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I'm submitting a form via HTML into a POST PHP page, which is then storing that info into the MySQL database. One of the input fields is a number field that can start with zero. I've set the HTML data type to text on the form and tried setting the MySQL data type to text and varchar, and both times the zero before the integer gets dropped. I'm not quite sure what I'm doing wrong.

Here is my PHP code for table creation:

$sql = "CREATE TABLE IF NOT EXISTS $tablename_db (
ID int NOT NULL AUTO_INCREMENT,
PRIMARY KEY(ID),
num text(4),
amnt DECIMAL(8,2)
);";

And here is what the form field looks like:

<div id="input1" class="cinput">
    # (last 4 digits): <input id="cnum" type="text" name="num[]" maxlength="4"     size="4" /> Amount: <input id="camnt" type="int" name="amnt[]" /> </br>
</div>

Using this, a number like 0125 inputted to 'cnum' is saved as 125. What am I doing wrong?

EDIT: Here is the code in its entirety, just so it's clear what I'm doing. It's not a very long code (possible typos as I tried to transfer things onto here).

<?php

if(isset($_POST['submit']))
{
//Get Current User Login
global $current_user;
$current_user = wp_get_current_user();
$ulog = $current_user->user_login;
$tablename = "db_".$ulog;

//Check To See If User Has Already Created Table
$sql = "CREATE TABLE IF NOT EXISTS $tablename (
ID int NOT NULL AUTO_INCREMENT,
PRIMARY KEY(ID),
num text(4),
amnt DECIMAL(8,2)
);";

mysql_query($sql);

$num = $_POST['num'];
$amnt = $_POST['amnt'];

$items = array_combine($num,$amnt);
$pairs = array();

foreach($items as $key=>$value)
{
    if($key != 'submit')
    {   
        if($value != '')
        {
            $pairs[] = '('.intval($key).','.intval($value).')';
        }
    }
}

if (!mysql_query('INSERT INTO ' .$tablename. '(num, amnt) VALUES '.implode(',',$pairs)))
    die('Error: ' . mysql_error());
    else
        echo '<strong>', "Your information has been submitted and will be added to your account upon approval.", '</strong>', "/n";


}
?>

<html>

<head>
<title></title>
<script src="http://ajax.googleapis.com/ajax/libs/jquery/1.3/jquery.min.js"></script>

<script type="text/javascript">
    $(document).ready(function() {
        $('#btnAdd').click(function() {
            var num     = $('.ccinput').length; // how many "duplicatable" input fields we currently have
            var newNum  = new Number(num + 1);      // the numeric ID of the new input field being added

            // create the new element via clone(), and manipulate it's ID using newNum value
            var newElem = $('#input' + num).clone().attr('id', 'input' + newNum);

            // insert the new element after the last "duplicatable" input field
            $('#input' + num).after(newElem);

            // enable the "remove" button
            $('#btnDel').attr('disabled','');

            // business rule: you can only add 20 names
            if (newNum == 20)
                $('#btnAdd').attr('disabled','disabled');
        });

        $('#btnDel').click(function() {
            var num = $('.ccinput').length; // how many "duplicatable" input fields we currently have
            $('#input' + num).remove();     // remove the last element

            // enable the "add" button
            $('#btnAdd').attr('disabled','');

            // if only one element remains, disable the "remove" button
            if (num-1 == 1)
                $('#btnDel').attr('disabled','disabled');
        });

        $('#btnDel').attr('disabled','disabled');
    });
</script>
</head>

<body>

Please fill in your information in the form below and press submit. If you need to add    more, please click the "Add" button at the bottom of the form. You may enter a maximum of   20 at a time. Leave all unused fields blank.

<form method="post" action="<?php echo htmlentities($PHP_SELF); ?>">
<fieldset>
<legend>Information:</legend>
<div id="input1" class="ccinput">
    # (last 4 digits): <input id="cnum" type="text" name="num[]" maxlength="4" size="4" /> Amount: <input id="camnt" type="int" name="amnt[]" /> </br>
</div>
<div>
    <input type="button" id="btnAdd" value="Add" />
    <input type="button" id="btnDel" value="Remove" />
</div>
</fieldset>
<input type="submit" value="Submit" name="submit" />
</form>

</body>
</html>

After much debugging, I believe that the error is somewhere in these two sections.

