how do i fix this code? (finding convergence of divergence)

2 views (last 30 days)
Ann Lee
Ann Lee on 10 Apr 2022
Commented: Torsten on 10 Apr 2022
hello!
cube=@(n)(factorial(n))/(n.^n);
this series is divergence over n being over 170.
and i want to make this series being converges when n being over 1000.
to make converges,
i want to conversion of expression to 'exp(ln(f(x))) = f(x)' (then it will work n being over 170..)
so i want to print when n= 170~1000, this series( 'exp(ln(f(n))) = f(n)' )'s sum and
find the result of sum is converges? or divergence?
and print sum of series's graph
how can i fix this code?
I would appreciate it if you could tell me what I can type in the commander window to see the graph.
function A=work5(x)
m=1;
y = 170:50:1000;
for k = y
n=1:k;
f(n)= sum(exp(ln(f(n))));
A(1,m)=f(n);
m=m+1;
end
fprintf('k-sum\t\t%-10s\n','series a)','C or D');
fprintf('%-d-sum\t\t%13.10f\t%13.10f\t%13.10f\n',[y; A]);
end

Sign in to answer this question.

Accepted Answer

Torsten
Torsten on 10 Apr 2022
cube = @(n)prod((1:n)/n);
  2 Comments
Ann Lee
Ann Lee on 10 Apr 2022
what should i change my code to 'cube = @(n)prod((1:n)/n);'?
Torsten
Torsten on 10 Apr 2022
I don't understand what you mean.
If you want to calculate n! / n^n for a certain value of n, you can do
result = cube(n)
if you defined
cube = @(n) prod((1:n)/n);
before.

Sign in to comment.

More Answers (0)

Categories

Find more on Graph and Network Algorithms in Help Center and File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!