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JeeBee science forum beginner
Joined: 18 Dec 2005
Posts: 9

Posted: Mon Feb 27, 2006 6:03 pm Post subject:
Geometric distribution, E[X] and Var[X]



Can somebody help me out with this?
(really, it's not homework :)
I need to know how the expectation and variance of the geometric
distribution is computed exactly. At many sites I can find the solution,
but not the exact computation. By myself I came this far:
(given failure probability p)
sorry if the notation is sloppy :(
E[X] = sum_{t=1..inf} t.p.(1p)^(t1) =
= p.sum_{t=1..inf} t.(1p)^(t1) =
= (using some calculus formula I don't understand here below)
= p.1/(p^2) = 1/p
That calculus formula I was referring to is:
sum_{t=1..inf} t.x^(t1) = 1/((1x)^2)
Now, I know that Var[X] = E[X^2]  E[X]^2.
I've read somewhere that E[X^2] should be (2p)/(p^2)...
E[X]^2 = 1/(p^2)
E[X^2] = sum_{t=1..inf} ??????
Var[X] = 1/(p^2)  ??? = (1p) / (p^2).
Thanks in advance,
JeeBee. 

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danielwells@gmail.com science forum beginner
Joined: 28 Feb 2006
Posts: 1

Posted: Tue Feb 28, 2006 12:36 pm Post subject:
Re: Geometric distribution, E[X] and Var[X]



This formula:
sum_{t=1..inf} t.x^(t1) = 1/((1x)^2)
is the derivative of the geometric series. 

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