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I am trying to insert the value of this multiple checklist into the db column. This code not working. Can anyone spot the problem?

My database consists of a table called "colors" and one column called "color".

<?php
// connect to database
require "mysql_connect.php";
?>


<?php
// get value from the form
$color = $_POST['color'];

foreach($_POST['color'] as $colors){
$insert = mysql_query("INSERT INTO colors (color) VALUES ('$color')");
}
?>

<form action="add_color.php" method="post" enctype="multipart/form-data" name="colorform"     id="colorform">

<input type="checkbox" name="color[]" value="black" /> Black
<input type="checkbox" name="color[]" value="red" /> Red
<input type="checkbox" name="color[]" value="blue" /> Blue
<input type="checkbox" name="color[]" value="white" /> White

<input name="submit" type="submit" value="Add color" />

</form>

Thanks

share|improve this question
    
You have confused yourself with $color and $colors. –  husbas Mar 7 '12 at 15:28
    
Are you trying to insert into 4 different tables ($colors)? And where is the $color value defined? It seems that you may just have your variable names mixed up. –  swayne Mar 7 '12 at 15:33

5 Answers 5

up vote 1 down vote accepted

This is a nice way to add your colors

<?php

        require "mysql_connect.php";
    // connect to database
    $colors=array();
    // get value from the form
     if (isset($_POST['color']))  $colors = $_POST['color'];

    foreach($colors as $color)
    {
        mysql_query ("INSERT INTO colors ('color') VALUES ('$color')");
    }
?>

<form action="add_color.php" method="post" enctype="multipart/form-data" name="colorform"     id="colorform">

<input type="checkbox" name="color[]" value="black" /> Black
<input type="checkbox" name="color[]" value="red" /> Red
<input type="checkbox" name="color[]" value="blue" /> Blue
<input type="checkbox" name="color[]" value="white" /> White

<td><input name="submit" type="submit" value="Add color" />
</form>

if (isset($_POST['color'])) This condition is important because it will prevent an indexing error in case the array is empty

$colors=array(); Also, do declare your variables to prevent getting undeclared varibles, previously, in your code, this will happen if the user does not specify any color

Remember PHP is server-side and thus getting errors on PHP create loopholes for attacks. Try to read about PHP Best Practices, Its very impotant

Hopes it helps :-)

share|improve this answer

I would also suggest that you sanitize your from inputs before inserting into your database. You don't mention what type your color column is, could be a mismatch there as well.

When you say INSERT INTO $colors -- is that what you mean? Your table name is variable? You should probably have a proper table name in place of $colors.

In addition, you have used $color which I don't see defined, you probably meant to use $colors so it should be more like this:

INSERT INTO tblColors (color) VALUES ('$colors')

To check your return value to see what error you're getting:

$query = "INSERT INTO tblColors (color) VALUES ('$colors')";
$insert = mysql_query($query) or die("A MySQL error has occurred.<br />Your Query: " . $query . "<br /> Error: (" . mysql_errno() . ") " . mysql_error());
share|improve this answer
    
the closing tag is optional. –  Karoly Horvath Mar 7 '12 at 15:29
    
My table name is "colors" I meant "colors" instead of "$colors" (typing error). I changed the name as you suggested but it is still not working :( –  Sarah Hamed Mar 7 '12 at 15:32
    
I would suggest echoing your query strings to make sure you are putting what you think you're putting in. I'm assuming you've setup your database, and your database connection correctly. You might also check for mysql errors on your query as well. –  Alan Moore Mar 7 '12 at 15:36
    
My database consists of a table called "colors" and one column called "color". –  Sarah Hamed Mar 7 '12 at 15:39
    
What is the type of color column? –  Alan Moore Mar 7 '12 at 15:40
$insert = mysql_query("INSERT INTO $colors (color) VALUES ($color)");

Change it to:

$insert = mysql_query("INSERT INTO colors_table_name (color) VALUES ($color)");

Also, please check the return value of insert, maybe you are getting errors? First obvious problem was that the table name was being replaced with the color because of the variable, is this the desired effect?

share|improve this answer
    
problem spotted, but that's still an SQL injection vulnerability –  Karoly Horvath Mar 7 '12 at 15:30
    
I changed the name as you suggested but it is still not working :( –  Sarah Hamed Mar 7 '12 at 15:33
    
khm he also suggested checking for errors –  Karoly Horvath Mar 7 '12 at 15:38
<?php
// connect to database
require "mysql_connect.php";
?>


<?php
// get value from the form
$colors = $_POST['color'];

foreach($colors as $color){
    $insert = mysql_query("INSERT INTO colors (color) VALUES ($color)");
}


<form action="add_color.php" method="post" enctype="multipart/form-data" name="colorform"     id="colorform">

<input type="checkbox" name="color[]" value="black" /> Black
<input type="checkbox" name="color[]" value="red" /> Red
<input type="checkbox" name="color[]" value="blue" /> Blue
<input type="checkbox" name="color[]" value="white" /> White

<td><input name="submit" type="submit" value="Add color" />

</form>
share|improve this answer

You've got your variables backwards, SQL syntax errors, SQL injection vulnerabilities, and a total lack of error handling

$color = $_POST['color'];   <---stuff the POST data array into $color

foreach($_POST['color'] as $colors){   <--- loop over the POST data directly

$insert = mysql_query("INSERT INTO colors (color) VALUES ($color)");
                                                          ^^^^^^---insert the array
                                                          ^^^^^^---no quotes

You use $colors (with an S) to store the individual colors, but then insert $color, which is an array.

Never assume that a query has suceeded. If you'd have the bare minimum or die(...) error handling, you've have seen why your queries were failing:

foreach($_POST['color'] as $color) {
    $safe_color = mysql_real_escape_string($color);
    $result = mysql_query("INSERT INTO colors (color) VALUES ('$safe_color');") or die(mysql_error());
}
share|improve this answer
    
Thanks that sorted out some problems. Now my problem is when I echo $color it only prints out one value. For example, if I check black and red, it only prints red. If I select black and red and blue, it only prints blue. But it does not add anything to the database either way. –  Sarah Hamed Mar 7 '12 at 15:55
    
Where are you doing the echo? Inside the loop? It should print every color that. Make sure that you are getting the right values from the form by doing a var_dump($_POST) somewhere and see what shows up. –  Marc B Mar 7 '12 at 16:01
    
After selecting the first 3 colors and submitting I got this: ["color"]=> array(3) { [0]=> string(5) "black" [1]=> string(3) "red" [2]=> string(4) "blue" } –  Sarah Hamed Mar 7 '12 at 16:10
    
Ok. that's what you should be getting. So most likely you've got an error in the loop, or are doing the output in the wrong spot so you only see a single value. –  Marc B Mar 7 '12 at 16:11
    
Ah. Now it did store in the database. But it only stored 1 color which is "black". It was meant to store black, red, blue. –  Sarah Hamed Mar 7 '12 at 16:13

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