Interpolate value between arc

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TS Low
TS Low 2017 年 11 月 19 日
コメント済み: TS Low 2017 年 11 月 26 日
Note that now I have this function to create my arc
a=[1 1]; %P1
b=[9 9]; %P2
r=10; %radius
syms x y
[x,y]=solve((x-a(1))^2+(y-a(2))^2==r^2,(x-b(1))^2+(y-b(2))^2==r^2,x,y);
syms X Y
ezplot((X-x(1))^2+(Y-y(1))^2==r^2,[min(a(1),b(1)),max(a(1),b(1)), ...
min(a(2),b(2)),max(a(2),b(2))])
axis equal
ezplot((X-x(2))^2+(Y-y(2))^2==r^2,[min(a(1),b(1)),max(a(1),b(1)), ...
min(a(2),b(2)),max(a(2),b(2))])
axis equal
After plotting the arc, I need to know the points lie between the arc with random interpolate points n
How to do this?
  3 件のコメント
TS Low
TS Low 2017 年 11 月 19 日
編集済み: TS Low 2017 年 11 月 19 日
ok, i think u comment on my previous post too
the points lie between point A and B
In this case, which is (1,1) and (9,9)
Now i am going to give matlab interpolate number of 7 (example)
Then, the result i want should be
(1.788,2.566)
(2.566,2.888)
(...)
(...)
(...)
(...)
(8.777,8.888)
*[Just example, not true value]
Walter Roberson
Walter Roberson 2017 年 11 月 19 日
Those ezplot need to be changed to fimplicit

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回答 (3 件)

Walter Roberson
Walter Roberson 2017 年 11 月 19 日
The equation you are using is a circle centered at x(1), y(1) with radius r. You know the endpoints; you can convert them into polar coordinates relative to the center. Now use linspace(first_theta, second_theta, 10) as the angle and r as the radius and put that through pol2cart, add x(1), y(1) to get the cartesian coordinates of the points of interest.
  9 件のコメント
Walter Roberson
Walter Roberson 2017 年 11 月 22 日
Ah... I just tried again and this time ezplot worked, at least in R2017b. You could try changing to ezplot()
TS Low
TS Low 2017 年 11 月 26 日

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Roger Stafford
Roger Stafford 2017 年 11 月 19 日
編集済み: Walter Roberson 2017 年 11 月 19 日
I contend the right way to do that task is to calculate the center of the circular arc you have defined, and then generate the plotted arc using a varying angle that swings from the first point to the second point. You can carry out the desired interpolations in terms of values of this arc angle using 'interp1'.
You might be interested in the following "Answers" contribution:
(which I think was asked by you, TS Low.)
  1 件のコメント
Roger Stafford
Roger Stafford 2017 年 11 月 19 日
You should not expect the contributors who answer questions to do all your work for you. It should be sufficient to indicate the solution to difficulties you are facing. You should fill in the rest of the details yourself. Otherwise, how are you going to learn Matlab programming?

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Image Analyst
Image Analyst 2017 年 11 月 19 日
Try spline(). See my attached demo.
  3 件のコメント
Image Analyst
Image Analyst 2017 年 11 月 19 日
Of course you could use spline, but actually I think Walter's linspace idea is much simpler.
TS Low
TS Low 2017 年 11 月 20 日
thx bro

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