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Question #b6b30

1 Answer

Feb 21, 2017

Given

#sinx=1/4 #

# and 0< x < pi/2-> x in "1st quadrant"#

So #cosx=sqrt(1-sin^2x)=sqrt(1-1/16)=sqrt15/4#

Now

#sin(x/2)=sqrt(1/2(1-cosx))#

#=sqrt(1/2(1-sqrt15/4))#

#=sqrt(1/8(4-sqrt15)#

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