733. Flood Fill
Description
An image is represented by a 2-D array of integers, each integer representing the pixel value of the image (from 0 to 65535).
Given a coordinate (sr, sc) representing the starting pixel (row and column) of the flood fill, and a pixel value newColor, “flood fill” the image.
To perform a “flood fill”, consider the starting pixel, plus any pixels connected 4-directionally to the starting pixel of the same color as the starting pixel, plus any pixels connected 4-directionally to those pixels (also with the same color as the starting pixel), and so on. Replace the color of all of the aforementioned pixels with the newColor.
At the end, return the modified image.
Example 1:
Input:
image = [[1,1,1],[1,1,0],[1,0,1]]
sr = 1, sc = 1, newColor = 2
Output: [[2,2,2],[2,2,0],[2,0,1]]
Explanation:
From the center of the image (with position (sr, sc) = (1, 1)), all pixels connected
by a path of the same color as the starting pixel are colored with the new color.
Note the bottom corner is not colored 2, because it is not 4-directionally connected
to the starting pixel.
Note:
The length of image and image[0] will be in the range [1, 50].
The given starting pixel will satisfy 0 <= sr < image.length and 0 <= sc < image[0].length.
The value of each color in image[i][j] and newColor will be an integer in [0, 65535].
Problem URL
Solution
给一个二维数组表示的image,给一个初始的点,将所有和这个点相连的相同颜色的点换为新的颜色。
Using DFS to solve this problem. Because it is simple. Judge newColor is same or not. Then start DFS, assign connected cell with same original color to new color.
Code
class Solution {
public int[][] floodFill(int[][] image, int sr, int sc, int newColor) {
if (image[sr][sc] == newColor){
return image;
}
dfs(image, sr, sc, image[sr][sc], newColor);
return image;
}
private void dfs(int[][] image, int sr, int sc, int color, int newColor){
if (sr < 0 || sc < 0 || sr >= image.length || sc >= image[0].length || image[sr][sc] != color){
return;
}
image[sr][sc] = newColor;
dfs(image, sr + 1, sc, color, newColor);
dfs(image, sr - 1, sc, color, newColor);
dfs(image, sr, sc + 1, color, newColor);
dfs(image, sr, sc - 1, color, newColor);
}
}
Time Complexity: O(n^2)
Space Complexity: O(1)