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English Version

题目描述

字符串压缩。利用字符重复出现的次数,编写一种方法,实现基本的字符串压缩功能。比如,字符串aabcccccaaa会变为a2b1c5a3。若“压缩”后的字符串没有变短,则返回原先的字符串。你可以假设字符串中只包含大小写英文字母(a至z)。

示例1:

 输入:"aabcccccaaa"
 输出:"a2b1c5a3"

示例2:

 输入:"abbccd"
 输出:"abbccd"
 解释:"abbccd"压缩后为"a1b2c2d1",比原字符串长度更长。

提示:

  1. 字符串长度在[0, 50000]范围内。

解法

双指针遍历字符串求解。

Python3

class Solution:
    def compressString(self, S: str) -> str:
        if len(S) < 2:
            return S
        p, q = 0, 1
        res = ''
        while q < len(S):
            if S[p] != S[q]:
                res += (S[p] + str(q - p))
                p = q
            q += 1
        res += (S[p] + str(q - p))
        return res if len(res) < len(S) else S

Java

class Solution {
    public String compressString(String S) {
        int n;
        if (S == null || (n = S.length()) < 2) {
            return S;
        }
        int p = 0, q = 1;
        StringBuilder sb = new StringBuilder();
        while (q < n) {
            if (S.charAt(p) != S.charAt(q)) {
                sb.append(S.charAt(p)).append(q - p);
                p = q;
            }
            ++q;
        }
        sb.append(S.charAt(p)).append(q - p);
        String res = sb.toString();
        return res.length() < n ? res : S;
    }
}

JavaScript

/**
 * @param {string} S
 * @return {string}
 */
var compressString = function(S) {
    if (!S) return S;
    let p = 0, q = 1;
    let res = '';
    while (q < S.length) {
        if (S[p] != S[q]) {
            res += (S[p] + (q - p));
            p = q;
        }
        ++q;
    }
    res += (S[p] + (q - p));
    return res.length < S.length ? res : S;
};

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