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I'm trying to write a program to return an integer value of the length of the longest run of repeated numbers. (e.g., an array of integers such as, 2, 4, 4, 1, 3, 4, 4, 4, 4, 4, 6, 6, 6 would return the value 5 since the 5 4's is the longest run.) I've tried writing the code, but it keeps returning the total number of elements in my array. What's going wrong?

int length(int array[], int size)
{
   int x = 0, max;
   int result[size];

   for (int i = 0; i < size; i++)
   {
      x = i + 1;

      if (array[i] == array[x])
      {
         result[i] = x + 1;
      }

      if (result[i] > result[x])
      {
         max = result[i];
      }
   }

   return max;
}
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As a hint - you probably want to keep track of both a current count, and a separate "largest count I've seen so far". Let me know if you'd like a more detailed answer. –  Amber Jun 10 '13 at 3:48
    
A max() function should do it –  Jeremy Jun 10 '13 at 3:48
2  
You need an array to store the count of each number, not just one paticular. –  Yu Hao Jun 10 '13 at 3:49
1  
u can sort your array , counting sort is a good option if u have small integer range –  nachokk Jun 10 '13 at 3:52
    
@Nile you are thinking of C++ not C –  jamylak Jun 10 '13 at 3:54

3 Answers 3

up vote 2 down vote accepted

This code considers runs of integers, and returns the maximum run length.

int length(int array[], int size) {
   int max = 1;
   int current = 1;
   int i;

   for (i = 1; i < size; i++) {
      if (array[i - 1] == array[i]) {    /* the run continues */
          current++;
          max = current > max ? current : max;
      } else {    /* the run was broken */
          current = 1;
      }
   }
   return max;
}
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Thanks! Quick question, how come n was set to array[0]? Couldn't we have said: if (array[i] == array[i + 1])? Why do we say: n = array[i] in the last part of the else statement? –  Karen Jun 10 '13 at 5:34
    
I didn't comment the variable very well I suppose. I'm using n to denote what my current number is. –  Prashant Kumar Jun 10 '13 at 5:35
    
This assumes that the array is sorted ... a fact the discernment of which is beyond the OP's current level of expertise, so it's important to state it. Note that thejh already gave an answer that operates on a sorted array ... and said so. (But this code is a bit nicer.) –  Jim Balter Jun 10 '13 at 5:38
    
Actually good call. n isn't really needed. I've refactored the code and eliminated it. –  Prashant Kumar Jun 10 '13 at 5:38
    
Thank you so much for the help! I think this was the clearest answer/easiest one for me to understand. :) But thanks to everyone who helped! I appreciate it. :) –  Karen Jun 10 '13 at 5:40

As nachokk said, first sort the values. Afterwards, you can do something like this:

int max(int a, int b) { return a>b ? a : b; }

int get_highest_repetitition_length(int arr[], int arr_len) {
  int len = 0, highest_len = 0;
  for (int i=0; i<arr_len; i++) {
    if (i>0 && arr[i-1] != arr[i]) {
      highest_len = max(len, highest_len);
      len = 0;
    }
    len++;
  }
  highest_len = max(len, highest_len);
  return highest_len;
}
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Is there a way to do this without sorting the values first? And I'm not allowed to use the max() function. :( By the way, this isn't homework, I'm just practicing. :) –  Karen Jun 10 '13 at 4:10
    
@Karen: I could think of a simple approach without sorting, but that would have an awful complexity class of O(n^2). And, uh, feel free to replace highest_len = max(len, highest_len); with if (len > highest_len) highest_len = len; or whatever. –  thejh Jun 10 '13 at 4:24
    
@Karen If this isn't homework, then who isn't allowing you to use max? Note that this answer provides its own max function ... are you not allowed to write functions? To write functions named max? To write functions that find the maximum of their two arguments? I don't know which of these restrictions is being imposed on you, but none of them are sensible or have anything to do with the craft of programming. As for ways without sorting: sure, but they will require a lookup table to map the integers to their counts (this would not require O(n*n) unless the lookup is O(n)). –  Jim Balter Jun 10 '13 at 4:50
    
Oh, the problem wants me to write a single function for the solution. –  Karen Jun 10 '13 at 4:53
    
@Karen Then the problem is requiring bad programming practice ... I suggest finding a better source of problems. –  Jim Balter Jun 10 '13 at 4:55

Hope this helps. If you want to get the result without sorting, you need to know the range of numbers in the input. Let's say the range is from [0 , size).

int get_max_rep(int array[], int size) 
{
int* counter = (int *)malloc(sizeof(int)*size);    
// initialize
for (int i = 0; i < size; ++i) {
  counter[i] = 0;
}

int max = 0;
for (int i = 0; i < size; ++i) {
  ++counter[array[i]];
  if(max < counter[array[i]])
    max = counter[array[i]];
}
free(counter);
return max;
}

If the range is [a, b), a < b then you need to do some extra work. Also, if size of array counter becomes an issue then you might use a bit-vector as an alternative.

share|improve this answer
    
delete in C? uh... –  thejh Jun 10 '13 at 4:24
    
No, you do not need to know the range of numbers ... and especially in the language your code is written in, which isn't C, and thus -1 for this answer –  Jim Balter Jun 10 '13 at 4:53
    
Sorry for using new/delete. However, I still think, it is required to know the range of number in order to correctly count maximally repeated number. –  Aditya Kumar Jun 10 '13 at 5:17
    
So there are no variable sized containers? No vector in C++ or realloc in C? –  Jim Balter Jun 10 '13 at 5:23
    
As it turns out, this is a solution for a quite different problem than the one that the OP meant to pose. –  Jim Balter Jun 10 '13 at 5:57

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