382. Linked List Random Node(返回链表中随机一个节点的值)

Given a singly linked list, return a random node's value from the linked list. Each node must have the same probability of being chosen.

Follow up:
What if the linked list is extremely large and its length is unknown to you? Could you solve this efficiently without using extra space?

Example:

// Init a singly linked list [1,2,3].
ListNode head = new ListNode(1);
head.next = new ListNode(2);
head.next.next = new ListNode(3);
Solution solution = new Solution(head);

// getRandom() should return either 1, 2, or 3 randomly. Each element should have equal probability of returning.
solution.getRandom();

题目大意:给定一个单链表,以同等的几率随机返回链表中一个节点的值。

题目思路:计算链表长度,再用随机数对该长度取余,返回该链表中次序等于该余数的节点的值。Follow up 中说明链表可能很长,我们不能提前知道链表长度,那么这里我们直接采取另一种思路,即著名的水塘抽样(Reservoir Sampling)问题。首先令int res = head.val,i=2;ListNode p = head.next,若p为空,则链表中只有一个节点,返回该节点值的概率为1。若p不为空,使用随机数产生1/i 的概率让res = p.val,并令i++,p = p.next,再继续判断p是否为空。可以计算出,这样对于链表中的每个节点,返回该节点值的几率都是一样的。代码如下:(119ms,beats 92.74%)

/**
 * Definition for singly-linked list.
 * public class ListNode {
 *     int val;
 *     ListNode next;
 *     ListNode(int x) { val = x; }
 * }
 */
public class Solution {


    private ListNode head;
	    /** @param head The linked list's head.
	        Note that the head is guaranteed to be not null, so it contains at least one node. */
	    public Solution(ListNode head) {
	        this.head = head;
	    }
	    
	    /** Returns a random node's value. */
	    public int getRandom() {
	        Random ran = new Random();
	        int res = head.val,i = 2;
	        ListNode p = head.next;
	        while(p!=null){
	        	if(ran.nextInt()%i==0)
	        		res = p.val;
	        	i++;
	        	p = p.next;
	        }
	        return res;
	    }
}

/**
 * Your Solution object will be instantiated and called as such:
 * Solution obj = new Solution(head);
 * int param_1 = obj.getRandom();
 */


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