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How do you verify #cos (x - pi/2) = -sinx#?

1 Answer

May 3, 2016

see below

Explanation:

Use Property: #cos(A-B)=cosAcosB+sinAsinB#

#A=x, B=pi/2#

left Side:#=cos(x-pi/2)=cosxcos(pi/2)+sinxsin(pi/2)#

#=cosx * 0+sinx * (1)#

#=sinx#

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