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460. LFU Cache
题目
Design and implement a data structure for Least Frequently Used (LFU) cache.
It should support the following operations: get and put.
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get(key)- Get the value (will always be positive) of the key if the key exists in the cache, otherwise return -1. -
put(key, value)- Set or insert the value if the key is not already present. When the cache reaches its capacity, it should invalidate the least frequently used item before inserting a new item. For the purpose of this problem, when there is a tie (i.e., two or more keys that have the same frequency), the least recently used key would be evicted.
Follow up: Could you do both operations in O(1) time complexity?
Example:
LFUCache cache = new LFUCache( 2 /* capacity */ );
cache.put(1, 1);
cache.put(2, 2);
cache.get(1); // returns 1
cache.put(3, 3); // evicts key 2
cache.get(2); // returns -1 (not found)
cache.get(3); // returns 3.
cache.put(4, 4); // evicts key 1.
cache.get(1); // returns -1 (not found)
cache.get(3); // returns 3
cache.get(4); // returns 4
解题思路
见程序注释
Documentation
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Types ¶
type LFUCache ¶
type LFUCache struct {
// contains filtered or unexported fields
}
LFUCache 实现了 Least Frequently Used (LFU) cache
Source Files