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I've written this code using various online sources but I cannot seem to figure out the last part.

function loadajax (event) {
    event.preventDefault();
    xhr = new XMLHttpRequest();
    xhr.onreadystatechange  = function(){ 
        if(xhr.readyState  == 4){
            if(xhr.status  == 200) 
                document.ajax.dyn="Received:"  + xhr.responseText; 
            else
                document.ajax.dyn="Error code " + xhr.status;
        }
    }; 

    xhr.open('GET', this.href, true);
    var content = document.getElementsByTagName('article')[0];

    content.innerHTML = xhr.responseText;
}

It seems to work until I need to add content to my page. Indeed content.innerHTML = xhr.responseText; returns nothing. I am getting a simple HTML file, how can I post it in my page? what am I doing wrong?

Thanks for your help!

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1  
Is there a reason you're choosing to write the XHR from scratch, vice using jQuery or something else that wraps it nicely with a lot of other good functionality? –  Paul Aug 14 '12 at 14:58
    
I don't want to use jQuery. Both for learning purposes and because I find it cleaner to use "pure" JS. By using jQuery I will never be able to write javascript from scratch without a library :). –  SnippetSpace Aug 14 '12 at 14:59
1  
Ok for learning. For production, though, there's a lot to be gained for your project by re-using well-tested code. –  Paul Aug 14 '12 at 15:00
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2 Answers

up vote 2 down vote accepted

ajax calls are asynchronous. it will work if you'll move the content.innerHTML = xhr.responseText; line into the onreadystatechange function like this:

function loadajax (event) {
event.preventDefault();
xhr = new XMLHttpRequest();
 xhr.onreadystatechange  = function() 
    { 
       if(xhr.readyState  == 4)
       {
        if(xhr.status  == 200) 
            document.ajax.dyn="Received:"  + xhr.responseText; 

            content.innerHTML = xhr.responseText;
        else
            document.ajax.dyn="Error code " + xhr.status;
        }
    }; 

xhr.open('GET', this.href, true);
var content = document.getElementsByTagName('article')[0];

}
share|improve this answer
    
Great response, I like that you included the explanation of why he needs to move the call to innerHTML. –  Paul Aug 14 '12 at 15:03
    
thanks. it still doesn't seem to work but that might be something else :-/. btw, shouldn't xhr.open('GET', this.href, true); be in status=200 too then? –  SnippetSpace Aug 14 '12 at 15:08
1  
@SnippetSpace: are you missing the xmlhttp.send();? –  CD.. Aug 14 '12 at 15:12
    
Apparently :p. As I said, I'm new to this. It works now! thanks for your help –  SnippetSpace Aug 14 '12 at 15:14
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Put your contet.innerHTML inside status 200 condition.

You are just assigning the value to content before it really exists. Before the ajax got it from server.

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