Given s1, s2, s3, find whether s3 is formed by the interleaving of s1 and s2.
For example,
Given:
s1 = "aabcc",
s2 = "dbbca",
When s3 = "aadbbcbcac", return true.
When s3 = "aadbbbaccc", return false.
//利用dp解決,dp[i][j]的狀態表示為s1[0...i] + s2[0...j]的字符串區間能否組成s3.
//那麼,動態轉移方程為:
// 1) s1[i-1] == s3[i+j-1] && dp[i-1][j] = true 那麼,dp[i][j] = true;
// 2) s2[j-1] == s3[i+j-1] && dp[i][j-1] = true 那麼,dp[i][j] = true;
class Solution {
public:
bool isInterleave(std::string s1, std::string s2, std::string s3) {
if(s1.size() + s2.size() != s3.size()) return false;
std::vector> dp(s1.size()+1,std::vector(s2.size()+1,0));
dp[0][0] = 1;
for (int i = 1; i < s1.size()+1; i++)
{
if(s1[i-1] == s3[i-1] && dp[i-1][0]) dp[i][0] = true;
}
for (int i = 1; i < s2.size()+1; i++)
{
if(s2[i-1] == s3[i-1] && dp[0][i-1]) dp[0][i] = true;
}
for (int i = 1; i < s1.size() + 1; i++)
{
for (int j = 1; j < s2.size() + 1; j++)
{
if(s1[i-1] == s3[i+j-1] && dp[i-1][j]) dp[i][j] = true;
if(s2[j-1] == s3[i+j-1] && dp[i][j-1]) dp[i][j] = true;
}
}
return dp[s1.size()][s2.size()];
}
}; 
