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Problem

Each row of an n x n matrix consists of 1's and 0's such that in any row, all 1's come before any 0's. Find row containing most no of 1's in O(n).

Example

1 1 1 1 1 0  <- Contains maximum number of 1s, return index 1
1 1 1 0 0 0
1 0 0 0 0 0
1 1 1 1 0 0
1 1 1 1 0 0
1 1 0 0 0 0

I found this question in my algorithms book. The best I could do took O(n logn) time. How to do this in O(n)?

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2  
What is n here? Number of rows? Number of coloumns? Number of cells? –  MAK Mar 22 '11 at 8:39
1  
The question states n x n, so n is both columns and rows. –  Assaf Levy Mar 22 '11 at 9:39

4 Answers 4

up vote 33 down vote accepted

Start at 1,1.

If the cell contains 1, you're on the longest row so far; write it down and go right. If the cell contains 0, go down. If the cell is out of bounds, you're done.

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You can do it in O(N) as follows:

Start at A[i][j] with i=j=0.

          1, keep moving to the right by doing j++
A[i][j] = 
          0, move down to the next row by doing i++

When you reach the last row or the last column, the value of j will be the answer.

Pseudo code:

Let R be number of rows
Let C be number of columns

Let i = 0
Let j = 0   
Let max1Row = 0

while ( i<R && j<C )
   if ( matrix[i][j] == 1 )
      j++
      max1Row = i
   else
      i++
end-while


print "Max 1's = j"
print "Row number with max 1's = max1Row"
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This is wrong...what if your first cell [0, 0] contains a 0 and the rest cells in that row contains all 1. And all the rest of the cell in the subsequent rows contain only 0. Then you answer would be i where i is the maximum row number and j would be 0. –  Swaranga Sarma Mar 22 '11 at 8:57
    
@Swaranga Sarma: You need to read the question carefully all 1's come before any 0's –  codaddict Mar 22 '11 at 9:00
    
Yeah, my bad. Apologies. –  Swaranga Sarma Mar 22 '11 at 9:01
    
The code seems incorrect specially "if ( matrix[i][j] == 1 ) j++ max1Row = i" part. You are not keeping track of the row-number with the maximum number of 1 –  Prasoon Saurav Mar 22 '11 at 16:35
    
It would be good if we start from right to left rather than travelling from left to right so that we can skip most of rows if it ends with 0 –  Viswesn Mar 29 at 15:03

Start with the first row. Keep the row R that has the most numbers of 1s and the index i of the last 1 of R. in each iteration compare the current row with the row R on the index i. if the current row has a 0 on position i, the row R is still the answer. Otherwise, return the index of the current row. Now we just have to find the last 1 of the current row. Iterate from index i up to the last 1 of the current row, set R to this row and i to this new index.

              i
              |  
              v 
R->   1 1 1 1 1 0  
|
v     1 1 1 0 0 0 (Compare ith index of this row)
      1 0 0 0 0 0         Repeat
      1 1 1 1 0 0           "
      1 1 1 1 0 0           "
      1 1 0 0 0 0           "
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Some C code to do this.

int n = 6;
int maxones = 0, maxrow = -1, row = 0, col = 0;
while(row < n) {
    while(col < n && matrix[row][col] == 1) col++;
    if(col == n) return row;
    if(col > maxones){
        maxrow = row;
        maxones = col;
    }
    row++;
}
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