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The AJAX-PHP bug has bit me again.Now here's the problem
I am to send some form data from HTML to PHP using AJAX,(I'm using jQuery for this) and then use that data, play with it in PHP and give some result.
The Ajax call is made successfully, but the issue is that not all data is being sent to PHP that is some data goes missing if I interpreted it correctly
The jQuery/Ajax Code

$(document).ready(function(){
$("#button").click(function(e){
   e.preventDefault();
     var data=$("#Form").serialize();
       console.log(data);
         $.ajax({

        type:'POST',
        url:('php/api.php'),
        data:"datastring="+data,
        success: function(d){           
        console.log("php response "+d);
      }         

       });
   });

 });

And the PHP

<?php
   $data=$_POST['datastring'];
   echo($data);
?>

Now here's the output from the console

     first+name=first&last+name=second&some+detail=third&comments=fourth //output from 1st          console.log() statement
  php response first name=first //output from php

As you can see from the above statement only the first value is echoed why? Does it mean it did not recieve the full value from AJAX?

Thanks

share|improve this question
1  
ok first, the last bit of the code, thats not what php printed out... php response first name=first //output from php could you only include what the php file included? try removing datastring from ` data:"datastring="+data,` and try it –  Ahoura Ghotbi Apr 5 '13 at 5:48
    
Use Firebug to see what's sent over the wire. –  Niko Sams Apr 5 '13 at 5:50
    
Well then how do I reference it in PHP, I have tried that but I get Undefined index: data error –  lazyprogrammer Apr 5 '13 at 5:51
    
you got it is't only sending the First Name, but the question is WHY?? –  lazyprogrammer Apr 5 '13 at 5:53
    
the answers are below, it is sending everything, you are just outputting it incorrectly –  francisco.preller Apr 5 '13 at 5:55

2 Answers 2

up vote 2 down vote accepted

Why are you assigning it to datastring?

Just add the datastring without the predecessor to it.

$.ajax({
    type:'POST',
    url:'php/api.php',
    data:data,
    success: function(d){           
    console.log("php response "+d);
  }
});

Then in your php:

<?php print_r($_POST); ?>

Edit: fixed the php side. Thanks! unfixed it though!

share|improve this answer
1  
no need to echo before print_r. –  Jay Hardia Apr 5 '13 at 5:52
    
Good point, I had initially planned to echo <pre> tags but left it out for simplicity, +1 for the spot! –  francisco.preller Apr 5 '13 at 5:53
    
if you put the echo away, you need to put the , 1 in print_r away as well :) –  scones Apr 5 '13 at 5:55
    
I removed the echo though :P –  francisco.preller Apr 5 '13 at 5:56
    
@francisco.preller Spot on thanks.. will accept it in 3 minutes –  lazyprogrammer Apr 5 '13 at 5:57

I suggest you, don't put any () in the url :

 $.ajax({
    type:'POST',
    url:'php/api.php',
    data:{data : $("#Form").serialize()}, //<---You can put the directly here
    success: function(d){           
       console.log("php response "+d);
    }         
});

and in php file again remove the () from echo($data); in use $_POST['data'];:

<?php
   $data=$_POST['data'];
   echo $data;
?>

Try this and see if helps.

share|improve this answer
    
There is never a data variable passed, he should just assign $_POST to $data. Or better yet, skip assigning alltogether :] –  francisco.preller Apr 5 '13 at 5:54
    
That's correct. no data is passed –  lazyprogrammer Apr 5 '13 at 5:56
    
Oh Thanks @francisco.preller just fixed it. –  Jai Apr 5 '13 at 5:57
    
Yep, he fixed it thanks anyway –  lazyprogrammer Apr 5 '13 at 5:58

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