The cosecant is 
, so at integral multiples of π (such as 0, π, 
...) the cosecant will approach ∞.
, so at integral multiples of π (such as 0, π, ...) the cosecant will approach ∞. Why is the output of my function infinity?
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I'm doing code for the trapezoidal rule. I checked my code with simple functions at first to make sure it was outputting correctly. However when I am attempting what I need to do, my output says it's infinity, when it should not be. The solution I got from Wolfram Alpha and my TI89 was 0.00958. Could it be the "1/n" in the x definition? I needed 10 steps for the trapezoids I'm setting up.
The function being applied is: cos^2((pi*cos(x))/2)*csc(x).
n = 10;
x = 0:1/n:1/2;
y=cos((pi*cos(x))/2).^2.*csc(x);
z=trapz(x,y)
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回答 (2 件)
Torsten
2019 年 4 月 8 日
Since your function tends to 0 as x -> 0 by L'Hospital, you can integrate
y = cos((pi*cos(x))/2).^2.*csc(x).*(x > 0);
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