Can't integrate function using Matlab
이전 댓글 표시
I am trying to do a basic integration of a formula for 4 different values. After doing a bit of reading, apparently I need to create a function handle but I am not getting any success. I have put my attempt below. I might be missing more though.
L=0:100;
L_bar=25;
sigma_d =[0.25, 0.5, 0.75, 1.0];
mu = log(L_bar) - 0.5*(sigma_d).^2;
L_tilda = exp(mu);
% eta_r = P.*exp(-r./L);
% I want to integrate eta from zero to infinity where P has changing
% variables to give 4 different plots.
r = 0:100;
% I was just testing below to see if a loop would run before attempting to
% plot anything
P = zeros(1,length(L));
fun = @(r) P.*exp(-r./L);
for ii=1:numel(sigma_d)
P= 1./(L.*sqrt(2*pi)*sigma_d(ii)).*exp(-log(L/L_tilda(ii)).^2/(2*sigma_d(ii)^2)) ;
eta_r = integral(fun,0,inf);
end
채택된 답변
L_bar=25;
sigma_d =[0.25, 0.5, 0.75, 1.0];
mu = log(L_bar) - 0.5*(sigma_d).^2;
L_tilda = exp(mu);
r = 0:100;
for ii=1:numel(sigma_d)
P= @(L)1./(L.*sqrt(2*pi)*sigma_d(ii)).*exp(-log(L/L_tilda(ii)).^2/(2*sigma_d(ii)^2));
fun = @(L,r) P(L).*exp(-r./L);
eta_r(ii,:)=integral(@(L)fun(L,r),0,Inf,'ArrayValued',true);
end
plot(r,eta_r)
grid on
댓글 수: 4
David Harra
2023년 2월 9일
Torsten I have one question about the plot - only the appearance . I am trying ti change each line with a different line style. For some reason all the lines are plotting the same and I have defined them to be different. using the variable LineTypes
L=0:100;
L_bar=25;
sigma_d =[0.25, 0.5, 0.75, 1.0];
mu = log(L_bar) - 0.5*(sigma_d).^2;
L_tilda = exp(mu);
r = 0:100;
% LineTypes={'-' '--' ':' '-.'};
for ii=1:numel(sigma_d)
P= @(L)1./(L.*sqrt(2*pi)*sigma_d(ii)).*exp(-log(L/L_tilda(ii)).^2/(2*sigma_d(ii)^2));
fun = @(L,r) P(L).*exp(-r./L);
eta_r(ii,:)=integral(@(L)fun(L,r),0,Inf,'ArrayValued',true);
end
figure(4)
LineTypes={'-' '--' ':' '-.'};
plot(r,eta_r,'LineWidth',2 , 'LineStyle',LineTypes{ii})
xlabel('r (\mu m)')
xticks([0 20 40 60 80 100])
ylabel('\eta(r)');
ylim([0 1])
title('Spatial Correlation Function LBAR=25')
set(gca, 'FontSize',10);
legend('\sigma_d =0.25', '\sigma_d= 0.5', '\sigma_d =0.75', '\sigma_d = 1')
You will have to apply that individually -
L=0:100;
L_bar=25;
sigma_d =[0.25, 0.5, 0.75, 1.0];
mu = log(L_bar) - 0.5*(sigma_d).^2;
L_tilda = exp(mu);
r = 0:100;
LineTypes={'-' '--' ':' '-.'};
for ii=1:numel(sigma_d)
P= @(L)1./(L.*sqrt(2*pi)*sigma_d(ii)).*exp(-log(L/L_tilda(ii)).^2/(2*sigma_d(ii)^2));
fun = @(L) P(L).*exp(-r./L);
eta_r(ii,:)=integral(@(L)fun(L),0,Inf,'ArrayValued',true);
plot(r,eta_r(ii,:),'LineStyle', LineTypes{ii}, 'LineWidth', 1.5)
hold on
end
xlabel('r (\mu m)')
xticks([0 20 40 60 80 100])
ylabel('\eta(r)');
ylim([0 1])
title('Spatial Correlation Function LBAR=25')
set(gca, 'FontSize',10);
legend('\sigma_d =0.25', '\sigma_d= 0.5', '\sigma_d =0.75', '\sigma_d = 1')
David Harra
2023년 2월 9일
추가 답변 (1개)
You will have to explicitly change the function handle to change its definition
P=pi;
fun = @(x) P*x;
P=3;
%fun(3) is not equal to 3*3=9
fun(3)
L=0:100;
L_bar=25;
sigma_d =[0.25, 0.5, 0.75, 1.0];
mu = log(L_bar) - 0.5*(sigma_d).^2;
L_tilda = exp(mu);
% eta_r = P.*exp(-r./L);
% I want to integrate eta from zero to infinity where P has changing
% variables to give 4 different plots.
r = 0:100;
% I was just testing below to see if a loop would run before attempting to
% plot anything
for ii=1:numel(sigma_d)
P= 1./(L.*sqrt(2*pi)*sigma_d(ii)).*exp(-log(L/L_tilda(ii)).^2/(2*sigma_d(ii)^2));
fun = @(x) P.*exp(-x./L);
eta_r=integral(fun,0,Inf,'ArrayValued',true)
end
Since you are dividing by 0 (first element of L), you get a NaN and thus the warning from the integral() solver.
댓글 수: 3
David Harra
2023년 2월 9일
Dyuman Joshi
2023년 2월 9일
"I need to be integrating with respect to L"
You should have mentioned that before. By the definition of the function handle, I took it as you are integrating w.r.t r
Now as you want to integrate w.r.t L, is there a need to define L=0:100?
Or L is a variable in the definition of P as well?
David Harra
2023년 2월 9일
Aplogies
So my definition of P is
P= 1./(L.*sqrt(2*pi)*sigma_d).*exp(-log(L/L_tilda).^2/(2*sigma_d^2))
So L is definied within P and L defined as a length. I think I could maybe make this a fixed constant of L=100 and keep r=0:100
The integral I am trying to calculate is
I am changing values of L_tilda and sigma 4 times to get 4 different plots.
Hopefully this is more clear :)
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