Why I'm getting a complex degree value while using "acos"?

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Abb on 10 Jun 2023

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https://au.mathworks.com/matlabcentral/answers/1981149-why-i-m-getting-a-complex-degree-value-while-using-acos

Commented: Image Analyst on 11 Jun 2023

           % To reproduce the snippet, you can use below code
            XYZc = [2489011.31135707, 7440368.1011554, 17.6551714555564];
            X0 = 2489018.662
X0 = 2.4890e+06
            Y0 = 7440333.989
Y0 = 7.4403e+06
            Z0= 10.091
Z0 = 10.0910
            dir_vec1 = XYZc-[X0, Y0, Z0];
            dir_mag1= norm(dir_vec1);
            dir_vec2 = [0,XYZc(2),0]-[X0, Y0, Z0];
            dir_mag2= norm(dir_vec2);
            alpha = acosd(dir_mag2/dir_mag1)
alpha = 0.0000e+00 + 6.7868e+02i

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Matt J on 10 Jun 2023

I have edited your post for you to make your code output visible. It is always advisable to do this so we can see what output you are talking about.

Accepted Answer

Matt J on 10 Jun 2023

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https://au.mathworks.com/matlabcentral/answers/1981149-why-i-m-getting-a-complex-degree-value-while-using-acos#answer_1253569

Edited: Matt J on 10 Jun 2023

Open in MATLAB Online

Because abs(dir_mag2/dir_mag1) is greater than 1.

 abs(dir_mag2/dir_mag1)
ans = 6.9710e+04

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Abb on 11 Jun 2023

Edited: Abb on 11 Jun 2023

@Matt J I do not see "Accepted Answer" in this comment! can you please enable it?

Image Analyst on 11 Jun 2023

It's not in the comments, neither his nor yours. It should be above, at the very first answer post of @Matt J

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