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.

How do you page through a collection in LINQ given that you have a startIndex and a count?

share|improve this question
add comment

4 Answers 4

up vote 14 down vote accepted

A few months back I wrote a blog post about Fluent Interfaces and LINQ which used an Extension Method on IQueryable<T> and another class to provide the following natural way of paginating a LINQ collection.

var query = from i in ideas
            select i;
var pagedCollection = query.InPagesOf(10);
var pageOfIdeas = pagedCollection.Page(2);

You can get the code from the MSDN Code Gallery Page: Pipelines, Filters, Fluent API and LINQ to SQL.

share|improve this answer
add comment

It is very simple with the Skip and Take extension methods.

var query = from i in ideas
            select i;

var paggedCollection = query.Skip(startIndex).Take(count);
share|improve this answer
3  
Did you ask a question... and then answer it to get + votes for the question and answer? You answered this 2 minutes after asking. –  Timothy Khouri Nov 29 '08 at 3:24
2  
I believe that it's OK to do something like this. He might have an answer but maybe he wants to see what other people can come up with as well. –  Outlaw Programmer Nov 29 '08 at 3:39
6  
This was originally posted during the first day of the beta period of StackOverflow, thus the 66 for the article ID. I was testing the system, for Jeff. Plus it seemed like useful information instead of the usual test crap that sometimes comes out of beta testing. –  Nick Berardi Nov 30 '08 at 20:35
add comment

I solved this a bit differently than what the others have as I had to make my own paginator, with a repeater. So I first made a collection of page numbers for the collection of items that I have:

// assumes that the item collection is "myItems"

int pageCount = (myItems.Count + PageSize - 1) / PageSize;

IEnumerable<int> pageRange = Enumerable.Range(1, pageCount);
   // pageRange contains [1, 2, ... , pageCount]

Using this I could easily partition the item collection into a collection of "pages". A page in this case is just a collection of items (IEnumerable<Item>). This is how you can do it using Skip and Take together with selecting the index from the pageRange created above:

IEnumerable<IEnumerable<Item>> pageRange
    .Select((page, index) => 
        myItems
            .Skip(index*PageSize)
            .Take(PageSize));

Of course you have to handle each page as an additional collection but e.g. if you're nesting repeaters then this is actually easy to handle.


The one-liner TLDR version would be this:

var pages = Enumerable
    .Range(0, pageCount)
    .Select((index) => myItems.Skip(index*PageSize).Take(PageSize));

Which can be used as this:

for (Enumerable<Item> page : pages) 
{
    // handle page

    for (Item item : page) 
    {
        // handle item in page
    }
}
share|improve this answer
add comment

This question is somewhat old, but I wanted to post my paging algorithm that shows the whole procedure (including user interaction). It also stores the "last page's offset" instead of skipping more and more of the same items, which would be somewhat inefficient.

const int pageSize = 10;
const int count = 100;
const int startIndex = 20;

int took = 0;
bool getNextPage;
var page = ideas.Skip(startIndex);
do
{
    Console.WriteLine("Page {0}:", (took / pageSize) + 1);
    foreach (var idea in page.Take(pageSize))
    {
        Console.WriteLine(idea);
    }

    took += pageSize;
    Console.WriteLine("Next page (y/n)?");
    char answer = Console.ReadLine().FirstOrDefault();
    getNextPage = default(char) != answer && 'y' == char.ToLowerInvariant(answer);
    if (getNextPage)
    {
        page = page.Skip(pageSize);
    }
}
while (getNextPage && took < count);
share|improve this answer
add comment

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.