Determine best-fitting exponential

9 ビュー (過去 30 日間)
Jack
Jack 2013 年 5 月 27 日
I have an array of data which, when plotted, looks like this. http://s12.postimg.org/7ja47a6b1/temp.jpg
I need to use the polyfit command to determine the best fitting exponential for the time roughly between 1.7 and 2.3. I must also compare this exponential fit to a simple linear fit. I'm given the equation Temp(t) = Temp0 * exp(-(t-t0)/tau), where t0 is the time corresponding to temperature Temp0 (I can select where to begin my curve-fitting, but it must be confined to the area roughly between 1.7 and 2.3). Here is my attempt.
% Arbitrarily defined starting point
t0 = 1.71;
%Exponential fit
p = polyfit(time, log(Temp), 1)
tau = -1./p(1)
Temp0 = exp(p(2))
tm = 1.8:0.01:2.3;
Temp_t = Temp0*exp(-(tm)/tau);
plot(time, Temp, tm, Temp_t)
figure(2)
%Linear fit
p2 = polyfit(time, Temp, 1);
Temp_p = p2(1)*tm + p2(2);
plot(time, Temp, tm, Temp_p)
My exponential fit ends up looking like this http://s23.postimg.org/4kibibouj/exp.jpg My linear fit looks like this http://s24.postimg.org/f3awxyw0l/lin.jpg (virtually identical). Here is an overlap http://s22.postimg.org/cmx5ke5j5/overlap.jpg What am I doing incorrectly? Should the two fits be so similar? I am told that circshift may help, but I couldn't grasp the applicability of the command after reading the help file. Any help would be greatly appreciated. Thank you!
  4 件のコメント
Matt J
Matt J 2013 年 5 月 27 日
編集済み: Matt J 2013 年 5 月 27 日
You should probably continue the discussion in that earlier thread. Just in passing, I'll mention that I don't see any obvious reason to distrust the fit. The exponential fit does lie above some data points, but below others. If you expected something more convex-looking, maybe you should try restricting the fit to t>=1.9. You could also try double-checking against a fit generated with FMINSEARCH, or better yet with FMINSPLEAS.
Jack
Jack 2013 年 5 月 27 日
I see. Thank you very much for your help, Matt J.

サインインしてコメントする。

回答 (1 件)

Image Analyst
Image Analyst 2013 年 5 月 27 日
What is time? Is that (t-t0)? You didn't define it. If so, you must put that back in the equation:
Temp_t = Temp0*exp(-(tm)/tau);
you can't use tm - you must subtract off t0 from it: tm-t0, or use "time".
Temp_t = Temp0*exp(-(tm-t0)/tau);
Did you upload your data anywhere so we can try some things?
  2 件のコメント
Image Analyst
Image Analyst 2013 年 5 月 27 日
編集済み: Image Analyst 2013 年 5 月 27 日
By the way, here's the exponential fitting code from the help "Curve Fitting via Optimization":
function [estimates, model] = fitcurvedemo(xdata, ydata)
% Call fminsearch with a random starting point.
start_point = rand(1, 2);
model = @expfun;
estimates = fminsearch(model, start_point);
% expfun accepts curve parameters as inputs, and outputs sse,
% the sum of squares error for A*exp(-lambda*xdata)-ydata,
% and the FittedCurve. FMINSEARCH only needs sse, but we want
% to plot the FittedCurve at the end.
function [sse, FittedCurve] = expfun(params)
A = params(1);
lambda = params(2);
FittedCurve = A .* exp(-lambda * xdata);
ErrorVector = FittedCurve - ydata;
sse = sum(ErrorVector .^ 2);
end
end
Jack
Jack 2013 年 5 月 27 日
編集済み: Jack 2013 年 5 月 27 日
I had attempted to use Temp_t = Temp0*exp(-(tm-t0)/tau), but the curve-fit ends up being far above the data points. Time and Temp each have 5,185 cells of data. Here is an excel file with the 2 columns of data: http://filebin.ca/ia7Gh9kHxod/data.xls

サインインしてコメントする。

カテゴリ

Help Center および File ExchangeInterpolation 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