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This question already has an answer here:

Is it possible to have PHP commands within a JS block?

First, I make a form and save something:

<form id = "myForm" action = "myPage.php" method = "post">

       <input type ="hidden" name = "action" value = "submit" ></input>         
       Name: <input type = "text" name = "name">
       <button id = "sub"> Submit my name </button>

</form>



<?php
        if( isset( $_POST[ "action" ] ) && $_POST[ "action" ] == "submit" )
        {
            include_once( 'db.php' );
            $name   = $_POST[ "name"  ];
        }
?>

where my db.php is very simple:

<?php
    $conn = mysql_connect( "localhost", "root", "" );    
    if( !$conn )
    {
      die( 'Could not connect: ' . mysql_error() );
    }
    $db = mysql_select_db( "myDatabase" );
?>

I also have a JS code that displays the coordinates of user's mouse click:

script>
    $( document ).ready( function(e)
    {
        $( '#ClickBox' ).click( function(e)
        {
            var coordX =  ( e.pageX - $( this ).offset().left - ( $( this ).width() *  0.5 ) );
            var coordY = -( e.pageY - $( this ).offset().top  - ( $( this ).height() * 0.5 ) );
            alert( coordX + ' , ' + coordY );
        });
    });
</script>

So, now, I would like to save the X and Y coordinates in the same database, maybe in a different table. Here is what I tried:

script>
    $( document ).ready( function(e)
    {
        $( '#ClickBox' ).click( function(e)
        {
            var coordX =  ( e.pageX - $( this ).offset().left - ( $( this ).width() *  0.5 ) );
            var coordY = -( e.pageY - $( this ).offset().top  - ( $( this ).height() * 0.5 ) );
            alert( coordX + ' , ' + coordY );

            $coordX = $_POST[ "x" ];
            $coordY = $_POST[ "y" ];
        });
    });
</script>

This is wrong, isn't it??? How do I do this?

Thanks in advance,

.

.

.

.

.

.


EDIT:

Here is how I solved it:

<script>
    $( document ).ready( function(e)
    {
        $( '#ClickBox' ).click( function(e)
        {
            var coordX = ( e.pageX - $( this ).offset().left - ( $( this ).width()  * 0.5 ) );
            var coordY = -( e.pageY - $( this ).offset().top  - ( $( this ).height() * 0.5 ) );
            alert( coordX.toFixed(1) + ' , ' + coordY.toFixed(1) );
            $.post( "myMainPage.php", { action: "submitXY", vx: coordX.toFixed(1),  vy: coordY.toFixed(1) }, function( data ) { alert( "DONE ... this alert can be removed" ); }, "json" );         
        });
    });
</script>


<?php
    if( isset( $_POST[ "action" ] ) && $_POST[ "action" ] == "submitXY" )
    {
        include_once( 'db.php' );

        $myClickX = $_POST[ "vx"  ];    
        $myClickY = $_POST[ "vy"  ];

        if( mysql_query( "INSERT INTO click VALUES( '$myClickX', '$myClickY' )" ) )
            echo "Successfully Inserted mouse click coordinates!";
        else
            echo "Insertion failed . .";
    }
?>

My db.php is a separate file, exactly how it was in the original question. Thanks for all the help, H

share|improve this question

marked as duplicate by deceze, kingkero, Fabio, Erik, Nanne Feb 24 '14 at 12:21

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
You can embed PHP with Javascript. –  Fa E Ka Feb 24 '14 at 11:27

4 Answers 4

up vote 1 down vote accepted

The answer to your question is No. Your php executes on the server whereas your javascript executes within the browser.

One way to achieve what you want to would be to add a couple more hidden fields to the form and have your javascript click handler set their values to the location of the click.

<form id = "myForm" action = "myPage.php" method = "post">

   <input type ="hidden" name = "action" value = "submit" >
   <input type="hidden" name="click_x" id="click_x">
   <input type="hidden" name="click_y" id="click_y">         
   Name: <input type = "text" name = "name">
   <button id = "sub"> Submit my name </button>
</form>

Your JavaScript would change to something like...

$( document ).ready( function(e)
{
    $( '#ClickBox' ).click( function(e)
    {
        $('#click_x').val(( e.pageX - $( this ).offset().left - ( $( this ).width() *  0.5 ) ));
        $('#click_y').val(-( e.pageY - $( this ).offset().top  - ( $( this ).height() * 0.5 ) ));
    });
});
share|improve this answer
    
Hi Andy, Thanks for this, but my form is located elsewhere in the code. I would like that to be handled separately. What I need is to handle the mouse-click independently. Can you elaborate on your answer please, without having to include these in the same place? –  Jtech Feb 24 '14 at 13:49
    
What exactly do you mean by located elsewhere in the code? Do you mean it is on a different page? –  Andy Feb 24 '14 at 17:02
    
No, It is in the same file (myProject.php) but not within the same FORM block that handles NAME submission. What you have suggested (which I found helpful) necessitates a single submission, but I would like to handle the clicks submissions separately... –  Jtech Feb 24 '14 at 17:26

this is wronge but its possible

like these lines from jquery function

        $coordX = $_POST[ "x" ];
        $coordY = $_POST[ "y" ];

change to ... ...

 <?php 

    echo "coorX=".$_POST[ "x" ].";";
    echo "coorY=".$_POST[ "y" ].";";
 ?>

and save file have jquery with php extention

share|improve this answer

The database lives on your web server. The javascript is running on the client computer. If you want to store the co-ordinates in the database on the server, you are going to have to post the data to the web server and let the web server take care of updating the database. There are many ways to get the coordinates to the web server. One is to use XHR (XML HTTP Request) which will not do a page refresh. Another way is to update window.location.href with a URL that contains the name of the php program that will update the database and the x and y values. This will do a page refresh. There are many other ways as well. The main thing to remember is that the php code runs on one computer, the javascript runs on another. You can not intermingle js code with php code, but...... You can use php to write js code for you (very few people do, but it works) just like we routinely use php code to write HTML code. I think that may be a source of your confusion. It looks like one computer is running both languages, but it is not. The server runs the php which may create js to send to the browser running on the client but it is not executing the js code, just "writing" it so that it can be executed by the client when it gets there.

share|improve this answer

yes you can use PHP in JS block easily. try this hope you'll get your idea.

<script>
    $( document ).ready( function(e)
    {
        $( '#ClickBox' ).click( function(e)
        {
            var coordX =  ( e.pageX - $( this ).offset().left - ( $( this ).width() *  0.5 ) );
            var coordY = -( e.pageY - $( this ).offset().top  - ( $( this ).height() * 0.5 ) );
            alert( coordX + ' , ' + coordY );
<?php
            $coordX = $_POST[ "x" ];
            $coordY = $_POST[ "y" ];
?>
        });
    });
</script>
share|improve this answer
    
Hi Masroor, This doesn't work for me. I cannot figure out why... –  Jtech Feb 24 '14 at 13:45
    
Hi Joshua, what error are you getting ??? –  Masroor Ahmed Feb 24 '14 at 15:00
    
Hi, I am not getting any errors. It just wouldn't do what it's supposed to do (in my eyes, I mean). Apparently, I cannot call PHP code directly inside a javascript code. Maybe I should change my approach to solving this? –  Jtech Feb 24 '14 at 15:25

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