Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have the following simple code :

int speed1 = (int)(6.2f * 10);
float tmp = 6.2f * 10;
int speed2 = (int)tmp;

speed1 and speed2 should have the same value, but in fact, I have :

speed1 = 61
speed2 = 62

I know I should probably use Math.Round instead of casting, but I'd like to understand why the values are different.

I looked at the generated bytecode, but except a store and a load, the opcodes are the same.

I also tried the same code in java, and I correctly obtain 62 and 62.

Can someone explain this ?

Edit : In the real code, it's not directly 6.2f * 10 but a function call * a constant. I have the following bytecode :

for speed 1 :

IL_01b3:  ldloc.s    V_8
IL_01b5:  callvirt   instance float32 myPackage.MyClass::getSpeed()
IL_01ba:  ldc.r4     10.
IL_01bf:  mul
IL_01c0:  conv.i4
IL_01c1:  stloc.s    V_9

for speed 2 :

IL_01c3:  ldloc.s    V_8
IL_01c5:  callvirt   instance float32 myPackage.MyClass::getSpeed()
IL_01ca:  ldc.r4     10.
IL_01cf:  mul
IL_01d0:  stloc.s    V_10
IL_01d2:  ldloc.s    V_10
IL_01d4:  conv.i4
IL_01d5:  stloc.s    V_11

we can see that operands are floats and that the only difference is the stloc/ldloc

As for the virtual machine, I tried with Mono/Win7, Mono/MacOS, and .NET/Windows, with the same results

share|improve this question
8  
My guess is that one of the operations got done in single-precision while the other got done in double-precision. One of them returned a values slightly less than 62, hence yielding 61 when truncating to an integer. –  Gabe Jan 18 '12 at 14:09
1  
These are typical Float point precision issues. –  TJHeuvel Jan 18 '12 at 14:09
3  
Trying this on .Net/WinXP, .Net/Win7, Mono/Ubuntu and Mono/OSX gives your results for both Windows versions, but 62 for speed1 and speed2 in both Mono versions. Thanks @BoltClock –  Eugen Rieck Jan 18 '12 at 14:16
4  
Mr Lippert... you around?? –  vc 74 Jan 18 '12 at 14:18
3  
The compiler's constant expression evaluator isn't winning any prizes here. Clearly it is truncating 6.2f in the first expression, it doesn't have an exact representation in base 2 so ends up as 6.199999. But does not do so in the 2nd expression, probably by managing to keep it in double precision somehow. This is otherwise par for the course, floating point consistency is never not a problem. This isn't going to get fixed, you know the workaround. –  Hans Passant Jan 18 '12 at 14:38

7 Answers 7

up vote 135 down vote accepted

First of all, I assume that you know that 6.2f * 10 is not exactly 62 due to floating point rounding (it's actually the value 61.99999809265137 when expressed as a double) and that your question is only about why two seemingly identical computations result in the wrong value.

The answer is that in the case of (int)(6.2f * 10), you are taking the double value 61.99999809265137 and truncating it to an integer, which yields 61.

In the case of float f = 6.2f * 10, you are taking the double value 61.99999809265137 and rounding to the nearest float, which is 62. You then truncate that float to an integer, and the result is 62.

Exercise: Explain the results of the following sequence of operations.

double d = 6.2f * 10;
int tmp2 = (int)d;
// evaluate tmp2

Update: As noted in the comments, the expression 6.2f * 10 is formally a float since the second parameter has an implicit conversion to float which is better than the implicit conversion to double.

The actual issue is that the compiler is permitted (but not required) to use an intermediate which is higher precision than the formal type. That's why you see different behavior on different systems: In the expression (int)(6.2f * 10), the compiler has the option of keeping the value 6.2f * 10 in a high precision intermediate form before converting to int. If it does, then the result is 61. If it does not, then the result is 62.

In the second example, the explicit assignment to float forces the rounding to take place before the conversion to integer.

share|improve this answer
12  
You're just teasing the rest of us with your exercise, aren't you ;) –  BoltClock Jan 18 '12 at 14:22
5  
I'm not sure this actually answers the question. Why is (int)(6.2f * 10) taking the double value, as f specifies it's a float? I think the main point (still unanswered) is here. –  ken2k Jan 18 '12 at 14:26
2  
Good point. The type of 6.2f * 10 is actually float, not double. I think the compiler is optimizing the intermediate, as permitted by the last paragraph of 11.1.6. –  Raymond Chen Jan 18 '12 at 14:37
33  
Raymond's answer here is of course completely correct. I note that the C# compiler and the jit compiler are both allowed to use more precision at any time, and to do so inconsistently. And in fact, they do just that. This question has come up dozens of times on StackOverflow; see stackoverflow.com/questions/8795550/… for a recent example. –  Eric Lippert Jan 18 '12 at 15:02
18  
The best part in SO is that people like Raymond Chen and @EricLippert participate.. No words! –  Odys Jun 14 '13 at 23:06

Description

Floating numbers a rarely exact. 6.2f is something like 6.1999998.... If you cast this to an int it will truncate it and this * 10 results in 61.

