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I have a loop to go through an array and each checkbox that is selected I want to put the value (also brought in dynamically) into my QuestionSelected table. I get this error "Warning: Invalid argument supplied for foreach()" and I cannot get the results into my table. Here is the code I am trying:

//Declare the QuestionID as a array
$QuestionID = array();


while($row = mysqli_fetch_array($run,MYSQLI_ASSOC)){
echo '<div id="QuestionSelection"><input id="chkQuestion" type="checkbox" value=" '.$row['QuestionID'].'" name="question_'.$row['QuestionID'].'">' .$row['Question']. '</p></div><br/><br/>';

//Assign the QuestionID from the table to the var
$QuestionID[] = $row['QuestionID'];

}


if($_POST['submitted']) { 


$ids_list = '';

foreach($_POST["QuestionID"] as $id)
{
$ids_list .= (strlen($ids_list) > 0 ? ',' : '').mysql_real_escape_string($id);
}

$sql2 = "INSERT INTO tbl_QuestionSelected (`QuestionID`) VALUES (".$ids_list.")";

}//End of IF 'submitted
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8  
$_POST["QuestionID"] isn't an array. –  Florent Jul 12 '12 at 16:03
2  
Please, don't use mysql_* functions to write new code. They are no longer maintained and the community has begun deprecation process. See the red box? Instead you should learn about prepared statements and use either PDO or MySQLi. If you can't decide which, this article will help you. If you pick PDO, here is good tutorial. –  rdlowrey Jul 12 '12 at 16:05
    
input name should be QuestionID[] –  Waygood Jul 12 '12 at 16:06
    
If I do a print_r(QuestionID) it returns 3 results so it looks as though its populating correctly? Wouldn't this be the right way to see? –  Keith Montgomery Jul 12 '12 at 16:06
    
do print_r($_POST['QuestionID']); as this is what you are foreach-ing –  Waygood Jul 12 '12 at 16:08

2 Answers 2

The problem is that in your form, you are not using an array, but building the name values like:

name="question_'.$row['QuestionID'].'"

So $_POST["QuestionID"] does not exist and is not an array.

You can change your name building to:

name="QuestionID[]"

So that it is an array and you can even use the actual id as a key:

name="QuestionID[' . $row['QuestionID'] . ']"
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I was under the assumption that my attempt is building name values and value values both (as ridiculous as that sounds) I wanted each checkbox to have a new name and then the value be my questionID from my table –  Keith Montgomery Jul 12 '12 at 16:32
    
I just did print_r($QuestionID); and got the result: Array ( [0] => 1 [1] => 2 [2] => 3 ) before I try this foreach loop. So my array values are in $QuestionID based on my understanding. So my issue is with the foreach and something I have done there. I just can't figure out what. Sorry if I'm missing something in your explaination –  Keith Montgomery Jul 12 '12 at 16:43

This resolves the issue and works:

$ids_list = '';

foreach($_POST["QuestionID"] as $key=>$value) {
{
$ids_list .= (strlen($ids_list) > 0 ? ',' : '').mysql_real_escape_string($value);
}

$sql2 = "INSERT INTO tbl_QuestionSelected (`QuestionID`) VALUES (".$ids_list.")";

//Run the query 
$run2 = @mysqli_query ($conn,$sql2);


}
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