Interleaving String(Hard)
Given s1, s2, s3, find whether s3 is formed by the interleaving of s1 and s2.
题目给定3个字符串(s1,s2,s3),看s3是否是有s1和s2通过交织可以得到。
For example, Given: s1 = "aabcc", s2 = "dbbca",
When s3 = "aadbbcbcac", return true.
When s3 = "aadbbbaccc", return false.
解题思路:动态规划
state: dp[i][j] s1取前i个字符 s2取前j个字符 s3取前i+j字符 是否能匹配
function: 如果最后一位(i+j位)与s1的最后一位(i位)相等 dp[i][j] = dp[i-1][j] 与s2最后一位相等则dp[i][j] = dp[i][j-1]
initial: dp[0][0] = true dp[i][0] dp[0][j]看s1 s2 s3比较
返回: dp[s1.length][s2.length]
复杂度
时间O(mn) 空间O(mn)
public boolean isInterleave(String s1, String s2, String s3) {
if (s1.length() + s2.length() != s3.length()) {
return false;
}
boolean[][] dp = new boolean[s1.length() + 1][s2.length() + 1];
dp[0][0] = true;
for (int i = 0; i < s1.length(); i++) {
if (s1.charAt(i) == s3.charAt(i) && dp[i][0] == true) {
dp[i + 1][0] = true;
}
}
for (int j = 0; j < s2.length(); j++) {
if (s2.charAt(j) == s3.charAt(j) && dp[0][j] == true) {
dp[0][j + 1] = true;
}
}
for (int i = 1; i <= s1.length(); i++) {
for (int j = 1; j <= s2.length(); j++) {
if (s3.charAt(i + j - 1) == s1.charAt(i - 1) && dp[i - 1][j] == true) {
dp[i][j] = true;
}
if (s3.charAt(i + j - 1) == s2.charAt(j - 1) && dp[i][j - 1] == true) {
dp[i][j] = true;
}
}
}
return dp[s1.length()][s2.length()];
}