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How to apply this formula into a matlab loop?

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Lu Da Silva
Lu Da Silva el 25 de En. de 2022
Comentada: Esha Chakraborty el 1 de Feb. de 2022
Hi, I have a table that looks like this:
% have: % wanted:
X Y Z
____________________________
A 1 2
B 2 2
C 3 -2
D 4 -2
A 5 2
B 6 2
C 7 -2
D 8 -2
A 9 2
B 10 2
C 11 -2
D 12 -2
I need to create a vector Z that only uses values when X=B or X=D and is solved as follows:
Z(1) = Y(4)-Y(2)
Z(2) = Y(4)-Y(2)
Z(3) = Y(4)-Y(6)
Z(4) = Y(4)-Y(6)
Z(5) = Y(8)-Y(6)
Z(6) = Y(8)-Y(6)
Z(7) = Y(8)-Y(10)
Z(8) = Y(8)-Y(10)
Z(9) = Y(12)-Y(10)
Z(10) = Y(12)-Y(10)
etc...
(note that the actual data has different numbers so it's not actually as easy as just creating a vector of 2s and -2s)
I'm struggling to implement this into matlab, e.g. in a loop... I hope someone can help me out!
Thanks

Respuestas (1)

Esha Chakraborty
Esha Chakraborty el 28 de En. de 2022
I understand that Z(i) = Y(b) - Y(a), where variables a and b are incremented by 4 after every 4 iterations. For this, you can use "rem" function inside "for" loop and iterate over the rows of the table. Then, embed the “if” statement inside to choose the values for subtraction.
Check the documentation for the "rem" here.
Use the below code for reference:
a = 0;
b = 2;
rows = 10;
for i = 1:rows %Can be modified as per requirements
if rem(i,4) == 3
b = b + 4;
end
if rem(i,4) == 1
a = a + 4;
end
Z(i) = Y(b) - Y(a);
disp(Z);
end
  2 comentarios
Lu Da Silva
Lu Da Silva el 31 de En. de 2022
Editada: Lu Da Silva el 31 de En. de 2022
As I mentioned, the actual numbers are different, not 1,2,3.... Otherwise I would've just created a vector of -2 and 2. It is, however, the index of the number that is incremented by 4... So maybe it is possible to somehow modify your loop to fit that?
Esha Chakraborty
Esha Chakraborty el 1 de Feb. de 2022
The code is only indexing for the values instead of using the values itself. Hence, it will work for any set of numbers other than what is provided. You can modify the initial variables and the increment as per requirements.

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