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I have retrieved some data from a servlet and now want to output is as HTML to div called "showArticles" and have same html chunk for each value. However, it only outputs one value. So I have:

|Article Title.   |
|Article content. |

I want there be a number of such htmls. Thank you in advance.

The AJAX:

$.ajax({
        url : "LoadArticlesByTag",
        dataType : 'json',
        type: 'GET',
        data: {
            b_sub_tag:option_value
        },
        error : function(jqXHR, textStatus, errorThrown) {
            alert(textStatus);
        },
        success : function(data){
           var data1=data[0], data2=data[1];
           for(var i=0;i<data1.length;i++){
            outputToDiv(data1,i);
           }
        }

    });


function outputToDiv(data1,i) {                
            $('#showArticles').html(                
            "<article class='one_quarter'>"+
                "<figure><img src='images/demo/32x32.gif' width='32' height='32' alt=''></figure>"+
                "<strong>"+data1[i]["name"]+"</strong>"+
                "<p>"+data1[i]["content"]+"</p>"+
                "<p class='more'><a href='#'>Read More &raquo;</a></p>"

                );
        }
share|improve this question
    
I suggest you change outputToDiv to take a single argument, and call it as outputToDiv(data1[i]). That way you don't have to keep repeating the array index. Also, use the syntax data.name and data.content instead of array-style syntax;the latter should only be used for numeric arrays or when the property is dynamic. – Barmar Apr 6 '13 at 10:28
    
Thank you very much for your advice1 – scat95 Apr 6 '13 at 11:06
up vote 0 down vote accepted

It's simple, .html() replaces the content of the target selector. Try using .append().

$('#showArticles').append(...)

Always remember to check the docs to understand how functions work when they don't do as you expect.

share|improve this answer
    
Hello Christian. Thank you very much. It worked. I only started using jquery yesterday, so did not get around so much.How could I clear what was outputted so that only new selections will be displayed? I have a select there. Thank you. – scat95 Apr 6 '13 at 10:11
    
In your ajax success function, right before the for loop, clear it there like so: $('#showArticles').html(''); – Christian Varga Apr 6 '13 at 10:13
    
Thank you so much!!!! You are wonderfrul people out here!!!!! – scat95 Apr 6 '13 at 10:16
1  
Or $("#showArticles').empty() – Barmar Apr 6 '13 at 10:25
    
Yeah that's more semantic, good tip! – Christian Varga Apr 6 '13 at 13:25

You're overriding the content on #showArticles every time you call outputToDiv because of the use .html(). You need to either add it to the start using .prepend() or the end using .append() if you want to retain the current contents..

$('#showArticles').append(
     "<article class='one_quarter'>"+
     "<figure><img src='images/demo/32x32.gif' width='32' height='32' alt=''></figure>"+
     "<strong>"+data1[i]["name"]+"</strong>"+
     "<p>"+data1[i]["content"]+"</p>"+
     "<p class='more'><a href='#'>Read More &raquo;</a></p>");
share|improve this answer

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