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I would like to calculate:

abcd... mod m

Do you know any efficient way since this number is too big but a , b , c , ... and m fit in a simple 32-bit int.

Any Ideas?


This question is different from finding ab mod m. Please pay attention and don't post useless answers.

Also please note that abc is not same as (ab)c. The later is equal to abc. Exponentiation is right-associative.

Thank you! Alin Purcaru

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1  
could you explain what is ^? can be exclusive-or (xor), to-the-power-of(exponentiation) and whatnot. – Nas Banov Nov 19 '10 at 8:43
6  
@Nas ^ is pow. The question wouldn't make sense if it were XOR – Alin Purcaru Nov 19 '10 at 8:44
2  
@Paul and Nas :I mean power of course. – AKGMA Nov 19 '10 at 8:45
up vote 8 down vote accepted

The answer does not contain full formal mathematical proof of correctness. I assumed that it is unnecessary here. Besides, it would be very illegible on SO, (no MathJax for example).
I will use (just a little bit) specific prime factorization algorithm. It's not best option, but enough.

tl;dr

We want calculate a^x mod m. We will use function modpow(a,x,m). Described below.

  1. If x is small enough (not exponential form or exists p^x | m) just calculate it and return
  2. Split into primes and calculate p^x mod m separately for each prime, using modpow function
    1. Calculate c' = gcd(p^x,m) and t' = totient(m/c')
    2. Calculate w = modpow(x.base, x.exponent, t') + t'
    3. Save pow(p, w - log_p c', m) * c' in A table
  3. Multiple all elements from A and return modulo m

Here pow should look like python's pow.

Main problem:

Because current best answer is about only special case gcd(a,m) = 1, and OP did not consider this assumption in question, I decided to write this answer. I will also use Euler's totient theorem. Quoting wikipedia:

Euler's totient theorem:
If n and a are coprime positive integers, then enter image description here where φ(n) is Euler's totient function.

The assumption numbers are co-primeis very important, as Nabb shows in comment. So, firstly we need to ensure that the numbers are co-prime. (For greater clarity assume x = b^(c^...).) Because a^x mod m = ((p1^alpha)^x mod m)*(p2..., where a = p1^alpha * p2^... we can factorize a, and separately calculate q1 = (p1^alpha)^x mod m,q2 = (p2^beta)^x mod m... and then calculate answer in easy way (q1 * q2 * q3 * ... mod m). Number has at most o(log a) prime factors, so we will be force to perform at most o(log a) calculations.

In fact we doesn't have to split to every prime factor of a (if not all occur in m with other exponents) and we can combine with same exponent, but it is not noteworthy by now.

Now take a look at (p^z)^x mod m problem, where p is prime. Notice some important observation:

If a,b are positive integers smaller than m and c is some positive integer and a equiv b mod m, then true is sentence ac equiv bc mod mc.

Using the above observation, we can receive solution for actual problem. We can easily calculate gcd((p^z)^x, m). If x*z are big, it is number how many times we can divide m by p. Let m' = m /gcd((p^z)^x, m). (Notice (p^z)^x = p^(z*x).) Let c = gcd(p^(zx),m). Now we can easily (look below) calculate w = p^(zx - c) mod m' using Euler's theorem, because this numbers are co-prime! And after, using above observation, we can receive p^(zx) mod m. From above assumption wc mod m'c = p^(zx) mod m, so the answer for now is p^(zx) mod m = wc and w,c are easy to calculate.

Therefore we can easily calculate a^x mod m.

Calculate a^x mod m using Euler's theorem

Now assume a,m are co-prime. If we want calculate a^x mod m, we can calculate t = totient(m) and notice a^x mod m = a^(x mod t) mod m. It can be helpful, if x is big and we know only specific expression of x, like for example x = 7^200.

Look at example x = b^c. we can calculate t = totient(m) and x' = b^c mod t using exponentiation by squaring algorithm in Θ(log c) time. And after (using same algorithm) a^x' mod m, which is equal to solution.

If x = b^(c^(d^...) we will solve it recursively. Firstly calculate t1 = totient(m), after t2 = totient(t1) and so on. For example take x=b^(c^d). If t1=totient(m), a^x mod m = a^(b^(c^d) mod t1), and we are able to say b^(c^d) mod t1 = b^(c^d mod t2) mod t1, where t2 = totient(t1). everything we are calculating using exponentiation by squaring algorithm. Note: If some totient isn't co-prime to exponent, it is necessary to use same trick, as in main problem (in fact, we should forget that it's exponent and recursively solve problem, like in main problem). In above example, if t2 isn't relatively prime with c, we have to use this trick.

