solution

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v0.0.6 Latest Latest Go to latest Published: Jul 18, 2021 License: MIT Imports: 1 Imported by: 0

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Repository

github.com/evercyan/leetcli

README ¶

383. Ransom Note

[简单] 字符串

给定一个赎金信 (ransom) 字符串和一个杂志(magazine)字符串，判断第一个字符串 ransom 能不能由第二个字符串 magazines 里面的字符构成。如果可以构成，返回 true ；否则返回 false。

(题目说明：为了不暴露赎金信字迹，要从杂志上搜索各个需要的字母，组成单词来表达意思。杂志字符串中的每个字符只能在赎金信字符串中使用一次。)

 

注意：

你可以假设两个字符串均只含有小写字母。

canConstruct("a", "b") -> false
canConstruct("aa", "ab") -> false
canConstruct("aa", "aab") -> true

Documentation ¶

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Source Files ¶

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solution.go

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