

Thank You

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1  
"How can I alert the The request URL and DATA parameters inside the Success function?" FWIW, alert-style debugging went out of style at least five years ago, and certainly today there are dramatically better options. Every major browser offers a built-in debugger, and most of them are pretty good. You can put a breakpoint inside your success function, inspect the live data, single-step through your code, etc., etc. It's a much, much faster way to find bugs and such. –  T.J. Crowder Jan 23 '12 at 12:21

2 Answers 2

up vote 13 down vote accepted

You can simply;

success: function(data, textStatus, jqXHR)
{
   alert(this.data + "," + this.url); 
}
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Adapted from Alex K.'s answer, but using console.log instead:

success: function(data, textStatus, jqXHR)
{
   console.log(this.data + "," + this.url); 
}

This will output the data to the debugging console instead of a modal dialog.

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