Given two strings, find the longest common subsequence (LCS).
Your code should return the length of LCS.
Clarification
What's the definition of Longest Common Subsequence?
Example
For "ABCD" and "EDCA", the LCS is "A" (or "D", "C"), return 1.
For "ABCD" and "EACB", the LCS is "AC", return 2.
求两个字符串的最长公共子序列,用动态规划来解决。
初始化二维数组 f[A.length() + 1][B.length() + 1], f[ i ][ j ]表示的是A的前i个字符配上前j个字符的最长公共子序列长度。
为什么不是f[A.length() ] [B.length() ]呢,因为代表的前i个或者前j个字符,是包括了0的情况。
初始值:f[ i ][ 0 ] = 0, f [ 0] [ j ] = 0, 因为和空字符串的公共子序列肯定是长度为0;
如果A的第i-1个字符等于B的第j - 1个字符,说明最长公共子序列长度加1
f[ i ][ j ]等于f[ i - 1] [ j - 1] + 1
如果A的第i-1个字符不等于B的第j - 1个字符
f[ i ][ j ]等于 max(f[ i - 1] [ j ] , f [ i ] [ j - 1] )
注意:
因为定义f [ i ] [ j ]的i 、 j并不是下标 而是subsequence的长度
所以长度为i的字符串最后一个字符 所在的下标是i-1
public class Solution { /** * @param A, B: Two strings. * @return: The length of longest common subsequence of A and B. */ public int longestCommonSubsequence(String A, String B) { int m = A.length(); int n = B.length(); int[][] f = new int[m + 1][n + 1]; for (int i = 0; i < m; i++) { f[i][0] = 0; } for (int j = 0; j < n; j++) { f[0][j] = 0; } for (int i = 1; i < m + 1; i++) { for (int j = 1; j < n + 1; j++) { if (A.charAt(i - 1) == B.charAt(j - 1)) { f[i][j] = f[i - 1][j - 1] + 1; } else { f[i][j] = Math.max(f[i - 1][j], f[i][j - 1]); } } } return f[m][n]; } }
由于二维数组默认的值是0, 所以不给f[ i ][ 0 ] 和 f[ 0 ][ i ]赋初始值也是可以的,简写为:
public class Solution { /** * @param A, B: Two strings. * @return: The length of longest common subsequence of A and B. */ public int longestCommonSubsequence(String A, String B) { int n = A.length(); int m = B.length(); int f[][] = new int[n + 1][m + 1]; for(int i = 1; i <= n; i++){ for(int j = 1; j <= m; j++){ f[i][j] = Math.max(f[i - 1][j], f[i][j - 1]); if(A.charAt(i - 1) == B.charAt(j - 1)) f[i][j] = f[i - 1][j - 1] + 1; } } return f[n][m]; } }