Description#
Given two strings s and t, return true if they are both one edit distance apart, otherwise return false.
A string s is said to be one distance apart from a string t if you can:
- Insert exactly one character into
s to get t. - Delete exactly one character from
s to get t. - Replace exactly one character of
s with a different character to get t.
Example 1:
Input: s = "ab", t = "acb"
Output: true
Explanation: We can insert 'c' into s to get t.
Example 2:
Input: s = "", t = ""
Output: false
Explanation: We cannot get t from s by only one step.
Constraints:
0 <= s.length, t.length <= 104s and t consist of lowercase letters, uppercase letters, and digits.
Solutions#
Solution 1#
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| class Solution:
def isOneEditDistance(self, s: str, t: str) -> bool:
if len(s) < len(t):
return self.isOneEditDistance(t, s)
m, n = len(s), len(t)
if m - n > 1:
return False
for i, c in enumerate(t):
if c != s[i]:
return s[i + 1 :] == t[i + 1 :] if m == n else s[i + 1 :] == t[i:]
return m == n + 1
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| class Solution {
public boolean isOneEditDistance(String s, String t) {
int m = s.length(), n = t.length();
if (m < n) {
return isOneEditDistance(t, s);
}
if (m - n > 1) {
return false;
}
for (int i = 0; i < n; ++i) {
if (s.charAt(i) != t.charAt(i)) {
if (m == n) {
return s.substring(i + 1).equals(t.substring(i + 1));
}
return s.substring(i + 1).equals(t.substring(i));
}
}
return m == n + 1;
}
}
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| class Solution {
public:
bool isOneEditDistance(string s, string t) {
int m = s.size(), n = t.size();
if (m < n) return isOneEditDistance(t, s);
if (m - n > 1) return false;
for (int i = 0; i < n; ++i) {
if (s[i] != t[i]) {
if (m == n) return s.substr(i + 1) == t.substr(i + 1);
return s.substr(i + 1) == t.substr(i);
}
}
return m == n + 1;
}
};
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| func isOneEditDistance(s string, t string) bool {
m, n := len(s), len(t)
if m < n {
return isOneEditDistance(t, s)
}
if m-n > 1 {
return false
}
for i := range t {
if s[i] != t[i] {
if m == n {
return s[i+1:] == t[i+1:]
}
return s[i+1:] == t[i:]
}
}
return m == n+1
}
|