Section 1:

$sql = "CREATE TABLE IF NOT EXISTS $tablename_db (
ID int NOT NULL AUTO_INCREMENT,
PRIMARY KEY(ID),
num text(4),
amnt DECIMAL(8,2)
);";

Or it might be in this line:

if (!mysql_query('INSERT INTO ' .$tablename. '(num, amnt) VALUES '.implode(',',$pairs)))

The code seems to maintain the format perfectly all the way up to this line. Therefore I think that the zero is being dropped while being inserted into the MySQL database. I'm not sure why it's doing it though...

share|improve this question
    
When u do the insert, did you print the sql query and see if the value do comes with 0? If it is , did you run the query directly in mysql to see if the query execute fine with result inserted correctly? –  sel Aug 7 '12 at 2:03
    
Consider entering say a125 and see the result. Consider testing in other browsers also. I assume either browser or other man-in-the-middle strips first zero from a string. –  Petr Abdulin Aug 7 '12 at 2:05
2  
You're casting it to a number somewhere in PHP. The form is sending it with the 0,.. unless you have javascript removing it. –  Stephen Sarcsam Kamenar Aug 7 '12 at 2:07
    
I do have some javascript running, but it's not removing anything. It's only used to dynamically change the number of input fields. The action form is a $PHP_SELF and I'm running it through 'htmlentities'. Could this possibly have something to do with it? This is the form action: <form method="post" action="<?php echo htmlentities($PHP_SELF); ?>"> –  user1562781 Aug 7 '12 at 2:23
    
Please, post the php code that handles the insertion. –  stummjr Aug 7 '12 at 2:24
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4 Answers

intval() means "take the string and convert it to an integer", and this is what is causing the string "01234" to come out as the number 1234.

Remove it from $pairs[] = '('.intval($key).','.intval($value).')'; and for the number field, since you want to insert it as text; encapsulate it in quotes '$value'.

share|improve this answer
    
I changed it to: $pairs[] = '('.$key.','.$value.')'; and it still does the same thing. –  user1562781 Aug 7 '12 at 4:01
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You are converting your string to int at this line:

$pairs[] = '('.intval($key).','.intval($value).')';

After that, you do the insert, using the values from $pairs (which now contains two integers):

mysql_query('INSERT INTO ' .$tablename. '(num, amnt) VALUES '.implode(',',$pairs))

You should replace:

$pairs[] = '('.intval($key).','.intval($value).')';

with:

$pairs[] = '('.$key.','.$value.')'; 
share|improve this answer
    
I changed it to: $pairs[] = '('.$key.','.$value.')'; and it still does the same thing. –  user1562781 Aug 7 '12 at 4:02
    
Have you tried to inspect the content of $_POST['num'] before the foreach? You could do it by echoing its value, just to check the value. –  stummjr Aug 7 '12 at 13:49
    
Yeah, I echoed every line. I've updated my original questions with the details. After much debugging, the error seems to come from the MySQL queries. It's either when I create the table or when I'm inserting the data into the table. I'm not sure which is doing it. The 0 before the integer is maintained all the way up to when it gets entered into the MySQL database. –  user1562781 Aug 7 '12 at 17:46
    
Querying the database directly from a MySQL client returns the number with or without the 0? –  stummjr Aug 7 '12 at 19:08
    
Querying directly from MySQL gives the number without the zero. This is also true when viewing the table directly from PHPMyAdmin. This MySQL database is also producing 2 other errors where it's converting the data into other formats, and I'm not exactly sure why. I've checked every line, but my experience is very limited so I may have missed something. –  user1562781 Aug 7 '12 at 19:22
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up vote 1 down vote accepted

Someone helped me realize my mistake. I was missing a quotation in the $pairs[] line and instead of entering it into MySQL as a string, it was going in as an integer and that's why MySQL was dropping the zero. Everything is working perfectly now.

share|improve this answer
add comment

instead of intval you can use something like this

function toNumeric($str)
{
    return is_numeric($str) ? $str : preg_replace('/\D/',null,$str);
}
share|improve this answer
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