On this question I plugged in f(0) = cos(0) - (0)^3 = 1. Likewise, I did the same with f(1) in my calculator to get -0.4596976941. I tried replicating the process of question 57E here. Do I need to do something different here?

 

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Consider the following. cos(x) = x3 (a) Prove that the equation has at least one real root. The equation cos(x) = x³ is equivalent to the equation f(x) = cos(x) – x = 0. f(x) is continuous on the interval [0, 1], f(0) =| 1 , and f(1) =-.4596976941 . Since --Select--- v < 0 < --Select-- v there is a number c in (0, 1) such that f(c) = 0 by the Intermediate Value Theorem. Thus, there is a root of the equation cos(x) = x³, in the interval (0, 1). (b) Use your calculator to find an interval of length 0.01 that contains a root. (Enter your answer using interval notation. Round your answers to two decimal places.)