Codeforces Round #443 (Div. 1) A. Short Program

时间限制：1S / 空间限制：256MB

【在线测试提交传送门】

【问题描述】

    Petya learned a new programming language CALPAS. A program in this language always takes one non-negative integer and returns one non-negative integer as well.

In the language, there are only three commands: apply a bitwise operation AND, OR or XOR with a given constant to the current integer. A program can contain an arbitrary sequence of these operations with arbitrary constants from 0 to 1023. When the program is run, all operations are applied (in the given order) to the argument and in the end the result integer is returned.

Petya wrote a program in this language, but it turned out to be too long. Write a program in CALPAS that does the same thing as the Petya's program, and consists of no more than 5 lines. Your program should return the same integer as Petya's program for all arguments from 0 to 1023.
  该程序设计语言一共能执行三种运算，AND， OR ， XOR ，通过一系列运算可以将[0,1023]范围内的整数转换为另外一个整数。现在给出一些转换程序语句，请你将语句缩减为不超过5行，得到和原程序同样的输出。

【输入格式】

The first line contains an integer n (1 ≤ n ≤ 5·10^5) — the number of lines.

Next n lines contain commands. A command consists of a character that represents the operation ("&", "|" or "^" for AND, OR or XOR respectively), and the constant xi 0 ≤ xi ≤ 1023.
第一行，一个整数n (1 ≤ n ≤ 5·10^5) ，表示行数。
接下来n行，每行包含一条命令：一条命令用一个字符代表位运算，分别是"&", "|" or "^"，即与、或、抑或，一个常数xi（0 ≤ xi ≤ 1023）。

【输出格式】

Output an integer k (0 ≤ k ≤ 5) — the length of your program.
Next k lines must contain commands in the same format as in the input.
输出包含一个整数K(0 ≤ k ≤ 5) 行，表示程序的的行数；
接下来k行，每行包含一条命令，格式与输入一致。

【输入样例1】

3
| 3
^ 2
| 1

【输出样例1】

2
| 3
^ 2

【输入样例2】

3
& 1
& 3
& 5

【输出样例2】

1
& 1

【样例2解释】

Let x be an input of the Petya's program. It's output is ((x&1)&3)&5 = x&(1&3&5) = x&1. So these two programs always give the same outputs.

【输入样例3】

3
^ 1
^ 2
^ 3

【输出样例3】

0

【提示】

You can read about bitwise operations in https://en.wikipedia.org/wiki/Bitwise_operation.

【解题思路】

考虑每一位，只会存在4种情况：
对于输入的数字的每一位而言，要么是1，要么是0。而这些每一位的数输出之后要么变成了0，要么就变成了1.
(1)0->0,1->0
(2)0->1,1->0
(3)0->0,1->1
(4)0->1,1->1
对于四种情况，我们都可以通过^和|就可以解决，分情况讨论输出即可。

【参考代码】

#include<bits/stdc++.h>
using namespace std;

int n,a,b,p;
string s;
int main(){
    cin>>n;
    a = 0,b = 1023;
    for(int i=0;i<n;i++){
        cin>>s>>p;
        if(s[0]=='|'){
            a|=p;
            b|=p;
        }else if(s[0]=='^'){
            a^=p;
            b^=p;
        }else{
            a&=p;
            b&=p;
        }
    }
    int ans1=0,ans2=0;
    for(int i=0;i<10;i++){
        int a1=a&(1<<i);
        int b1=b&(1<<i);
        if(a1&&b1){
            ans1|=(1<<i);
        }
        if(a1&&!b1){
            ans2|=(1<<i);
        }
        if(!a1&&!b1){
            ans1|=(1<<i);
            ans2|=(1<<i);
        }
    }
    cout<<"2"<<endl;
    cout<<"| "<<ans1<<endl;
    cout<<"^ "<<ans2<<endl;
}