Maximizing value for an array with integral function.
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I have 'time(t)' and 'acceleration(A)' values. t1 and t2 are the lower and upper limits, where (t2-t1 = 10).
f = max{((integration(A,t,t1,t2))^2.5) * (t2-t1)}
Please help me to put this function in my matlab code.
for t1=1:length(t)
for t2=t1:t1+10
f = (((int(A,t,t1,t2)))^2.5)*(t2-t1);
end
end
I am using this for loop, but getting error for integration.
Accepted Answer
fmax = -Inf;
for t1=1:numel(t)-10
fmax = max((trapz(t(t1:t1+10),A(t1:t1+10)))^2.5*(t(t1+10)-t(t1)),fmax);
end
fmax
Best wishes
Torsten.
8 Comments
Torsten
on 22 Feb 2018
f_max = -Inf;
fun = @(x)interp1(t,A,x);
for i = 1:numel(t1)
t1_actual = t1(i);
t2_actual = t2(i);
f_actual = (integral(fun,t1_actual,t2_actual))^2.5*(t2_actual-t1_actual);
if f_actual > f_max
t1_max = t1_actual;
t2_max = t2_actual;
f_max = f_actual;
end
end
t1_max
t2_max
f_max
Lal
on 27 Feb 2018
1. t is a one-dimensional array, but in the call to "trapz", you use it as a two-dimensional array (t(t1,t2)).
2. The call trapz(x,y) to "trapz" with only one value for x (namely t(t1,t2)) and one value for y (namely A(t1,t2)) does not make sense.
As far as I understand what you want:
You have two one-dimensional arrays: t and A(t).
Further, you have two one-dimensional arrays t_low and t_up and you want to find the index i such that
(integral_{t=t_low(i)}^{t=t_up(i)} A(t) dt)^2.5 * (t_up(i)-t_low(i))
is maximized.
Is this correct ?
Best wishes
Torsten.
Torsten
on 27 Feb 2018
Then what's wrong with the following code (assuming t is a 100 x 1 array with increasing t values and A is also 100 x 1):
f_max = -Inf;
for i = 1:85
f = (trapz(t(i:i+15),A(i:i+15)))^2.5*(t(i+15)-t(i))
if f > f_max
tlow_max = t(i);
tup_max = t(i+15);
f_max = f;
end
end
f_max
tlow_max
tup_max
Lal
on 27 Feb 2018
Torsten
on 27 Feb 2018
f_max = -Inf;
for i = 1:85
for j = 1:15
f = (trapz(t(i:i+j),A(i:i+j)))^2.5*(t(i+j)-t(i))
if f > f_max
tlow_max = t(i);
tup_max = t(i+j);
f_max = f;
end
end
end
f_max
tlow_max
tup_max
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