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wu :: forums    riddles    putnam exam (pure math) (Moderators: Eigenray, towr, Icarus, SMQ, william wu, Grimbal)    Expected maximum value in [0,1] « Previous topic | Next topic » Pages: 1  Reply Notify of replies Send Topic Print    Author  Topic: Expected maximum value in [0,1]  (Read 2096 times) mistaken_id Junior Member     Posts: 132 Expected maximum value in [0,1]   « on: Mar 17th, 2009, 10:16pm » Quote Modify Suppose N people choose some value (real number) from the interval (0,1). What is the expected value of the maximum?   Also what is the expected value of the second maximum? « Last Edit: Mar 17th, 2009, 10:17pm by mistaken_id » IP Logged Ronno Junior Member     Gender: Posts: 140 Re: Expected maximum value in [0,1]   « Reply #1 on: Mar 17th, 2009, 11:29pm » Quote Modify Assuming each person chooses their number independently with uniform probability, the expected maximum is N/(N+1) and the expected second maximum is (N-1)/(N+1). In fact, the expected ith minimum is  i/(N+1). « Last Edit: Mar 17th, 2009, 11:36pm by Ronno » IP Logged Sarchasm: The gulf between the author of sarcastic wit and the person who doesn't get it.. mistaken_id Junior Member     Posts: 132 Re: Expected maximum value in [0,1]   « Reply #2 on: Mar 18th, 2009, 8:16am » Quote Modify Can you explain how?? IP Logged Ronno Junior Member     Gender: Posts: 140 Re: Expected maximum value in [0,1]   « Reply #3 on: Mar 18th, 2009, 8:37am » Quote Modify The maximum having value x (0<x<1) means that one person chose a number in [x, x+dx] and the other N-1 chose numbers in (0, x). So, the probability density function of the maximum f(x)= x^(N-1)/(int 0...1 x^(N-1)dx)   So the expected value is int 0...1 xf(x)dx which comes out to be N/(N+1)   Intuitively, you would expect the numbers to be uniformly distributed in the interval and the N+1 gaps between them to be equal which also conforms to the result. « Last Edit: Mar 18th, 2009, 8:42am by Ronno » IP Logged Sarchasm: The gulf between the author of sarcastic wit and the person who doesn't get it.. mistaken_id Junior Member     Posts: 132 Re: Expected maximum value in [0,1]   « Reply #4 on: Mar 19th, 2009, 10:18am » Quote Modify on Mar 18th, 2009, 8:37am, ronnodas wrote:   So the expected value is int 0...1 xf(x)dx which comes out to be N/(N+1)     The integral of 0...1 xf(x)dx is 1/(N+1) rite?? How did you get N/N+1 IP Logged Obob Senior Riddler     Gender: Posts: 489 Re: Expected maximum value in [0,1]   « Reply #5 on: Mar 19th, 2009, 10:36am » Quote Modify Check the definition of f(x) again. IP Logged Pages: 1  Reply Notify of replies Send Topic Print Forum Jump: ----------------------------- riddles -----------------------------  - easy   - medium   - hard   - what am i   - what happened   - microsoft   - cs => putnam exam (pure math)   - suggestions, help, and FAQ   - general problem-solving / chatting / whatever ----------------------------- general -----------------------------  - guestbook   - truth   - complex analysis   - wanted   - psychology   - chinese « Previous topic | Next topic »

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