- prompts/: LFU cache exam + 5-pillar grading rubric - outputs/: 8 model .py outputs (local + cloud baseline) - data/benchmark_history.json: graded results (scores, metrics, bugs, patches) - generate_dashboard.py: builds dashboard.html + pages/*.html from JSON - Dockerfile + DEPLOY.md: Gitea→Coolify deploy (build-step, nginx static) - .gitignore: generated HTML excluded (built on deploy) Co-Authored-By: Claude <noreply@anthropic.com>
427 lines
15 KiB
Python
427 lines
15 KiB
Python
#!/usr/bin/env python3
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"""
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In-Memory Concurrent LFU Cache with Async TTL Eviction and Atomic Transactions.
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Pure Python 3.11+ implementation. No external dependencies.
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"""
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import asyncio
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import time
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from dataclasses import dataclass, field
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from typing import Any, Optional, Dict, Set, List
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# ---------------------------------------------------------------------------
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# Core Data Structures for O(1) Operations
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# ---------------------------------------------------------------------------
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@dataclass
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class Node:
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key: Any
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value: Any
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freq: int
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expires_at: Optional[float]
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prev: Optional['Node'] = None
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next: Optional['Node'] = None
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class DoublyLinkedList:
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"""Sentinel-based doubly linked list supporting O(1) add/remove/pop."""
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def __init__(self):
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self.head = Node(None, None, 0, None)
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self.tail = Node(None, None, 0, None)
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self.head.next = self.tail
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self.tail.prev = self.head
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self.size = 0
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def add_to_tail(self, node: Node):
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node.prev = self.tail.prev
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node.next = self.tail
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self.tail.prev.next = node
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self.tail.prev = node
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self.size += 1
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def remove_node(self, node: Node):
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if node.prev is None or node.next is None:
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return
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node.prev.next = node.next
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node.next.prev = node.prev
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node.prev = node.next = None
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self.size -= 1
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def pop_head(self) -> Optional[Node]:
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if self.size == 0:
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return None
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node = self.head.next
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self.remove_node(node)
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return node
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def is_empty(self) -> bool:
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return self.size == 0
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# ---------------------------------------------------------------------------
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# Transaction Isolation Layer
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# ---------------------------------------------------------------------------
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class Transaction:
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"""
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Provides ACID-like sub-sessions with Read-Your-Own-Writes isolation.
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Changes remain local until commit(), where they are applied atomically.
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"""
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def __init__(self, cache: 'LFUCache'):
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self._cache = cache
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self._local_writes: Dict[Any, tuple] = {} # key -> (value, ttl)
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self._local_deletes: Set[Any] = set()
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self._local_freq_bumps: Set[Any] = set() # Track accesses for LFU bump
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self._committed = False
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self._rolled_back = False
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async def put(self, key: Any, value: Any, ttl_seconds: Optional[float] = None):
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if self._committed or self._rolled_back:
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raise RuntimeError("Transaction already finished")
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self._local_writes[key] = (value, ttl_seconds)
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self._local_deletes.discard(key)
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self._local_freq_bumps.add(key)
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async def get(self, key: Any) -> Optional[Any]:
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if self._committed or self._rolled_back:
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raise RuntimeError("Transaction already finished")
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# Read Your Own Writes
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if key in self._local_writes:
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val, _ = self._local_writes[key]
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self._local_freq_bumps.add(key)
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return val
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if key in self._local_deletes:
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return None
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# Read Global State
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val = await self._cache.get(key)
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if val is not None:
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self._local_freq_bumps.add(key)
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return val
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async def delete(self, key: Any) -> bool:
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if self._committed or self._rolled_back:
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raise RuntimeError("Transaction already finished")
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self._local_deletes.add(key)
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self._local_writes.pop(key, None)
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return True
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async def commit(self) -> bool:
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if self._committed or self._rolled_back:
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raise RuntimeError("Transaction already finished")
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self._committed = True
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async with self._cache._lock:
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# 1. Apply Writes
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for key, (value, ttl) in self._local_writes.items():
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if key in self._cache.store:
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node = self._cache.store[key]
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if self._cache._is_expired(node):
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self._cache._remove_node(key)
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else:
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node.value = value
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node.expires_at = time.time() + ttl if ttl else None
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self._cache._update_freq(node)
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else:
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self._cache._add_node(key, value, ttl)
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# 2. Apply Deletes
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for key in self._local_deletes:
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self._cache._remove_node(key)
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# 3. Apply Frequency Bumps (for reads during transaction)
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for key in self._local_freq_bumps:
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if key in self._cache.store and key not in self._local_deletes:
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node = self._cache.store[key]
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self._cache._update_freq(node)
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self._cache._cleanup_freq_lists()
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return True
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async def rollback(self):
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if self._committed or self._rolled_back:
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raise RuntimeError("Transaction already finished")
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self._rolled_back = True
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# Completely discard pending changes without mutating global state
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self._local_writes.clear()
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self._local_deletes.clear()
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self._local_freq_bumps.clear()
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# ---------------------------------------------------------------------------
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# Main Cache Implementation
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# ---------------------------------------------------------------------------
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class LFUCache:
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"""
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Concurrent LFU Cache with O(1) get/put, dual-layer TTL eviction,
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and atomic transaction support.
