How do I Loop a code every 6 rows until the end?

22 Abr. 2015
2 Respuestas
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Actualizado a las 26 Mayo 2015
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I need to calculate daily n-factors for a complete year. I use this code;
trapz(x(1:6,1),min(y(1:6,3),0)/trapz(x(1:6,1),min(y(1:6,2),0)
1:6 is 1st day, 7:12 is 2nd and so on... I have 1800 measurements and I need to perform this code every 6 rows from matrix Y so I have another matrix corresponding to the DAILY calculations of the n-factor.
How do I loop this code every 6 rows?
-
Regards!
Sebastián.-

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Star Strider
Star Strider el 23 de Abr. de 2015

1 voto

I would use the reshape function to redefine x(:,1), y(:,2) and y(:,3) as:
X1 = reshape(x(:,1), 6, []);
Y2 = reshape(y(:,2), 6, []);
Y3 = reshape(y(:,3), 6, []);
then:
for k1 = 1:size(X1,2)
W(k1) = trapz(X1(:,k1),min(Y3(:,k1),0)/trapz(X1(:,k1),min(Y3(:,k1),0))
end
There is something wrong with the code you posted, since it doesn’t make sense, so I didn’t run this code. (I assume it produces a scalar.) I will leave you to sort that out.

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sruizpp
sruizpp el 23 de Abr. de 2015
I'll try this. Thank you!
Star Strider
Star Strider el 23 de Abr. de 2015
My pleasure!
sruizpp
sruizpp el 26 de Mayo de 2015
Greetings, If X1 is reshaped, it is no longer recognized as vector and throws an error while running the code. And yes, my result needs to be a scalar. I need that value each 6 terms.
Regards!
Star Strider
Star Strider el 26 de Mayo de 2015
Did you run the for loop? It treats every column of ‘X1’ (and ‘Y3’) as a separate vector, so there should be no problem.

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Geoff Hayes
Geoff Hayes el 23 de Abr. de 2015

1 voto

Try setting the step size in your for loop to be 6. Something like the following may work where we assume that both X and Y have 1800 rows.
numRows = size(Y,1);
stepSize = 6;
for k=1:stepSize:numRows
value = trapz(X(k:k+stepSize-1,1),min(Y(k:k+stepSize-1,3),0)/...
trapz(X(k:k+stepSize-1,1),min(Y(k:k+stepSize-1,2),0);
% save value to other matrix
end
Given that stepSize is six, then our k becomes 1, 7, 13, 19, ..., 1795 and we get the correct groupings of six elements of data (since k + stepSize - 1 becomes 6, 12, 18, ..., 1800).
Try the above and see what happens!

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Preguntada:

sruizpp
sruizpp
el 22 de Abr. de 2015

Comentada:

Star Strider
Star Strider
el 26 de Mayo de 2015

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