# 交错字符串
给定三个字符串 s1、s2、s3,请你帮忙验证 s3 是否是由 s1 和 s2 交错 组成的。
两个字符串 s 和 t 交错 的定义与过程如下,其中每个字符串都会被分割成若干 非空 子字符串:
s = s1 + s2 + ... + snt = t1 + t2 + ... + tm|n - m| <= 1- 交错 是
s1 + t1 + s2 + t2 + s3 + t3 + ... 或者 t1 + s1 + t2 + s2 + t3 + s3 + ...
提示:a + b 意味着字符串 a 和 b 连接。
示例 1:
输入:s1 = "aabcc", s2 = "dbbca", s3 = "aadbbcbcac"
输出:true
示例 2:
输入:s1 = "aabcc", s2 = "dbbca", s3 = "aadbbbaccc"
输出:false
示例 3:
输入:s1 = "", s2 = "", s3 = ""
输出:true
提示:
0 <= s1.length, s2.length <= 1000 <= s3.length <= 200s1、s2、和 s3 都由小写英文字母组成
## template
```python
class Solution(object):
def isInterleave(self, s1, s2, s3):
"""
:type s1: str
:type s2: str
:type s3: str
:rtype: bool
"""
if len(s1) + len(s2) != len(s3):
return False
queue = [(0, 0), (-1, -1)]
visited = set()
isSuccess = False
index = 0
while len(queue) != 1 or queue[0][0] != -1:
p = queue.pop(0)
if p[0] == len(s1) and p[1] == len(s2):
return True
if p[0] == -1:
queue.append(p)
index += 1
continue
if p in visited:
continue
visited.add(p)
if p[0] < len(s1):
if s1[p[0]] == s3[index]:
queue.append((p[0] + 1, p[1]))
if p[1] < len(s2):
if s2[p[1]] == s3[index]:
queue.append((p[0], p[1] + 1))
return False
# %%
s = Solution()
print(s.isInterleave(s1 = "aabcc", s2 = "dbbca", s3 = "aadbbcbcac"))
```
## 答案
```python
```
## 选项
### A
```python
```
### B
```python
```
### C
```python
```