86

I'm using LINQ on an IQueryable returned from NHibernate and I need to select the row with the maximum value(s) in a couple of fields.

I've simplified the bit that I'm sticking on. I need to select the one row from my table with the maximum value in one field.

var table = new Table { new Row(id: 1, status: 10), new Row(id: 2, status: 20) }

from u in table
group u by 1 into g
where u.Status == g.Max(u => u.Status)
select u

This is incorrect but I can't work out the right form.

BTW, what I'm actually trying to achieve is approximately this:

var clientAddress = this.repository.GetAll()
    .GroupBy(a => a)
    .SelectMany(
            g =>
            g.Where(
                a =>
                a.Reference == clientReference && 
                a.Status == ClientStatus.Live && 
                a.AddressReference == g.Max(x => x.AddressReference) && 
                a.StartDate == g.Max(x => x.StartDate)))
    .SingleOrDefault();

I started with the above lambda but I've been using LINQPad to try and work out the syntax for selecting the Max().

UPDATE

Removing the GroupBy was key.

var all = this.repository.GetAll();

var address = all
            .Where(
                a =>
                a.Reference == clientReference && 
                a.Status == ClientStatus.Live && 
                a.StartDate == all.Max(x => x.StartDate) &&
                a.AddressReference == all.Max(x => x.AddressReference))
            .SingleOrDefault();
203

I don't see why you are grouping here.

Try this:

var maxValue = table.Max(x => x.Status)
var result = table.First(x => x.Status == maxValue);

An alternate approach that would iterate table only once would be this:

var result = table.OrderByDescending(x => x.Status).First();

This is helpful if table is an IEnumerable<T> that is not present in memory or that is calculated on the fly.

  • 1
    I took out the grouping and found I could get it working: from u in User_Accounts where u.Status == User_Accounts.Max(y => y.Status) select u – Boggin Feb 2 '12 at 16:05
  • 1
    You can also nest the lambda syntax: table.First(x => x.Status == table.Max(x => x.Status)) – Landon Poch Aug 21 '12 at 22:15
  • 11
    @LandonPoch: That's not a good idea, as this would calculate the maximum N times with N being the number of items in table. – Daniel Hilgarth Aug 22 '12 at 4:06
  • 2
    @Daniel Hilgarth: Good catch! That would in fact calculate the max per every row in the table. My bad. – Landon Poch Aug 27 '12 at 3:31
14

You can also do:

(from u in table
orderby u.Status descending
select u).Take(1);
13

You can group by status and select a row from the largest group:

table.GroupBy(r => r.Status).OrderByDescending(g => g.Key).First().First();

The first First() gets the first group (the set of rows with the largest status); the second First() gets the first row in that group.
If the status is always unqiue, you can replace the second First() with Single().

7

Addressing the first question, if you need to take several rows grouped by certain criteria with the other column with max value you can do something like this:

var query =
    from u1 in table
    join u2 in (
        from u in table
        group u by u.GroupId into g
        select new { GroupId = g.Key, MaxStatus = g.Max(x => x.Status) }
    ) on new { u1.GroupId, u1.Status } equals new { u2.GroupId, Status = u2.MaxStatus}
    select u1;
0

More one example:

Follow:

 qryAux = (from q in qryAux where
            q.OrdSeq == (from pp in Sessao.Query<NameTable>() where pp.FieldPk
            == q.FieldPk select pp.OrdSeq).Max() select q);

Equals:

 select t.*   from nametable t  where t.OrdSeq =
        (select max(t2.OrdSeq) from nametable t2 where t2.FieldPk= t.FieldPk)
-1

Simply in one line:

var result = table.First(x => x.Status == table.Max(y => y.Status));

Notice that there are two action. the inner action is for finding the max value, the outer action is for get the desired object.

  • This method was discussed in the comments to the accepted answer where it was pointed out it was a bad idea. – Boggin Nov 13 '17 at 12:30

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