Skip analysis when you have NaN or 0

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Luccas S.
Luccas S. am 26 Dez. 2021
Kommentiert: Luccas S. am 26 Dez. 2021
I think I am having problems with my analysis result due to the presence of NaN and 0. How to skip analysis when I have NaN or 0?
p_fix = [];
for n = 4:size(t,1)
X = [Ia(n-1,1) Ia(n-2,1) ; Ia(n-2,1) Ia(n-3,1)];
future = [Ia(n,1) ; Ia(n-1,1)];
C = X\future;
Ia_future(n,1) = C(1,1)*Ia(n,1)+C(2,1)*Ia(n-1,1);
PE(n,1)=Ia(n,1)+Ia_future(n,1);
p(n,1)=(1+0.2)*max(PE(n-1,1));
if isempty(p_fix) && PE(n-1,1)>p(n,1)
p_fix = p(n,1);
if (mod(N,5)==0) && (PE(n-1,1)>p_fix)
fprintf('Accuses IC\n')
else
fprintf('Does not accuse IC\n')
p_fix = [];
end
end
Basically I wanted this part to be ignored when (PE=NaN or 0) and (p = NaN or 0) happened. And perform the PE and p calculations again.
if isempty(p_fix) && PE(n-1,1)>p(n,1)
p_fix = p(n,1);
if (mod(N,5)==0) && (PE(n-1,1)>p_fix)
fprintf('Accuses IC\n')
else
fprintf('Does not accuse IC\n')
p_fix = [];

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Image Analyst
Image Analyst am 26 Dez. 2021
Do you want to break out of the loop and go somewhere else,
PE(n,1)=Ia(n,1)+Ia_future(n,1);
p(n,1)=(1+0.2)*max(PE(n-1,1));
if (isnan(PE(n, 1)) || PE(n, 1) == 0) && (isnan(p(n, 1)) || p(n, 1) == 0)
break; % Quit the loop totally
end
or do you want to continue with the next iteration of the loop?
PE(n,1)=Ia(n,1)+Ia_future(n,1);
p(n,1)=(1+0.2)*max(PE(n-1,1));
if (isnan(PE(n, 1)) || PE(n, 1) == 0) && (isnan(p(n, 1)) || p(n, 1) == 0)
continue; % Skip to bottom of loop and continue the loop with the next iteration.
end
  2 Kommentare
Image Analyst
Image Analyst am 26 Dez. 2021
Should the second and thirs ifs be nested under the first one? Probably not. Do this for me.
  1. Type control-a (to select all the source code text in your editor.
  2. Type control-i (to properly indent the if blocks).
Do they all look like they are nested as you want them to be? Probably not.
Luccas S.
Luccas S. am 26 Dez. 2021
Oh sorry, I ended up deleting the comment because I had found my mistake. That's right, it was the position of the end.

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William Rose
William Rose am 26 Dez. 2021
Ran in:
@luccas santos,
a=1; %try replacing "1" with "0" or "NaN"
if ~(isnan(a) || a==0)
disp('a is not NaN and is not 0.')
else
disp(a)
end
a is not NaN and is not 0.
Try.

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