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I try to solve the spoj problem using python. My algorithm should be only O(n^2), but still TLE is returned...
My method is just a multiple source BFS.

  1. Find out the position of all 1
  2. Run BFS on each '1', store the shortest distance into an 2D list named "ans"
  3. print ans

problem link: http://www.spoj.pl/problems/BITMAP/

if __name__ == '__main__':
    n = int(input())    #reading number of test cases
    for k in range(n): 
        (row, col) = input().split()    #row and col
        row = int(row)
        col = int(col)
        #store the bitmap
        bitmap = []
        for i in range(row):
            line = input()
            bitmap.append(line)
        ans = [[False for i in range(col)] for j in range(row)]     #init a 2d array to store answer
        front = []
        num_element = row*col
        processed = 0
        for i in range(row):
            for j in range(col):
                if(bitmap[i][j] == '1'):
                    ans[i][j] = 0
                    front.append((i,j))
                    processed = processed +1
        while processed < num_element:
            new_list = []
            for node in front:
                i = node[0]
                j = node[1]
                new_distance = ans[i][j] + 1
                if(i> 0 and ans[i-1][j] is False):
                    ans[i-1][j] =new_distance                    
                    new_list.append((i-1,j))
                    processed = processed +1
                if(i< row -1 and ans[i+1][j] is False):
                    ans[i+1][j] =new_distance
                    new_list.append((i+1,j))
                    processed = processed +1
                if(j > 0 and ans[i][j-1] is False):
                    ans[i][j-1] =new_distance
                    new_list.append((i,j-1))
                    processed = processed +1
                if(j < col -1 and ans[i][j+1] is False):
                    ans[i][j+1] =new_distance
                    new_list.append((i,j+1))
                    processed = processed +1
            front = new_list
        #print the answer
        for line in ans:
            s = map(str, line)
            print(" ".join(s))
        input()
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Your big-O complexity is optimal. –  n.m. May 6 '12 at 9:12
    
@n.m. But it is still TLE. Is that my implementation too stupid?... –  Bear May 6 '12 at 12:40
    
Well, this whole BFS thing is not really needed here, a simple pass or two over the array is enough. But it doesn't add much to the execution time (I've checked). –  n.m. May 6 '12 at 12:55
    
@n.m. Thank you. I finally implement the same algorithm in C++ and accepted! It seems that problem needs 2d array is not suitable for python. –  Bear May 6 '12 at 14:09
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2 Answers 2

It is necessary to calculate distance transform with Manhattan metric. This article represents a sketch of linear (O(rows*cols)) algorithm for Euclidean metric (but Manhattan one is mentioned too).

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My algo is also O(rows*cols)... –  Bear May 6 '12 at 3:16
    
Does your method visit the cells several times? –  MBo May 6 '12 at 3:32
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up vote -1 down vote accepted

Thank you. I finally implement the same algorithm in C++ and accepted! It seems that problem needs 2d array is not suitable for python.

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