Question

1. ) Consider the function f(x)=5−7x2,−5≤x≤1

The absolute maximum value is

and this occurs at xx equals

The absolute minimum value is

and this occurs at xx equals

2.) Decide whether the function f=4−x^2 satisfies the hypotheses of the MVT on the interval [a,b]=[−1,0]
Then find all values of cc in the interval [a,b]
c=

Answer 1

1.) The interval of the value of x is from -5 to 1, inclusive. Remember that what is asked is the absolute value, thus the sign does not matter even if you have to subtract x from 5. Thus, the maximum value would be obtained if the x is smaller, which is 1. The minimum value is obtained when x=-5.

Absolute maximum value: x = - 5
f(-5) = ║5 - 7(-5)^2║ = ║-170║=170


Absolute minimum value: x = 1
f(1) = ║5 - 7(1)^2║ = ║-2║= 2

2.) The Mean Value Theorem (MVT) applies to functions that are continuous and differentiable on the closed and open interval of a to b, respectively. Since the function is a quadratic function, MVT can be applied. Then, this means that there is a value of c which is between a and b. This could be determined using this formula according to MVT:


`f'(c)= (f(b)-f(a))/(b-a)`

The differentiated form would be f'(x) = -2x. Then,


`-2c = ((4- 0^(2) )-(4- (-1)^(2)) )/(0--1)=1`


`c=- (1)/(2)`

Thus, x = -1, x = -1/2, and x=0 all lie in the function 4-x^2.