Prove that the sum and the absolute difference of 2 Bernoulli(0.5) random variables are not independent





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Let $X$ and $Y$ be independent $Bernoulli(0.5)$ random variables. Let $W = X + Y$ and $T = |X - Y|$. Show that $W$ and $T$ are not independent.



I know that I have to show that $P(W, T)$ is not equal to $P(W)P(T)$, but finding the joint distribution is hard. Please help.










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  • Re: "finding the joint distribution is hard:" have you made a table? Label the rows with values of $X$, the columns with values of $Y$, and in the cells put the values of $T,$ $W,$ and the associated probabilities. Collect your results into a new table with rows labeled with $T$ and columns labeled with $W:$ put the total probabilities into the entries. That depicts the entire joint distribution of $(T,W).$ You can then draw your conclusion with a visual inspection. No operation is any more difficult than computing $1/2times 1/2.$
    – whuber
    3 hours ago












  • I get it now. I was looking for an elegant, mathematical expression for the joint distribution, but I now realize that I can just enumerate the sample space and the probabilities easily. Thanks, @whuber.
    – MSE
    2 hours ago

















up vote
1
down vote

favorite












Let $X$ and $Y$ be independent $Bernoulli(0.5)$ random variables. Let $W = X + Y$ and $T = |X - Y|$. Show that $W$ and $T$ are not independent.



I know that I have to show that $P(W, T)$ is not equal to $P(W)P(T)$, but finding the joint distribution is hard. Please help.










share|cite|improve this question






















  • Re: "finding the joint distribution is hard:" have you made a table? Label the rows with values of $X$, the columns with values of $Y$, and in the cells put the values of $T,$ $W,$ and the associated probabilities. Collect your results into a new table with rows labeled with $T$ and columns labeled with $W:$ put the total probabilities into the entries. That depicts the entire joint distribution of $(T,W).$ You can then draw your conclusion with a visual inspection. No operation is any more difficult than computing $1/2times 1/2.$
    – whuber
    3 hours ago












  • I get it now. I was looking for an elegant, mathematical expression for the joint distribution, but I now realize that I can just enumerate the sample space and the probabilities easily. Thanks, @whuber.
    – MSE
    2 hours ago













up vote
1
down vote

favorite









up vote
1
down vote

favorite











Let $X$ and $Y$ be independent $Bernoulli(0.5)$ random variables. Let $W = X + Y$ and $T = |X - Y|$. Show that $W$ and $T$ are not independent.



I know that I have to show that $P(W, T)$ is not equal to $P(W)P(T)$, but finding the joint distribution is hard. Please help.










share|cite|improve this question













Let $X$ and $Y$ be independent $Bernoulli(0.5)$ random variables. Let $W = X + Y$ and $T = |X - Y|$. Show that $W$ and $T$ are not independent.



I know that I have to show that $P(W, T)$ is not equal to $P(W)P(T)$, but finding the joint distribution is hard. Please help.







probability self-study independence bernoulli-distribution






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asked 4 hours ago









MSE

668




668












  • Re: "finding the joint distribution is hard:" have you made a table? Label the rows with values of $X$, the columns with values of $Y$, and in the cells put the values of $T,$ $W,$ and the associated probabilities. Collect your results into a new table with rows labeled with $T$ and columns labeled with $W:$ put the total probabilities into the entries. That depicts the entire joint distribution of $(T,W).$ You can then draw your conclusion with a visual inspection. No operation is any more difficult than computing $1/2times 1/2.$
    – whuber
    3 hours ago












  • I get it now. I was looking for an elegant, mathematical expression for the joint distribution, but I now realize that I can just enumerate the sample space and the probabilities easily. Thanks, @whuber.
    – MSE
    2 hours ago


















  • Re: "finding the joint distribution is hard:" have you made a table? Label the rows with values of $X$, the columns with values of $Y$, and in the cells put the values of $T,$ $W,$ and the associated probabilities. Collect your results into a new table with rows labeled with $T$ and columns labeled with $W:$ put the total probabilities into the entries. That depicts the entire joint distribution of $(T,W).$ You can then draw your conclusion with a visual inspection. No operation is any more difficult than computing $1/2times 1/2.$
    – whuber
    3 hours ago












  • I get it now. I was looking for an elegant, mathematical expression for the joint distribution, but I now realize that I can just enumerate the sample space and the probabilities easily. Thanks, @whuber.
    – MSE
    2 hours ago
















Re: "finding the joint distribution is hard:" have you made a table? Label the rows with values of $X$, the columns with values of $Y$, and in the cells put the values of $T,$ $W,$ and the associated probabilities. Collect your results into a new table with rows labeled with $T$ and columns labeled with $W:$ put the total probabilities into the entries. That depicts the entire joint distribution of $(T,W).$ You can then draw your conclusion with a visual inspection. No operation is any more difficult than computing $1/2times 1/2.$
– whuber
3 hours ago






Re: "finding the joint distribution is hard:" have you made a table? Label the rows with values of $X$, the columns with values of $Y$, and in the cells put the values of $T,$ $W,$ and the associated probabilities. Collect your results into a new table with rows labeled with $T$ and columns labeled with $W:$ put the total probabilities into the entries. That depicts the entire joint distribution of $(T,W).$ You can then draw your conclusion with a visual inspection. No operation is any more difficult than computing $1/2times 1/2.$
– whuber
3 hours ago














I get it now. I was looking for an elegant, mathematical expression for the joint distribution, but I now realize that I can just enumerate the sample space and the probabilities easily. Thanks, @whuber.
– MSE
2 hours ago




I get it now. I was looking for an elegant, mathematical expression for the joint distribution, but I now realize that I can just enumerate the sample space and the probabilities easily. Thanks, @whuber.
– MSE
2 hours ago










2 Answers
2






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up vote
1
down vote



accepted










The product of the marginal distributions is defined on ${0,1,2} times {0,1}$. You can plug in any of the $6$ possible pairs, and get a nonzero number out.



