What is the derivative of # y = Arcsin ((3x)/4)#?

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Answer 1 · 2015-07-06T12:39:34

Use the Chain rule and the definition of the derivative of the arcsin of a function.

First, understand that #y=sin^-1(3x/4)# is way of saying #y=f(g(x))#

Second, let #f(m) = sin^-1(m)# (i.e., the "outside" part) and #m=g(x)=3x/4# (i.e., the "inside" part).

Third, use the Chain Rule which states #dy/dx=dy/(dm)*(dm)/(dx)=f'(m)g'(x)#

Fourth, find #(dy)/(dm)#

#(dy)/(dm)= f'(m) = d/(dm)(sin^-1(m))=1/sqrt(1-x^2)#

Fifth, find #(dm)/(dx)#

#(dm)/(dx)=g'(x)=d/(dx)(3x/4)=3/4#

Finally, multiply your results:

#(dy)/(dx)=(dy)/(dm)(dm)/(dx)=1/sqrt(1-x^2)*3/4=3/(4sqrt(1-x^2))#.

Done, and done!