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I cannot seem to figure it out but I am getting an error in my php/mysqli stating:

Warning: Invalid argument supplied for foreach() in /.../ on line 28

My question is that how can the above warning be fixed so that I can loop over the insert to be able to provide all of the inserts into the db:

<?php

ini_set('display_errors',1); 
 error_reporting(E_ALL);

 // connect to the database
 include('connect.php');

  /* check connection */
  if (mysqli_connect_errno()) {
    printf("Connect failed: %s\n", mysqli_connect_error());
    die();
  }

$studentid = (isset($_POST['addtextarea'])) ? $_POST['addtextarea'] : ''; 
$sessionid = (isset($_POST['Idcurrent'])) ? $_POST['Idcurrent'] : '';   

$insertsql = "
INSERT INTO Student_Session
(SessionId, StudentId)
VALUES
(?, ?)
";
if (!$insert = $mysqli->prepare($insertsql)) {
// Handle errors with prepare operation here
}                                       

foreach($studentid as $id)
{    

$insert->bind_param("ii", $sessionid, $id);

$insert->execute();

if ($insert->errno) {
// Handle query error here
}

}

$insert->close();

$query = "SELECT ss.SessionId, SessionName, StudentId
FROM  
Student_Session ss
INNER JOIN Session s ON
ss.SessionId = s.SessionId
WHERE ss.SessionId = ? AND StudentId = ?";
// prepare query
$stmt=$mysqli->prepare($query);
// You only need to call bind_param once
$stmt->bind_param("ii", $sessionid, $studentid);
// execute query
$stmt->execute(); 
// get result and assign variables (prefix with db)
$stmt->bind_result($dbSessionId, $dbSessionName, $dbStudentId);
//get number of rows
$stmt->store_result();
$numrows = $stmt->num_rows();
//fetch the results
$stmt->fetch();

if ($numrows == 1){

echo json_encode(array('errorflag'=>false,'msg'=>"Students have been successfully added into the Assessment"));

}else{

echo json_encode(array('errorflag'=>true,'msg'=>"An error has occured, Students have not been added into the Assessment"));

}

        ?>
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closed as too localized by hakre, Jocelyn, abarnert, Bohemian, t0mm13b Jan 11 '13 at 1:35

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4  
Is $studentid an array? If not it will throw that error. Try a var_dump of $studentid. –  Tim Withers Jan 10 '13 at 23:43
    
try dumping var_dump / print_r($studentid), check if its being created as an array. Infact looking at your code it isn't its just a value of one of the postfields. –  Mark Jan 10 '13 at 23:45
    
Also I am wondering are you are setting $studentid to a single value? If so why do you need to use in an array format? –  Devon Bernard Jan 10 '13 at 23:55

2 Answers 2

up vote 1 down vote accepted

Your conditional where $studentid is set can set the value to an empty string. You should probably have some conditional in there to not even attempt to prepare as statement and insert data in such a case.

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When you set the value of student id in:

$studentid = (isset($_POST['addtextarea'])) ? $_POST['addtextarea'] : ''; 

That is not an array, just assigning a value.

What you can do is set it in an array and then input values into that array after it is initialized. Ex:

$studentid = array();
$studentid[] = (isset($_POST['addtextarea'])) ? $_POST['addtextarea'] : '';    
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