Merge pull request #86 from kingeasternsun/patch-1

Update 0387.First-Unique-Character-in-a-String.md
2025-07-06 17:44:10 +08:00 · 2020-12-24 23:23:46 +08:00
parent e3fd0d2671 2c41ea320f
commit c117dfdc24
2 changed files with 65 additions and 0 deletions
--- a/leetcode/0387.First-Unique-Character-in-a-String/387.
+++ b/leetcode/0387.First-Unique-Character-in-a-String/387.
@ -1,5 +1,6 @@
 package leetcode

+// 解法一
 func firstUniqChar(s string) int {
 	result := make([]int, 26)
 	for i := 0; i < len(s); i++ {
@ -12,3 +13,34 @@ func firstUniqChar(s string) int {
 	}
 	return -1
 }
+
+// 解法二
+// 执行用时: 8 ms
+// 内存消耗: 5.2 MB
+func firstUniqChar1(s string) int {
+	charMap := make([][2]int, 26)
+	for i := 0; i < 26; i++ {
+		charMap[i][0] = -1
+		charMap[i][1] = -1
+	}
+	for i := 0; i < len(s); i++ {
+		if charMap[s[i]-'a'][0] == -1 {
+			charMap[s[i]-'a'][0] = i
+		} else { //已经出现过
+			charMap[s[i]-'a'][1] = i
+		}
+	}
+	res := len(s)
+	for i := 0; i < 26; i++ {
+		//只出现了一次
+		if charMap[i][0] >= 0 && charMap[i][1] == -1 {
+			if charMap[i][0] < res {
+				res = charMap[i][0]
+			}
+		}
+	}
+	if res == len(s) {
+		return -1
+	}
+	return res
+}
--- a/website/content/ChapterFour/0387.First-Unique-Character-in-a-String.md
+++ b/website/content/ChapterFour/0387.First-Unique-Character-in-a-String.md
@ -24,6 +24,7 @@ Given a string, find the first non-repeating character in it and return it's ind
 ## 解题思路

 - 简单题，要求输出第一个没有重复的字符。
+- 解法二这个思路只超过 81% 的用户，但是如果测试样例中 s 的字符串很长，但是满足条件的字符都在靠后的位置的话，这个思路应该会更有优势。通过记录每个字符的第一次出现的位置和最后一次出现的位置。第一次对 s 进行一次遍历。第二次仅仅对数组进行遍历就可以了。


 ## 代码
@ -32,6 +33,7 @@ Given a string, find the first non-repeating character in it and return it's ind

 package leetcode

+// 解法 一
 func firstUniqChar(s string) int {
 	result := make([]int, 26)
 	for i := 0; i < len(s); i++ {
@ -45,4 +47,35 @@ func firstUniqChar(s string) int {
 	return -1
 }

+// 解法 二
+// 执行用时: 8 ms
+// 内存消耗: 5.2 MB
+func firstUniqChar1(s string) int {
+	charMap := make([][2]int, 26)
+	for i := 0; i < 26; i++ {
+		charMap[i][0] = -1
+		charMap[i][1] = -1
+	}
+	for i := 0; i < len(s); i++ {
+		if charMap[s[i]-'a'][0] == -1 {
+			charMap[s[i]-'a'][0] = i
+		} else { //已经出现过
+			charMap[s[i]-'a'][1] = i
+		}
+	}
+	res := len(s)
+	for i := 0; i < 26; i++ {
+		//只出现了一次
+		if charMap[i][0] >= 0 && charMap[i][1] == -1 {
+			if charMap[i][0] < res {
+				res = charMap[i][0]
+			}
+		}
+	}
+	if res == len(s) {
+		return -1
+	}
+	return res
+}
+
 ```