uniform knot vector for splines
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Suppose we have uniform interpolation points, e.g
x = [1 2 3 4 5 6]
The functions for knot generation produce knots of the form
t = aptknt(x,5)
where the first and last knot is repeated k times, but the breaks are no longer uniform. Similar for other knot functions like optknt.
I would like to carry over the property of equal distance between the interp. points to the knots. The knot vector
t = 1 1 1 2 3 4 5 6 6 6 6
satisfies this, as well as the Schoenberg-Whitney conditions. I arbitrarily repeated the first knot 3 times and the last knot four times.
Is such a knot vector plausible and why does MATLAB not offer functions for uniform knot sequences?
Akzeptierte Antwort
Bruno Luong
am 12 Apr. 2024
Bearbeitet: Bruno Luong
am 12 Apr. 2024
Your knot sequence seems NOT to be suitable for interpolation. The interpolation matrix is singular.
x = linspace(1,6,6);
xi = linspace(min(x),max(x),61);
k = 5;
k1 = floor(k/2);
k2 = k-k1;
tSAW = [repelem(x(1),1,k1) x repelem(x(end),1,k2)]
t = aptknt(x,k);
for p=0:k-1
y = x.^p;
sSAW = spapi(tSAW,x,y); % Not workingn coefs are NaN
s = spapi(t,x,y);
subplot(3,2,p+1);
yiSAW = fnval(sSAW, xi);
yi = fnval(s, xi);
plot(x, y, 'ro', xi, yiSAW, 'b+', xi, yi, 'g-') % Blue curve not plotted since yiSAW are NaN
end
It seems Schoenberg-Whitney conditions are violated despite what you have claimed.
7 Kommentare
SA-W
am 12 Apr. 2024
Bruno Luong
am 12 Apr. 2024
Bearbeitet: Bruno Luong
am 12 Apr. 2024
You need to revise the spline theory, or make correct logical dediction.
k = 5;
x = linspace(1,6,6);
k1 = floor(k/2);
k2 = k-k1;
tSAW = [repelem(x(1),1,k1) x repelem(x(end),1,k2)]
n = length(tSAW) - k;
figure
hold on
% Interpolation matrix at station x
M = zeros(n);
,for i = 1:n
si = spmak(tSAW, accumarray(i, 1, [n 1])');
fnplt(si);
M(:,i) = fnval(si,x);
end
% All basis functions is 0 at first and last knots/station
% First and last rows of M contain 0s
M
% Singularity
cond(M)
rank(M)
Bruno Luong
am 13 Apr. 2024
Bearbeitet: Bruno Luong
am 13 Apr. 2024
This Schoenberg Whitney (SW) conditions are violated twice.
With
k = 5;
% station vector is
x = [1 2 3 4 5 6];
% Knot vector is
tSAW = [1 1 1, 2 3 4 5, 6 6 6 6];
for i = 1:
- knot(i) = tSAW(1) = 1
- tau(i) = x(1) = 1
- So knots(i) is NOT < tau(i)
for i = 6:
- knot(i+k) = tSAW(11) = 6
- tau(i) =x(6) = 6
- So tau(i) is NOT < knots(i+k)
% Small code to check SW condition
if SWtest(x, tSAW)
fprintf('Schoenberg Whitney test pass\n');
else
fprintf('Schoenberg Whitney test fails\n');
end
function OK = SWtest(x, t)
x = sort(x); t = sort(t);
n = length(x);
k = length(t)-n;
OK = true;
for i = 1:n
xi = x(i);
tl = t(i);
multiplicity = nnz(t == tl);
if multiplicity >= k
test_i = tl <= xi;
else
test_i = tl < xi;
end
tr = t(i+k);
multiplicity = nnz(t == tr);
if multiplicity >= k
test_i = test_i && xi <= tr;
else
test_i = test_i && xi < tr;
end
OK = OK && test_i;
end
end
Note that all the basis functions N_i,5 for i=1,2...6 are continuous since the (extreme) knots are repeats less than k=5 times in your case.
All of them vanish outside the support, meaning for x < 1 or x > 6 So all of them must = 0 at x = 0 and x = 6 (since they are C0). This violate SW original condition of N_i,5 (x(i)) must be > 0. This is nother way to prove Schoenberg Whitney conditions are violated.
That explains aslo why the interpolation matrix M has 2 null rows and is singular therefore not suitable for interpolation, and spapi won't work with such knot sequence.
SA-W
am 13 Apr. 2024
Bruno Luong
am 13 Apr. 2024
"But the conditions are also violated at i=1 and i=6 for the knots generated by aptknt(x,5). But in your code, it is clear. Also the argumentation with the rank is clear."
Please Read carefully what ever your reference on SW theorem and conditions, the test change (non strict) when knot mulltiplicity == k as I implement in my function SWtest function.
Bruno Luong
am 13 Apr. 2024
Bearbeitet: Bruno Luong
am 13 Apr. 2024
"That said, there is no way to have uniform knot breaks on the interpolation domain?"
What is the purpose of it? What if your x is non unform to start with, an assumption you never spell out.
You could chose
x = 1:6;
k = 5;
n = length(x);
dt =(max(x)-min(x))/(n-k+1);
teq = min(x) + dt*(-k+1:n)
OK = SWtest(x, teq)
figure
hold on
for i = 1:n
si = spmak(teq, accumarray(i, 1, [n 1])');
fnplt(si);
end
xlim([min(x) max(x)]);
or
dx = mean(diff(x));
dt = dx;
a = (n+k-1)/2;
teqx = mean(x) + dt*(-a:a)
OK = SWtest(x, teqx)
figure
hold on
for i = 1:n
si = spmak(teqx, accumarray(i, 1, [n 1])');
fnplt(si);
end
xlim([min(x) max(x)]);
SA-W
am 13 Apr. 2024
Bearbeitet: Bruno Luong
am 13 Apr. 2024
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