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If f(x) is differentiable for the closed interval [−1, 4] such that f(−1) = −3 and f(4) = 12, then there exists a value c, −1< c < 4 such that f '(c) = 3 f '(c) = 0 ' f(c) = −15 f (c) = 3
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If f(x) is differentiable for the closed interval [−1, 4] such that f(−1) = −3 and f(4) = 12, then there exists a value c, −1< c < 4 such that

f '(c) = 3
f '(c) = 0 '
f(c) = −15
f (c) = 3

User Crosk Cool
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f(c) = 3 is not the correct answer

User Anton N
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Intermediate value theorem states that if a continuous function, f, with an interval, [a, b], as its domain, takes values f(a) and f(b) at each end of the interval, then it also takes any value between f(a) and f(b) at some point within the interval.

So there should be a value between -3 and 12, which would be f(c)=3
User Charles Brandt
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