probaility qns dse2013

need help!
I think qn46 has something to do with poisson, but i don't get how to apply it.
and qn45 is it 1/4?
thanks.

q46
@Ben ...I did it this way.


I get 2 letters per day.
Let M denote letter by male
n F denote letter by female
 so possible Outcomes {MM,FF,MF,FM}
I have already recieved the first letter which is by a female.
P(2nd is female | 1st is  female)
=(1/4)/(2/4)=1/2

I agree with u on 45.
P( both first and second letter is from female ) =
P( first letter from female) * P ( second letter from female| first was from female)
= 1/2* 1/2
= 1/4
Is it right? :/

good job ron.
Its 1/2

Arushi..Is my intution right...Your one also makes
some sense bt m not too sure about your one

Nai , yours is right,
I was finding it by intersection,
i.e both letters from female.
But the question is P( second F| first F)
so i am sure its 1/2 .:)

Great then..
Wt about quest 46 ...ny idea...
i'm getting X~poiss(lambda=0)
i'm not able to carry on...

i..i think the first answer is 4/3*e^(-2)... for poisson E(X) as N tends to infinity is lamda...here it is 2.

Sp P(X=3)= e^-2.(2)^3/3! hence the answer..i am not 100%sure

Seond one 2/3.

Let A-event that both letters were from female

B- one letter from female and one from male

E-event that 1st letter recived was from female

hence now the porb is P(A/E)..apply bayes theorem and ans comes out as 2/3 :)

For quest 45 i think Ron is right.I'M geting 1/2 as well....and his explanation seems quite correct

Soory its 1/3

P(E/A)=1 P(A)=1/4

P(E/B)=1 ,P(B)=1/2

P(A/E)= P(E/A)*P(A)/p(E/A)*p(A)+p(e/b0*pb
=1*1/4/ 1*1/4 +1*1/2=1/3

Hi..sonia ..we forgot about the post man...the sample space (mm,ff,mf,fm) is equivalent to (mm,ff,fm) since the post man will deliver the letter by the female first always..

I'm confused....guys please ask Amit Goyal Sir to upload the answers as he always does

@ kangkan,
Yes, the sample space would be {MM,FF,FM}
So in such a case , if we use Ron's method,
P(second F| first F)= P( Both are female)/ P(first is female)= (1/3)/(2/3)= 1/2

               

yes..i think that wud be best :)

So, u agree with 1/2 ?

Hi Arushi..i am not sure..i dont feel comfortable with intuition based solution..i feel better if its based on bayes theorem or someting like that..but i am not sure...

i'll think tomo..gudnyt

3 different methods and answers....pretty interesting question

OKAY !! So i have solved the mystery :P It wasn't letting me sleep :D
Kangkan I am using Bayes theorem and it ill fetch the same answer.
S = { FF,MM,FM}
Let E = first letter from F = {FM,FF}
A= Both are from female = {FF}
B= First female and second male = {FM}
P(A)= 1/3
P(B)= 1/3
P(E/A) = 1, P (E/B)=1
P(A/E)= (1*1/3)/(1*1/3+1*1/3)= 1/2
So, Bayes Theorem gives the same answer on following Ron's method if we use new sample space by kangkan
So thanks Ron & kangkan :D

 

Great job Arushi... :-)
so i guess this should bring an end to this "mast" question