标签:iostream 贪心 acm algorithm acm-icpc
Do you know reverse Polish notation (RPN)? It is a known notation in the area of mathematics and computer science. It is also known as postfix notation since every operator in an expression follows all of its operands. Bob is a student in Marjar University. He is learning RPN recent days.
To clarify the syntax of RPN for those who haven‘t learnt it before, we will offer some examples here. For instance, to add 3 and 4, one would write "3 4 +" rather than "3 + 4". If there are multiple operations, the operator is given immediately after its second operand. The arithmetic expression written "3 - 4 + 5" in conventional notation would be written "3 4 - 5 +" in RPN: 4 is first subtracted from 3, and then 5 added to it. Another infix expression "5 + ((1 + 2) × 4) - 3" can be written down like this in RPN: "5 1 2 + 4 × + 3 -". An advantage of RPN is that it obviates the need for parentheses that are required by infix.
In this problem, we will use the asterisk "*" as the only operator and digits from "1" to "9" (without "0") as components of operands.
You are given an expression in reverse Polish notation. Unfortunately, all space characters are missing. That means the expression are concatenated into several long numeric sequence which are separated by asterisks. So you cannot distinguish the numbers from the given string.
You task is to check whether the given string can represent a valid RPN expression. If the given string cannot represent any valid RPN, please find out the minimal number of operations to make it valid. There are two types of operation to adjust the given string:
The strings "2*3*4" and "12*3*4" cannot represent any valid RPN, but the string "12*34*" can represent a valid RPN which is "1 2 * 34 *".
There are multiple test cases. The first line of input contains an integer T indicating the number of test cases. For each test case:
There is a non-empty string consists of asterisks and non-zero digits. The length of the string will not exceed 1000.
For each test case, output the minimal number of operations to make the given string able to represent a valid RPN.
3 1*1 11*234** *
1 0 2
题意:
给一个长度不超过1000的字符串,给出两种操作。
操作1:在任意位置插入任意字符
操作2:交换字符串中的任意两个字符的位置
问:如何用最少的操作将其转换成后缀表达式的形式
解题思路:
首先要明白,字符串中,左边的数字再多,只要右边有一个操作符,那么便算是一个后缀式,
而:在字符串中数字字符个数 大于 操作字符个数时,交换操作总是比插入操作更加划算。
因此,我们只需要在一开始时比较一下两种字符串的大小,如果数字字符数量不能大于操作字符数量,那么把差值补齐在最左边,然后再剩下的字符串中进行交换操作即可。
时间复杂度O(n)
#include <iostream> #include <cstdio> #include <cmath> #include <string> #include <cstring> #include <algorithm> #include <queue> #include <map> #include <set> #include <stack> #include <vector> #include <sstream> #define PI acos(-1.0) #define eps 1e-8 const int inf = (1<<30) - 10; using namespace std; const int maxx = 1000 + 10; int T; int ans; char str[maxx]; int main() { //freopen("input.txt","r",stdin); cin>>T; while(T--) { scanf("%s",str); int t1 = 0; int t2 = 0; int p = strlen(str); for(int i = 0; i < p; ++i) { if(str[i] == '*') { t1++; } else { t2++; } } ans = 0; int l = 0; int lnum = 0; int r = p-1; if(t2<=t1) { lnum = t1 - t2 + 1; ans += lnum; } for(; l <= r; ++l) { if(str[l] == '*') { if(lnum>=2) { lnum--; } else { ans++; while(l <= r) { if(str[r] != '*') { swap(str[l],str[r]); lnum++; r--; break; } r--; } } } else { lnum++; } } printf("%d\n",ans); } return 0; }
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标签:iostream 贪心 acm algorithm acm-icpc
原文地址:http://blog.csdn.net/u012844301/article/details/47167279