Calculate φ(n)

Notice simple facts:

  1. if gcd(a,b)=1, then φ(ab) = φ(a)*φ(b)
  2. if p is prime φ(p^k)=(p-1)*p^(k-1)

Therefore we can factorize n (ak. n = p1^k1 * p2^k2 * ...) and separately calculate φ(p1^k1),φ(p2^k2),... using fact 2. Then combine this using fact 1. φ(n)=φ(p1^k1)*φ(p2^k2)*...

It is worth remembering that, if we will calculate totient repeatedly, we may want to use Sieve of Eratosthenes and save prime numbers in table. It will reduce the constant.

example: (it is correct, for the same reason as this factorization algorithm)

def totient(n) :          # n - unsigned int
    result = 1
    p = 2                 #prime numbers - 'iterator'
    while p**2 <= n :
        if(n%p == 0) :    # * (p-1)
            result *= (p-1)
            n /= p
        while(n%p == 0) : # * p^(k-1)
            result *=  p
            n /= p
        p += 1
    if n != 1 :
        result *= (n-1)
    return result         # in O(sqrt(n))

Case: abc mod m

Cause it's in fact doing the same thing many times, I believe this case will show you how to solve this generally.
Firstly, we have to split a into prime powers. Best representation will be pair <number, exponent>.
example:

std::vector<std::tuple<unsigned, unsigned>> split(unsigned n) {
  std::vector<std::tuple<unsigned, unsigned>> result;
  for(unsigned p = 2; p*p <= n; ++p) {
    unsigned current = 0;
    while(n % p == 0) {
      current += 1;
      n /= p;
     }
    if(current != 0)
     result.emplace_back(p, current);
   }
  if(n != 1)
   result.emplace_back(n, 1);
  return result;
 }

After split, we have to calculate (p^z)^(b^c) mod m=p^(z*(b^c)) mod m for every pair. Firstly we should check, if p^(z*(b^c)) | m. If, yes the answer is just (p^z)^(b^c), but it's possible only in case in which z,b,c are very small. I believe I don't have to show code example to it.
And finally if p^(z*b^c) > m we have to calculate the answer. Firstly, we have to calculate c' = gcd(m, p^(z*b^c)). After we are able to calculate t = totient(m'). and (z*b^c - c' mod t). It's easy way to get an answer.

function modpow(p, z, b, c, m : integers) # (p^z)^(b^c) mod m
    c' = 0
    m' = m
    while m' % p == 0 :
        c' += 1
        m' /= p
    # now m' = m / gcd((p^z)^(b^c), m)
    t = totient(m')
    exponent = z*(b^c)-c' mod t
    return p^c' * (p^exponent mod m')

And below Python working example:

def modpow(p, z, b, c, m) : # (p^z)^(b^c) mod m
    cp = 0
    while m % p == 0 :
        cp += 1
        m /= p              # m = m' now
    t = totient(m)
    exponent = ((pow(b,c,t)*z)%t + t - (cp%t))%t
                            # exponent = z*(b^c)-cp mod t
    return pow(p, cp)*pow(p, exponent, m)

Using this function, we can easily calculate (p^z)^(b^c) mod m, after we just have to multiple all results (mod m), we can also calculate everything on an ongoing basis. Example below. (I hope I didn't make mistake, writing.) Only assumption, b,c are big enough (b^c > log(m) ak. each p^(z*b^k) doesn't divide m), it's simple check and I don't see point to make clutter by it.

def solve(a,b,c,m) : # split and solve
    result = 1
    p = 2            # primes
    while p**2 <= a :
        z = 0
        while a % p == 0 :
                     # calculate z
            a /= p
            z += 1
        if z != 0 :
            result *=  modpow(p,z,b,c,m)
            result %= m
        p += 1
    if a != 1 :      # Possible last prime
        result *= modpow(a, 1, b, c, m)
    return result % m

Looks, like it works.
DEMO and it's correct!

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I know this answer has grammar issues. I hope it's understandable anyway. I done, what I could to improve it. I will be grateful, if someone will correct me. – Tacet Dec 20 '14 at 15:31

abc mod m = abc mod n mod m, where n = φ(m) Euler's totient function.

If m is prime, then n = m-1.

Edit: as Nabb pointed out, this only holds if a is coprime to m. So you would have to check this first.

