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Basically i want to update my database with values from an array that i converted from javascript to php then when a button is pressed it updates the database i have this code but it doesnt update to the database

var v = document.getElementsByName('mark[]');
var arr = new Array();
for(var a=0; a<v.length; a++){
arr[a]=inputs[a].value; 
}
var str;
for(var i=0; i<arr.length; i++) {

    str+='&array_items[]='+arr[i];
}
document.location.href='./markandfeedback.php?'+str;
}




</script>";


for ($i=0; $i<count($_GET['array_items']); $i++){ 

    $arr[] = $_GET['array_items'][$i];
}




    if(isset($_POST['update'])){    

    $sql1="UPDATE `groupdatabase1` .`questions` SET `mark`= '".$arr[1]."',`studentID`= '4140001', `feedback` = 'meh' WHERE `questions`.`questionID`=1";
    mysql_query($sql);
}
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Can you please post your HTML? Is this a form? Do you want to use AJAX? IF not, then whay dont you just submit the form? –  prodigitalson Mar 27 '12 at 0:22
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2 Answers

up vote 0 down vote accepted

You are assigning your query to the variable named $sql1, but then using a different (probably uninitialized variable) named $sql in your call to mysql_query.

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Well youre not sending a POST request youre sending a GET so $_POST['update'] will never exist. In addiiton to that im not sure why there is a " sfter the script tag... unless youre omitting code and thats actually written inside php theres no reason for it.

Typically you would use AJAX for this, otherwise you would use a form... even if you still run your JS and put the results in a set of hidden fields so there is no real form interface.

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