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 was looking for an efficient approach for calculating ab (say a = 2 and b = 50). To start things up, I decided to take a look at the implementation of Math.Pow() function. But in .Net reflector, all I found was this:

[MethodImpl(MethodImplOptions.InternalCall), SecuritySafeCritical]
public static extern double Pow(double x, double y);

Can anyone tell me or point me to some of the resources wherein I can see as what's going on inside when I call Math.Pow() function.

share|improve this question
11  
Just as an FYI, if you're confused about the whole InternalCall with an extern modifier (as they seem to be conflicting), please see the question (and the resulting answers) that I posted about this very same thing. –  CraigTP Jan 15 '12 at 19:33
3  
For a 2^x operation if x is integer the result is a shift operation. So maybe you could construct the result using a mantissa of 2 and an exponent of x. –  ja72 Dec 17 '12 at 0:50

3 Answers 3

up vote 595 down vote accepted

MethodImplOptions.InternalCall

That means that the method is actually implemented in the CLR, written in C++. The just-in-time compiler consults a table with internally implemented methods and compiles the call to the C++ function directly.

Having a look at the code requires the source code for the CLR. You can get that from the SSCLI20 distribution. It was written around the .NET 2.0 time frame, I've found the low-level implementations, like Math.Pow() to be still largely accurate for later versions of the CLR.

The lookup table is located in clr/src/vm/ecall.cpp. The section that's relevant to Math.Pow() looks like this:

FCFuncStart(gMathFuncs)
    FCIntrinsic("Sin", COMDouble::Sin, CORINFO_INTRINSIC_Sin)
    FCIntrinsic("Cos", COMDouble::Cos, CORINFO_INTRINSIC_Cos)
    FCIntrinsic("Sqrt", COMDouble::Sqrt, CORINFO_INTRINSIC_Sqrt)
    FCIntrinsic("Round", COMDouble::Round, CORINFO_INTRINSIC_Round)
    FCIntrinsicSig("Abs", &gsig_SM_Flt_RetFlt, COMDouble::AbsFlt, CORINFO_INTRINSIC_Abs)
    FCIntrinsicSig("Abs", &gsig_SM_Dbl_RetDbl, COMDouble::AbsDbl, CORINFO_INTRINSIC_Abs)
    FCFuncElement("Exp", COMDouble::Exp)
    FCFuncElement("Pow", COMDouble::Pow)
    // etc..
FCFuncEnd()

Searching for "COMDouble" takes you to clr/src/classlibnative/float/comfloat.cpp. I'll spare you the code, just have a look for yourself. It basically checks for corner cases, then calls the CRT's version of pow().

The only other implementation detail that's interesting is the FCIntrinsic macro in the table. That's a hint that the jitter may implement the function as an intrinsic. In other words, substitute the function call with a floating point machine code instruction. Which is not the case for Pow(), there is no FPU instruction for it. But certainly for the other simple operations. Notable is that this can make floating point math in C# substantially faster than the same code in C++, check this answer for the reason why.

By the way, the source code for the CRT is also available if you have the full version of Visual Studio vc/crt/src directory. You'll hit the wall on pow() though, Microsoft purchased that code from Intel. Doing a better job than the Intel engineers is unlikely. Although my high-school book's identity was twice as fast when I tried it:

public static double FasterPow(double x, double y) {
    return Math.Exp(y * Math.Log(x));
}

But not a true substitute because it accumulates error from 3 floating point operations and doesn't deal with the weirdo domain problems that Pow() has. Like 0^0 and -Infinity raised to any power.

share|improve this answer
284  
Great answer, StackOverflow needs more of this sort of thing, instead of 'Why would you want to know that?' that happens all too often. –  Tom W Jan 15 '12 at 14:54
9  
@Blue - I don't know, short from making fun of Intel engineers. My high school book does have a problem raising something to the power of a negative integral. Pow(x, -2) is perfectly computable, Pow(x, -2.1) is undefined. Domain problems are a bitch to deal with. –  Hans Passant Jan 15 '12 at 22:43
6  
@BlueRaja-DannyPflughoeft: A lot of effort is spent trying to ensure that floating-point operations are as close as possible to the correctly-rounded value. pow is notoriously hard to implement accurately, being a transcendental function (see Table-Maker's Dilemma). It's a lot easier with an integral power. –  Porges Jan 16 '12 at 5:24
6  
@Hans Passant: Why would Pow(x,-2.1) be undefined? Mathematically pow is defined everywhere for all x and y. You do tend to get complex numbers for negative x and non integer y. –  Jules Jan 16 '12 at 6:08
4  
@Jules pow(0, 0) is not defined. –  emboss Jan 16 '12 at 20:27

If freely available C version of pow is any indication, it does not look like anything you would expect. It would not be of much help to you to find the .NET version, because the problem that you are solving (i.e. the one with integers) is orders of magnitudes simpler, and can be solved in a few lines of C# code with the exponentiation by squaring algorithm.

share|improve this answer
    
Thanks for your answer. The first link surprised me as I wasn't expecting such massive technical implementation of Pow() function. Although Hans Passant answer confirms that its the same in .Net world too. I think I can solve the problem at hand by making use of some of the technique listed in the squaring algorithm link. Thanks Again. –  Pawan Mishra Jan 15 '12 at 16:00

Hans Passant's answer is great, but I would like to add that if b is an integer, then a^b can be computed very efficiently with binary decomposition. Here's a modified version from Henry Warren's Hacker's Delight:

public static int iexp(int a, uint b) {
    int y = 1;

    while(true) {
        if ((b & 1) != 0) y = a*y;
        b = b >> 1;
        if (b == 0) return y;
        a *= a;
    }    
}

He notes that this operation is optimal (does the minimum number of arithmetic or logical operations) for all b < 15. Also there is no known solution to the general problem of finding an optimal sequence of factors to compute a^b for any b other than an extensive search. It's an NP-Hard problem. So basically that means that the binary decomposition is as good as it gets.

share|improve this answer
7  
This algorithm(square and multiply) also applies if a is a floating point number. –  CodesInChaos Sep 22 '12 at 10:25
1  
I assume you mean it's an NP-Hard problem. –  Mashmagar Dec 13 '12 at 20:24
    
@Mashmagar Yes that's what I meant. –  Michael Graczyk Dec 17 '12 at 0:36
4  
In practice it is possible to do quite a bit better than native square-and-multiply. For example preparing lookup tables for small exponents so you can square several times and only then multiply, or building optimized square-addition chains for fixed exponents. This kind of problem is integral to important cryptographic algorithms, so there as been quite a bit of work on optimizing it. NP hardness is only about worst-case asymptotics, we often can produce optimal or near-optimimal solutions for instances of the problem arising in practice. –  CodesInChaos Oct 6 '13 at 11:12

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.