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I have this AJAX form:

function form(){

        var icao = document.getElementById('icao').value;
        var name = document.getElementById('name').value;
        var weightempty = document.getElementById('weightempty').value;
        var weightfull = document.getElementById('weightfull').value;
        var cargofull = document.getElementById('cargofull').value;
        var cruisespeed = document.getElementById('cruisespeed').value;
        var range = document.getElementById('range').value;
        var price = document.getElementById('price').value;
        var firstclassseats = document.getElementById('firstclassseats').value;
        var businessclassseats = document.getElementById('businessclassseats').value;
        var economyclassseats = document.getElementById('economyclassseats').value;
        ajax.open("POST","new_aircraft_process.php",true);
        ajax.onreadystatechange=function(){
            if(ajax.readyState==4)
            {
            var respuesta=ajax.responseText;


            document.getElementById('result').innerHTML=ajax.responseText;
            $("#newaircraftdialog").dialog('close');


            refreshTable(function(){$("#loadingdialog").dialog('close');});
            }
        }
    ajax.setRequestHeader("Content-Type", "application/x-www-form-urlencoded");
    ajax.send("icao="+icao+"&name="+name+"&weightempty="+weightempty+"&weightfull="+weightfull+"&cargofull="+cargofull+"&cruisespeed="+cruisespeed+"&range="+range+"&price="+price+"&firstclassseats="+firstclassseats+"&businessclassseats="+businessclassseats+"&economyclassseats="+economyclassseats);
    $("#loadingdialog").dialog('open');
    }

I want is when the result is displayed (it is a text that says "Successful Form") in the result div is it visible only for 5 seconds and then disappears. I have found various ways, but do not want to delete the div. Because if I want to make the form another time the result of this will have to show again in the div and disappear after 5 seconds after.

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3 Answers 3

$('.myDiv').fadeIn(); // Show the div to start.
// All your other code here.
setTimeout(function() { $('.myDiv').fadeOut() }, 5000); // hide the div after we're done
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It dont work, Where I need to put it? –  user1972864 Jan 16 '13 at 17:53
    
Sorry, I didn't put it in an anonymous function. It should work now. –  David Harris Jan 16 '13 at 17:54
    
I have a problem with this. When I want to do another time the dialog without refresh the page dont works! –  user1972864 Jan 16 '13 at 17:57
    
I'm not sure I understand what you mean. Please explain further. –  David Harris Jan 16 '13 at 17:58
    
If the OP wants to show the div again later, "remove" is the wrong method. He should either detach or hide it. –  gpojd Jan 16 '13 at 17:59

You can hide the div and show it later when the form is resubmitted.

ajax.onreadystatechange=function(){
    if(ajax.readyState==4)
    {
        var respuesta=ajax.responseText;


        var $result = $('#result');
        $result.html(ajax.responseText);
        $result.show();
        setTimeout(function() { $result.hide() }, 5000);
        $("#newaircraftdialog").dialog('close');


        refreshTable(function(){$("#loadingdialog").dialog('close');});
    }
}

You can also use detach and reattach it to the DOM later.

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The same problem that other answer: I do the form, ALL ok, the div was removed. But when I want to do the form other time without reload the page the AJAX script dont find the result div to put the result. –  user1972864 Jan 16 '13 at 18:02
    
@user1972864, I updated the code to both show and hide your div. Try that and let me know if it works. –  gpojd Jan 16 '13 at 18:06

You can use delay()

$('divtoremove').delay(5000).fadeOut('fast');
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