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Hello wondering if there is an easier way to display odd / even numbers. I know I could do a for loop and load a list. Then I can write another for loop to loop through the list and check if a value is odd / even:

for(i=0; i<100; i++)
 if(myList[i]%2==0) //even
    //do something
 else
    //odd do something

But is there any way to shorten this up just so that I can easily get a list of odd or even numbers. Not homework just wondering.

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7 Answers 7

up vote 11 down vote accepted

Could you use some sort of lambdas:

//load a list, t, with 100 integers
List<int> t = Enumerable.Range(1, 100).ToList();

//find odd numbers
var oddNumbers = t.Where(num => num%2 != 0);

//find even numbers
var evenNumbers = t.Where(num => num%2 == 0);

//print odd numbers
foreach (int i in oddNumbers)
    Console.WriteLine(i);

//print even numbers
    foreach(int i in evenNumbers)
        Console.WriteLine(i);

The Enumerable just loads the list with 1-100, and then I simply snatch all odds / evens and then print them. This all can be shortened to:

var e = Enumerable.Range(1, 100).Where(num => num%2==0); //for even numbers
var o = Enumerable.Range(1, 100).Where(num => num%2!=0); //for odd numbers

e,o have an implicit type var. The compiler can determine its type so these two lines are equivalent to:

List<int> eo = Enumerable.Range(1, 100).ToList(); //must tell it its a list

Then to find the odds / evens directly to a list type:

List<int> o = eo.Where(num => num%2!=0).ToList();
List<int> e = eo.Where(num => num%2==0).ToList();

And to print it is listed in my initial code.

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1  
Your predicate for odd numbers contains a nasty bug. See if you can find it. (Hint: you need more test cases.) –  Eric Lippert Mar 2 '10 at 21:02
    
@Eric Lippert maybe num % 2==1 was a bad choice...as 2==1 returns false :). Will edit...let me know if I am mistaken. –  JonH Mar 2 '10 at 21:06
1  
Good guess, correct fix, but no cigar because you did not actually diagnose the problem. Try your original code with a range that goes from -100 to +100. –  Eric Lippert Mar 2 '10 at 21:15
    
@Eric - count cant be < 0. –  JonH Mar 2 '10 at 21:19
2  
Correct. Just to be clear for other readers: A%2 is -1 if A is a negative odd number. Therefore A%2==1 is not a test for "is odd", it is a test for "is both positive and odd". A%2!=0 is a test for "is odd". –  Eric Lippert Mar 2 '10 at 21:30

The LINQ way... Odd and Even numbers between 1 and 100.

var even = Enumerable.Range(1,100).Where(i => i % 2 == 0);
var odd = Enumerable.Range(1,100).Where(i => i % 2 != 0);
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It's more faster to replace i%2 with i&1 into your example –  Lonli-Lokli Oct 17 '11 at 8:39
2  
Lonli-Lokli but then it takes two head switches to understand whats going on. Readability is more important for such an insignificant amount of savings. –  JonH Feb 22 '12 at 16:31
    
@JonH Good point, but I think people should be encouraged to write things in a performant manner, provided they explain. eg: // i & 1 == 0 is faster than i % 2 == 0 –  Zachary Yates Oct 31 '12 at 17:21

You can use LINQ to pull out just the odd or even, and then process:

var even = myList.Where(i => i%2==0);
foreach(var number in even)
     // do something
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var t = Enumerable.Range(1, 100).ToList();
var oddNumbers = t.Where(n => (n & 1) != 0).ToList();
var evenNumbers = t.Where(n => (n & 1) == 0).ToList();
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How is this useful, when a 12 upvotes answer said this already 2 years ago? –  jv42 Mar 8 '12 at 9:46
    
I understand that you're working to unlock some features, perhaps try some new / unanswered questions as well :) –  Tim Post Mar 8 '12 at 11:30

I don't think you have to create the first loop. You could just:

for (i=1; i < 101; i++)
{
   if (i % 2 != 0)
   {
      //do something
   }
}

Or even:

for (i=1, i < 101, i+=2)
{
   //do something
}
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The problem is not to choose the odd or even indices, it is to choose the odd or even elements of the list of integers. –  Eric Lippert Mar 2 '10 at 21:03
    
@Eric Lippert -- Ah, I see. Thanks. –  davecoulter Mar 2 '10 at 22:47

Populate your list according to these formulas

Odds[0->N] = 2*i+1
Evens[0->N] = 2*i
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If you only need half of the numbers, just generate half the numbers ( .. ; .. ; i = i + 2)

If you need all the numbers but want to avoid an additional loop, you can mark them or process them during the initial loop.

Or, during creation, make up to three lists/arrays - one for all numbers, another for odds, and the third for evens.

Is there a specific application?

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The problem is not to look at the even indices, the problem is to look at the even elements. –  Eric Lippert Mar 2 '10 at 21:34

protected by Tim Post Mar 8 '12 at 11:29

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