Given two strings S and T, determine if they are both one edit distance apart.
72. Edit Distance 的类似题目,编辑距离是从一个单词变成另一个单词的变换步骤。变换步骤可以是:插入,删除和替换。所以考虑三种情况:
1. 长度之差大于1,直接返回False
2. 长度之差等于1,长的字符串可去掉一个字符,剩下的字符串相同。
3. 长度之差等于0,两个字符串对应位置的字符只能有一处不同。
Java:
public boolean isOneEditDistance(String s, String t) {
if(s==null || t==null)
return false;
int m = s.length();
int n = t.length();
if(Math.abs(m-n)>1){
return false;
}
int i=0;
int j=0;
int count=0;
while(i<m&&j<n){
if(s.charAt(i)==t.charAt(j)){
i++;
j++;
}else{
count++;
if(count>1)
return false;
if(m>n){
i++;
}else if(m<n){
j++;
}else{
i++;
j++;
}
}
}
if(i<m||j<n){
count++;
}
if(count==1)
return true;
return false;
}
Python:
class Solution(object):
def isOneEditDistance(self, s, t):
"""
:type s: str
:type t: str
:rtype: bool
"""
if abs(len(s) - len(t)) > 1:
return False
for i in range(min(len(s), len(t))):
if s[i] != t[i]:
if len(s) == len(t):
return s[i+1:] == t[i+1:]
elif len(s) < len(t):
return s[i:] == t[i+1:]
else:
return s[i+1:] == t[i:]
return abs(len(s) - len(t)) == 1
Python:
class Solution(object):
def isOneEditDistance(self, s, t):
m, n = len(s), len(t)
if m > n:
return self.isOneEditDistance(t, s)
if n - m > 1:
return False
i, shift = 0, n - m
while i < m and s[i] == t[i]:
i += 1
if shift == 0:
i += 1
while i < m and s[i] == t[i + shift]:
i += 1
return i == m
C++:
class Solution {
public:
bool isOneEditDistance(string s, string t) {
for (int i = 0; i < min(s.size(), t.size()); ++i) {
if (s[i] != t[i]) {
if (s.size() == t.size()) return s.substr(i + 1) == t.substr(i + 1);
else if (s.size() < t.size()) return s.substr(i) == t.substr(i + 1);
else return s.substr(i + 1) == t.substr(i);
}
}
return abs((int)s.size() - (int)t.size()) == 1;
}
};
类似题目:
[LeetCode] 72. Edit Distance 编辑距离