What are the critical values, if any, of #f(x)=(4x)/(x^2 -1)#? Calculus Graphing with the First Derivative Identifying Stationary Points (Critical Points) for a Function 1 Answer Jim H Nov 13, 2015 #f# has no critical numbers. Explanation: #f'(x) = -(4(x^2+1))/(x^2-1)^2# #f'(x) = 0# never #f'(x)# does not exist only at #x=+-1# neither of which are in the domain of #f#. Therefore, #f# has no critical numbers. Answer link Related questions How do you find the stationary points of a curve? How do you find the stationary points of a function? How many stationary points can a cubic function have? How do you find the stationary points of the function #y=x^2+6x+1#? How do you find the stationary points of the function #y=cos(x)#? How do I find all the critical points of #f(x)=(x-1)^2#? Let #h(x) = e^(-x) + kx#, where #k# is any constant. For what value(s) of #k# does #h# have... How do you find the critical points for #f(x)=8x^3+2x^2-5x+3#? How do you find values of k for which there are no critical points if #h(x)=e^(-x)+kx# where k... How do you determine critical points for any polynomial? See all questions in Identifying Stationary Points (Critical Points) for a Function Impact of this question 1803 views around the world You can reuse this answer Creative Commons License