LeetCode: 146. LRU Cache
题目描述
Design and implement a data structure for Least Recently Used (LRU) cache. It should support the following operations: get and put.
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 reached its capacity, it should invalidate the least recently used item before inserting a new item.
Example:
LRUCache cache = new LRUCache( 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.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
用一个链表来记录顺序, 用一个哈希表来记录 key-value。
AC 代码
class LRUCache {
private:
int m_capacity;
int m_count;
list<int> m_keys;
unordered_map<int, int> m_cache;
public:
LRUCache(int capacity) : m_capacity(capacity), m_count(0) {
}
int get(int key) {
auto iter = m_cache.find(key);
auto iterk = find(m_keys.begin(), m_keys.end(), key);
if(iter != m_cache.end() && iterk != m_keys.end())
{
m_keys.erase(iterk);
m_keys.push_back(key);
return iter->second;
}
else
{
return -1;
}
}
void put(int key, int value) {
auto iter = find(m_keys.begin(), m_keys.end(), key);
if(iter != m_keys.end())
{
m_keys.erase(iter);
--m_count;
}
if(m_count == m_capacity)
{
m_cache[m_keys.front()] = -1;
m_keys.pop_front();
--m_count;
}
m_keys.push_back(key);
m_cache[key] = value;
++m_count;
}
};
/**
* Your LRUCache object will be instantiated and called as such:
* LRUCache obj = new LRUCache(capacity);
* int param_1 = obj.get(key);
* obj.put(key,value);
*/