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For usability purposes I like to set up my form fields this way:

<?php

$username = $_POST['username'];
$message  = $_POST['message'];

?>

<input type="text" name="username" value="<?php echo $username; ?>" />

<textarea name="message"><?php echo $message; ?></textarea>

This way if the user fails validation, the form input he entered previously will still be there and there would be no need to start from scratch.

My problem is I can't seem to keep check boxes selected with the option that the user had chosen before (when the page refreshes after validation fails). How to do this?

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6 Answers

My first suggestion would be to use some client-side validation first. Maybe an AJAX call that performs the validation checks before continuing.

If that is not an option, then try this:

<input type="checkbox" name="subscribe" <?php echo (isset($_POST['subscribe'])?'checked="checked"':'') ?> />

So if subscribe is = 1, then it should select the box for you.

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It's checked="checked" not selected –  ThoKra Mar 21 '10 at 22:19
    
Fixed, sorry. I was thinking <option> tags. –  St. John Johnson Mar 21 '10 at 22:21
    
This will produce an array index undefined warning if the checkbox is unchecked. –  Asaph Mar 21 '10 at 22:25
    
@Asaph, good point, I changed it to isset. If the value is sent via POST, it HAS to be 1 (meaning checked). Therefore, we can just check to see if the key exists. –  St. John Johnson Mar 21 '10 at 22:27
1  
@Johnson You know that you can use the value="" attribute with the checkbox too? So it doesn't have to be 1, but no matter what the value is, and if it's checked, then it's at least set . So the isset() is a good way to go –  ThoKra Mar 21 '10 at 22:50
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I have been battling how to create sticky check box (that is able to remember checked items any time you visit the page). Originally, I get my values from a database table. This means that my check box value is entered to a column on my db table.

I created the following code and it works just fine. I did not want to go through that whole css and deep coding, so...

CODE IN PHP

$arrival = ""; //focus here.. down
if($row['new_arrival']==1) /*new_arrival is the name of a column on my table that keeps the value of check box*/
{$arrival="checked";}// $arrival is a variable
else
{$arrival="";};
echo $arrival;

<b><label for ="checkbox">New Arrival</label></b>&nbsp;&nbsp;&nbsp;
<input type="checkbox" name ="$new_arrival" value="on" '.$arrival.' /> &nbsp;(Tick box if product is new) <BR><BR>
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<input type="checkbox" name="somevar" value="1" <?php echo $somevar ? 'checked="checked"' : ''; ?>/>

Also, please consider sanitising your inputs, so instead of:

$somevar = $_POST['somevar'];

...it is better to use:

$somevar = htmlspecialchars($_POST['somevar']);
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I have to ask why so many downvotes for this. It's a good answer, but just missing explanation and code tags. (use four spaces or `s to start code syntax) –  St. John Johnson Mar 21 '10 at 22:20
    
I think it's because I had to edit it a load of times. I just bashed something out quickly without previewing it and had to correct it about 3 times. >_< –  p.g.l.hall Mar 21 '10 at 22:22
1  
+1 for mentioning sanitizing the input. –  Duncan Mar 21 '10 at 23:08
    
Why sanitizing when you're just checking if the value exists? No need. –  ThoKra Mar 22 '10 at 18:46
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When the browser submits a form with a checked checkbox, it sends a variable with the name from the name attribute and a value from the value attribute. If the checkbox is not checked, the browser submits nothing for the checkbox. On the server side, you can handle this situation with array_key_exists(). For example:

<?php
$checkedText = array_key_exists('myCheckbox', $_POST) ? ' checked="checked"' : '';
?>
<input type="checkbox" name="myCheckbox" value="1"<?php echo $checkedText; ?> />

Using array_key_exist() avoids a potential array index undefined warning that would be issued if one tried to access $_POST['myCheckbox'] and it didn't exist.

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You can use isset instead, it's faster as it is a language construct and not a function. The only case where you would need array_key_exist instead of isset is if the value of the array at that key was "null" This will never happen in POST/checkbox data. –  St. John Johnson Mar 21 '10 at 22:38
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You may add this to your form:

<input type="checkbox" name="mycheckbox" <?php echo isset($_POST['mycheckbox']) ? "checked='checked'" : "" ?> />

isset checks if a variable is set and is not null. So in this code, checked will be added to your checkbox only if the corresponding $_POST variable has a value..

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-1 identical answer as mine. And checked is not XHTML valid. It needs to be checked="checked" –  St. John Johnson Mar 21 '10 at 22:40
1  
Corrected checked for xhtml compliance. Disclaimer: I didn't bother with xhtml compliance in the first place since the answer is intended to answer the question directly. Identical would mean you explained what isset does, which you didn't. –  Randell Mar 21 '10 at 22:55
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My array has name="radioselection" and value="1", value="2", and value="3" respectively and is a radio button array... how to I check if the radio value is selected using this code I tried:

<?php echo (isset($_POST['radioselection']) == '1'?'checked="checked"':'') ?> />
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