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This a standard form submitter in jQuery:

<script>
$(document).ready(function(){  
    $("form#submit").submit(function() {  
        var fname = $('#fname').attr('value');  
        var lname = $('#lname').attr('value');  
        $.ajax({  
            type: "POST",  
            url: "report.php",  
            data: "fname="+ fname +"& lname="+ lname,  
            success: function(){  
                $('form#submit').hide(function(){ 
                    $('div.success').show();
                });    
            }
        });  

        return false;  
    });
}); 
</script>

and here are the forms:

<form id="submit" name="submit">
<input id="fname" name="fname" size="20" type="hidden" value="aword">  <font class='black'>report:</font>
<input id="lname" name="lname" size="40" type="text">  
<button id="send">send</button>
</form>

<form id="submittwo" name="submittwo">
<input id="fname" name="fname" size="20" type="hidden" value="anoterword">  <font class='black'>report:</font>
<input id="lname" name="lname" size="40" type="text">  
<button id="send">send</button>
</form>

report.php:

<?php
$fname = htmlspecialchars(trim($_POST['fname']));  
$lname = htmlspecialchars(trim($_POST['lname']));  
$myFile = "reports.txt";
$fh = fopen($myFile, 'r');
$theData = fread($fh, filesize($myFile));
$fh = fopen($myFile, 'w') or die("can't open file");
$stringData = "\n".$fname."\n";
fwrite($fh, $stringData);
$stringData = $lname."\n";
fwrite($fh, $stringData);
fwrite($fh, $theData);
fclose($fh);
?>

There will be more forms looped with PHP. What I want to do is to submit them separately. Any idea how or can you tell me where I can find an answer?

share|improve this question
    
use submit on each form separately i guess :| –  3nigma Jul 17 '11 at 19:35

3 Answers 3

up vote 1 down vote accepted

iff i have understood the question well this can help

$('form').submit(function(e){
    e.preventDefault(); // prevent the default behaviour of the form submit

    var fname = $("#fname",this).val(); // get the fname of the submitted form
    var lname = $("#lname",this).val(); // get the lname of the submitted form
    $.ajax({  
            type: "POST",  
            url: "report.php",  
            data: "fname="+ fname +"& lname="+ lname,  
            success: function(){  
                $('form#submit').hide(function(){
                    $('div.success').show();
                });    
            }
        });  
    });

here is a fiddle http://jsfiddle.net/fG8T3/

share|improve this answer

You could just use one form, but change the names of your fields

<form id="submit" name="submit">
   <input id="fname" name="fname[]" size="20" type="hidden" value="aword">  
   <input id="lname" name="lname[]" size="40" type="text">

   <input id="fname" name="fname[]" size="20" type="hidden" value="anoterword"> 
   <input id="lname" name="lname[]" size="40" type="text">
   <input type="submit" value="send" />
</form> 

Now you can iterate through the GET data as an array:

foreach ($_GET['fname'] as $index => $value)
{
   echo $_GET['fname'][$index].' '.$_GET['lname'][$index];
}

Note: ID's should be unique.

share|improve this answer

It's not very clear where you're having the problem but if you're trying to submit them without leaving the current page you may be looking for the jQuery Form plugin. It makes it a bit easier to submit forms and display the results so you won't be doing it manually as you are in the code you posted.

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