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Can somebody explain the following System.Numerics.BigInteger behavior?

Console.WriteLine(Math.Log10(100));       // prints 2
Console.WriteLine(Math.Log10(1000));      // prints 3 (as expected)

Console.WriteLine((int)Math.Log10(100));  // prints 2
Console.WriteLine((int)Math.Log10(1000)); // prints 3 (as axpected)

var bi100 = new BigInteger(100);
var bi1000 = new BigInteger(1000);

Console.WriteLine(BigInteger.Log10(bi100));       // prints 2
Console.WriteLine(BigInteger.Log10(bi1000));      // prints 3 (as axpected) 

Console.WriteLine((int)BigInteger.Log10(bi100));  // prints 2
Console.WriteLine((int)BigInteger.Log10(bi1000)); // prints 2 ???????

Console.WriteLine(Math.Floor(BigInteger.Log10(bi100)));   // prints 2
Console.WriteLine(Math.Floor(BigInteger.Log10(bi1000)));  // prints 2 ???????

Console.WriteLine(Math.Round(BigInteger.Log10(bi100)));  // prints 2
Console.WriteLine(Math.Round(BigInteger.Log10(bi1000))); // prints 3 (as expected)

EDIT: Please note that I know that it's a rouding problem. I want to know why the behavior of Math.Log10 and BigInteger.Log10 differs.

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code comment is incorrect for last line: Prints 3 (for me at least) –  Mitch Wheat Feb 20 '11 at 1:31
    
@Mitch: Corrected. –  schnaader Feb 20 '11 at 1:40

3 Answers 3

It is due to precision and rounding.

This line:

Console.WriteLine((int)BigInteger.Log10(bi1000)); 

is rounding down the value 2.9999999999999996 to 2, whereas Console.WriteLine is writing this out as 3

You can verify this using an intermediate double variable, and inspecting its value:

double x = BigInteger.Log10(bi1000);
Console.WriteLine((int)x);  
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1  
Would the downvoter please leave a comment. Thanks. –  Mitch Wheat Feb 20 '11 at 1:36
2  
+1 because this is the correct answer –  schnaader Feb 20 '11 at 1:39
1  
-1 Because "3 cannot be represented exactly as binary" is completely false. All of the operands are exact as well. But some of the intermediate values may be inexact, depending on how the logarithm function is implemented. –  Ben Voigt Feb 20 '11 at 1:43
    
Cheers Ben. Corrected. I was trying to say what you said more accurately –  Mitch Wheat Feb 20 '11 at 1:44
2  
This is not a valid answer. It doesn't explain WHY the behaviour of Math.Log10 and BigInteger.Log10 differs! Please extend or remove your answer! –  moop Feb 21 '11 at 22:48

The big difference is that BigInteger.Log10(x) is implemented as Math.Log(x)/Math.Log(10), whereas Math.Log10(x) is implemented differently (it's an extern so it's not easy to figure out). Regardless, it should be obvious that they use slightly different algorithms for doing a base-10 logarithm, which causes a slight difference in output.

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The behaviour differs because they are different types with different representations and different implementations.

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(CW because it's a bad answer to a bad question.) –  Zooba Feb 21 '11 at 22:55
    
Why is it a bad question? –  Lasse V. Karlsen Feb 21 '11 at 23:00
1  
No question on rounding issues ever ends happily. –  James Gaunt Feb 21 '11 at 23:06
    
@Lasse V. Karlsen Because it's a rounding issue but the question explicitly excludes that as an answer. It is essentially asking why two different things are different. –  Zooba Feb 22 '11 at 0:16
    
But the difference is a rounding issue. –  Lasse V. Karlsen Feb 22 '11 at 6:42

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