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This question has been asked in one or the other way on SO but not like this. I just came over a very basic issue where I was looking for a statisfying solution :-) I got a list of objects which have two integer properties. Now I want to find the max value of both properties of all object in the list.
I came up with three solutions:

First approach:

int max = Math.Max(list.Max(elem => elem.Nr), list.Max(elem => elem.OtherNr));

Second approach:

public int Max(List<Thing> list)
{
  int maxNr = 0;

  foreach (var elem in list)
  {
    if (elem.Nr > maxNr)
      maxNr = elem.Nr;
    if (elem.OtherNr > maxNr)
      maxNr = elem.OtherNr;
  }

  return maxNr;
}

A third approach would be to do the sorting by both attribute and then just take the first entry and get the one or the other property.

I would like to find the fastest way to do this. So of all approaches I like the second one the post (from the performace point of view). Even though the first one is shorter you have to go through the list twice.

Any other solutions?

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1  
Is it too slow? Actually the first looks good to me in terms of readability and efficiency. I assume that without structural changes you won't get it faster. –  Tim Schmelter Dec 11 '12 at 8:13
    
No it's not, I was just wondering what the fastest algorithm is for this –  derape Dec 11 '12 at 8:16

2 Answers 2

up vote 6 down vote accepted

If you do

int max = list.Max(elem => Math.Max(elem.Nr, elem.OtherNr));

it's still a single-liner but only iterates through the list once. I'd take the single-linedness over the probable slight reduction in efficiency from writing it out by hand.

(Also, don't you need a cast from double to int somewhere in there?)

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I like that solution, its even better and will do almost the same as the "hand written" one –  derape Dec 11 '12 at 8:18

An alternative solution using LINQ if you need more than 2 properties (which is the limit of Math.Max):

int max = list
  .SelectMany(elem => new[]{ elem.Prop1, elem.Prop2, elem.Prop3 })
  .Max();
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