If #f(x) = |x|# and #g(x) = (21)/(x^2+7)#, what is #(f@g)(4)#?
1 Answer
Feb 29, 2016
Explanation:
Note that
#(f@g)(4)=f(g(4))#
So, we want to plug
#f(g(4))=abs(g(4))#
#f(g(4))=abs(21/(4^2+7))#
#f(g(4))=21/23#
