PAT (Advanced Level) Practice 1083 List Grades (25分) (思路转换)
1.题目
Given a list of N student records with name, ID and grade. You are supposed to sort the records with respect to the grade in non-increasing order, and output those student records of which the grades are in a given interval.
Input Specification:
Each input file contains one test case. Each case is given in the following format:
N
name[1] ID[1] grade[1]
name[2] ID[2] grade[2]
... ...
name[N] ID[N] grade[N]
grade1 grade2
where name[i] and ID[i] are strings of no more than 10 characters with no space, grade[i] is an integer in [0, 100], grade1 and grade2 are the boundaries of the grade's interval. It is guaranteed that all the grades are distinct.
Output Specification:
For each test case you should output the student records of which the grades are in the given interval [grade1, grade2] and are in non-increasing order. Each student record occupies a line with the student's name and ID, separated by one space. If there is no student's grade in that interval, output NONE instead.
Sample Input 1:
4
Tom CS000001 59
Joe Math990112 89
Mike CS991301 100
Mary EE990830 95
60 100
Sample Output 1:
Mike CS991301
Mary EE990830
Joe Math990112
Sample Input 2:
2
Jean AA980920 60
Ann CS01 80
90 95
Sample Output 2:
NONE
2.题目分析
开始的思路是使用vector存放struct,然后针对grade进行排序,但是当我看到grade1,grade2最后才给出,有猫腻可能!
而且N的范围也没给,但是给了grade的范围,于是不排序,直接将grade为X(1<=X<=100)的记录插入vector<node>out[101];第X行,倒着输出就行
3.代码
#include<iostream>
#include<vector>
#include<string>
#include<cstring>
using namespace std;
struct node
{
string name;
string id;
};
int main()
{
int n,grade,grade1,grade2;
bool none = true;
string name,id;
scanf("%d", &n);
vector<node>out[101];
for (int i = 0; i < n; i++)
{
cin >> name >> id >> grade;
out[grade].push_back({ name,id });
}
cin >> grade1 >> grade2;
for (int i = grade2; i >= grade1; i--)
{
for (int j = 0; j < out[i].size(); j++)
{
cout << out[i][j].name << " " << out[i][j].id << endl; none = false;
}
}
if (none)cout << "NONE" << endl;
}