However, the joint density is defined on a smaller space:
$$
{0,0} cup {1,1} cup {2, 0}.
$$



To disprove independence, take any $(w,t)$ pair not in the above, and plug it in to $P(W,T)$ and $P(W)P(T)$. You will see that, for that particular pair:
$$
P(W,T) = 0 neq P(W)P(T).
$$



Alternatively, because you're dealing with a small space, you can just go ahead and compute every probability and just check every possible pair.






share|cite|improve this answer




























    up vote
    2
    down vote













    When T = 0, W = 0 or 2; when T = 1 then W = 1. So T and W are not independent.
    See Independence of $X+Y$ and $X-Y$






    share|cite|improve this answer





















    • I want to mark your solution as correct, too! Thanks, @user158565.
      – MSE
      2 hours ago











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    2 Answers
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    2 Answers
    2






    active

    oldest

    votes









    active

    oldest

    votes






    active

    oldest

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    up vote
    1
    down vote



    accepted










    The product of the marginal distributions is defined on ${0,1,2} times {0,1}$. You can plug in any of the $6$ possible pairs, and get a nonzero number out.



    However, the joint density is defined on a smaller space:
    $$
    {0,0} cup {1,1} cup {2, 0}.
    $$



    To disprove independence, take any $(w,t)$ pair not in the above, and plug it in to $P(W,T)$ and $P(W)P(T)$. You will see that, for that particular pair:
    $$
    P(W,T) = 0 neq P(W)P(T).
    $$



    Alternatively, because you're dealing with a small space, you can just go ahead and compute every probability and just check every possible pair.






    share|cite|improve this answer

























      up vote
      1
      down vote



      accepted










      The product of the marginal distributions is defined on ${0,1,2} times {0,1}$. You can plug in any of the $6$ possible pairs, and get a nonzero number out.



      However, the joint density is defined on a smaller space:
      $$
      {0,0} cup {1,1} cup {2, 0}.
      $$



      To disprove independence, take any $(w,t)$ pair not in the above, and plug it in to $P(W,T)$ and $P(W)P(T)$. You will see that, for that particular pair:
      $$
      P(W,T) = 0 neq P(W)P(T).
      $$



      Alternatively, because you're dealing with a small space, you can just go ahead and compute every probability and just check every possible pair.






      share|cite|improve this answer























        up vote
        1
        down vote



        accepted







        up vote
        1
        down vote



        accepted






        The product of the marginal distributions is defined on ${0,1,2} times {0,1}$. You can plug in any of the $6$ possible pairs, and get a nonzero number out.



        However, the joint density is defined on a smaller space:
        $$
        {0,0} cup {1,1} cup {2, 0}.
        $$



        To disprove independence, take any $(w,t)$ pair not in the above, and plug it in to $P(W,T)$ and $P(W)P(T)$. You will see that, for that particular pair:
        $$
        P(W,T) = 0 neq P(W)P(T).
        $$



        Alternatively, because you're dealing with a small space, you can just go ahead and compute every probability and just check every possible pair.






        share|cite|improve this answer












        The product of the marginal distributions is defined on ${0,1,2} times {0,1}$. You can plug in any of the $6$ possible pairs, and get a nonzero number out.



        However, the joint density is defined on a smaller space:
        $$
        {0,0} cup {1,1} cup {2, 0}.
        $$



        To disprove independence, take any $(w,t)$ pair not in the above, and plug it in to $P(W,T)$ and $P(W)P(T)$. You will see that, for that particular pair:
        $$
        P(W,T) = 0 neq P(W)P(T).
        $$



        Alternatively, because you're dealing with a small space, you can just go ahead and compute every probability and just check every possible pair.







        share|cite|improve this answer












        share|cite|improve this answer



        share|cite|improve this answer










        answered 4 hours ago









        Taylor

        11.4k11743




        11.4k11743
























            up vote
            2
            down vote













            When T = 0, W = 0 or 2; when T = 1 then W = 1. So T and W are not independent.
            See Independence of $X+Y$ and $X-Y$






            share|cite|improve this answer





















            • I want to mark your solution as correct, too! Thanks, @user158565.
              – MSE
              2 hours ago















            up vote
            2
            down vote













            When T = 0, W = 0 or 2; when T = 1 then W = 1. So T and W are not independent.
            See Independence of $X+Y$ and $X-Y$






            share|cite|improve this answer





















            • I want to mark your solution as correct, too! Thanks, @user158565.
              – MSE
              2 hours ago













            up vote
            2
            down vote










            up vote
            2
            down vote









            When T = 0, W = 0 or 2; when T = 1 then W = 1. So T and W are not independent.
            See Independence of $X+Y$ and $X-Y$






            share|cite|improve this answer












            When T = 0, W = 0 or 2; when T = 1 then W = 1. So T and W are not independent.
            See Independence of $X+Y$ and $X-Y$







            share|cite|improve this answer












            share|cite|improve this answer



            share|cite|improve this answer










            answered 4 hours ago









            user158565

            4,2391316




            4,2391316












            • I want to mark your solution as correct, too! Thanks, @user158565.
              – MSE
              2 hours ago


















            • I want to mark your solution as correct, too! Thanks, @user158565.
              – MSE
              2 hours ago
















            I want to mark your solution as correct, too! Thanks, @user158565.
            – MSE
            2 hours ago




            I want to mark your solution as correct, too! Thanks, @user158565.
            – MSE
            2 hours ago


















             

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