y=1/√x 求y'利用公式: y'=(v'u-vu')/(u^2)解:y'=(1/√x)' =[(0*√x)-1*(1/2√x)]/(√x)^2 =-(1/2√x)/x =-(1/2x*√x) =-(1/2*√(x^3)(中文表达)答案: 负的2倍根号下x的立方分之一
(1/√x)'=-(1/2)*(x)^(-3/2)=-x^(-3/2)/2.
