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I need to generate all permutations for a list of numbers. List of numbers will be from 1 to n. Also the size of permutation can be 1 to m. So if given n=4, m=3, i need to have permutations:

111
112
113
114
121
122
123
124
131
132
133
134
142
142
143
144
211.....

and so on..

Also which of recursion/iteration should be used and why ?

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closed as not a real question by Mitch Wheat, Alex Reynolds, Basile Starynkevitch, Stephen C, amit Sep 22 '12 at 9:04

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

    
show yopur attempt... – Mitch Wheat Sep 22 '12 at 7:37
    
This is not a permutation - a permutation has no repeats. Also - it is pretty much a private case of this thread – amit Sep 22 '12 at 7:40
    
no attempt yet.. i have no clue :( – CodeMonkey Sep 22 '12 at 7:41
1  
@V.J. - sorry, but you are going to have to make an attempt yourself first. If you truly haven't got a clue, there is little point us providing you with an answer that you won't understand. – Stephen C Sep 22 '12 at 8:04
1  
Not to mention that searching for "Java permutation numbers" on SO returns quite a few promising leads... – Mathias Sep 22 '12 at 8:30
up vote 0 down vote accepted

Here is an algorithm which return next permutation from previous one in lexical order:

  1. Find the largest index k such that a[k] < a[k + 1]. If no such index exists, the permutation is the last permutation.
  2. Find the largest index l such that a[k] < a[l]. Since k + 1 is such an index, l is well defined and satisfies k < l.
  3. Swap a[k] with a[l].
  4. Reverse the sequence from a[k + 1] up to and including the final element a[n].

Try to implement it.

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