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Why this code is error

  var images = ['/test/img/Gallery/large/4cba0c8a-4acc-4f4a-9d71-0a444afdf48d.jpg','/test/img/Gallery/large/4cba0ca8-2158-41af-829a-0a444afdf48d.jpg','/test/img/Gallery/large/4cbc549a-5228-433f-b0bc-0a444afdf48d.jpg'];
           $('.triggerNext').click(function(){
                  nextImage();
                  return false;
            });
            function nextImage(){
                  currentImage = $('.Pagepage:eq(0)').val();
                  nextImage = parseInt(currentImage)+1;
                  $('#imageCurrent').attr('src',images[nextImage]);
                  $('#imageCurrent') .css('position','absolute').css('left',($(window).width()- $('#imageCurrent').width() )/2);
                  $('.Pagepage').val(nextImage);
            }

it only run first time. but error on next click;

But like this it rune fine, dont error

var images = ['/test/img/Gallery/large/4cba0c8a-4acc-4f4a-9d71-0a444afdf48d.jpg','/test/img/Gallery/large/4cba0ca8-2158-41af-829a-0a444afdf48d.jpg','/test/img/Gallery/large/4cbc549a-5228-433f-b0bc-0a444afdf48d.jpg'];
           $('.triggerNext').click(function(){
                 currentImage = $('.Pagepage:eq(0)').val();
                  nextImage = parseInt(currentImage)+1;
                  $('#imageCurrent').attr('src',images[nextImage]);
                  $('#imageCurrent') .css('position','absolute').css('left',($(window).width()- $('#imageCurrent').width() )/2);
                  $('.Pagepage').val(nextImage);
                  return false;
            });

please help me. alt text

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Don't give us the source from your PHP file, give us the source from your HTML page (right click->View source) –  Gareth Oct 26 '10 at 11:46
4  
Also, what error messages are you seeing? Find the error console in the browser you are using, and if you are using Firefox then install Firebug –  Gareth Oct 26 '10 at 11:47
    
If i use fisrt code ,it'll change next page. but if i use below code, it run fine. I want it change image in array "images" –  meotimdihia Oct 26 '10 at 11:49
    
If there is an error, then there will be a message telling you what the error is. You need to find that error message in your browser and tell us. The easiest way to find the error message if you are using Firefox is to install Firebug. –  Gareth Oct 26 '10 at 11:51
1  
I can't believe two people marked this as favourite. Not even know what the error message is.. –  jAndy Oct 26 '10 at 11:52

2 Answers 2

up vote 6 down vote accepted

It seems like your're overwritting your function here:

nextImage = parseInt(currentImage)+1;

Either change the name from your function or variable. Even better, don't use a global namespace. Anyway, you can't overwrite the name from a function, your're overwritting the function itself.

After the above line, nextImage contains a Number which obviously cannot get executed.

right from the comments

just replace nextImage = parseInt(currentImage)+1; with var nextImage = > parseInt(currentImage)+1; – Alin Purcaru

Using a var statement, also avoids the nextImage from going into the global namespace.

share|improve this answer
    
+1 You have a good eye. –  Alin Purcaru Oct 26 '10 at 11:58
    
Just replace nextImage = parseInt(currentImage)+1; with var nextImage = parseInt(currentImage)+1; –  Alin Purcaru Oct 26 '10 at 11:59
    
this code it run on first time ... –  meotimdihia Oct 26 '10 at 12:02
    
@meotimdihia: of course it will, the first time the identifier nextImage does contain a function (reference), which then gets overwritten by a number. –  jAndy Oct 26 '10 at 12:04

use:

var nextImage = parseInt(currentImage)+1;

so you don't overwrite your function name

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