How to get the intersection points of a line and a curve which was fit to data?

1 Ansicht (letzte 30 Tage)
Khanh
Khanh am 24 Okt. 2014
Bearbeitet: Hussein Qenawy am 13 Apr. 2019
Hi,
I have a line and a curve that was fit to a data. I also get Coefficients of Equation of the Curve, but don't know how to find its equation to make two equations equal to find the points of the tangency. Could someone give me some recommends?
Here is my code:
clc
array=[515 525 561 600 632 700 761 800 900 1000 1014 1750;
0 150 300 394 450 540 600 631 696 745 750 865];
x=linspace(array(1,1),array(1,end),101)
y=interp1(array(1,:),array(2,:),x,'pchip')
x=transpose(x)
y=transpose(y)
%
f=fit(y,x,'pchip')
a=coeffvalues(f)
plot(f,y,x)
hold on
% Equation of line that pass through origin
x1=0:1000;
slope=tan(51.5*pi/180);
y1=slope*x1
plot(x1,y1)

Melden Sie sich an, um diese Frage zu beantworten.

Akzeptierte Antwort

Andrei Bobrov
Andrei Bobrov am 24 Okt. 2014
Bearbeitet: Andrei Bobrov am 25 Okt. 2014
one way with Curve Fitting Toolbox
array=[515 525 561 600 632 700 761 800 900 1000 1014 1750;
0 150 300 394 450 540 600 631 696 745 750 865];
x = array([2 1],:)';
f = fit(x(:,1),x(:,2),'cubicinterp');
df = fit(x(:,1),differentiate(f,x(:,1)),'cubicinterp');
xx = fzero(@(x)f(x)/x - df(x),[1 750]);
x1 = linspace(x(1,1),x(end,1),300);
plot(x1,f(x1),x1,x1*df(xx),xx,f(xx),'ro');
well, more
f = fit(x(:,1),x(:,2),'cubicinterp');
df = fit(x(:,1),differentiate(f,x(:,1)),'cubicinterp');
k = tand(10);
xx = fzero(@(x)df(x) - k,[1 x(end,1)]);
you line: y = k*x + b
b = f(xx) - k*xx;
x1 = linspace(x(1,1),x(end,1),300);
plot(x1,f(x1),x1,k*x1 + b,xx,f(xx),'ro');
  8 Kommentare
6 ältere Kommentare anzeigen
Hussein Qenawy
Hussein Qenawy am 13 Apr. 2019
Bearbeitet: Hussein Qenawy am 13 Apr. 2019
Good evening Mr andrie.. Iam studying matlab now... I have 4 problems need to solve by matlab. I need your help to solve these problems for money.. If it's OK for you.. Contact me whatsapp 0097430272448. Thanks

Melden Sie sich an, um zu kommentieren.

Weitere Antworten (0)

Kategorien

Mehr zu Interpolation finden Sie in Help Center und File Exchange

Tags

Community Treasure Hunt

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

Start Hunting!

Translated by