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I have a little page I've been working on. It's at: http://nait.jtlnet.com/~fpkj5v0r/programmer.php - and as you can see, a jquery chart shows up, like it's supposed to.

Now here's the problem.. which has ended up taking up 6+ hours of my time... when I click a link (which uses ajax to load up a new page in the same div), and then I try to go back to the chart by clicking the correct link, nothing loads up.

  • The steps to see this take place is. Load up page and see the chart.
  • Then go under the "Water Plant" heading and click "test". This will load up a new page into the div.
  • Now, click on the link, "View Stats". This will load back up the exact same page that contains the chart.. except no chart show up. The jquery doesn't seem to work here. I've heard about jquery having an AJAX problem, since it's only a div loading up and not the whole page, but I've never had any luck with the .live() jquery stuff.

Please, any help would be appreciated. I've tried different charts, all using jquery, thinking my jquery was just messed up, but it seems to be something else.

I can post the code.. but it's just your regular jquery code in the header, and div opening in the corresponding page.

Thanks!

Marcus

share|improve this question
1  
Looking through the script, I see that your using a vanilla XMLHttpRequest object implementation yourself to do AJAX requests. Is there any reason you're not using jQuery's convenient tried and tested cross-browser $.ajax()? – Russ Cam Nov 3 '09 at 0:13
    
The URL nait.jtlnet.com/~fpkj5v0r/ajax/generatepage.php?q=stats has a table with a div in it, which is what gets returned as the responseText of the AJAX call. What do you expect to get returned? – Russ Cam Nov 3 '09 at 0:19
    
I was taught to do ajax using the XMLHttpRequest way. I taught myself to do jquery after the fact. I can attempt to implement ajax through jquery instead... is it possible this may fix my problem? Also, edit to my original post, when you first load up the page, the chart actually there. my jquery doesn't like my ajax :( – Marcus Nov 3 '09 at 0:20
    
Inside a script block in the page, you have a function functonload() that contains a $(document).ready() block to execute when the DOM has loaded - Where/When does functonload() get executed? I can't see where it happens in the page or in the script. – Russ Cam Nov 3 '09 at 0:23
    
oh, you found the function that I added like 10 mins ago, to try and get the jquery running inside of the ajax div. Originally, this function call didn't exist, and I did the jquery running at all times. I'll put it back to how it was and not touch it for awhile. Because when I'm trying to fix things, I'm actually just messing it up more. – Marcus Nov 3 '09 at 0:27
up vote 0 down vote accepted

Ok, so you return the placeholder div from ajax.

The problem I'm seeing now is that there's nothing telling javascript to write in the graph.

My suggestion is to take your current document.ready and change it:

CURRENTLY:

$(document).ready(function() {
  // stuff that happens
});

TRY CHANGING TO:

function documentOnReady() {

var json =  
[ 
    {"dates":"24 feb","visitors":"5"}, 
    {"dates":"25 feb","visitors":"21"}, 
    {"dates":"26 feb","visitors":"14"}, 
    {"dates":"27 feb","visitors":"45"}, 
    {"dates":"28 feb","visitors":"20"}, 
    {"dates":"29 feb","visitors":"18"}, 
    {"dates":"01 mar","visitors":"9"}, 
    {"dates":"02 mar","visitors":"7"}, 
    {"dates":"03 mar","visitors":"42"}, 
    {"dates":"04 mar","visitors":"17"}, 
    {"dates":"05 mar","visitors":"15"}, 
    {"dates":"06 mar","visitors":"9"}, 
    {"dates":"07 mar","visitors":"15"}, 
    {"dates":"08 mar","visitors":"3"}, 
    {"dates":"09 mar","visitors":"3"}, 
    {"dates":"10 mar","visitors":"19"}, 
    {"dates":"11 mar","visitors":"15"}, 
    {"dates":"12 mar","visitors":"11"} 
] ;

    var plot_data = new Array(); 
    var plot_ticks = new Array(); 

    for (var i in json) { 
        i = parseInt(i); 
        plot_data.push([i, json[i].visitors]); 
        plot_ticks.push([i+0.5, json[i].dates]); 
    } 

    $.plot($("#placeholder"),  
         [ 
            {"data": [[0, 0]]},  
            {"data": [[0, 0]]},  
            {"data": [[0, 0]]},  
            {"data": [[0, 0]]},  
            {"data": [[0, 0]]},  
             { 
                 label: "Last 20 days visits", 
                 bars: {"show": "true"}, 
                 data: plot_data 
             } 
         ], 
        { 
             xaxis: { 
               ticks: plot_ticks 
            } 
         } 
     ); 
}
$(document).ready(documentOnReady);

THEN in the callback of the ajax, you need to call documentOnReady() again to re-run the graph rendering code.

share|improve this answer
    
ya, I was adding a page which contained my header, into the div... . At one point I was just loading up 3 lines of html code, one of them being a div which was linked to the chart, and that wouldn't work, so I decided to add the header to the div page. I know that was probably wrong, but I was trying different things to get it to work. – Marcus Nov 3 '09 at 15:49
    
Check my edited answer for further help. – JBristow Nov 3 '09 at 16:00
    
hello. I see what you're saying, so I just put the ajax content back to how it should be, with only a div inside: "<div id="placeholder" style="width:600px;height:300px;"></div>" this div is supposed to have a chart generated in it, via my jquery. But it still doesn't run since it seems to not see the newly created content... any ideas what I should do now? – Marcus Nov 3 '09 at 16:07
    
You need to have your javascript that puts the ajax response into your page ALSO run the code that generates the graph. Otherwise, all you'll have is an empty div. – JBristow Nov 3 '09 at 16:12
    
alright, yes, I get what you mean, and I do agree that I was trying to figure out a way to continually run that ajax code. So, I just tried what you said, and no dice. maybe i messed up, but I did exactly what you said. I put the jquery in the function, and I called it at the end of the ajax. I'll leave it as is, so you can look at the code behind if you want. I appreciate your help and your time, God knows I've been working on this 1 single bug for many many hours, and I was dreading today. – Marcus Nov 3 '09 at 16:25

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