Help With Conditonally variant Anonymous function.

29 Nov. 2020
3 Respuestas
Actualizado a las 29 Nov. 2020
1 Visualización (30 días)

0 votos

Okay, this question is more abstract than specific, ergo, I'll be using more pseudocode and less specifics.
Say I have a very important variable:
B2 = +/- val;
And three arrays:
z1=[1:1:500];
z2=[501:1:1500];
z3=[1501:1:2000];
Which in turn exist in larger array z such that:
z=[z1 z2 z3];
The value of B2 is given by the general relationships:
B2(z1) = -val;
B2(z2) = +val;
B2(z3) = -val;
Now, im well aware ill need an if/else loop, but I must program this in an anonlymous function:
B2=@(X)(...)
I think the following solution is something similar to what I'd like:
B_2 = @(X)(if X<=z(500)&&X>=z(1500) B_2 = +val, else B_2 = -val)
Before some genius suggest an anonymous function is unecaserry, stupid, superflous etc etc etc, theres no ather way i can implement it. It HAS to be a anonymous function, I'm sorry.
If anyone could help I'd be really apprecative. I've been doing coursework all day, my brains quite fried, i think im like 90% of the way to a solution, im just being buggered by the execution. Hopfully i wake up with some assistance :)
Ty guys.

3 comentarios
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Walter Roberson
Walter Roberson el 29 de Nov. de 2020
If the same value appears in both z1 and z2, then what is the value of B2 to be?
Mark Dawson
Mark Dawson el 29 de Nov. de 2020
Shouldnt happen. Consider z (the overall array) to be:
z=[1:1:2000]
Mark Dawson
Mark Dawson el 29 de Nov. de 2020
I eddted the original post. Hopefully should be clearer.

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Respuestas (3)

Mark Dawson
Mark Dawson el 29 de Nov. de 2020
Editada: Mark Dawson el 29 de Nov. de 2020

0 votos

Thanks once again for the help guy. As always, I solved it on my own. Would've been neater with an anonymous function through. Ah well. If anyone from the future cares:
function beta_2 = b_2(Z)
z = [0:(40000)/1999:40000];
if Z < z(501) && Z > z(1501)
beta_2 =6.8e-03;
else
beta_2 = -6.8e-03;
end
end
Walter Roberson
Walter Roberson el 29 de Nov. de 2020

0 votos

B_2 = @(z) ((z>=z(501)&z<=z(1500)) * 2 - 1) .* val
The logical test that is satisfied by the range will return true (1) in the middle range, and false (0) outside the range. 1 * 2 - 1 is 1, so a match (true) will become 1. 0*2 -1 is -1 so a non-match (false) will become -1 . That all is multiplied by val.
Steven Lord
Steven Lord el 29 de Nov. de 2020
Ran in:

0 votos

Ran in:
Let's say val is 2. So if Z is between 1 and 500 B2 should be -2, if it is between 501 and 1500 B2 should be 2, and if it is between 1501 and 2000 B2 should be -2. You're trying to discretize your data.
edges = [1, 500, 1500, 2000]
edges = 1×4
1 500 1500 2000
values = [-2, 2, -2]
randomZ = randi([1 2000], 10, 1);
B2 = @(x) discretize(x, edges, values);
B2vals = B2(randomZ);
results = table(randomZ, B2vals)
results = 10x2 table
randomZ B2vals _______ ______ 771 2 1590 -2 731 2 901 2 384 -2 222 -2 345 -2 1754 -2 1471 2 1153 2

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Preguntada:

Mark Dawson
Mark Dawson
el 29 de Nov. de 2020

Respondida:

Steven Lord
Steven Lord
el 29 de Nov. de 2020

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