making an Xn sequence

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Erin Meyers
Erin Meyers am 11 Sep. 2020
Kommentiert: BOB MATHEW SYJI am 13 Sep. 2020
I'm trying to code the function Xn=111-(1130/Xn-1)+3000/(Xn-1*Xn-2)
I don't know how to make this sequence in MatLab
I think I can figure out the rest of the problem, I'm just not sure how to do this part particularly
  2 Kommentare
KSSV
KSSV am 11 Sep. 2020
It is pretty simple and straight forward...what have you attempted?
Walter Roberson
Walter Roberson am 11 Sep. 2020
If n is at least 3 then would be written X(n-2) and would be written X(n-1) and would be written X(n)

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BOB MATHEW SYJI
BOB MATHEW SYJI am 13 Sep. 2020
Hope this helps. x1 and x2 are the 1st and 2nd terms of the sequence respectively. n is the nth term you want.
x1=%the first number of the sequence
x2=%the second number of the sequence
n=%the nth element you want
x=[x1 x2];
for i=3:n
x(i)=111-(1130/x(i-1))+(3000/(x(i-1)*x(i-2)));
end
disp(x(n));
  2 Kommentare
John D'Errico
John D'Errico am 13 Sep. 2020
Bearbeitet: John D'Errico am 13 Sep. 2020
I would suggest you learn why and how to preallocate vectors when they will be grown. Else your code will be exceedingly slow, leaving you to soon post an anguished question of your own at some time - "Why is this code so slow?"
In this case, the code you wrote will create a vector of length n, but your code grows that vector in length one step at a time, forcing MATLAB to reallocate memory at every iteration. It also forces MATLAB to copy the entire vector over at every iteration. If n is at all large, this creates code that will run in O(n^2) time. It is an unnecesarily inefficient coding style, avoidable by a simple line at the beginning like
x = zeros(1,n);
BOB MATHEW SYJI
BOB MATHEW SYJI am 13 Sep. 2020
Thank you so much for pointing this out

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