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I'm adding data by using a hidden field. Initially it works and shows all the information I needed on my database. However, when I worked on it again, it only captures the same name as previous ones that was already captured before.

For example there is an image of an apple and when I add, it should show the name as apple. Then when I click on the image of a pear, clearly it should shows 'pear' as the name in my database. But instead of 'pear', it shows as apple. Does anyone knows why?

<form action="addOrder.php" method="post">
<td class="timgG"><h4><img src="apple.jpg" style="vertical-align: text-bottom;" title="Apple"/> Apple <br>
<input type="hidden" name="op" value="add">
<input type="hidden" name="name" value="Apple"> 
<input type="hidden" name="price" value="0.50">
<input type="submit" value="Add to Cart">
</h4></td>

<td class="timgG"><h4><img src="pear.jpg" style="vertical-align: text-bottom;" title="Pear"/> Pear <br>
<input type="hidden" name="op" value="add">
<input type="hidden" name="name" value="Pear"> 
<input type="hidden" name="price" value="0.50">
<input type="submit" value="Add to Cart">
</h4></td>
</form>


<?php
            if (isset($_SESSION['user_id'])) {
                //$order_id = $_POST['order_id'];
                $name = $_POST['name'];
                //$quantity = $_POST['quantity'];
                $price = $_POST['price'];

                $query = "INSERT INTO order_details (name,price) VALUES ('" . $name . "','" . $price . "')";
                $status = mysqli_query($link, $query) or die(mysqli_error($link));

                if ($status) {
                    $msg = "Item has been added.<br />";
                    $msg .= "<a href='product.php'>Back</a></p>";
                }
            } else {
                $msg = "There was an error processing the form.Please try again <a href=girls.php>Back";
            }
            ?>
share|improve this question
    
Its because your html inputs have the same name: "name". –  chriz Mar 27 '13 at 15:54
    
Warning: SQL injection possible! Use mysqli_real_escape_string or, better, use parameterized queries. –  Marcel Korpel Mar 27 '13 at 15:54
    
Because the "apple" is the first element of the array. Pear is second. –  bodi0 Mar 27 '13 at 15:54
    
you are not escaping data coming from the client. what happens if $_POST['name'] == '; DELETE ALL FROM ALL YOUR DATABASE ARE BELONG TO US –  Gung Foo Mar 27 '13 at 15:55
    
I think solution to your problem will be to use different forms for individual items as suggested by some .. because even if toy change name to name[] even then you dont have any way to recognize which submit is clicked unless until you use some javascript code –  alwaysLearn Mar 27 '13 at 16:07

4 Answers 4

up vote 0 down vote accepted

Use individual <form> for each item. The current setup (as you will notice if you set the other parameters differently) always uses the first definition of the hidden inputs inside your form.

Try using

<form action="addOrder.php" method="post">
<td class="timgG"><h4><img src="apple.jpg" style="vertical-align: text-bottom;" title="Apple"/> Apple <br>
<input type="hidden" name="op" value="add">
<input type="hidden" name="name" value="Apple"> 
<input type="hidden" name="price" value="0.50">
<input type="submit" value="Add to Cart">
</h4></td>
</form>

<form action="addOrder.php" method="post">
<td class="timgG"><h4><img src="pear.jpg" style="vertical-align: text-bottom;" title="Pear"/> Pear <br>
<input type="hidden" name="op" value="add">
<input type="hidden" name="name" value="Pear"> 
<input type="hidden" name="price" value="0.50">
<input type="submit" value="Add to Cart">
</h4></td>

share|improve this answer
    
thanks! it works(: @Squeezy –  nurf Mar 28 '13 at 15:22

You are using the same name attribute for the different products in the same form, so you will be overwriting your form fields.

You can use arrays to have multiple items with the same name:

<input type="hidden" name="name[]" value="Apple">
// etc.

And then in php, $_POST['name'] will be an array as well.

And you really should switch to prepared statements.

share|improve this answer

Your HTML inputs have the same name:

<input type="hidden" name="name" value="Apple"> 

<input type="hidden" name="name" value="Pear"> 

And since Apple is first, that's the first one that gets processed by the PHP.

A fix would be to either use two different forms with unique submit button names, or to have unique name's for your hidden inputs.

share|improve this answer
    
if my code were to be be <input type="hidden" name="apple" value="apple"> <input type="hidden" name="pear" value="Pear"> it does not capture anything on my database except the price of the items.. @chriz –  nurf Mar 28 '13 at 14:33
    
if you name it name="apple" then do if(isset($_POST['apple'])){$apple=$_POST['apple'];} then you can insert $apple into the database. you can do this with pear aswell –  chriz Mar 28 '13 at 14:45

use two different forms

<form action="addOrder.php" method="post">
<td class="timgG"><h4><img src="apple.jpg" style="vertical-align: text-bottom;" title="Apple"/> Apple <br>
<input type="hidden" name="op" value="add">
<input type="hidden" name="name" value="Apple"> 
<input type="hidden" name="price" value="0.50">
<input type="submit" value="Add to Cart">
</h4></td>
</form>
<form action="addOrder.php" method="post">
<td class="timgG"><h4><img src="pear.jpg" style="vertical-align: text-bottom;" title="Pear"/> Pear <br>
<input type="hidden" name="op" value="add">
<input type="hidden" name="name" value="Pear"> 
<input type="hidden" name="price" value="0.50">
<input type="submit" value="Add to Cart">
</h4></td>
</form>

also as a few people mentioned use mysqli_real_escape_string() when inserting something in your database

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