2018-10-09 12:43:06 +00:00
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# [443. String Compression](https://leetcode.com/problems/string-compression/description/)
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# 思路
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根据题意压缩字符串。
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用res记录当前处理过的字符串压缩后的长度,num记录当前字符出现了多少次。
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# C++
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2019-09-13 15:08:41 +00:00
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```C++
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2018-10-09 12:43:06 +00:00
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class Solution {
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public:
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int compress(vector<char>& chars) {
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int res = 0, tmp, num = 1; // num初始为1
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for(int i = 1; i < chars.size(); i++){
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if(chars[i] == chars[i - 1]) num++;
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else{
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chars[res++] = chars[i - num];
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if(num == 1) continue; // 若出现次数仅为1则后面不加“1”
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// 以下5行将int型转为char型,也可用string s = to_string(num)转,不过好像慢一些
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tmp = res;
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while(num != 0){
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chars[res++] = (num % 10 + '0');
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num /= 10;
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}
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reverse(chars.begin() + tmp, chars.begin() + res);
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num = 1;
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}
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}
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chars[res++] = chars[chars.size() - 1];
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if(num > 1){
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tmp = res;
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while(num != 0){
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chars[res++] = (num % 10 + '0');
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num /= 10;
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}
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reverse(chars.begin() + tmp, chars.begin() + res);
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}
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return res;
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}
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};
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```
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