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I have a question that's similar to yesterday's question.
I've got this List<object[]>

List<object[]> olst = new List<object[]>();

olst.Add(new object[] { "AA1", "X", 1, 3.50 });
olst.Add(new object[] { "AA2", "Y", 2, 5.20 });
olst.Add(new object[] { "AA2", "Y", 1, 3.50 });
olst.Add(new object[] { "AA1", "X", 1, 3.20 });
olst.Add(new object[] { "AA1", "Y", 2, 5.30 });

I need to produce List<object[]> to hold this:

"AA1", "X", 2, 6.70
"AA2", "Y", 3, 8.70
"AA1", "Y", 2, 5.30

In other words, I need to group olst by the 1st and 2nd elements of each object[] and sum 3rd and 4th.
I could use a for loop, but I was hoping someone could help me using lambda expressions and/or linq to accomplish this.

share|improve this question
9  
Why are you using an object[] to hold onto strings. If you know they're strings, use a string[]. Or, better yet, create a new type with two meaningful properties to represent these two values. –  Servy Dec 20 '12 at 19:41
    
@Servy - this is just an example. –  Administrateur Dec 20 '12 at 19:44
    
If you know that you are working with a pair, rather than with some unknown number, then a Tuple<,> or KeyValuePair<,> might be idiomatic. –  Thom Smith Dec 20 '12 at 19:44
1  
@Trisped - Exactly, thank you. I just need a little help grouping the elements. –  Administrateur Dec 20 '12 at 19:52
1  
@Trisped Knowing the types are quite relevant. If the number of items aren't exact it greatly increases the complexity of the solution. If the types aren't all the same, or each column isn't the same, then that adds a major level of complexity. If the types don't have a meaningful Equal and GetHashCode value then that needs to be accounted for, again adding further complexity. However, if the data is all as simple as this case, none of that's relevant and it would be needlessly confusing the reader and would be offtopic, hence I ask what the data is really like. –  Servy Dec 20 '12 at 19:53

3 Answers 3

up vote 3 down vote accepted

You need to group by an anonymous type, then sum the third and fourth columns:

List<object[]> grouped = olst
    .GroupBy(o => new { Prop1 = o[0].ToString(), Prop2 = o[1].ToString() })
    .Select(o => new object[] 
    {
        o.Key.Prop1,
        o.Key.Prop2,
        o.Sum(x => (int)x[2]),
        o.Sum(x => (double)x[3])
    })
    .ToList();
share|improve this answer
List<object[]> olst = new List<object[]>();

            olst.Add(new object[] { "AA1", "X" });
            olst.Add(new object[] { "AA2", "Y" });
            olst.Add(new object[] { "AA2", "Y" });
            olst.Add(new object[] { "AA1", "X" });
            olst.Add(new object[] { "AA1", "Y" });

            var result = from ol in olst
                         group ol by new {p1 = ol[0], p2 = ol[1]}
                         into g
                         select g.First();

Something like this?

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1  
you'd want to select g.First(). –  Servy Dec 20 '12 at 19:46
    
yes, thanks for the correction. –  AD.Net Dec 20 '12 at 19:50

As suggested in the comments, I would go with Tuple and maybe use HashSet instead, since it will only append if item doesn't exist (also, it is fast). If you add items to hashset, there's no need to select distinct as long as your type provides necessary Equals and GetHashCode methods.
Something like this:

var olst = new HashSet<Tuple<string,string>>();
            olst.Add(Tuple.Create("AA1", "X"));
            olst.Add(Tuple.Create("AA1", "X"));
            olst.Add(Tuple.Create("AA2", "Y"));
            olst.Add(Tuple.Create("AA2", "Y"));   

If you need you can convert it to list. Here's an example:

olst.ToList().ForEach(x=> Console.WriteLine(x.Item1 + " " + x.Item2));   

Will print out

AA1 X
AA2 Y
share|improve this answer
    
If the types of the objects aren't all the same, and if there isn't a consistent number of elements (the OP is refusing to confirm or deny either of these assertions) then this solution won't work. –  Servy Dec 20 '12 at 19:55
    
@Servy, Yeah, I'm aware of that. Just a possible solution. That's all I can infer from the OP question at this point unfortunately. Thanks for pointing it out though. –  RAS Dec 20 '12 at 19:56

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