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8  
Euler's theorem holds when the a is coprime to m, so this will fail in some cases, for example 3^4^5 mod 12 = 9, but 3^(4^5 mod 4) mod 12 = 1. – Nabb Nov 19 '10 at 9:25
    
it's also useful to note that phi(p1*p2) = phi(p1)*phi(p2). This gives the normal way to calculate phi so it involves factoring m. – aaronasterling Nov 19 '10 at 9:26
1  
In task form question φ(m) is co-prime to b, φ(φ(m)) is relatively prime with c, and so on. But this theorem is good point to start thinking, about general solution. – Tacet Dec 14 '14 at 20:47

Modular Exponentiation is a correct way to solve this problem, here's a little bit of hint:

To find abcd % m You have to start with calculating a % m, then ab % m, then abc % m and then abcd % m ... (you get the idea)

To find ab % m, you basically need two ideas: [Let B=floor(b/2)]

  • ab = (aB)2 if b is even OR ab = (aB)2*a if b is odd.
  • (X*Y)%m = ((X%m) * (Y%m)) % m
    (% = mod)

    Therefore,
    if b is even
    ab % m = (aB % m)2 % m
    or if b is odd
    ab % m = (((aB % m)2) * (a % m)) % m

    So if you knew the value of aB, you can calculate this value.

    To find aB, apply similar approach, dividing B until you reach 1.

    e.g. To calculate 1613 % 11:

    1613 % 11 = (16 % 11)13 % 11 = 513 % 11 = (56 % 11) * (56 % 11) * (5 % 11) <---- (I)

    To find 56 % 11:
    56 % 11 = ((53 % 11) * (53 % 11)) % 11 <----(II)
    To find 53%11:
    53 % 11 = ((51 % 11) * (51 % 11) * (5 % 11)) % 11
    = (((5 * 5) % 11) * 5) % 11 = ((25 % 11) * 5) % 11 = (3 * 5) % 11 = 15 % 11 = 4
    Plugging this value to (II) gives
    56 % 11 = (((4 * 4) % 11) * 5) % 11 = ((16 % 11) * 5) % 11 = (5 * 5) % 11 = 25 % 11 = 3
    Plugging this value to (I) gives
    513 % 11 = ((3 % 11) * (3 % 11) * 5) % 11 = ((9 % 11) * 5) % 11 = 45 % 11 = 4

    This way 513 % 11 = 4
    With this you can calculate anything of form a513 % 11 and so on...

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    1  
    How can you find a^b^c^d given a^b^c and d? – AKGMA Dec 13 '13 at 16:16
    1  
    This answer can be used to calculate (a^b)^c. But a^b^c means a^(b^c), for which your answer does not help. – interjay Dec 14 '14 at 15:58
    1  
    It is absolutely wrong in any way. First interpretation: a^b^c mod m =(a^b mod m)^c mod m give us 5^7^11 mod 13 = 8 = 8^11 mod 13 = 5, so 5=8 and it's absolutely incorrect. Second interpretation: a^b^c mod m = a^(b^c mod m) and we receive5^13 % 11 = 4, but a^5^13 mod 11 != a^4 mod 11 eg. 7^(5^13) mod 11 = 10, but 7^4 mod 11 = 3! – Tacet Dec 23 '14 at 1:52
    1. Since for any relationship a=x^y, the relationship is invariant with respect to the numeric base you are using (base 2, base 6, base 16, etc).

    2. Since the mod N operation is equivalent to extracting the least significant digit (LSD) in base N

    3. Since the LSD of the result A in base N can only be affected by the LSD of X in base N, and not digits in higher places. (e.g. 34*56 = 30*50+30*6+50*4+4*5 = 10*(3+50+3*6+5*4)+4*6)

    Therefore, from LSD(A)=LSD(X^Y) we can deduce

    LSD(A)=LSD(LSD(X)^Y)
    

    Therefore

    A mod N = ((X mod N) ^ Y) mod N
    

    and

    (X ^ Y) mod N = ((X mod N) ^ Y) mod N)
    

    Therefore you can do the mod before each power step, which keeps your result in the range of integers.


    This assumes a is not negative, and for any x^y, a^y < MAXINT


    This answer answers the wrong question. (alex)

    share|improve this answer
        
    And how does that help? :) – Alin Purcaru Nov 19 '10 at 8:56
        
    it's tagged number theory and math. This proves that you can mod before each power operation, which keeps the result representable. – Alex Brown Nov 19 '10 at 8:58
    2  
    This is essentially what I posted (without the stupid [and trivial] mistake). The problem is that a^b^c gets calculated as a^(b^c). This solution requires a calculation in the order (a^b)^c which was the real problem with mine as well. The problem is not to keep the base small but the exponent. – aaronasterling Nov 19 '10 at 9:09
    1  
    This works a^b^c^d mod m = ((((a mod m) ^ b) mod m) ^ c) mod m) ^ d) mod m – Bogdan Maxim Nov 19 '10 at 9:10
    1  
    It's actually equal to a^(b^c mod phi(n)) mod n as Henrik posted in his answer. – Alin Purcaru Nov 19 '10 at 9:25

    Look at the behavior of A^X mod M as X increases. It must eventually go into a cycle. Suppose the cycle has length P and starts after N steps. Then X >= N implies A^X = A^(X+P) = A^(X%P + (-N)%P + N) (mod M). Therefore we can compute A^B^C by computing y=B^C, z = y < N ? y : y%P + (-N)%P + N, return A^z (mod m).

