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Topic: Cartesian (Read 5624 times)
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missybangsalot
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Cartesian
«
on:
October 13, 2005, 08:57:06 PM »
Y=r²cos²q + r sinq cosf tanf- (r sinq sinf/ tanf) is the problem given. I needed to change from sperical to Cartesian when I worked I thought it was to easy to be right I ended up getting
Y=z² + x (y/x) - (y/(y/x))
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Donaldson Tan
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Re:Cartesian
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Reply #1 on:
November 10, 2005, 09:47:24 AM »
do you realise that y/x , y/z or x/z are actually trigonometric functions?
they correspond to either sine, cosine, tangent FYI.
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