HackerRank Travel around the world problem solution YASH PAL, 31 July 2024 In this HackerRank Travel around the world problem solution There are N cities and N directed roads in Steven’s world. The cities are numbered from 0 to N – 1. Steven can travel from city i to city (i + 1) % N, ( 0-> 1 -> 2 -> …. -> N – 1 -> 0). Steven wants to travel around the world by car. The capacity of his car’s fuel tank is C gallons. There are a[i] gallons he can use at the beginning of city I and the car takes b[i] gallons to travel from city I to (i + 1) % N. How many cities can Steven start his car from so that he can travel around the world and reach the same city he started? Problem solution in Python. #!/bin/python3 import os import sys # # Complete the travelAroundTheWorld function below. # def travelAroundTheWorld(a, b, c): total = 0 n = len(a) city_num_to_validate = n for index in range(n-1, -1, -1): tank = 0 is_valid = True for i in range(city_num_to_validate): curr_index = (index + i) % n tank += a[curr_index] if tank > c: tank = c tank -= b[curr_index] if tank < 0: is_valid = False break if is_valid: total += 1 city_num_to_validate = 1 elif city_num_to_validate < n: city_num_to_validate += 1 return total if __name__ == '__main__': fptr = open(os.environ['OUTPUT_PATH'], 'w') nc = input().split() n = int(nc[0]) c = int(nc[1]) a = list(map(int, input().rstrip().split())) b = list(map(int, input().rstrip().split())) result = travelAroundTheWorld(a, b, c) fptr.write(str(result) + 'n') fptr.close() {“mode”:”full”,”isActive”:false} Problem solution in Java. import java.util.Scanner; public class Solution { public static void main(String args[]) { Scanner scanner = new Scanner(System.in); int n = scanner.nextInt(); long c = scanner.nextLong(); int a[] = new int[n]; int b[] = new int[n]; for (int i = 0; i < n; i++) a[i] = scanner.nextInt(); for (int i = 0; i < n; i++) b[i] = scanner.nextInt(); int city = 0; long fuel = 0; for (int i = 0; i < n; i++) { int j = 0; while (j < n) { fuel += a[i % n]; fuel = Math.min(fuel, c); if (fuel >= b[i % n]) fuel -= b[i % n]; else { fuel = 0; break; } i++; j++; } if (j == n) city = i % n; else city = -1; } int res = 0; if (city >= 0) { res = 1; long ans[] = new long[n]; ans[city] = 0; for (int j = 0; j < n - 1; j++) { int i = (city - j - 1 + n) % n; if (Math.min(a[i], c) - b[i] >= ans[(i + 1) % n]) { ans[i] = 0; res++; } else { ans[i] = ans[(i + 1) % n] - (Math.min(a[i], c) - b[i]); } } } System.out.println(res); } } {“mode”:”full”,”isActive”:false} Problem solution in C++. #include <cmath> #include <cstdio> #include <vector> #include <iostream> #include <algorithm> using namespace std; typedef long long lld; const int N = 110000; int a[2*N], b[2*N]; int need[N]; int main(){ int cas, n, r; lld vol; cin >> n >> vol; r = 4*n + 2; for (int i=0; i<n; ++i) { cin >> a[i]; a[i+n] = a[i]; } for (int i=0; i<n; ++i) { cin >> b[i]; b[i+n] = b[i]; } int s = 0; lld tank = 0; for (int i=0; i<2*n; ++i){ tank += a[i]; tank = min(tank, vol); tank -= b[i]; if (tank < 0){ tank = 0; s = i+1; } } lld ans; if (s >= n){ ans = 0; }else { ans = 1; need[s+n] = 0; for (int i=1; i<n; ++i){ int id = s+n-i; need[id] = max((long long int)0, need[id+1] + b[id] - min((long long int)a[id], vol)); if (need[id] == 0) ans ++; } } cout << ans << endl; return 0; } {“mode”:”full”,”isActive”:false} Problem solution in C. #include <stdio.h> #define N 100000 int main() { static int aa[N * 2 + 1], qu[N * 2 + 1]; static long long pp[N * 2 + 1]; static char ok[N]; int n, i, j, head, cnt; long long c; scanf("%d%lld", &n, &c); for (i = 0; i < n; i++) { scanf("%d", &aa[i]); aa[i + n] = aa[i]; } for (i = 0; i < n; i++) { int b; scanf("%d", &b); pp[i + 1] = pp[i + n + 1] = aa[i] - b; } for (i = 1; i <= n * 2; i++) pp[i] += pp[i - 1]; head = cnt = 0; for (i = n * 2, j = n * 2; i >= 0; i--) { while (cnt && pp[qu[head + cnt - 1]] >= pp[i]) cnt--; qu[head + cnt++] = i; while (cnt && pp[qu[head]] - pp[i] < aa[i] - c) if (qu[head] == j--) head++, cnt--; if (i < n) ok[i] = j > i + n; } cnt = 0; for (i = n * 2; i >= 0; i--) { while (cnt && pp[qu[cnt - 1]] >= pp[i]) cnt--; if (i < n && cnt && qu[cnt - 1] <= i + n) ok[i] = 0; qu[cnt++] = i; } cnt = 0; for (i = 0; i < n; i++) if (ok[i]) cnt++; printf("%dn", cnt); return 0; } {“mode”:”full”,”isActive”:false} algorithm coding problems