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Create 166. Fraction to Recurring Decimal.md
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solutions/166. Fraction to Recurring Decimal.md
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solutions/166. Fraction to Recurring Decimal.md
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# [166. Fraction to Recurring Decimal](https://leetcode.com/problems/fraction-to-recurring-decimal/)
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# 思路
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求两个整数的除法, 并以字符串的形式精确返回其结果, 难点在于无限小数的处理.
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> 根据小学知识我们知道, 有理数化成小数形式一定是有限小数或者无限循环小数, 不可能是无限不循环小数.
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首先考虑结果的正负, 我们可以先判断正负再将除数和被除数取绝对值, 由于int型的取值范围是-2147483648~2147483647所以取绝对值前应该先转成long long型.
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然后就是整数部分, 这个很简单直接分子整除分母即可, 此时得到余数r;
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最后就是对余数r的处理, 如果不考虑无限循环小数那么也很简单:
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每次循环先对r乘10, 再分别求其对denominator的商和余数, 得到的商就可以接在结果字符串的最后面, 而余数赋值给r, 循环直到r为0;
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考虑无限循环小数该怎么办呢? 前面说到, 在循环里r是会不断更新的, 所以我们需记录每次循环r的值, 这样当r重复时, 就可以将两次循环之间得到的结果用括号括起来.
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# C++
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``` C++
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class Solution {
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public:
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string fractionToDecimal(int numerator, int denominator) {
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long long num = abs((long long)numerator), den = abs((long long)denominator);
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long long r, tmp;
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string res = "";
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if((numerator > 0 && denominator < 0) || (numerator < 0 && denominator > 0)) res += "-";
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res += to_string(num / den);
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r = num % den;
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if(!r) return res;
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res += ".";
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unordered_map<long long, int>mp; // r值到循环次数的映射
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int pos = res.size();
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while(r){
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if(mp.count(r)){ // 遇到了重复r值
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res.insert(mp[r], "(");
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res += ")";
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return res;
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}
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mp[r] = pos++;
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r *= 10;
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res += to_string(r / den);
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r = r % den;
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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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