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A frog has to cross a river. There are n rocks in the river, using which the frog can leap across the river. On its way across the river the frog can chose to skip a rock, but it cannot skip two consecutive rocks because that would be two far a distance for the frog to hop, also the from would not skip the first rock and the last rock. E.g. if there are 3 rocks, 1,2,3 and 4, there could be three following routes it could take: 1,2,3,4 1,2,3,4 1,3,4 1,2,4

Write a recursive algorithm, that takes a number of rocks' and prints all the feasible paths. Ofcourse there can be other arguments too.

People Solve it by fibonacci series.....But I don't get it... Please Someone solve it...

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closed as off topic by Krishnabhadra, AShelly, Albin Sunnanbo, int3, Ralph Dec 26 '12 at 17:21

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1) Unable to think it is not the kind of title stackoverflow expects. 2) stackoverflow is for specific programming questions. –  Krishnabhadra Dec 26 '12 at 11:21

3 Answers 3

you could skip one rock or two rocks, and the answer well be the sum of the two - so if I have n rocks, f(n) = f(n-1) + f(n-2) == fibonaci

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If there are only one or two rocks, you can not skip any rocks, so in those cases there is exactly one possibility to cross the river. Now each time you add another rock n to the end of the sequence, that rock can be hopped on either from the last rock (rock n-1) or from the rock before that (rock n-2).

Thus, the number of possibilities to reach rock n is the sum of the number of possibilities to reach rock n-1 and rock n-2, for n>2, or else 1 for n<=2, which is basically the same as the Fibonaccy Sequence.

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Think backwards.

If f(n) represents the number of ways to get from the 1st to the nth rock, and you could only have gotten to the nth rock from the n-1th and n-2th rocks, then f(n) = f(n - 1) + f(n - 2) for every n.

Of course, f(1) = 1 since there's only 1 rock.

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