Ran in:

0 投票

Ran in:
LD = [1 2 0.004 1 0.05i 0 100
1 3 0.0057 2 0.0714i 0 70
3 4 0.005 3 0.0563i 0 80
4 5 0.005 4 0.045i 0 100
5 6 0.0045 5 0.0409i 0 110
2 6 0.0044 6 0.05i 0 90
1 6 0.005 7 0.05i 0 100];
PTR= 150e3/110;
CTR= [240 240 160 240 240 240 160 240 160 240 240 240 240 160];
for i=1:7
% for n=8:14
z(i,1)=(LD(i,3)+LD(i,5))*LD(i,7);
% z(n,1)=(LD(i,3)+LD(i,5))*LD(i,7);
% end
theta = angle(z(i,1));
z = abs(z)
end
z = 5.0160
z = 2×1
5.0160 5.0139
z = 3×1
5.0160 5.0139 4.5217
z = 4×1
5.0160 5.0139 4.5217 4.5277
z = 5×1
5.0160 5.0139 4.5217 4.5277 4.5261
z = 6×1
5.0160 5.0139 4.5217 4.5277 4.5261 4.5174
z = 7×1
5.0160 5.0139 4.5217 4.5277 4.5261 4.5174 5.0249
% for i= 1:14
% zsz1(1,i) = ((z(i,1))/(cos((theta(i,1)-45)*pi/180))*(CTR(1,i)/PTR));
% end
i need my loop to repeat again i want answers to be exactly like the first seven z(i,1)...thank u

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Sam Chak
Sam Chak 2022 年 6 月 13 日
Do you mean to repeat the loop infinitely unless broken on Ctrl+C?
arian hoseini
arian hoseini 2022 年 6 月 13 日
no sir i need them like this(14 ans)
5.0160
5.0139
4.5217
4.5277
4.5261
4.5174
5.0249
5.0160
5.0139
4.5217
4.5277
4.5261
4.5174
5.0249

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 採用された回答

Image Analyst
Image Analyst 2022 年 6 月 13 日

1 投票

If you simply want to repeat the loop while printing out exactly the same values each time, then do this:
for k = 1 : 2
for i=1:7
z(i,1)=(LD(i,3)+LD(i,5))*LD(i,7);
theta = angle(z(i,1));
z = abs(z)
end
end

その他の回答 (1 件)

dpb
dpb 2022 年 6 月 13 日
編集済み: dpb 2022 年 6 月 13 日

1 投票

While you could, why not just duplicate the array as many times as needed once it's been generated --
z=repmat(z,2,1);

4 件のコメント
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Image Analyst
Image Analyst 2022 年 6 月 13 日
Or, once it's been generated once, just use z. Why do another loop just to do the very same thing? Or replicate another identical row? I don't see the point of either.
dpb
dpb 2022 年 6 月 13 日
Well, agreed it's not clear "why" at all here, indeed, but... :)
I presumed there was something else going to happen later that needed the size to be 2X the initial size. It's not at all unusual to end up duplicating data to match some other array size for later array or vector or matrix operations.
Of course, we see lots of instances where beginners duplicate stuff needlessly, too, ...
arian hoseini
arian hoseini 2022 年 6 月 16 日
well thank u all ...first why do another loop?the ans is i have to calculate line impedance so i have 1 to 2 line and 2 to 1 line ..thats why i need this to be repeated as u see here
%n fromline toline impedance
B=[1 2 1 1 z(1)
2 1 3 2 z(2)
3 3 4 3 z(3)
4 4 5 4 z(4)
5 5 6 5 z(5)
6 6 2 6 z(6)
7 6 1 7 z(7)
8 1 2 1 z(1)
9 3 1 2 z(2)
10 4 3 3 z(3)
11 5 4 4 z(4)
12 6 5 5 z(5)
13 2 6 6 z(6)
14 1 6 7 z(7)];
Image Analyst
Image Analyst 2022 年 6 月 16 日
If you have the left 4 columns of B already, you could just tack on two copies of z:
z = 1:7;
B=[1 2 1 1
2 1 3 2
3 3 4 3
4 4 5 4
5 5 6 5
6 6 2 6
7 6 1 7
8 1 2 1
9 3 1 2
10 4 3 3
11 5 4 4
12 6 5 5
13 2 6 6
14 1 6 7];
z2 = [z(:); z(:)];
B = [B, z2]

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