1028 List Sorting
阅读原文时间:2023年07月10日阅读:1

Excel can sort records according to any column. Now you are supposed to imitate this function.

Input Specification:

Each input file contains one test case. For each case, the first line contains two integers N (≤) and C, where N is the number of records and C is the column that you are supposed to sort the records with. Then N lines follow, each contains a record of a student. A student's record consists of his or her distinct ID (a 6-digit number), name (a string with no more than 8 characters without space), and grade (an integer between 0 and 100, inclusive).

Output Specification:

For each test case, output the sorting result in N lines. That is, if C = 1 then the records must be sorted in increasing order according to ID's; if C = 2 then the records must be sorted in non-decreasing order according to names; and if C = 3 then the records must be sorted in non-decreasing order according to grades. If there are several students who have the same name or grade, they must be sorted according to their ID's in increasing order.

Sample Input 1:

3 1
000007 James 85
000010 Amy 90
000001 Zoe 60

Sample Output 1:

000001 Zoe 60
000007 James 85
000010 Amy 90

Sample Input 2:

4 2
000007 James 85
000010 Amy 90
000001 Zoe 60
000002 James 98

Sample Output 2:

000010 Amy 90
000002 James 98
000007 James 85
000001 Zoe 60

Sample Input 3:

4 3
000007 James 85
000010 Amy 90
000001 Zoe 60
000002 James 90

Sample Output 3:

000001 Zoe 60
000007 James 85
000002 James 90
000010 Amy 90

思路:

  模拟,注意采用cin输入的话最后一组数据会被卡到。

Code:

1 #include
2
3 using namespace std;
4
5 struct Stu {
6 int id;
7 char name[10];
8 int grade;
9 } students[100005];
10
11 bool cmp1(Stu a, Stu b) { return a.id < b.id; }
12 bool cmp2(Stu a, Stu b) { return strcmp(a.name, b.name) <= 0; }
13 bool cmp3(Stu a, Stu b) { return a.grade <= b.grade; }
14
15 int main() {
16 int n, c;
17 scanf("%d%d", &n, &c);
18 for (int i = 0; i < n; ++i)
19 scanf("%d%s%d", &students[i].id, students[i].name, &students[i].grade);
20 if (c == 1)
21 sort(students, students + n, cmp1);
22 else if (c == 2)
23 sort(students, students + n, cmp2);
24 else
25 sort(students, students + n, cmp3);
26 for (int i = 0; i < n; ++i)
27 cout << setw(6) << setfill('0') << students[i].id << " "
28 << students[i].name << " " << students[i].grade << endl;
29 return 0;
30 }

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