E1S - University of Arizonamath.arizona.edu/~nhenscheid/teaching/122BF14/mats/E1S.pdf · Answers...
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Transcript of E1S - University of Arizonamath.arizona.edu/~nhenscheid/teaching/122BF14/mats/E1S.pdf · Answers...
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Yes - F(t) is differentiable everywhere.
*Explanation*: F(t) is a piecewise function: F(t) = t^3 for t >= 0 and F(t) = -t^3 for t<0. Thus F is certainly differentiable for t > 0 and t < 0, since it’s just a polynomial for those t values. What about t=0 (the “transition” point)?
To convince someone that F’(0) exists, we must estimate or compute the limit
( F(0+h) - F(0) )/h = |h^3| / h
This is a piecewise function which is equal to h^2 for h >= 0 and -h^2 for h<0. So,
lim_{h->0} ( F(0+h) - F(0) )/h = lim_{h->0} |h^3|/h = 0,
since the limit from the left is zero and the limit from the right is zero.
One could also provide a table of pairs (h, |h^3|/h) to convince someone that the limit is 0.
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