由题意知,有5种操作,5个未知数,可0可1,一串操作问是否恒为1,最多100个字符,直接栈模拟所有情况即可
代码如下:
int p, q, r, s, t;
bool calculate(string ind) { int length = ind.size(); stack<int> buf; for (int i = length - 1; i >= 0;--i) { char tmp = ind[i]; if(tmp == 'p') buf.push(p); else if(tmp == 'q') buf.push(q); else if(tmp == 'r') buf.push(r); else if(tmp == 's') buf.push(s); else if(tmp == 't') buf.push(t); else if(tmp == 'K') { int val1, val2; val1 = buf.top(), buf.pop(); val2 = buf.top(), buf.pop(); buf.push(val1 & val2); } else if(tmp == 'A') { int val1, val2; val1 = buf.top(), buf.pop(); val2 = buf.top(), buf.pop(); buf.push(val1 || val2); } else if(tmp == 'N') { int val = buf.top(); buf.pop(); buf.push(!val); } else if(tmp == 'C') { int val1, val2; val1 = buf.top(), buf.pop(); val2 = buf.top(), buf.pop(); buf.push(!val1 || val2); } else if(tmp == 'E') { int val1, val2; val1 = buf.top(), buf.pop(); val2 = buf.top(), buf.pop(); buf.push(val1 == val2); } } return buf.top(); } int main() { string str; while(cin >> str && str != "0") { bool flag = true; for (p = 0; p < 2;++p) { for (q = 0; q < 2;++q) { for (r = 0; r < 2;++r) { for (s = 0; s < 2;++s) { for (t = 0; t < 2;++t) { if(!calculate(str)) { flag = false; break; } } if(!flag)break; } if(!flag)break; } if(!flag)break; } if(!flag)break; } if(flag) printf("tautology\n"); else printf("not\n"); } return 0; }