Revision as of 12:43, 22 July 2008 by Pweigel (Talk)

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We recall that $ V_0^x $ is monotone increasing, thus f is monotone decreasing, and $ V_0^x = f(0)-f(x) $.

Then we have

$ f(0)-f(x) = (f(0)-f(x))^{\frac{1}{2}} \Rightarrow (f(0)-f(x))^2 = (f(0)-f(x)) $

Applying the quadratic formula yields $ f(x) = f(0) $ or $ f(x) = f(0)-1 $, with two compatible functions:

$ f_1(x) = \frac{1}{3} $,


$ f_2(x) = \frac{1}{3}, \ 0<x\leq 1, f_2(0) = \frac{4}{3} $

-pw

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