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➤微信公众号:山青咏芝(shanqingyongzhi)
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➤GitHub地址:https://github.com/strengthen/LeetCode
➤原文地址:https://www.cnblogs.com/strengthen/p/11521665.html
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Given a string text, you want to use the characters of text to form as many instances of the word "balloon" as possible.
You can use each character in text at most once. Return the maximum number of instances that can be formed.
Example 1:
Input: text = "nlaebolko" Output: 1
Example 2:
Input: text = "loonbalxballpoon" Output: 2
Example 3:
Input: text = "leetcode" Output: 0
Constraints:
1 <= text.length <= 10^4textconsists of lower case English letters only.
给你一个字符串 text,你需要使用 text 中的字母来拼凑尽可能多的单词 "balloon"(气球)。
字符串 text 中的每个字母最多只能被使用一次。请你返回最多可以拼凑出多少个单词 "balloon"。
示例 1:
输入:text = "nlaebolko" 输出:1
示例 2:
输入:text = "loonbalxballpoon" 输出:2
示例 3:
输入:text = "leetcode" 输出:0
提示:
1 <= text.length <= 10^4text全部由小写英文字母组成
12ms
1 class Solution { 2 func maxNumberOfBalloons(_ text: String) -> Int { 3 var textCountMap: [Character: Int] = ["b":0, 4 "l":0, 5 "a":0, 6 "o":0, 7 "n":0] 8 for char in text { 9 switch char { 10 case "b", 11 "l", 12 "a", 13 "o", 14 "n": 15 textCountMap[char, default: 0] += 1 16 default: 17 continue 18 } 19 } 20 21 if textCountMap["o"]! % 2 == 1 { 22 textCountMap["o"] = textCountMap["o"]! - 1 23 } 24 25 if textCountMap["l"]! % 2 == 1 { 26 textCountMap["l"] = textCountMap["l"]! - 1 27 } 28 29 return min(textCountMap["b"]!, textCountMap["n"]!, textCountMap["a"]!, textCountMap["o"]!/2, textCountMap["l"]!/2) 30 } 31 }
Runtime: 16 ms
Memory Usage: 20.7 MB
1 class Solution { 2 func maxNumberOfBalloons(_ text: String) -> Int { 3 var F:[Character:Int] = [Character:Int]() 4 for c in text 5 { 6 F[c,default:0] += 1 7 } 8 return min(F["b",default:0], F["a",default:0], F["l",default:0]/2, F["o",default:0]/2, F["n",default:0]) 9 } 10 }