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  • There is a set of $10$ first natural numbers, $S = \{1,2,\cdots,10\}$.
  • Alice picks a subset of it, say $A \subseteq S$.
  • Bob picks a subset of it, say $B \subseteq A$.
  • Charlie picks a subset of it, say $C \subseteq B$.
  • Dave picks a subset of it, say $D \subseteq C$.

How many different ways of their picking are there?
i.e. How many different tuples of $\langle A,B,C,D \rangle$ are there?

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    $\begingroup$ Subsets, or proper subsets? (i.e. is the null set valid? Is the full set valid?) $\endgroup$ – Chris Cudmore Oct 18 at 13:27
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    $\begingroup$ is this a math question rather than a puzzle??? $\endgroup$ – Omega Krypton Oct 18 at 13:28
  • $\begingroup$ They are subsets, i.e. it is possible for $A = S$ and also $A = \{\}$. Idk if this is a good puzzle here because I guess the way to solve this is pretty fun as a math puzzle. Tho it's perfectly fine if it's considered off-topic if people say so.. ^^ $\endgroup$ – athin Oct 18 at 13:31
  • $\begingroup$ sorry i have to -1 this as this is off-topic... $\endgroup$ – Omega Krypton Oct 18 at 13:45
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    $\begingroup$ Seeing the answer, I would consider this a maths puzzle as there is a clever and quick way to solve it which is not immediately obvious. $\endgroup$ – hexomino Oct 18 at 13:51
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For each element we can choose the last person to have it in their set. There are $5$ possibilities for each element, namely None, Alice, Bob, Charlie, or Dave. Each element is independent of all the others. Therefore there are $5^{10}=9765625$ ways to arrange the elements amongst the sets.

Here is a nice way to look at it.
Imagine that A chooses some of the 10 items.
B now chooses some of A's items and takes them from her.
C now takes some of B's items from him.
D now takes some of C's items from him.
Any arrangement of the items can be the result. So each item can be with any of the 4 people, or with none of them.
The same is happening in this question, except that the people share the items they took.

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  • $\begingroup$ Wow, excellent solution. So much easier to compute than the complex sums of sums of sums... $\endgroup$ – user3294068 Oct 18 at 14:08
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    $\begingroup$ Indeed, this is how it's done! :) $\endgroup$ – athin Oct 18 at 14:54

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