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        riddles >> putnam exam (pure math) >> A sequence
        
(Message started by: wmat1234 on Aug 31^st, 2007, 7:18am)

Title: A sequence
Post by wmat1234 on Aug 31^st, 2007, 7:18am

Sequence:

x_1 = 1

x_n = x_{n-1} + sqrt(x_{n-1})

what is lim x_n/n^2

Title: Re: A sequence
Post by Eigenray on Aug 31^st, 2007, 9:21am

Let y_n = 2http://www.ocf.berkeley.edu/~wwu/YaBBImages/symbols/surd.gifx_n; then

y_n+1² = y_n² + 2y_n.

On the one hand,

[hide]y_n+1² < (y_n+1)²,

so y_n < n, and limsup y_n/n http://www.ocf.berkeley.edu/~wwu/YaBBImages/symbols/le.gif 1.[/hide]

On the other hand,

[hide]Clearly x_n http://www.ocf.berkeley.edu/~wwu/YaBBImages/symbols/ge.gif x_n-1 + 1, so x_n (hence y_n) goes to infinity. Now, fix 0<a<1. Then there exists an N such that for n>N, y_n > C = a²/[2(1-a)], and therefore

y_n+1² = y_n² + 2y_n > y_n² + 2ay_n + a² = (y_n + a)²,

so for n>N, y_n > C + a(n-N).

Therefore liminf y_n/n http://www.ocf.berkeley.edu/~wwu/YaBBImages/symbols/ge.gif a. Since this holds for all a<1, we have liminf y_n/n http://www.ocf.berkeley.edu/~wwu/YaBBImages/symbols/ge.gif 1. Since also y_n < n, it follows lim y_n/n = 1, and thus lim x_n/n² = 1/4.[/hide]