This post requires a basic understanding of prime numbers. In case you are not familiar with them, please go ahead and watch the video below:
Random Co-Prime Integers
Alright, on our journey to investigate quantum algorithms[1] like Shor’s Period Finding et al. sooner or later we will come upon the subject of so called co-prime integers. Of particular interest for us is the question about the likelihood of two random integers being co-prime. Let us mold this interest of ours into crisp mathematics:
$$\begin{equation} \text{co-prime}(x,y)\iff\text{gcd}(x,y)=1\label{EQ:P1} \end{equation}$$where $x,y∈\mathbb{Z}$ and $\text{gcd}(x,y)$ is the greatest common divisor, which can be calculated efficiently using the Euclidean algorithm. Well this is actually pretty straight forward, but what about the probability of two random integers being co-prime?
$$\begin{equation} \forall{x,y}\in\mathbb{Z}:\Pr{\{\text{co−prime}(x,y)\}}=\,?\label{EQ:P2} \end{equation}$$Well, what could the value of $\eqref{EQ:P2}$ be? The probability of $x$ and $y$ not being divisible by $2$ is $3/4$, by $3$ is $8/9$, by $5$ is $24/25$ and so on. So the total probability that two random integers do not share prime factors is then:
$$\begin{equation}\prod_{p\;\in\;\mathbb{P}}(1-1/p^2) =1\Bigg/\prod_{p\;\in\;\mathbb{P}}{\bigg(1-\frac{1}{1/p^2}\bigg)}\\ =\zeta(2)=6\times\pi^{-2}\approx{60.79\%}\label{EQ:P3}\end{equation}$$You can look up the proof yourself, but once having accepted this relation let us try to visualized it:
As you can see, I have plotted three sample populations against each other, and the mean of $60.82\%$ is consistent with the calculated probability of $60.79\%$. Another aspect the plot reveals is the fact, that the standard deviation of $1.63\%$ is sitting quite tightly around the mean.
Our conclusion is that when we take two random integers, then we can with some confidence (larger than $50\%$) expect them to be co-prime.
#!/usr/bin/env python
#####################################################################
# 2345678901234567890123456789012345678901234567890123456789012345678
import numpy as np
from math import gcd
from matplotlib import pyplot as pp
#####################################################################
def NEXT(n):
return np.random.random_integers(2**n)
def CO_PRIME_PCT(m, n):
return sum([1 if gcd(NEXT(n), NEXT(n))==1 \
else 0 for i in range(m)]) / m
def SAMPLE(size, m=1000,n=48):
return np.fromiter(map(lambda _: CO_PRIME_PCT(m,n), \
range(size)), dtype=np.float)
s0 = SAMPLE(size=256)
s1 = SAMPLE(size=256)
s2 = SAMPLE(size=256)
mm = 0.0; std = 0.0
m0 = s0.mean(); mm += m0 / 3.0
m1 = s1.mean(); mm += m1 / 3.0
m2 = s2.mean(); mm += m2 / 3.0
std += s0.std() / 3.0
std += s1.std() / 3.0
std += s2.std() / 3.0
pp.plot(s0, s1, 'r.')
pp.plot(s1, s2, 'g.')
pp.plot(s2, s0, 'b.')
mm = float(100.0*mm)
std = float(100.0*std)
pp.legend([
'Sample #1 vs #2', 'Sample #2 vs #3', 'Sample #3 vs #1'])
pp.title('Pr{co-prime(X=x,Y=y)} = ca. %0.2f%% ± %0.2f%%' \
% (mm, std))
pp.grid()
pp.show()
#####################################################################
algorithms based on quantum mechanical properties ↩︎
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