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I am reading Papoulis' "Probability, Random Variables, and Stochastic Processes". On page 31, equation (2-40) is derived. The implication is:

$ \left(\frac{a-1}{a+b-1}\right)^2 < \frac13 < \left(\frac{a}{a+b}\right)^2 \implies (\sqrt{3} + 1)\frac{b}{2} < a < 1 + (\sqrt{3} + 1)\frac{b}{2}$

How was the right hand side (equation 2-40) reached?

My work: I attempted to show the right hand side using two techniques. First, by expanding the squares and doing algebraic manipulations. However, I could not remove the $a^2$ terms.

The second attempt involved taking the square root of both sides. Then, I took the reciprocal of all three sides, and reversed the direction of the inequalities. However, after I multiply by $a(a-1)$, that creates $a^2$ terms.

Any help would be appreciated. Thanks.

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    @EmmadKareem: Hi, $a$ and $b$ represent the number of white and black balls in a box. So, a>0 and b>0.2011-10-16

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Hint: Invert, take square roots, find upper and lower bounds for $\sqrt{3}-1$, invert again, and clear surds from the denominator.

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    @jrand "Eventually, the fact $\frac{1}{\sqrt{3}−1} = \frac{\sqrt{3} + 1}{2}$ must be used." That is what is I meant by "clearing surds from the denominator". It is a well-known trick: $\frac{1}{\sqrt{3}−1} = \frac{1}{\sqrt{3}−1}\times \frac{\sqrt{3} + 1}{\sqrt{3} + 1} = \frac{\sqrt{3} + 1}{3 - 1} = \frac{\sqrt{3} + 1}{2}.$2011-10-16