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How do you convert #r=6sin(theta)# to rectangular form?

1 Answer

May 12, 2016

#x=6*cos(theta)sin(theta), y = 6*sin(theta)^2#

Explanation:

The pass equations are: #x=r *cos(theta),y=r *sin(theta)# then substituting we get #x=6*cos(theta)*sin(theta), y = 6*sin(theta)^2#

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