Problem Description There are many lamps in a line. All of them are off at first. A series of operations are carried out on these lamps. On the i-th operation, the lamps whose numbers are the multiple of i change the condition ( on to off and off to on ).
Input Each test case contains only a number n ( 0< n < = 10^5) in a line.
Output Output the condition of the n-th lamp after infinity operations ( 0 - off, 1 - on ).
Sample Input 1 5
Sample Output 1 0
Hinthint
Consider the second test case:
The initial condition : 0 0 0 0 0 … After the first operation : 1 1 1 1 1 … After the second operation : 1 0 1 0 1 … After the third operation : 1 0 0 0 1 … After the fourth operation : 1 0 0 1 1 … After the fifth operation : 1 0 0 1 0 …
The later operations cannot change the condition of the fifth lamp any more. So the answer is 0.
思路: 说下题目大意吧, 先把这些灯标上号,1 2 3 4 5 6 7 8 ……无穷 首先全是关的,也就是全是0 第一次操作 ,标号是1的倍数,全都变成相反的状态,也就是全变成1.。 第二次操作 ,标号是2的倍数,全都变成相反的状态,你可以看下,2 4 6……变成了0.。。 第三次操作 ,标号是3的倍数,全都变成相反的状态,你可以看下,3 6 9……
他问你 N 号台灯最后 变成了 什么状态, 例如 1号灯,最后变成了1,不管多少次操作都是1.。 例如 5号灯 最后变成了0,不管多少次操作都是0.。
当操作次数大于N的时候 N的状态就不会改变了,因为N不会是M(M>N)的倍数。。
本题思路很简单就是求n有几个约数(包括1和自身)如果有奇数个约数,变奇数次,结果也就是1;否则为0
代码语言:javascript复制import java.util.Scanner;
public class Main {
// static boolean[] islight = new boolean[100002];
public static void main(String[] args) {
Scanner sc = new Scanner(System.in);
while (sc.hasNext()) {
int n = sc.nextInt();
// for(int i=1;i<=n;i ){
// islight[i] = false;
// }
//
// for (int i = 1; i <= n; i ) {
// for (int j = 1; j <= n; j ) {
// if(j%i==0){
// islight[j] = !islight[j];
// }
// }
// }
//
// if(islight[n]){
// System.out.println("1");
// }else{
// System.out.println("0");
// }
// 超时
int k =0;
for(int i=1;i<=n;i ){
if(n%i==0){
k ;
}
}
if(k%2==0){
System.out.println("0");
}else{
System.out.println("1");
}
}
}
}
