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| Rooting For The Limit (Posted on 2008-04-23) |
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Evaluate:
Limit ((2y + 22y + 23y)/3)1/y
y → 0
Bonus Question:
Work out the following limit:
Limit ((2y + 6y + 18y)/3)1/y
y → 0
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Submitted by K Sengupta
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Rating: 3.5000 (2 votes)
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Solution:
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Let M = Limit ((2y + 22y + 23y)/3)1/y as y → 0
or, ln M = Limit ((ln (2y + 22y + 23y) - ln 3)/y as y → 0
Since the expression in the rhs is of the form 0/0, differentiating both the numerator and the denominator in terms of L'Hospital's rule, we obtain:
ln M = Limit (2y*ln 2+ 22y*ln 4 + 23y*ln 8)/(2y + 22y + 23y) as y → 0
= (ln 2 + ln 4 + ln 8)/3
= (ln 64)/3
Thus, M = (64)1/3 = 4
Consequently, the required limit is 4.
Solution To The Bonus Question:
Let N = Limit ((2y + 6y + 18y)/3)1/y as y → 0
or, ln N = Limit ((ln (2y + 6y + 18y) - ln 3)/y as y → 0
Since the expression in the rhs is of the form 0/0, differentiating both the numerator and the denominator in terms of L'Hospital's rule, we obtain:
ln N = Limit (2y*ln 2 + 6y*ln 6 + 18y*ln 18)/(2y + 6y + 18y) as y → 0
= (ln 2 + ln 6 + ln 18)/3
= (ln 216)/3
Thus, N = (216)1/3 = 6
Consequently, the required limit is 6.
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Note: In general, for n positive real numbers x1, x2, ……., xn, it can be similarly shown that:
Limit ((x1y+ x2y+.....+ xny)/n)1/y = (x1*x2…..* xn)1/n
y → 0
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