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Doing some calculations with doubles which then need to be cast to an int. So i have a quick question, when casting a double say 7.5 to an int, it will return 7.

Is this a product of rounding or just striping anything after the decimal point?

If it is a product of rounding, is it smart ie 0.1 to 0.5 it rounds down and 0.6 to 0.9 it rounds up?

Cheers

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7  
A bit of quick experimentation would have answered this question... –  Chris Nov 8 '12 at 15:34
1  
Why not make it explicit (so future programmers don't have to wonder) and use Math.Floor to strip off the decimals, and then cast? –  Ann L. Nov 8 '12 at 15:37
2  
@cosmicsafari you can learn a lot from experimentation. –  Jon B Nov 8 '12 at 15:38
1  
@AnnL.: You could use Math.Truncate though, if you wanted to be explicit. –  Mark Byers Nov 8 '12 at 15:42
2  
@cosmicsafari Asking questions of others takes up a lot of their time and effort, of which they are freely giving up. It is curious to spent some time and effort attempting to solve your problems on your own by doing some simple tests, doing some research into the issue (it is well documented and easily accessible online to determine the C# mechanic for casting a double to a float), etc. When you spend absolutely no time trying to solve your own problem and just go straight to others it is rude, and also becomes a crutch for you as you don't learn how to solve your own problems. –  Servy Nov 8 '12 at 15:45

7 Answers 7

up vote 12 down vote accepted

It doesn't round, it just returns the integer part before the decimal point.

Reference (thanks Rawling): Explicit Numeric Conversions Table

You can try simple issues like this by yourself by writing simple tests. The following test (unsing NUnit) will pass and therefore give an answer to your question:

[Test]
public void Cast_float_to_int_will_not_round_but_truncate
{
    var x = 3.9f;
    Assert.That((int)x == 3); // <-- This will pass
}
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Ref –  Rawling Nov 8 '12 at 15:35
    
Thought so, thanks. –  cosmicsafari Nov 8 '12 at 15:37

It takes the integer part

double d = 0.9;
System.Console.WriteLine((int)d);

the result is 0

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If it's returning 7 for a double of 7.5, then it isn't rounding, because rounding rules would dictate that anything 5 and above rounds up, not down.

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1  
Unless the underlying value isn't 7.5 but 7.49999999999 in which case it may display 7.5 on the screen, but round to 7. These types of issues happen a lot due to floating point precision issues. The OP specifically wondered if that was the actual cause of his issue. Now, it's not, but it was a perfectly valid concern. Testing the code by converting 7.7d to an int is not nearly as ambiguous. –  Servy Nov 8 '12 at 15:43
    
@Servy (and Brian) Also, there will be double numbers like 7.9999999999999991 whose default string representations are "8", but which are truncated to integer 7 with the cast syntax. –  Jeppe Stig Nielsen Nov 8 '12 at 16:02

Don't be fooled by assuming it rounds down. It strips the decimal off and purely returns the integer portion of the double. This is important with negative numbers because rounding down from 2.75 gives you 2, but rounding down from -2.75 give you -3. Casting does not round down so (int)2.75 gives 2, but (int)-2.75 gives you -2.

double positiveDouble = 2.75;
double negativeDouble = -2.75;

int positiveInteger = (int) positiveDouble;
int negativeInteger = (int) negativeDouble;

Console.WriteLine(positiveInteger + " = (int)" + positiveDouble);
Console.WriteLine(negativeInteger + " = (int)" + negativeDouble);

Console.ReadLine();

//Output: 2 = (int)2.75
//        -2 = (int)-2.75
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From the C# Language Specification:

In an unchecked context, the conversion always succeeds, and proceeds as follows.

• If the value of the operand is NaN or infinite, the result of the conversion is an unspecified value of the destination type.

• Otherwise, the source operand is rounded towards zero to the nearest integral value. If this integral value is within the range of the destination type then this value is the result of the conversion.

• Otherwise, the result of the conversion is an unspecified value of the destination type.

See also Explicit Numeric Conversions Table — Remarks on MSDN.

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A normal cast like this

int number;
double decimals = 7.8987;

number = (int)decimals;

will return number = 7. That is because it just skips the least significant numbers. If you want it to round properly you can use Math.Round() like this:

number = (int)Math.Round(number);

This will return number = 8.

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Simply casting just strips everything past the decimal point. To round up or down, you can use the Math.Round() method. This will round up or down and provides a parameter on what to do if its midway. You could also use the Math.Floor() or Math.Ceiling() methods to implicitly round up or round down prior to casting. Here are some examples:

double num1 = 3.5;
double num2 = 3.2;
double num3 = 3.9;

(int)num1 // returns 3;
(int)num2 // returns 3;
(int)num3 // returns 3 also;
(int)Math.Round(num1) // returns 4
(int)Math.Round(num2) // returns 3
(int)Math.Round(num3) // returns 4
(int)Math.Floor(num1) // returns 3
(int)Math.Floor(num2) // returns 3
(int)Math.Floor(num3) // returns 3
(int)Math.Ceiling(num1) // returns 4
(int)Math.Ceiling(num2) // returns 4;
(int)Math.Ceiling(num3) // returns 4;
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Why do you append f to your literals? That turns them into System.Single which is then in turn implicitly converted to System.Double. Use a d for double (or use nothing at all since the presence of a decimal point . implies double by default). –  Jeppe Stig Nielsen Nov 8 '12 at 15:55

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