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Hi guys i am retrieving data from php using ajax , what i am trying to do is first i am finding the list of online users and then based on that list i am making request to the server let say if 2 people are logged in then i am using for loop to find the numbers and then getting data for only those 2 users here's my JS code . #name is equal to logged users name , if one user is logged in #name for that user will be 1 for other it will be 2 and so on

    $(function(){
    function liveRefresh(){
    var count = 1;

    for(x=0; x<=count; x++)
       {
    var track = $('#name' + x).val();       

    alert(track);   

    parameters = 'send_to=' + track;

        $.ajax({                
            url: "scripts/live-refresh.php", 
            type: "POST",
            data: parameters,     
            cache: false,
            success: function(html){

            alert(track);
        }
        });
    }
}

liveRefresh();

});

if i alert track variable before the ajax request it shows me all the names but after making ajax when i am alerting the same variable it says undefined.

You can try this code to see what's happening and see if there is any way around

Thank You

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Did u check the request status with firebug/chrome console/etc –  yoz1k Sep 7 '11 at 18:37
    
yeah i did in firebug it is sending both names to my php , problem is after making the ajax request it is not recognizing track variable , coz the data i am sending was defined before the ajax request , if you will notice parameter = 'send_to=' + track is before the ajax request so till then track var has both names but after it is undefined –  Shanon Sep 7 '11 at 18:40
    
try to define the track variable outside the loop –  yoz1k Sep 7 '11 at 18:41
    
that how will i get 'x' value coz 'x' will only get generated after the for loop –  Shanon Sep 7 '11 at 18:44
    
just define it. var track = '' and in the loop assign a value to it –  yoz1k Sep 7 '11 at 18:45
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2 Answers

up vote -1 down vote accepted

@3nigma to change a variable name wont help or needed, and making it global "can" help but it will be overwritten as soon as you goto the next in the loop.

@Shanon: Im not to sure this is the best approach to do this kind of a thing. I would rather update the entire list then making a number of AJAX calls to the server.

but if you want to run it like that, then this should work:

$(function(){
    var callAjax = function(id) {
        var parameters = 'send_to=' + id;

        $.ajax({
            url: "scripts/live-refresh.php", 
            type: "POST",
            data: parameters,     
            cache: false,
            success: function(html){
                alert(id);
            }
        });
    },
    liveRefresh = function() {
        var count = 1;
        for(var x=0;x<=count;x++) {
            var track = $('#name' + x).val();       

            callAjax(track);
        }

    };

    liveRefresh();

});
share|improve this answer
    
special thanks to you] –  Shanon Sep 7 '11 at 19:26
    
his answer worked so i am not sure why -1 –  Shanon Sep 7 '11 at 19:27
    
Well I edited because i didnt write any code before, and @Interstellar_Coder explained better also. –  voigtan Sep 7 '11 at 19:39
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$(function(){
    function liveRefresh(){
    var count = 1;

    for(var x = 0 ; x <= count; x++)
    {
        var track = $('#name' + x).val();       
        do_ajax( parameters, track );
    }
}

function do_ajax( parameters, track ) 
{        
        $.ajax({                
            url: "scripts/live-refresh.php", 
            type: "POST",
            data: parameters,     
            cache: false,
            success: function(html){
            alert(track);
            }
        });
}

liveRefresh();

You need to form a closure to preserve the value.

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