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Is there any standard C++ way (e.g. class library) which provides integer multiplication with double precision? What I mean is: given two unsigned int's a,b the multiplication of them should give me an array of two unsigned int's {c, d} such that a*b = c + d*(UINT_MAX+1) ?

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Are you talking about fixed point multiplication? –  secretformula Aug 23 '11 at 15:54
    
No, I guess not. I am talking about multiplication of natural numbers. Fixed point means that you have numbers in decimal notation with a fixed number of positions before and after the comma, isn't it? Idon't have any comma here. –  Christian Lomp Aug 23 '11 at 16:09

5 Answers 5

You were on the right track with splitting up the multiplication into pieces, except where you had h=(UINT_MAX+1)/2 it should be h=sqrt(UINT_MAX+1). If you have 32-bit integers for example h=0x10000. Multiplying by such a constant is the same as shifting left by a number of bits, so your equation becomes:

a0 = a & 0xffff;
a1 = a >> 16;
b0 = b & 0xffff;
b1 = b >> 16;
a*b = a0*b0 + ((a1*b0)<<16 + (a0*b1)<<16) + (a1*b1)<<32

Since each component is 16 bits or less, each multiplication is guaranteed to fit into an unsigned 32 bit result.

For adding multiple-precision values together, see Add and Subtract 128 Bit Integers in C(++)

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The BigInt class lets you work with arbitrary precision integers.

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Thanks, Bigint is actually something that I wanted to write myself .... ;-) –  Christian Lomp Aug 23 '11 at 16:15

I'm not sure if this solves the problem, but as a crude built-in solution, you may try to use unsigned long long int, which is a 64-bit integer.

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Not guaranteed to be portable though. –  John Aug 23 '11 at 15:58
    
Don't you mean unsigned long long? @John Silver: unsigned long long was added to C++0x, so it is now part of the standard. –  Praetorian Aug 23 '11 at 16:03
    
unsigned long long int and unsigned long long are names for the same time. –  Keith Thompson Aug 23 '11 at 16:12
    
Thanks for the comment. I tried this with g++, but unsigned long long (int) seems to have the same size as UINT_MAX. (Which results in 1 if you multiply UINT_MAX * UINT_MAX). –  Christian Lomp Aug 23 '11 at 16:13
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@Christian: you should multiply ((unsigned long long)UINT_MAX) * UINT_MAX. The type of an arithmetic expression only depends on the types of the operands, not the type you store it in: ideone.com/yvw0U –  Steve Jessop Aug 23 '11 at 16:30

If you are restricted to the C++ standard libraries, the answer is no, there is no such predefined type. You can confirm that here. @DumbCoder suggested an alternative

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GMP could be an option

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Or code your own, I found switching to double (real - fp type) to afford sufficient precision for my needs, but got close to coding my own :) –  John Aug 23 '11 at 16:00

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