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Why does convergence in higher order mean implies convergence in lower order mean?

Reference: http://en.wikipedia.org/wiki/Convergence_of_random_variables#Convergence_in_rth-order_mean

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    @user957: Homework?2011-03-30

2 Answers 2

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Hint. For $0, write $r=s(r/s)$; note that $r/s < 1$. There is a well-known inequality concerning concave functions...

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Hint: Hölder inequality.