Hi! How to fix plane position as a 0 degree angle for Phi azimuth angle or how Matlab understand where Phi angle should be drawn?

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Aknur
Aknur 2022 年 11 月 29 日
編集済み: Aknur 2023 年 1 月 23 日
I have two angles Theta =60 (polar angle which is <=pi) and Phi = 0 ( which is between 0 and 2pi)
I converted spherical coordinates to cartesian and need to draw vector using one point (1.5; 1.5; 3.0) and two angles.
I also use phi =0 to check if my vector correct. Because if phi=0 then my vector will be strict such as on surface of my box. I dont know how to fix one poisition plane as the start point for Phi angle ( where 0 degree of angles will start). My fixed plane position for the begin of Phi angle will be (0,0,3 0,3,3 0,0,0 0,3,0)
something like this but I dont have ro

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Catalytic
Catalytic 2022 年 11 月 29 日
A = 3.67 * sin(Phi0) * cos(Theta0);
B = 3.67 * sin(Phi0) * sin(Theta0);
C = 3.67 * cos(Phi0);
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Aknur
Aknur 2022 年 11 月 29 日
編集済み: Aknur 2022 年 11 月 29 日
@Catalytic Thank you
I tried it but it still shows me this one.
If I will accept theta = 0 or phi =0 it is still the same.
I mean that if phi = 0 then the line will lie on the top of the box if theta = 0 then the line will be vertically down.
My angles are: Theta - polar (from 0 to pi) and Phi (azimuth from 0 to 2 pi)
Previous scheme with angles and ro with reverse angels for my case
Could you please suggest another option or what to search? Because I could not understand how Matlab takes a 0 angle. I have edited my question and change the picture. And you can see where will be 0 degrees, 90, 180, 270 degree

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