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I'm working with a previous post trying to limit the number of list items using jquery and I need to hide the next/previous links when it reaches the end of the list. I'm sure this is a simple addition, but I can't seem to find a solution to augment this function.

Here's the function: (copied from Jquery list show / hide 5 items onclick)

$('ul li:gt(4)').hide();

$('.prev').click(function() {
    var first = $('ul').children('li:visible:first');
    first.prevAll(':lt(5)').show();
    first.prev().nextAll().hide()
});

$('.next').click(function() {
    var last = $('ul').children('li:visible:last');
    last.nextAll(':lt(5)').show();
    last.next().prevAll().hide();
});

Here's the jsfiddle: http://jsfiddle.net/JQq5n/61/

I just need help hiding the next/prev links when it's preached the end of the list. Has anyone done this before?

share|improve this question
    
Shouldn't you only hide next when it is at the end of the list? if you hide prev then how does the user go back? –  Huangism Mar 27 '13 at 14:47
    
Try my answer. It hides both next and prev with one function. –  SachinG Mar 27 '13 at 14:58

3 Answers 3

up vote 1 down vote accepted

Here is fiddle http://jsfiddle.net/RNrgE/1/

$('ul li:gt(4)').hide();

$('.prev').click(function() {
    var first = $('ul').children('li:visible:first');
    first.prevAll(':lt(5)').show();
    if(first.prevAll().length < 6){
         $('.prev').hide();   
    }
    first.prev().nextAll().hide();
    $('.next').show(); //Now there must be items below so make sure the next link is visible
});

$('.next').click(function() {
    var last = $('ul').children('li:visible:last');
    last.nextAll(':lt(5)').show();
    if(last.nextAll().length < 6){ //We've reached the end so hide the links
        $('.next').hide();
    }
    $('.prev').show(); //Now there must be items above so make sure the prev link is visible
    last.next().prevAll().hide(); 
});
share|improve this answer
    
if you hiding both prev and next then the show next and prev would never trigger –  Huangism Mar 27 '13 at 14:47
    
Yes, just realized this stupidity. Will fix. –  Peter Herdenborg Mar 27 '13 at 14:48
    
You should try this code in fiddle, it looks different then it should –  Huangism Mar 27 '13 at 14:48
    
Don't need $('.prev').show(); –  Huangism Mar 27 '13 at 14:52
    
It seems I can't edit my answer anymore, but the correct, working solution is available at jsfiddle.net/RNrgE/1. @Huangism, can you possibly update code and fiddle link? –  Peter Herdenborg Mar 27 '13 at 14:59
$('ul li:gt(4)').hide();

updateButtons();

$('.prev').click(function() {
    var first = $('ul').children('li:visible:first');
    first.prevAll(':lt(5)').show();
    first.prev().nextAll().hide();
    updateButtons();    
});

$('.next').click(function() {
    var last = $('ul').children('li:visible:last');
    last.nextAll(':lt(5)').show();
    last.next().prevAll().hide();
    updateButtons();    
});

function updateButtons () {
    var list$ = $('ul');
    $('.prev, .next').show();
    if (list$.children('li:first').is(':visible')) {
        $('.prev').hide();
    }
    if (list$.children('li:last').is(':visible')) {
        $('.next').hide();
    }
}
share|improve this answer

try this Updated Demo.

It hides, prev and next links if no remaining items to show in both next and prev cases.

function doShowNextPrev(){
    if($('ul li:first').is(':visible'))
        $('.prev').hide();
    else
        $('.prev').show();    

    if($('ul li:last').is(':visible'))
        $('.next').hide();
    else
        $('.next').show();    
}

Just added following fun to check whether or not show next and prev links. Above fun needs to be called on doReady and whenever next and prev are clicked.

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