Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have 3 file index.php, .js file, and a.php file. i made a ajax request to a.php via js(jquery) file. i am gettin response in html,(in 1 html response) there r 3 divs but i want to display one div at a time. Then click next button next div, which is in the same html response. Its a basically client side pagination via server side data(getting from 1 AJAX). But i am not able to handle 3 divs in index page one by one.

1. the request goes -

<script>
$(document).ready(function(){
 showitem(id);
}); 
</script>
  1. simple query is processed.

    function showitem(id){

    $.ajax({    
        type    : "POST",
        cache   : true,
        //dataType: "json",
        url     : "a.php",
        data    : {
                    proid:id
                  },                
        success: function(data) {
    
            $("#match_item_display").html(data);// This is span in index.php
    
        }
    });
    

    }

3. In the response (say) i get 9 elements in form of HTML Divs(3 in this case), i want to display 3 at a time.

$start=0; $end=6;
    for($d=0;$d<$len;$d++)
    {   
        if($end>$count)
        {
            $end = $count;
            match_pro("Closley Match", array_slice($recent_arr, $start, $end),$d);
        }
        else 
        {
            match_pro("Closley Match", array_slice($recent_arr, $start, $end),$d);
            //break;
        }
        $start=$end; $end=$end+6;
    }

Its return 3 Divs as a respone...

  1. To show - next and previous buttons.

SUMMARY -> 1-ajax request, some HTML divs as response, show them sequentially on a button click one at a time.

I am doing client side pagination because the query cannot return more than 9-12 responses at a time. so client side scripting shall be optimal.

share|improve this question
    
The code we'd need to see is in a.php - but @rajesh is on the right lines I think. Return all items you want to show in your JSON response, and inject them into your DOM using jQuery. –  halfer Feb 15 '12 at 14:19

1 Answer 1

up vote 0 down vote accepted

you can put the divs in an array and then return. eg:

$response = array(0 => 'div1_data', 1 => 'div2_data', 2=>'div3_data');
echo json_encode('html' => $response); // returning to ajax call

in ajax call response you can save it to an js array; then update the area with the first element. on next button click update the area with second element... hope it will help.

in js you can do:

index = 0;
res_data = [];
$.ajax({    
 type    : "POST",
 cache   : true,
 //dataType: "json",
 url     : "a.php",
 data    : {
            proid:id
          },                
  success: function(data) {
    $(data.html).each(function(k,v){

       res_data.push(v);

    });
    showNext();      
  }
});


function showNext(){
    $("#match_item_display").html(res_data[index]);
    index++;
}

function showPrev(){
    if(res_data[index-1] !== 'undefined'){
        $("#match_item_display").html(res_data[index-1]);
        index--;
    }
}

you can make the ajax call on load of the page. and assign the showNext() and showPrev to onclick events of next and prev button respectfully.

share|improve this answer
    
its response come to ajax success function its work but i want also to do next and previous functionality via index page. How to save return json array in js ?? Please help me...!!! If u have some code plzz share it.. –  Rahul Gupta Feb 16 '12 at 7:01
    
edited the post. it may help you –  rajesh Feb 16 '12 at 9:15
    
Thanx Rajesh Its works........ Thank u very much... –  Rahul Gupta Feb 16 '12 at 12:54
    
Dear Rajesh...when i click next use showNext()...its work but pre button works when button click twice...please give me suggestion...how it will work... :) –  Rahul Gupta Feb 18 '12 at 7:19
    
u have to little modify the showNext. prev function seems fine. function showNext(load){ var load = load || 0; if(load){ $("#match_item_display").html(res_data[index]); index++; }else{ if(res_data[index+1] !== 'undefined'){ $("#match_item_display").html(res_data[index+1]); index++; } } } and during loading call it as showNext(1) but in next button call it as showNext() –  rajesh Feb 18 '12 at 9:48

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.