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Though this question has been asked several times but I really couldn't find any clue from it.

I am working on a client project in which the page numbers are generated like this:

[1] [2] [3] [4] [5] [6] [7] [8] [9] [10] [11] and so on ...

So if there are 100 pages, these numbers will count to ... [100].

Here is the code that I am using:

{foreach var=$page from=$pages counter=$counter}
<li><a href="$page.page_url">$counter</a>
{/foreach}

I am looking to paginate them such that at most only 10 pages numbers are displayed per page.

Any help will be highly appreciate.

Thanks in advance.

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2 Answers 2

up vote 0 down vote accepted

First you have to remember page number of the current page. Then decide about the behavior of the pagination. Example current page, next four pages, three previous pages, first page and last page

So for page nr 9 it looks like this: [1] ... [6] [7] [8] [bold 9] [10] [11] [12] [13] ... [100]

Next (hardest) thing is defining an efficient algorithm.

For example:

  1. Define an empty list
  2. Put current page on the list.
  3. Add desired amount of elements before the current page (for example first element and m elements to the left of the current page)
  4. Add desired amount of elements after the current page (for example n elements to the right of the page and the last element)
  5. Iterate over the list to produce the pagination.

Iteration example:

foreach element on list:
    if element.value == current_page
        print_bold [element.value]
    else
        print [element.value]
    nextElement = list.nextElement
    if nextElement.value - element.value > 1:
        print "..."
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Thanks, but I hired a developer to get the job done. But as you said, it was indeed a complicated task especially with defining an efficient algorithm. –  Alok Sharma Feb 27 '12 at 6:49

For large numbers of pages, consider "logarithmic" pagination, described here (PHP code included):

How to do page navigation for many, many pages? Logarithmic page navigation

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