How do you find the domain of #(x^2-x-12)^-4#? Algebra Expressions, Equations, and Functions Domain and Range of a Function 1 Answer George C. May 18, 2015 #(x^2-x-12)^-4# can be written as #1/(x^2-x-12)^4# This will be undefined if #(x^2-x-12) = 0#, but defined for all other values of #x# in #RR#. #x^2-x-12 = (x-4)(x+3)# is zero when #x=4# or #x=-3#, so these are the only prohibited values of #x# and the domain of the function is: #RR \\ {-3,4}# that is #{x in RR: x != -3 ^^ x != 4}# Answer link Related questions How do you determine if (-1, 4), (2, 8), (-1, 5) is a function? What is the domain for #f(x)=2x-4#? What is the domain and range for (3,1), (1,-4), and (2, 8)? What is the domain and range of a linear function? Is domain the independent or dependent variable? How do you find the domain and range of a function in interval notation? How do you find domain and range of a rational function? How do you find domain and range of a quadratic function? How do you determine the domain and range of a function? What is Domain and Range of a Function? See all questions in Domain and Range of a Function Impact of this question 1559 views around the world You can reuse this answer Creative Commons License