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You have given a positive number. You have to find a number which is immediate bigger than that by using same digits available in the number.

use same digits with same number of time, coming in positive integer and if a small number is not possible then we have to return -1.

For example: (1) You have given a number 7585 , your output should be 7855 . (2) 7111, return -1.

Thanks,

Zhong

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closed as too localized by Jim Lewis, JohnFx, Robert Harvey Sep 19 '11 at 20:38

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1  
Is it a homework? Or an interview question? –  Sayem Ahmed Sep 19 '11 at 20:10
1  
And what have you tried? Is this homework? We're not going to do your work for you. –  Jim Mischel Sep 19 '11 at 20:10
    
Next time please specify your solution or thoughts –  Gregory Nozik Sep 19 '11 at 20:12
    
Can't put an answer since it's closed, but here is some perl code: codepad.org/WoJ9FMZR –  Jacob Eggers Sep 19 '11 at 22:52

3 Answers 3

Easy:

def findnext(i):
  array = digitsOf(i)
  n = max_int
  for perm in permutations(array):
    if(number(perm) > i):
      n = min(number(perm), n)
  if n=max_int:
    return -1
  else:
    return n
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Is that python or pseudocode? –  Robert Harvey Sep 19 '11 at 20:38
    
Both... I started with psuedocode, but then I removed some words and ended up with python. So it's good psuedocode, and buggy python code. –  nulvinge Sep 19 '11 at 20:48

Find a bigger digit after smaller (start from the least significant digit), then swap them.

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convert to string break into individual numbers and push into an array sort the array descending array to string string to number if new number is higher than old, return it, if not return -1

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