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I recieved the following warning:

Warning: implode() [function.implode]: Invalid arguments passed.

What caused this and how can I fix it?

$title = $_POST[photo_name_id];
if($title)
{
    foreach($title as $titled)
    {
        $judul[] = $titled;
    }
}

$titleds = "('".implode("'), ('",$judul)."')";

and this is my form:

<tr>
    <td> 
        <?  
        $pm1= mysql_query("SELECT photo_name FROM photo_name WHERE photo_name_id = 1");
        $dpm1 = mysql_fetch_array ($pm1);echo"$dpm1[0]"
        ?> 
        <input type='hidden' name='photo_name_id[]' value='<?echo"$dpm1[0]"?>'> :  
    </td>
</tr>
<tr>
    <td> 
        <?  
        $pm1= mysql_query("SELECT photo_name FROM photo_name WHERE photo_name_id = 2");
        $dpm1 = mysql_fetch_array ($pm1);echo"$dpm1[0]"
        ?>
        <input type='hidden' name='photo_name_id[]' value='<?echo"$dpm1[0]"?>'> :  
    </td>
</tr>
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3  
Obviously $judul is not an array, which means $title evaluates to false. Find out why. (Also, what's the point of making $judul a copy of $title? You already have the original!) –  Jon Aug 1 '12 at 8:20
    
@mikeymeows thanks for the feedback and edit my question mikeymeows. You are right and i still learning in php and sory for my english –  Meiju Nainggolan Aug 1 '12 at 9:05

3 Answers 3

up vote 1 down vote accepted

What happens if $title evaluates to false? Then your if statement won't execute and the array won't be created. implode() will complain with a warning because an unset variable is passed in. It wanted an array.

You should either initialize $judul to an empty array or place the implode in your if.

Also, quote your array keys. It's bad practice not to, because initially PHP assumes they are constants.

$title = $_POST['photo_name_id'];
if($title) {
    foreach($title as $titled) {
            $judul[] = $titled;
    }

    $titleds = "('" . implode("'), ('", $judul) . "')";
}

Or this (more preferable, because $titleds will always be set):

$title = $_POST['photo_name_id'];
$judul = array();

if($title) {
    foreach($title as $titled) {
            $judul[] = $titled;
    }
}

$titleds = "('" . implode("'), ('", $judul) . "')";

However this all prompts the question. Why are you copying $title into a new array. Why not just do:

$title = $_POST['photo_name_id'];

if(!is_array($title)) {
    $title = array();
}

$titleds = "('" . implode("'), ('", $title) . "')";
share|improve this answer
    
i m just a newbie man.. i m still learning... heheheh thanks for the feedback –  Meiju Nainggolan Aug 1 '12 at 8:30
    
@MeijuNainggolan Basically if you replace your current code with the last code block everything should work with no warnings. –  PhpMyCoder Aug 1 '12 at 8:32
    
ok ill try that –  Meiju Nainggolan Aug 1 '12 at 8:35
    
this is very usefull, thanks for advice man... –  Meiju Nainggolan Aug 1 '12 at 8:37
    
@MeijuNainggolan No problem. Welcome to SO! –  PhpMyCoder Aug 1 '12 at 8:39

Try to add :

$judul = array();

Before to initialize $judul as an array.

$judul = array();

$title = $_POST[photo_name_id];
if($title)
{
    foreach($title as $titled)
    {
        $judul[] = $titled;

    }
}

$titleds = "('".implode("'), ('",$judul)."')";
share|improve this answer
    
i try that and the warning is gone, thanks man .. –  Meiju Nainggolan Aug 1 '12 at 8:23
    
Your welcome, please validate my answer :) –  Aelios Aug 1 '12 at 8:24
    
With your optimized code, if $title is not an array it will still a warning. Also, you have a typo. You typed $titled instead of $title. –  PhpMyCoder Aug 1 '12 at 8:29
    
@Aelios You didn't. On the first line of your optimized code you set the variable $title. On the fourth line you use the variable $titled which is not set within your snippet. Essentially you'll get the same warning that the OP had before –  PhpMyCoder Aug 1 '12 at 8:34
    
@Aelios You don't have to remove it. Just fix that typo! :P –  PhpMyCoder Aug 1 '12 at 8:36

Make sure $judul is an array. PHP implode needs parameters (string, array). See this.

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