- #1
yokoloko13
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Hey guys. These are the first AP Problems I'm doing. Here is all my work.
Let f be the function given by f(x) = x^{3}-7x+6.
a. Find the zeros of f.
b. Write an equation of the line tangent to the graph of f at x = -1
c. Find the number c that satisfies the Mean Value Theorem for f on the closed interval [1,3]
So what I did is:
a. 0 = x^{3} - 7x + 6
-6 = x(x^{2}-7)
Final Answer: x = +/-1, 6
b. f'(x) = 3x^{2} - 7
m = f'(-1) = 3(-1)^{3} - 7 = -4
f'(-1) = (-1)^{3} - 7(-1) + 6 = 12
Final Answer: y - 12 = -4(x+1)
c. f(b) = f(3) = 3^{3} - 7(3) + 6 = -6
f(a) = f(1) = 1^{3} - 7(1) + 6 = 0
f'(c) = (f(b)-f(a)) / (b-a) = (-6 - 0) / (3-1) = -3
-3 = 3c^{2} - 7
Final Answer: c = 2\sqrt{3} / 3
Please tell me what is right and wrong? I am fairly confident on a and b, but shaky on c because I haven't studied that yet and don't know if it's right at all.
Thanks in advance!
Let f be the function given by f(x) = x^{3}-7x+6.
a. Find the zeros of f.
b. Write an equation of the line tangent to the graph of f at x = -1
c. Find the number c that satisfies the Mean Value Theorem for f on the closed interval [1,3]
So what I did is:
a. 0 = x^{3} - 7x + 6
-6 = x(x^{2}-7)
Final Answer: x = +/-1, 6
b. f'(x) = 3x^{2} - 7
m = f'(-1) = 3(-1)^{3} - 7 = -4
f'(-1) = (-1)^{3} - 7(-1) + 6 = 12
Final Answer: y - 12 = -4(x+1)
c. f(b) = f(3) = 3^{3} - 7(3) + 6 = -6
f(a) = f(1) = 1^{3} - 7(1) + 6 = 0
f'(c) = (f(b)-f(a)) / (b-a) = (-6 - 0) / (3-1) = -3
-3 = 3c^{2} - 7
Final Answer: c = 2\sqrt{3} / 3
Please tell me what is right and wrong? I am fairly confident on a and b, but shaky on c because I haven't studied that yet and don't know if it's right at all.
Thanks in advance!
