Redaksiya
Let’s add the names of the cities from each test case to a set of strings. The number of visited cities will be equal to the size of this set.
Algorithm realization
Declare a string and a set of strings .
string word; set<string> s;
Read the number of test cases and process each of the tests sequentially.
cin >> tests; while(tests--) {
Read the number of cities . Clear the set .
cin >> n; s.clear();
Read the city names and add them to the set .
while(n--) { cin >> word; s.insert(word); }
Print the number of distinct visited cities.
cout << s.size() << endl; }
Java realization
import java.util.*; public class Main { public static void main(String[] args) { Scanner con = new Scanner(System.in); TreeSet<String> s = new TreeSet<String>(); int tests = con.nextInt(); for(int i = 0; i < tests; i++) { int n = con.nextInt(); s.clear(); for(int j = 0; j < n; j++) { String word = con.next(); s.add(word); } System.out.println(s.size()); } con.close(); } }
Python realization
Read the number of test cases and process each of the tests sequentially.
tests = int(input()) for _ in range(tests):
Read the number of cities . Clear the set .
n = int(input()) s = set({})
Read the city names and add them to the set .
for _ in range(n): s.add(input())
Print the number of distinct visited cities.
print(len(s))