Curve fitting a power law function

4 ビュー (過去 30 日間)
Yen Tien Yap
Yen Tien Yap 2021 年 9 月 24 日
回答済み: Alan Stevens 2021 年 9 月 24 日
%% Polyacrylamide solution curve fitting analysis
rho=1000; %[kg/m^3]
alpha=15; %[deg]
R=1.2*10^-3; %[m]
L=1.1; %[m]
D=10*10^-3; %[m]
g=9.81; %[ms-2]
h0=0.654; %[m]
h_t=[0.654;0.628;0.604;0.582;0.56;0.54;0.52;0.501;0.482;0.465;0.447;0.43;0.415;...
0.399;0.384;0.369;0.356;0.343;0.329;0.316;0.304;0.293;0.282;0.271;0.261;0.251;...
0.242;0.233;0.225;0.216;0.209]; %[m]
t=transpose([0:60:1800]); %[s]
syms n k
C1=-((pi*R^3)/(((1/n)+3)*tand(alpha)*D))*(rho*g*R/(2*L*k))^(1/n)
C2=0.654^(2*n-1/n)
h2_t=((2*n-1/n)*(C1.*t+C2)).^(n/2*n-1)
figure(4)
plot(t,h_t,'r','LineWidth',1.5)
hold on
scatter(t,h2_t)
Hi, I want to have a curve fitting (regression) plot and find the values of n and k for the power law function. How can I do this? Thank you.

サインインしてこの質問に回答する。

回答 (1 件)

Alan Stevens
Alan Stevens 2021 年 9 月 24 日
Ran in:
Like this?
h0=0.654; %[m] This seems to be unused
h_t=[0.654;0.628;0.604;0.582;0.56;0.54;0.52;0.501;0.482;0.465;0.447;0.43;0.415;...
0.399;0.384;0.369;0.356;0.343;0.329;0.316;0.304;0.293;0.282;0.271;0.261;0.251;...
0.242;0.233;0.225;0.216;0.209]; %[m]
t=transpose(0:60:1800); %[s]
X0 = [1, 1]; % Initial guesses [n0, k0]
X = fminsearch(@(X) fitfn(X, t, h_t), X0);
n = X(1); k = X(2);
disp(['n = ' num2str(n)])
n = 2.2345
disp(['k = ' num2str(k)])
k = 0.00020214
figure(4)
plot(t,h_t,':r','LineWidth',1.5)
hold on
scatter(t,h2_t(X,t))
function F = fitfn(X, t, h_t)
F = norm(h2_t(X,t) - h_t);
end
function h2t = h2_t(X,t)
%% Polyacrylamide solution curve fitting analysis
rho=1000; %[kg/m^3]
alpha=15; %[deg]
R=1.2*10^-3; %[m]
L=1.1; %[m]
D=10*10^-3; %[m]
g=9.81; %[ms-2]
n = X(1); k = X(2);
C1=-((pi*R^3)/(((1/n)+3)*tand(alpha)*D))*(rho*g*R/(2*L*k))^(1/n);
C2=0.654^(2*n-1/n);
h2t=((2*n-1/n)*(C1.*t+C2)).^(n/2*n-1);
end

カテゴリ

Help Center および File ExchangeCurve Fitting Toolbox についてさらに検索

タグ

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by