POJ 3191
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The Moronic Cowmpouter
Time Limit: 1000MS Memory Limit: 65536K
Total Submissions: 4192 Accepted: 2168
Description
Inexperienced in the digital arts, the cows tried to build a calculating engine (yes, it’s a cowmpouter) using binary numbers (base 2) but instead built one based on base negative 2! They were quite pleased since numbers expressed in base −2 do not have a sign bit.
You know number bases have place values that start at 1 (base to the 0 power) and proceed right-to-left to base^1, base^2, and so on. In base −2, the place values are 1, −2, 4, −8, 16, −32, … (reading from right to left). Thus, counting from 1 goes like this: 1, 110, 111, 100, 101, 11010, 11011, 11000, 11001, and so on.
Eerily, negative numbers are also represented with 1’s and 0’s but no sign. Consider counting from −1 downward: 11, 10, 1101, 1100, 1111, and so on.
Please help the cows convert ordinary decimal integers (range -2,000,000,000..2,000,000,000) to their counterpart representation in base −2.
Input
Line 1: A single integer to be converted to base −2
Output
Line 1: A single integer with no leading zeroes that is the input integer converted to base −2. The value 0 is expressed as 0, with exactly one 0.
Sample Input
-13
Sample Output
110111
Hint
Explanation of the sample:
Reading from right-to-left:
1*1 + 1*-2 + 1*4 + 0*-8 +1*16 + 1*-32 = -13
题意:
给出一个数, 要求转换成(-2)进制的形式.
解题思路:
正常的转换, 但是有一个地方要注意.
如果除数(进制数)是一个负数, 被除数是负数且不能整除, 那么商要+1.
AC代码:
#include <iostream>#include <vector>using namespace std;vector<int>a;int main(){ long long n; cin >> n; if(n == 0) cout << 0; while(n){ if(n%(-2)){ a.push_back(1); } else{ a.push_back(0); } if(n < 0 && (n % -2)) { n = n/-2+1;; continue; } n /= -2; } for(int i = a.size()-1; i >= 0; i--) cout << a[i]; return 0;}
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