plotting for every single loop

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Ali Roshanzamir
Ali Roshanzamir on 5 Aug 2020
Commented: Ali Roshanzamir on 6 Aug 2020
Hi everyone.
I got this code and I have a question about it. Is it work for every single "v"? like 1, 2 ,3 ,4 .......
If not how can I make it for every "v" ?
N=45;
teta=0:0.02:5*pi;
y=zeros(10,length(teta));
x=zeros(size(teta));
for v=1:2:30
x=x+(0.085*N/pi)*sin(v*teta)/v;
y((v+1)/2,:)=x;
end
plot(teta,x)

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Accepted Answer

Walter Roberson
Walter Roberson on 5 Aug 2020
for v=1:2:30
means that the loop should execute for 1, 1+2, 1+2+2, 1+2+2+2, 1+2+2+2+2 and so on -- which is to say, 1, 3, 5, 7, 9, and so on.
y((v+1)/2,:)=x;
Because your v values are presently odd integers, then v+1 becomes the next even integer, and /2 will be an integer. So y(1) then y(2), y(3) and so on will be assigned to.
If you were to switch to
for v=1:30
then you would be including even v such as 2, and (2+1)/2 would not be an integer, and you would not be able to use (v+1)/2 as a subscript.
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Walter Roberson
Walter Roberson on 5 Aug 2020
Yes. If you look more carefully at your code,
for v=1:2:30
x=x+(0.085*N/pi)*sin(v*teta)/v;
y((v+1)/2,:)=x;
end
plot(teta,x)
You are plotting x, not y. So you do not need to record y: you could simplify the code to
for v=1:2:30
x=x+(0.085*N/pi)*sin(v*teta)/v;
end
plot(teta,x)
and then change to
for v=1:30
The indexing at a non-integer stops being a problem if you stop indexing that way ;-)
Ali Roshanzamir
Ali Roshanzamir on 6 Aug 2020
Yes, I see. thank you so much.

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