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I receive a variable from the mysql database named $option which in this case could be '1' or '2'. What is the correct PHP code to add the 'selected="selected"' code to $option 1 the corresponding option in the list?

<select name="select-list">
<option value='1'>option 1</option>
<option value='2'>option 1</option>             
</select>
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3 Answers 3

up vote 2 down vote accepted
<select name="select-list">
<option value='1' <?php if ($option == '1') { echo "selected"; } ?>>option 1</option>
<option value='2' <?php if ($option == '2') { echo "selected"; } ?>">option 1</option>             
</select>

like this?

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Have you read the question at all? or only the title? –  Second Rikudo Oct 8 '11 at 18:37
    
i edited it.no need to downvote all the comments tho –  Dzoki Oct 8 '11 at 18:39
    
downvote is done when the answer is wrong. Since you edited it, I removed the downvote. Happy answering :) –  Second Rikudo Oct 8 '11 at 18:42
    
upvote to offset Rikudo Sennins immaturity. –  espradley Oct 8 '11 at 18:43
    
($option == '1' && $option != '2') is rather redundant... if the first is true the second will always be true, and vice versa. Just write ($option == '1'). –  Amber Oct 8 '11 at 18:44

This is how I would do it.

<?php
    $select-list = (str) $_POST['select-list'];  //or however you retrieve this value
?>

<select name="select-list">
<option value='1' <?php if($select-list === "1"){ echo "selected"; }?>>option 1</option>
<option value='2' <?php if($select-list === "2"){ echo "selected"; }?>>option 1</option>             
</select>
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Nope, still wrong. The varaible $option is defined to have come from the mysql query, the OP stated that, no one ever talked about the $_POST. –  Second Rikudo Oct 8 '11 at 18:43
    
Not sure of you even read the answer Rikudo but it says "or however you retrieved this value." –  espradley Jun 28 at 18:42

Just add the selected property to the item you want selected.

<select name="select-list">

    <option value='1'>option 1</option>
    <option value='2' <?php if ($option === '2') { echo "selected" } ?>>option 2</option>             

</select>
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@downvoter explain? –  Second Rikudo Oct 8 '11 at 18:38
1  
This is completely wrong. You need to make sure 1st you show that option is being set to the $_POST and second, you need to use the === sign instead. When your done with that, you should stop marking others questions down to get yours at the top. –  espradley Oct 8 '11 at 18:39
    
I didn't mark anyone to get my answer to the top, I marked their answers because they plain wrong. And it doesn't matter if its == or === as as the result (in case coming from the database) will always be a string. No one ever said it should be set to the $_POST. –  Second Rikudo Oct 8 '11 at 18:39
    
How exactly is mine wrong? and upvoting another user answer is the immaturity here, and I suggest we stop it here. –  Second Rikudo Oct 8 '11 at 18:44
    
For starters, your can't be sure the 2 here is a string... I do see that you changed your answer per my suggestion to have the === comparison operator already, yet 2 could come in as an integer or a string depending on how they get it. –  espradley Oct 8 '11 at 18:50

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