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=[[MA375]]: [[MA_375_Spring_2009_Walther_Week_5| Solution to a homework problem from this week or last week's homework]]=
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Spring 2009, Prof. Walther
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There are 8 options for bitstrings of length 3 :
 
There are 8 options for bitstrings of length 3 :
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--[[User:Jrhaynie|Jrhaynie]] 14:14, 4 March 2009 (UTC)
 
--[[User:Jrhaynie|Jrhaynie]] 14:14, 4 March 2009 (UTC)
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[[MA375_%28WaltherSpring2009%29|Back to MA375, Spring 2009, Prof. Walther]]

Latest revision as of 08:21, 20 May 2013


MA375: Solution to a homework problem from this week or last week's homework

Spring 2009, Prof. Walther


There are 8 options for bitstrings of length 3 : 000 001 010 100 011 110 101 111

So, the probability that there will be and odd number of 1s occurs when there is either one 1 or three 1s making P(E)=1/2. The probability that the bitstring starts with zero, P(F), is also 1/2. Therefore, P(E)*P(F)=1/4. Because we know that the cases that there is an odd number of 1s and that starts with a zero is the intersection of the two, we see that P(EnF)=1/4. Since P(E)*P(F)=1/4=P(EnF)we can say that the events are indeed independent.

--Jrhaynie 14:14, 4 March 2009 (UTC)


Back to MA375, Spring 2009, Prof. Walther

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