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I am having trouble showing a row from a database which has a list of skills as an array which is delimited by a commas. Fully annotated code with explanation below is what i've done sor far. All help is much appreciated. Thanks in advance.

// DB Connection here

    // Execute Query 
    $sql        =   "SELECT id, skills FROM p_info";
    $result     =   mysql_query($sql);
    $row        =   mysql_fetch_array($result);

    // Delimit array by comma
    $myArray = explode(',', $row['skills']);

    // Store as array
    $myArr   = array($myArray);

    /** 
    Assume the value of is skills row in the database is: type 1, type 2,  type 3, type 4 
    i would like to show these values each on a seperate <li> element hence using a loop. 

    <li> type 1</li>
    <li> type 2</li>
    <li> type 3</li>
    <li> type 4</li>

    My guess would be to use foreach loop..but im a little confused how to  go about this. Here whats i think logically:

    **/
    ?>
        <ul>
        <?
            foreach ( $myArr as $skills ) { 
        ?>
            <li><?=$myArr;?></li>

        <? 
            } // End loop 
        ?>
        </ul>

    <!-- Can someone tell me what im doing wrong? im fairly new to PHP but im a quick learner. :) -->
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4 Answers 4

up vote 0 down vote accepted

Remove $myArr = array($myArray); and do foreach ( $myArray as $skills ) { instead. You are putting your array within a new array, so when you try to loop through it you end up with the original array.

Also change <?=$myArr;?> to <?=$skills;?>, you are looping through $myArray and storing every part in $skills temporarily, $myArray doesn't change so it's useless trying to echo it.

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Thank you. I see my error, abit clumsy not to notice it. Worked. :) –  Kay Shah Aug 13 '11 at 11:18
    
On an other note; you might want to refrain from using the short-form <?= instead of <?php echo, as the first alternative isn't 100% reliable (might or might not be supported on server x). If you know for certain that the short_tags-directive will be enabled on each and every server you'll be using, no problem - if not, you better start using the full-scaled syntax. '<?php echo' > ('<?=' + broken code) any day of the week. :D –  ninetwozero Aug 13 '11 at 13:14

explode already returns an array. Wrapping that result in an array will give you something like this:

array(array('foo', 'bar', 'baz'))

When looping over the outer array, of course you won't get the results of the inner array. Just get rid of $myArr = array($myArray) and use $myArray.

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Thank you :) worked. –  Kay Shah Aug 13 '11 at 11:18
  • The "store as array" line is not needed. $myArray is already an array.
  • Write <li><?php echo $skills; ?> instead of $myArr. That's the array.
  • Don't use short open tags (<?) use <?php instead
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Thank you very much. it worked a charm. Can i ask the reason for using full tags rather than short? (just for reference) –  Kay Shah Aug 13 '11 at 11:18
    

No need to do $myArr = array($myArray); as explode() already returns an array.

You can always do a var_dump($myArray) on your array or any other variable to see what's in there.

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All your help is much appreciated. Very fast, this is the firt time i used web help, usually i sit n grind it til i figure it out.. wasn't expecting a reply, not till tomorrow at least. :) –  Kay Shah Aug 13 '11 at 11:19

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