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Given an ordered list of values, I want to group any members having the same value and output a count of each value:

For example,

input: [1,1,1,3,3,2,1,1] 
output:
[(1,3),(3,2),(2,1),(1,2)]

input:['a','a','b','b','c','a']
output:
[('a',2),(b,2),(c,1),(a,1)]

Additionally, I want to treat the first and last values specially. What is the optimal way to do this?

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How does your algorithm look like? –  Gumbo Oct 11 '12 at 5:33
    
I compare the current element with the previous, if same, counter++. Till they are different save the counter, and reset it to zero for the next element. –  Freya Ren Oct 11 '12 at 5:42
1  
Dealing with boundary conditions is O(1) and therefore not worth optimizing... –  CAFxX Oct 11 '12 at 6:08
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1 Answer 1

I am writing down a rough solution for this problem:

main()
{
     char arr[100];
     int count[100],j=0,i,n;
     for(i=0;i<100;i++)
     {
         count[i] = 0;
     }
     scanf("%d\n",&n);
     scanf("\n%c",&arr[0]);
     count[j]=1;
     for(i=1;i<n;i++)
     {
         scanf("%c",&arr[i]);
         if(arr[i-1]==arr[i])
         {
             count[j]++;
         }
         else
         {
             j++;
             count[j]=1;
         }
     }
     for(i=0;i<=j;i++)
     {
         printf("%d\n",count[i]);
     }
}

Here i am reading n characters from user then checking it current character with the previous one after reading the current character. I am keeping a separate array for count.

Hope that helps...

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