I am trying to write a function that takes both an input vector and scalar (v and n respectively). It needs to output the maximum value of the sum of n consecutive integers of v, as well as the index of the first term in v.
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I am trying to write a function that takes both an input vector and scalar (v and n respectively). It needs to output the maximum value of the sum of n consecutive integers of v, as well as the index of the first term in v.
Here is an example of how the function should work:
>> [total ind] = maxval([1 2 3 4 5 4 3 2 1],3)
total = 13
ind = 4
Here is the code that I have so far:
I do not understand how to get the function to replace a current maximum with a newly calculated larger maximum. I'm also confused on how to find the index and how to construct the "else" statement.
function [total, ind] = maxval(v, n)
total = 0;
ind = 0;
for a = 1:length(v)
for b = a:(a+n)
if sum(v(b)) > v % at this point im confused :/
total = sum(v(b));
ind = v(a);
else
total = sum(v(b))
end
end
end
end
Réponse acceptée
Ameer Hamza
le 18 Mar 2020
Modifié(e) : Ameer Hamza
le 18 Mar 2020
There is no need to use a for loop.
v = [1 2 3 4 5 4 3 2 1];
n = 3;
sums = movsum(v, n, 'Endpoints', 'discard');
[~, idx] = max(sums);
max_sum = sums(idx);
3 commentaires
John D'Errico
le 18 Mar 2020
+1. No loop needed as you say. Of course, I was going to suggest using conv to do the work, since I did not know movsum exists. I really need to read the release notes as each new release comes out.
Anyway, movsum is much better than conv for an application like this, because it is so clear what it does, and easily readable code is vastly better than the alternative.
Ameer Hamza
le 18 Mar 2020
I too got to know about it somewhere here on another question. I agree this makes the code more readible in many cases.
James Metz
le 18 Mar 2020
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James Metz
le 18 Mar 2020
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