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How can we computer (N choose K)% M in C or C++ without invoking overflow ?

For the particular case when N (4<=N<=1000) and K (1<=K<=N) and M = 1000000003.

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1000000003 isn't prime. 1000003 is, though. –  Steve Jessop Jan 9 '11 at 14:11
    
Just compute modulo M, i.e. reduce the number by computing the remainder at every intermediate step. –  starblue Jan 9 '11 at 22:55

6 Answers 6

up vote 11 down vote accepted

To compute (n choose k) % M, you can separately compute the nominator (n!) modulus M and the denominator (k!*(n - k)!) modulus M and then multiply the nominator by the denominator's modular multiplicative inverse (in M). Since M is prime, you can use Fermat's Little Theorem to calculate the multiplicative inverse.

There is a nice explanation, with sample code, on the following link (problem SuperSum):

http://www.topcoder.com/wiki/display/tc/SRM+467

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For some extra speed, compute the numerator as the product from (K+1) to N, and the denominator as K!. We know that there won't be any factors of M in the calculation, because it's prime and larger than N. Hence we can cancel top and bottom without worrying that what we're cancelling could be a multiple of M (i.e. 0). –  Steve Jessop Jan 9 '11 at 14:37
    
Exactly I learned from the same. –  Quixotic Jan 9 '11 at 15:20
    
But now I see that 1,000,000,003 is not prime,any idea how to solve this now ? –  Quixotic Jan 9 '11 at 15:25
    
@Tretwick Marian: Unless it's banned for some reason, just get out a bignum library (GMP) and do the obvious. 1000!/500! has less than 5k binary digits, which probably isn't too large to do approx 1000 arithmetic operations on. If you need to optimize, your worst case is 1000 choose 500, which only has 1k binary digits. So calculate it intelligently, doing divisions as soon as possible rather than all the multiplications first, and the numbers never get significantly bigger than that. –  Steve Jessop Jan 9 '11 at 16:43

Since 1000000003 = 23 * 307 * 141623 you can calculate (n choses k) mod 23, 307 and 141623 and then apply the chinese reminder theorem[1]. When calculating n!, k! and (n-k)!, you should calculate everythinng mod 23, 307 and 141623 each step to prevent overflow.

In this way you should avoid overflow even in 32bit machines.

A little improvement would be to calculate (n choses k) mod 141623 and 7061 (23 * 307) (edit: but it can be a little tricky to calculate the inverse modulus 7061, so I wouldn't do this)

I'm sorry for my poor English.

[1]http://en.wikipedia.org/wiki/Chinese_remainder_theorem

Edit2: Another potentially problem I've found is when calculating n! mod 23 (for example) it will probably be 0, but that doesn't implies that (n choses k) is 0 mod 23, so you should count how many times 23 divides n!, (n-k)! and k! before calculating (n choses k). Calculating this is easy, p divides n! exactly floor(n/p) + floor(n/p²) + ... times. If it happens that 23 divides n! the same times it divides k! and (n-k)!, the you proceed to calculate (n choses k) mod 23 dividing by 23 every multipler of it every time.The same applies for 307, but not for 141623

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For the small primes, 23 and 307, you could use en.wikipedia.org/wiki/Lucas%27_theorem instead of counting powers. –  Steve Jessop Jan 9 '11 at 17:02

You could use the recursive formula from the link you gave and do the calculation mod M.

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Seems to have been answered elsewhere already

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Here is a simple example:

(A * B * C) % N ... is equal to... ((A % N) *  (B % N) * (C % N)) % N;

That is, all you need to apply modulus to every operand and product, or as soon as it becomes big a number. And last the modulus must apply to the overall result.

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With 32 bit int it still may cause an overflow on 1000000000*1000. –  ybungalobill Jan 9 '11 at 12:31
    
@ ybungalobill : apply ((1000000000%N)*(1000)%N)%N. –  Nawaz Jan 9 '11 at 12:33
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note that the modulus is M in the question, not N, and the example given, while not actually prime, is about a billion. So 1000000000%N is still 1000000000. To avoid overflow you'd need an integer type as big as N^2 (e.g. long long or int64_t, if available) –  Steve Jessop Jan 9 '11 at 14:21

Use Stirling's approximation to calculate the binomial coefficient. Then just calculate the modulus as usual.

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How does an approximation help to calculate the binomial coefficient modulo M? Approximations are pretty much meaningless in modulo arithmetic. –  Steve Jessop Jan 9 '11 at 14:32
    
Sorry I missed the approximation part. –  Quixotic Jan 9 '11 at 15:25

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