How to insert Multiple Checkbox in different column in Database

Question

I have some problem here where I could not get a single value from my multiple checkbox. I want to stored it in different column for each tick value=1, the box does not tick is 0 in database.For normal input I get the value but does not work on checkbox. Could you guys help.

HTML Code: This my html code

<div class="col-sm-4">

                    <div class="form-group">
                        <label for="colour">Machine</label><br>
                        <input type="text" id="input_1">
                    </div><br>
                <input type="checkbox" name="Inspection[]" value="true"> Function<br>
                <input type="checkbox" name="Inspection[]" value="true"> Visual<br>
                <input type="checkbox" name="Inspection[]" value="true"> Sleeve<br>
                <input type="checkbox" name="Inspection[]" value="true"> Mail<br>

    </div>
<p><input type="button" id="add_btn" value="Save"></p>

JavaScript: Where I should get the value and store it in database.

$(document).on("click", "input#add_btn", function() { Addsave() });

function  Addsave()
{

    var Inspec1 = $("#input_1").val();
    var Inspec2 = $("input[name='Inspection']:checked").val();
    var Inspec3 = $("input[name='Inspection']:checked").val();
    var Inspec4 = $("input[name='Inspection']:checked").val();
    var Inspec5 = $("input[name='Inspection']:checked").val();

    var tables = ["example"];

    var AddObject = new Object();


        AddObject.column1    = Inspec1;
        AddObject.column2    = Inspec2;
        AddObject.column3    = Inspec3;
        AddObject.column4    = Inspec4;
        AddObject.column5    = Inspec5;


    var list = [AddObject];
    var objParams = JSON.stringify(list);

    var render  = function(){ renderAddExec(data);};
    insertExecute(list,tables,render);
}

Yesterday I found this in here stackoverflow but everytime I try, it does not work.

<?php

// Make a MySQL Connection
mysql_connect("localhost", "root", "") or die(mysql_error());
mysql_select_db("test") or die(mysql_error());

$checkBox = $_POST['Inspection'];

if(isset($_POST['add_btn']))
{
    for ($i=0; $i<sizeof($checkBox); $i++)
        {
            $query="INSERT INTO example (column1,column2,column3,column4) VALUES ('" . $checkBox[$i] . "')";     

            mysql_query($query) or die (mysql_error() );
        }
    echo "Complete";

}

?>

Answer 1

1. Your checkboxes has never been executed, because you check if(isset($_POST['add_btn'])) but your submit button does not have any name, this is just ID.
2. You use JQuery to create object which need to be submitted. You spread this in to 3 functions, when it can be done with just calling ajax if you need async.

I did tested out on my localhost your code with pure php and it works like it should.

<form action="post.php" method="post">
                <div class="col-sm-4">

                    <div class="form-group">
                        <label for="colour">Machine</label><br>
                        <input type="text" id="input_1">
                    </div><br>
                    <input type="checkbox" name="Inspection[]" value="true"> Function<br>
                    <input type="checkbox" name="Inspection[]" value="true"> Visual<br>
                    <input type="checkbox" name="Inspection[]" value="true"> Sleeve<br>
                    <input type="checkbox" name="Inspection[]" value="true"> Mail<br>

                </div>
            <!-- I added a name to button to catch the event on backend -->
            <p><input name="submit" type="submit" id="add_btn" value="submit"></p>
            </form>

post.php

if(isset($_POST['submit']))
{
    if(isset($_POST['Inspection']))
    {
        var_dump($_POST['Inspection']);
        foreach($_POST['Inspection'] as $val)
        {
            echo $val;
        }
    }
}

Result:

array (size=4)
  0 => string 'true' (length=4)
  1 => string 'true' (length=4)
  2 => string 'true' (length=4)
  3 => string 'true' (length=4)
truetruetruetrue

My solution to your code using PDO:

if($_POST()) //For debug check if it was post request
{
    for ($i=0; $i<sizeof($checkBox); $i++)
        {
            $stmt=$pdo->prepare("INSERT INTO example (column1,column2,column3,column4) VALUES (?,?,?,?)");     

            $stmt->execute($_POST['Inspection']);//array(true,true,true,true)
        }
    echo "Complete";

}

How to convert mysql to PDO check this link: PHP: Convert INSERT MySQLi to PDO