Statistics Marathon & Questions (2 Viewers)

InteGrand

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Re: University Statistics Discussion Marathon

Can't any quick way of doing it at the moment. Please let me know if any of this is wrong.



Since probabilities sum to 1, we have



By symmetry (i.e. Pascal's Triangle), we have



Then from (*), we have



Now, we compute the desired probability,



In retrospect, I should have wrote p = 0.5 = 1 - p and combined the product which would make it easier to read.
Bump! Really interested if someone has thought up of a more efficient way to do the question (or identify, if it exists, the flaws in my work).
Note that the answer to the sum cannot exceed 0.5 (in general for X ~ Bin(n, 1/2), if k > n/2, then Pr(X ≥ k) ≤ 0.5).
 
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He-Mann

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Re: University Statistics Discussion Marathon

I have corrected my original working. Thanks for the checks, I knew something was strange.

Below is an easier-to-read version.
___________________________________________________________________________

Given that p = 0.5 = 1-p,



By Binomial Theorem (with x = 1) and Pascal's Triangle (i.e. C(n,k) = C(n, n-k)),



Now, we compute the desired probability,

 
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Flop21

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Re: Statistics

How do I find E(XY) of discrete random variable? (I'm trying to find co variance).

The variables are NOT independent.
 

Flop21

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Re: Statistics

Thanks!!

Also what is this:

P(X = 0 | X < 1)

What are they called, with the same random variable twice? I can't see this in my textbook and have no clue what keywords to search.

Thanks.
 

InteGrand

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Re: Statistics

Thanks!!

Also what is this:

P(X = 0 | X < 1)

What are they called, with the same random variable twice? I can't see this in my textbook and have no clue what keywords to search.

Thanks.
That's the conditional probability that X equals 0 given X < 1.
 

Flop21

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Re: Statistics

Sorry also where do I find an explanation of doing these sorts of problems too:

Tabulate the probability function of Y = X^2 + 1, when given fX(x) table.

No clue where to start here.
 

InteGrand

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Re: Statistics

Sorry also where do I find an explanation of doing these sorts of problems too:

Tabulate the probability function of Y = X^2 + 1, when given fX(x) table.

No clue where to start here.
You would need to find the range of Y based on the range of X. Also, the probability Y takes on some value would be easily to see from the probability distribution of X. For example, if X took the value 1 with probability 1/2 and 0 with probability 1/2, then Y would take the value 0^2 + 1 = 1 with probability 1/2 (because this happens iff X = 0), and Y would take the value 1^2 + 1 = 2 with probability 1/2 (since this happens iff X = 1).
 

Flop21

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Re: Statistics

You would need to find the range of Y based on the range of X. Also, the probability Y takes on some value would be easily to see from the probability distribution of X. For example, if X took the value 1 with probability 1/2 and 0 with probability 1/2, then Y would take the value 0^2 + 1 = 1 with probability 1/2 (because this happens iff X = 0), and Y would take the value 1^2 + 1 = 2 with probability 1/2 (since this happens iff X = 1).
Thank you

so for example this question:



I understand what to do, but what do I do when I get two of the same values for Y? E.g. in this I get 2 -> 1/4 and 2 -> 2. The answers just have one column for 2 and it -> 1/8. So do you just multiply the results together to get one entry for Y = 2?
 

InteGrand

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Re: Statistics

Thank you

so for example this question:



I understand what to do, but what do I do when I get two of the same values for Y? E.g. in this I get 2 -> 1/4 and 2 -> 2. The answers just have one column for 2 and it -> 1/8. So do you just multiply the results together to get one entry for Y = 2?
If there are two values of X that yield the same value for Y, then the probability of Y taking that value is just the sum of X taking on each of the values that gave that Y value.

The probability entry for Y = 2 should be 1/4, because Y = 2 occurs iff X = -1 or X = 1, and

Pr(X = -1 or X = 1) = Pr(X = -1) + Pr(X = 1)

= 1/8 + 1/8

= 1/4.
 
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Flop21

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Re: Statistics

That's the conditional probability that X equals 0 given X < 1.
Following on with these types of questions..

I'm given fX(x) = 2x, 0 < x < 1.

Calculate P(X < 1/2 | X > 1/3).

So I've realised there's a formula, P(B | A) = P(A and B)/P(A). Which I can use but I get P (X > 1/3) on the bottom. How do I calculate that probability with a ">" with a continuous variable?

Thanks
 

Flop21

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Re: Statistics

Following on with these types of questions..

I'm given fX(x) = 2x, 0 < x < 1.

Calculate P(X < 1/2 | X > 1/3).

So I've realised there's a formula, P(B | A) = P(A and B)/P(A). Which I can use but I get P (X > 1/3) on the bottom. How do I calculate that probability with a ">" with a continuous variable?

Thanks
What do I even search to see people doing examples of these questions, searching conditional probability just brings up super simple stuff.

I need examples of people doing like P( X + Y < 30) etc.
 

InteGrand

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Re: Statistics

Following on with these types of questions..

I'm given fX(x) = 2x, 0 < x < 1.

Calculate P(X < 1/2 | X > 1/3).

So I've realised there's a formula, P(B | A) = P(A and B)/P(A). Which I can use but I get P (X > 1/3) on the bottom. How do I calculate that probability with a ">" with a continuous variable?

Thanks
You can do it using that conditional probability formula you wrote, you'll just need to calculate each of the terms that appear using the given PDF.
 

InteGrand

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Re: Statistics

To find Pr(X > 1/3) for that one, we'd just integrate the PDF of X (f(x) = 2x) from x = 1/3 to x = 1.
 

Flop21

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Re: Statistics



Why is the answer (0,4]?

for k = 4, you get 3/4 < x <= 4. So wouldn't 3/4 be the lower limit?
 

Flop21

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Re: Statistics

Oops!!

I snapped the wrong question. And posted this in the wrong thread... lol. This is discrete, my bad.

I mean k = 1...4 and it's a union not an intersection.
 

InteGrand

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Re: Statistics

Oops!!

I snapped the wrong question. And posted this in the wrong thread... lol. This is discrete, my bad.

I mean k = 1...4 and it's a union not an intersection.


Edit: just noticed it was only k = 1 to 4. In that case, the upper limit is 4, so the answer is (0, 4].

Union just means we want the points to be in at least one of the Ak.
 

leehuan

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Re: Statistics

Getting lost in what it means to converge in distribution to a constant



But I'm not seeing how FX(x) is allowed to be a constant. Because doesn't FX(x) technically have to satisfy these?



(ignoring the abuse of notation)
 

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