Difference between revisions of "Yongseok Kim's Solution to 5.5 MA375Fall2008walther" - Rhea

Revision as of 19:48, 4 October 2008

There are 5 possible groupings:

                               0 0 5 - 1
                               0 1 4 - 5
                               0 2 3 - 10
                               1 1 3 - 10
                               1 2 2 - 20

For a total of 46 possibilities. I don't see a more general formula for this. Because [A][B][C] and [B][A][C] are same, the boxes are indistinguishable that proves.

As a result, 5 orders to indicate 5 indistinguishable objects into 3 indistinguishable boxes.