Using a for loop to count the digits of pi

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Martin
Martin am 4 Okt. 2023
Kommentiert: Sam Chak am 6 Okt. 2023
If the digits of π were random, then we would expect each of the integers to occur with approximately equal frequency in the decimal representation of π. In this problem we are going to see if the digits of π do indeed appear to be random.
The first line of your script stores the first 100 digits of π in the vector pi_digits.
  1. Create a vector f50 such that f50(i) is equal to the frequency with which the integer i-1 appears among the first 50 digits of π.
  2. Replicate it for f100.
I have the following code:
pi_digits=[3 1 4 1 5 9 2 6 5 3 5 8 9 7 9 3 2 3 8 4 6 2 6 4 3 3 8 3 2 7 9 5 0 2 8 8 4 1 9 7 1 6 9 3 9 9 3 7 5 1 0 5 8 2 0 9 7 4 9 4 4 5 9 2 3 0 7 8 1 6 4 0 6 2 8 6 2 0 8 9 9 8 6 2 8 0 3 4 8 2 5 3 4 2 1 1 7 0 6 7];
f50=zeros(1,10);
for i=0:9
f50(i+1)=sum(pi_digits(1:50)==i)
end
f100=zeros(1,10);
for i=0:9
f100(i+1)=sum(pi_digits(1:100)==i)
end
the output returns the correct frequency vector, yet I get an error that it is the incorrect value.
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Dyuman Joshi
Dyuman Joshi am 4 Okt. 2023
@Sam, but the discussion here is for pi, not the factorial of pi :P
Sam Chak
Sam Chak am 5 Okt. 2023
@Dyuman Joshi, I am "irrational", pun intended.

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Antworten (2)

Daniel
Daniel am 6 Okt. 2023
MA207?
need to divide f50 by 50 and f100 by 100.
apparently it wants the answer to be in decimal.
  2 Kommentare
Walter Roberson
Walter Roberson am 6 Okt. 2023
Ah, the original Question does ask about "frequency" rather than about counts, so I can see why they might normalize by the number of entries.
Sam Chak
Sam Chak am 6 Okt. 2023
Thank you, @Daniel. I interpreted "frequency" as the number of occurrences within a given 100-digit π number. I totally overlooked that the "frequency" in question is somehow mathematically defined in statistics.
https://en.wikipedia.org/wiki/Frequency_(statistics)

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Sam Chak
Sam Chak am 4 Okt. 2023
Ran in:
Hi @Martin
Please try comparing the histogram with yours.
num2str(pi, 1000);
digits(100); % show 100 digits of π
numPi = vpa(pi)
numPi = 
3.141592653589793238462643383279502884197169399375105820974944592307816406286208998628034825342117068
c = char(numPi);
% Find the decimal point:
pos = strfind(c, '.')
pos = 2
% Begin to count after the decimal point
d = arrayfun(@str2num, c(pos+1:end));
% Plot the histogram for comparing with your Answer in MATLAB Grader
histogram(d, 10);
xt = linspace(0.5, 8.6, 10);
xticks(xt);
xticklabels({'0', '1', '2', '3', '4', '5', '6', '7', '8', '9'})
xlabel('Decimal Digit')
ylabel('Frequency')
title('Distribution of the digits of \pi');
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Martin
Martin am 4 Okt. 2023
Thanks I appreciate it! After further review I am convinced there is an error in the solution on Matlab Grader.
Stephen23
Stephen23 am 4 Okt. 2023
Bearbeitet: Stephen23 am 4 Okt. 2023
Ran in:
Another approach using 1000 digits from https://pi2e.ch/blog/2017/03/10/pi-digits-download/
T = '31415926535897932384626433832795028841971693993751058209749445923078164062862089986280348253421170679821480865132823066470938446095505822317253594081284811174502841027019385211055596446229489549303819644288109756659334461284756482337867831652712019091456485669234603486104543266482133936072602491412737245870066063155881748815209209628292540917153643678925903600113305305488204665213841469519415116094330572703657595919530921861173819326117931051185480744623799627495673518857527248912279381830119491298336733624406566430860213949463952247371907021798609437027705392171762931767523846748184676694051320005681271452635608277857713427577896091736371787214684409012249534301465495853710507922796892589235420199561121290219608640344181598136297747713099605187072113499999983729780499510597317328160963185950244594553469083026425223082533446850352619311881710100031378387528865875332083814206171776691473035982534904287554687311595628638823537875937519577818577805321712268066130019278766111959092164201989';
histogram(T(1:100)-'0',0:10)
Confirming a few random digits:
nnz(T(1:100)=='0')
ans = 8
nnz(T(1:100)=='6')
ans = 9
nnz(T(1:100)=='9')
ans = 13

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