LeetCode 161 - One Edit Distance

Given two strings S and T, determine if they are both one edit distance apart.

Hint:
1. If | n – m | is greater than 1, we know immediately both are not one-edit distance apart.
2. It might help if you consider these cases separately, m == n and m ≠ n.
3. Assume that m is always ≤ n, which greatly simplifies the conditional statements. If m > n, we could just simply swap S and T.
4. If m == n, it becomes finding if there is exactly one modified operation. If m ≠ n, you do not have to consider the delete operation. Just consider the insert operation in T.

 

[分析]

这个题目只要O(1)的空间,O(n)的时间复杂度。假定有一下几种情况
1)修改一个字符(假定两个String等长)
2)插入一个字符(中间或者结尾)

 

public boolean isOneEditDistance(String s, String t) {
    int m = s.length(), n = t.length();
    if (m>n) return isOneEditDistance(t, s);
    if (n-m>1) return false;
    int i =0, shift = n-m;
    while (i<m && s.charAt(i)==t.charAt(i)) ++i;
    if (i==m) return shift > 0; // if two string are the same (shift==0), return false
    if (shift==0) i++; // if n==m skip current char in s (modify operation in s)
    while (i<m && s.charAt(i)==t.charAt(i+shift)) i++; // use shift to skip one char in t
    return i == m;
}

 

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