    Notice that we can recursively apply this strategy up the power tree, because the derived equation either has an exponent < M or an exponent involving a smaller exponent tower with a smaller dividend.

    The only question is if you can efficiently compute N and P given A and M. Notice that overestimating N is fine. We can just set N to M and things will work out. P is a bit harder. If A and M are different primes, then P=M-1. If A has all of M's prime factors, then we get stuck at 0 and P=1. I'll leave it as an exercise to figure that out, because I don't know how.

    ///Returns equivalent to list.reverse().aggregate(1, acc,item => item^acc) % M
    func PowerTowerMod(Link<int> list, int M, int upperB = M)
        requires M > 0, upperB >= M
        var X = list.Item
        if list.Next == null: return X
        var P = GetPeriodSomehow(base: X, mod: M)
        var e = PowerTowerMod(list.Next, P, M)
        if e^X < upperB then return e^X //todo: rewrite e^X < upperB so it doesn't blowup for large x
        return ModPow(X, M + (e-M) % P, M)
    
    share|improve this answer
        
    Like the "leave it at an exercise [...] because I don't know how", most of the times I feel stupid when I read the first part because it seems like it was fairly trivial for the author and it's certainly not for me :) – Matthieu M. Nov 19 '10 at 16:30

    Tacet's answer is good, but there are substantial simplifications possible.

    The powers of x, mod m, are preperiodic. If x is relatively prime to m, the powers of x are periodic, but even without that assumption, the part before the period is not long, at most the maximum of the exponents in the prime factorization of m, which is at most log_2 m. The length of the period divides phi(m), and in fact lambda(m), where lambda is Carmichael's function, the maximum multiplicative order mod m. This can be significantly smaller than phi(m). Lambda(m) can be computed quickly from the prime factorization of m, just as phi(m) can. Lambda(m) is the GCD of lambda(p_i^e_i) over all prime powers p_i^e_i in the prime factorization of m, and for odd prime powers, lambda(p_i^e_i) = phi(p_i^e^i). lambda(2)=1, lamnda(4)=2, lambda(2^n)=2^(n-2) for larger powers of 2.

    Define modPos(a,n) to be the representative of the congruence class of a in {0,1,..,n-1}. For nonnegative a, this is just a%n. For a negative, for some reason a%n is defined to be negative, so modPos(a,n) is (a%n)+n.

    Define modMin(a,n,min) to be the least positive integer congruent to a mod n that is at least min. For a positive, you can compute this as min+modPos(a-min,n).

    If b^c^... is smaller than log_2 m (and we can check whether this inequality holds by recursively taking logarithms), then we can simply compute a^b^c^... Otherwise, a^b^c^... mod m = a^modMin(b^c^..., lambda(m), [log_2 m])) mod m = a^modMin(b^c^... mod lambda(m), lambda(m),[log_2 m]).

    For example, suppose we want to compute 2^3^4^5 mod 100. Note that 3^4^5 only has 489 digits, so this is doable by other methods, but it's big enough that you don't want to compute it directly. However, by the methods I gave here, you can compute 2^3^4^5 mod 100 by hand.

    Since 3^4^5 > log_2 100,

    2^3^4^5 mod 100 
    = 2^modMin(3^4^5,lambda(100),6) mod 100 
    = 2^modMin(3^4^5 mod lambda(100), lambda(100),6) mod 100
    = 2^modMin(3^4^5 mod 20, 20,6) mod 100.
    

    Let's compute 3^4^5 mod 20. Since 4^5 > log_2 20,

    3^4^5 mod 20 
    = 3^modMin(4^5,lambda(20),4) mod 20 
    = 3^modMin(4^5 mod lambda(20),lambda(20),4) mod 20
    = 3^modMin(4^5 mod 4, 4, 4) mod 20
    = 3^modMin(0,4,4) mod 20
    = 3^4 mod 20
    = 81 mod 20
    = 1
    

    We can plug this into the previous calculation:

    2^3^4^5 mod 100 
    = 2^modMin(3^4^5 mod 20, 20,6) mod 100
    = 2^modMin(1,20,6) mod 100
    = 2^21 mod 100
    = 2097152 mod 100
    = 52.
    

    Note that 2^(3^4^5 mod 20) mod 100 = 2^1 mod 100 = 2, which is not correct. You can't reduce down to the preperiodic part of the powers of the base.

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