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Elementary Analysis Math 140B—Winter 2007
Homework answers—Assignment 11; February 19, 2007
2
Define f as follows: f(x) = exp(−1/x ) for x 6= 0, and f(0) = 0. Show that
(a) f is continuous for all x.
Solution: Since f is differentiable everywhere (by (b), which doesn’t use (a)
in its proof), f is continuous.
(b) The n-th derivative of f is continuous for all x and vanishes at x = 0, for all
n≥1.
Solution: The only statement that needs proof is f(k)(0) = 0,
NOTE:This solution is taken from R. P. Boas, A Primer of Real Functions, p.
154. Another solution is given as the solution to Exercise 31.5 in the book by
Ross. (I prefer the solution in Boas.)
(k) −1/x2
1. It is easy to see by induction that for x 6= 0, f (x) = R(x)e where
Ris a rational function, R(x) = P(x)/Q(x) for polynomials P and Q.
n −1/x2
2. For any integer n, positive, negative, or zero, x e →0as x → 0.
−1/x2 n −1/x2
Indeed, for n = 0, e →0; for n > 0, x → 0 and e ≤1; and for
2 2
n −1/x −n t
n<0,let t = 1/x to get x e =t /e →0ast→∞byL’Hopital’s
rule.
3. LEMMA: If lim f′(x) exists as a finite real number, then f′(y) exists
x→y
and equals this limit.
PROOF: By the mean value theorem,
f(x)−f(y) =f′(t) for some t between x and y. (1)
x−y
As x approaches y, so does t, so the right side of (1) approaches a limit.
By the left side of (1), this limit is f′(y).
4. By 1. and 2. , f(k)(x) → 0 as x → 0, hence by 3. , f(k)(0) = 0. To prove
that f(k)(x) → 0, write
P(x) 2 a xm+a xn−1 +···+a 2
(k) −1/x n n−1 0 −1/x
f (x) = Q(x) e =b xm+b xm−1 +···+b e .
m m−1 0
If b0 6= 0, then
m n−1 −1/x2
lim (a x +a x +···+a )e 0
limf(k)(x) = x→0 n n−1 0 = =0.
x→0 lim (b xm+b xm−1 +···+b ) b
x→0 m m−1 0 0
If b0 = 0, write Q(x) = xk(bmxm−k +···+bk), where bk 6= 0. Then
−k m n−1 −1/x2
lim x (a x +a x +···+a )e 0
limf(k)(x) = x→0 n n−1 0 = =0.
x→0 lim (b xm−k +b xm−1−k +···+b ) b
x→0 m m−1 k k
1
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