【Leetcode】202-Happy Number【Java实现】【Easy】
Your runtime beats 82.86% of java submissions.
stem:
Write an algorithm to determine if a number is "happy".
A happy number is a number defined by the following process: Starting with any positive integer, replace the number by the sum of the squares of its digits, and repeat the process until the number equals 1 (where it will stay), or it loops endlessly in a cycle which does not include 1. Those numbers for which this process ends in 1 are happy numbers.
Example: 19 is a happy number
12 + 92 = 82
82 + 22 = 68
62 + 82 = 100
12 + 02 + 02 = 1code:
public class Solution {
/*
by qr
2015-11-12
*/
public boolean isHappy(int n) {
if(n==0){
return false;
}
if(n==1){
return true;
}
int temp=0;
boolean flag[]=new boolean[811];
int yushu=0;
while(true){
while(n!=0){
yushu=n%10;
n=n/10;
temp+=yushu*yushu;
}
if(temp==1){
return true;
}
if(flag[temp]){
return false;
}else{
flag[temp]=true;
}
n=temp;
temp=0;
}
}
}这道题就很简单啦,开始是把flag设为int数组来着,后来感觉布尔类型的就行。
Java中int的范围为:-2147483648~2147483647,其实还是要学习一下Java中各种类型变量的范围,位数什么的。
现在开始会考虑特殊情况了,开始有这种意识了!
不过medium及以上的还是感觉不太会,还要继续呢!
discuss中有用hashset存储的,但是没有上面的快。
Java中,hashset和hashmap差不多,hashset只是封装了一个HashMap对象来存储所有的集合元素,所有放入HashSet中的集合元素实际上是由HashMap的key保存的,而HashMap的value则存储了一个PRESENT,是一个静态的Object对象。但是看速度效率不是很高:Your runtime beats 59.60% of java submissions
public class Solution {
public boolean isHappy(int n) {
if( n ==1 || n==-1){
return true;
}
HashSet h = new HashSet<>();
int m=0;
while(true){
while(n != 0){
m = m + (n%10)*(n%10);
n=n/10;
}
if(m == 1){
return true;
}
if(!h.add(m)){
return false;
}
n=m;
m=0;
}
}
} 其他有用位操作的,耗时2ms,算是比较优化的了,没有仔细去想清楚什么意思。
code:
public boolean isHappy(int n) {
int[] mark = new int[8];
while (n > 1) {
n = convert(n);
if (n < 243) {
int sec = n >> 5;
int mask = 1 << (n & 0x1f);
if ((mark[sec] & mask) > 0) {
return false;
}
mark[sec] |= mask;
}
}
return true;
}
private int convert(int n) {
int sum = 0;
while (n > 0) {
int t = n % 10;
sum += t * t;
n /= 10;
}
return sum;
}