Check out Jon Skeets DoubleConverter class. With this class you can really visualize the value of a floating number as string. Double and float are both floating numbers, decimal is not (it is a fixed point number).

Sample

DoubleConverter.ToExactString((6.2f * 10))
// output 61.9999980926513671875

More Information

share|improve this answer
    
+১ for the liks –  shiplu.mokadd.im Jan 24 '12 at 18:07
    
If John Skeet does not answer, he is referenced by an answer! –  Alireza Sep 19 '13 at 12:52

Look at the IL:

IL_0000:  ldc.i4.s    3D              // speed1 = 61
IL_0002:  stloc.0
IL_0003:  ldc.r4      00 00 78 42     // tmp = 62.0f
IL_0008:  stloc.1
IL_0009:  ldloc.1
IL_000A:  conv.i4
IL_000B:  stloc.2

The compiler reduces compile-time constant expressions to their constant value, and I think it makes a wrong approximation at some point when it converts the constant to int. In the case of speed2, this conversion is made not by the compiler, but by the CLR, and they seem to apply different rules...

share|improve this answer
    
I added the actual bytecode in my question –  Baalrukh Jan 18 '12 at 14:50

My guess is that 6.2f real representation with float precision is 6.1999999 while 62f is probably something similar to 62.00000001. (int) casting always truncates the decimal value so that is why you get that behavior.

EDIT: According to comments I have rephrased the behavior of int casting to a much more precise definition.

share|improve this answer
    
Casting to an int truncates the decimal value, it doesn't round. –  Jim D'Angelo Jan 18 '12 at 14:20
    
@James D'Angelo: Sorry english isn't my primary language. Didn't know the exact word so I defined the behavior as "rounding downards when dealing with positive numbers" which basically describes the same behavior. But yes, point taken, truncate is the exact word for it. –  InBetween Jan 18 '12 at 14:23
    
no problem, it's just symantics but can cause trouble if somebody starts thinking float->int involves rounding. =D –  Jim D'Angelo Jan 18 '12 at 14:25

Single mantains only 7 digits and when casting it to a Int32 the compiler truncate all the floating point digits. During conversion one or more significant digits could be lost.

Int32 speed0 = (Int32)(6.2f * 100000000); 

gives the result of 619999980 so (Int32)(6.2f * 10) gives 61.

It's different when two Single are multiplied, in that case there is no truncate operation but only approximation.

See http://msdn.microsoft.com/en-us/library/system.single.aspx

share|improve this answer

I compiled and disassembled this code (on Win7/.NET 4.0). I guess that compiler evaluates floating constant expression as double.

int speed1 = (int)(6.2f * 10);
   mov         dword ptr [rbp+8],3Dh       //result is precalculated (61)

float tmp = 6.2f * 10;
   movss       xmm0,dword ptr [000004E8h]  //precalculated (float format, xmm0=0x42780000 (62.0))
   movss       dword ptr [rbp+0Ch],xmm0 

int speed2 = (int)tmp;
   cvttss2si   eax,dword ptr [rbp+0Ch]     //instrunction converts float to Int32 (eax=62)
   mov         dword ptr [rbp+10h],eax 
share|improve this answer

Is there a reason you are type casting to int instead of parsing?

int speed1 = (int)(6.2f * 10)

would then read

int speed1 = Int.Parse((6.2f * 10).ToString()); 

The difference is probably to do with rounding: if you cast to double you will probably get something like 61.78426.

Please note the following output

int speed1 = (int)(6.2f * 10);//61
double speed2 = (6.2f * 10);//61.9999980926514

That is why you are getting different values!

share|improve this answer
1  
Int.Parse takes a string as parameter. –  ken2k Jan 18 '12 at 14:16
    
You can only parse strings, I guess you mean why don't you use System.Convert –  vc 74 Jan 18 '12 at 14:16

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.