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In our code we have a double that we need to convert to an int.

double score = 8.6;
int i1 = Convert.ToInt32(score);
int i2 = (int)score;

Can anyone explain me why i1 != i2?

The result that I get is that: i1 = 9 and i2 = 8.

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4 Answers 4

up vote 25 down vote accepted

Because Convert.ToInt32 rounds:

Return Value: rounded to the nearest 32-bit signed integer. If value is halfway between two whole numbers, the even number is returned; that is, 4.5 is converted to 4, and 5.5 is converted to 6.

...while the cast truncates:

When you convert from a double or float value to an integral type, the value is truncated.

Update: See Jeppe Stig Nielsen's comment below for additional differences (which however do not come into play if score is a real number as is the case here).

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2  
Your link actually explains it best, and its not as simple as round vs truncate: Type: System.Int32 value, rounded to the nearest 32-bit signed integer. If value is halfway between two whole numbers, the even number is returned; that is, 4.5 is converted to 4, and 5.5 is converted to 6. –  ericosg May 25 '12 at 12:18
    
@ericosg: Yeah, that would mask the difference if score were 8.5 instead of 8.6. I updated the answer to include the quotes. Thanks for the input. –  Jon May 25 '12 at 12:21
1  
And if score is NaN or an infinity or finite but outside the range of Int32, then Convert.ToInt32 will throw an exception. Cast will return an int, but you won'y know which one (in my implementation it's Int32.MinValue) because you're in unchecked context. (Should you be in checked context, the cast will throw an exception as well in these cases.) –  Jeppe Stig Nielsen May 25 '12 at 12:41
    
@JeppeStigNielsen: Thanks for the input, I updated the answer to mention this too. –  Jon May 25 '12 at 12:45
    
Nice. But I think the Double type number 10000000000.6 (ten billion point six) is a "real" number. Using a cast to int on that will give a strange result (unless you're in checked context, but you probably aren't). –  Jeppe Stig Nielsen May 25 '12 at 13:15

Casting will ignore anything after the decimal point, so 8.6 becomes 8.

Convert.ToInt32(8.6) is the safe way to ensure your double gets rounded to the nearest integer, in this case 9.

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ToInt32 rounds. Casting to int just throws away the non-integer component.

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you can round your double and cast ist:

(int)Math.Round(myDouble);
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the question was now how to make i1 == i2. The question was about why they are not equal. Downvoted. –  codesparkle Jun 13 '12 at 12:52

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