"asin" function is always solving between 0 and pi/2 of interval. Why?

조회 수: 5 (최근 30일)
I am encounering a problem when using asin function. function is solving the problem always between 0 and pi/2. why?
a=0.5;
x=[0.0 0.5 0.75 1.250 2.5 5.0 7.5 10 15 20 25 30 35 40 45 50 55 60 65 70 75 80 85 90 95 100]./100-0.5 ;
y=[0.0 0.394 0.475 0.594 0.795 1.090 1.322 1.518 1.828 2.066 2.245 2.375 2.459 2.498 2.487 2.420 2.290 2.106 1.881 1.623 1.339 1.038 0.729 0.430 0.165 0.0];
X=[x flip(x)]
Y=[y flip(y)];
for k=1:numel(X)
p(k) = 1-((X(k)./(2*a)).^2)-(Y(k)./(2*a)).^2;
sin2the(k) = (p(k)+sqrt(p(k).^2+(Y(k)./a)^2));
sinthe(k) = sqrt(sin2the(k)./2);
theta(k) = asin(sinthe(k));
psi(k) = asinh(Y(k)./(2.*a.*sinthe(k)));
end
plot(theta,psi)
graphic of psi againts theta must be like in picture

채택된 답변

Star Strider
Star Strider 2021년 5월 31일
Most likelly because of the arguments you give it.
From the documentation:
  • For real values of X in the interval [-1, 1], asin(X) returns values in the interval [-π/2, π/2].
Illustrated here —
a=0.5;
x=[0.0 0.5 0.75 1.250 2.5 5.0 7.5 10 15 20 25 30 35 40 45 50 55 60 65 70 75 80 85 90 95 100]./100-0.5 ;
y=[0.0 0.394 0.475 0.594 0.795 1.090 1.322 1.518 1.828 2.066 2.245 2.375 2.459 2.498 2.487 2.420 2.290 2.106 1.881 1.623 1.339 1.038 0.729 0.430 0.165 0.0];
X=[x flip(x)]
X = 1×52
-0.5000 -0.4950 -0.4925 -0.4875 -0.4750 -0.4500 -0.4250 -0.4000 -0.3500 -0.3000 -0.2500 -0.2000 -0.1500 -0.1000 -0.0500 0 0.0500 0.1000 0.1500 0.2000 0.2500 0.3000 0.3500 0.4000 0.4500 0.5000 0.5000 0.4500 0.4000 0.3500
Y=[y flip(y)];
for k=1:numel(X)
p(k) = 1-((X(k)./(2*a)).^2)-(Y(k)./(2*a)).^2;
sin2the(k) = (p(k)+sqrt(p(k).^2+(Y(k)./a)^2));
sinthe(k) = sqrt(sin2the(k)./2);
theta(k) = asin(sinthe(k));
psi(k) = asinh(Y(k)./(2.*a.*sinthe(k)));
end
plot(theta,psi)
asinarg = [min(sinthe) max(sinthe)]
asinarg = 1×2
0.8660 1.0000
asinv = asin(asinarg)
asinv = 1×2
1.0472 1.5708
asinext = asin([-1 1])
asinext = 1×2
-1.5708 1.5708
.
  댓글 수: 6
Torsten
Torsten 2021년 5월 31일
Maybe you could tell us the equation you are trying to solve for theta.
Is it true that "asinh" (inverse hyperbolic sine) is used in the calculation of psi ?
Star Strider
Star Strider 2021년 5월 31일
@Torsten Thank you!
I am now confused. I have no idea what the actual problem is.

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