about product in uint64

2 visualizzazioni (ultimi 30 giorni)
Nguyen Huy
Nguyen Huy il 19 Mag 2021
Modificato: Jan il 20 Mag 2021
My question is iven an integer x which contains d digits, find the value of n (n > 1) such that the last d digits of x^n is equal to x. If the last d digits will never equal x, return inf.
Example :
%x = 2; (therefore d = 1)
%2^2 = 4, 2^3 = 8, 2^4 = 16, 2^5 = 32
%n = 5;
So my solution is take x into uint64 vecto,then take the x^n by take product of a*x with example is
a=uint64([x])
for i=1:inf
a=a*x
for j=length(a):-1:1
b=rem(a(j)/10)
c=mod(a(j),10)
if a(j)>10
a(j)=c
a(j-1)=a(j-1)+b
end
end
if x==a(end-d:end)
break
end
end
%example : 0 0 0 2 *
2
==========
0 0 0 4 => [0 0 0 4]*2 =>[0 0 0 8]*2=>[0 0 0 16]=[0 0 1 6]*2=>[0 0 0 32]=[0 0 3 2] have a(end-d:end)==x then break
so my question is how could i product the number with over 2 digits in uint64()
  1 Commento
Jan
Jan il 20 Mag 2021
Why do you use uint64 instead of uint8 to store decimal digits?
What about limiting the solution to the UINT64 range, which is at least up to 1.8e19?

Accedi per commentare.

Accedi per rispondere a questa domanda.

Risposte (1)

Jan
Jan il 20 Mag 2021
Modificato: Jan il 20 Mag 2021
With limiting the values to UINT64 range:
x = uint64(2);
d10 = uint64(10^(floor(log10(x)) + 1));
n = 2;
a = x^n;
lim = intmax('uint64');
while rem(a, d10) ~= x && a <= lim
a = a * x;
n = n + 1;
end
if a < lim
disp(n)
else
disp('search failed.');
end

Categorie

Scopri di più su Special Functions in Help Center e File Exchange

Tag

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by