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"""
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def __init__(self, capacity: int, eviction_interval: float = 0.5):
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if capacity <= 0:
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raise ValueError("Cache capacity must be positive")
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self.capacity = capacity
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self.store: Dict[Any, Node] = {}
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self.freq_map: Dict[int, DoublyLinkedList] = {}
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self.min_freq: int = 0
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self.eviction_interval = eviction_interval
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self._lock = asyncio.Lock()
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self._evictor_task: Optional[asyncio.Task] = None
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self._evictor_running = False
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self._ttl_keys: Set[Any] = set()
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def begin_transaction(self) -> Transaction:
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return Transaction(self)
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async def start_evictor(self):
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"""Starts the background async TTL eviction loop."""
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if self._evictor_running:
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return
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self._evictor_running = True
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self._evictor_task = asyncio.create_task(self._eviction_loop())
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async def stop_evictor(self):
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"""Stops the background async TTL eviction loop."""
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self._evictor_running = False
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if self._evictor_task:
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self._evictor_task.cancel()
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try:
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await self._evictor_task
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except asyncio.CancelledError:
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pass
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self._evictor_task = None
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async def _eviction_loop(self):
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while self._evictor_running:
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await asyncio.sleep(self.eviction_interval)
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if not self._evictor_running:
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break
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await self._evict_batch()
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async def _evict_batch(self):
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"""Background sweep: acquires lock briefly, removes expired keys in batches."""
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async with self._lock:
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expired_keys = [
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k for k in list(self._ttl_keys)
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if k in self.store and self.store[k].expires_at and time.time() > self.store[k].expires_at
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]
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batch = expired_keys[:100] # Small batch to avoid lock contention
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for k in batch:
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self._remove_node(k)
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self._ttl_keys.discard(k)
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self._cleanup_freq_lists()
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def _cleanup_freq_lists(self):
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"""Remove empty frequency buckets and update min_freq."""
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empty_freqs = [f for f, dll in self.freq_map.items() if dll.is_empty()]
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for f in empty_freqs:
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del self.freq_map[f]
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if self.freq_map:
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self.min_freq = min(self.freq_map.keys())
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else:
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self.min_freq = 0
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def _is_expired(self, node: Node) -> bool:
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return node.expires_at is not None and time.time() > node.expires_at
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def _remove_node(self, key: Any):
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"""Removes a key from store and its frequency linked list."""
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if key not in self.store:
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return
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node = self.store.pop(key)
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self._ttl_keys.discard(key)
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freq = node.freq
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if freq in self.freq_map:
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self.freq_map[freq].remove_node(node)
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def _update_freq(self, node: Node):
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"""Moves node to next frequency bucket in O(1)."""
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freq = node.freq
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self.freq_map[freq].remove_node(node)
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if self.freq_map[freq].is_empty():
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del self.freq_map[freq]
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if self.min_freq == freq:
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self.min_freq += 1
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node.freq += 1
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new_freq = node.freq
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if new_freq not in self.freq_map:
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self.freq_map[new_freq] = DoublyLinkedList()
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self.freq_map[new_freq].add_to_tail(node)
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async def get(self, key: Any) -> Optional[Any]:
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"""O(1) get with lazy TTL eviction and frequency bump."""
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async with self._lock:
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if key not in self.store:
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return None
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node = self.store[key]
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if self._is_expired(node):
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self._remove_node(key)
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return None
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self._update_freq(node)
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return node.value
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async def put(self, key: Any, value: Any, ttl_seconds: Optional[float] = None):
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"""O(1) put with capacity eviction and TTL handling."""
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async with self._lock:
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if key in self.store:
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node = self.store[key]
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if self._is_expired(node):
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self._remove_node(key)
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else:
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node.value = value
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node.expires_at = time.time() + ttl_seconds if ttl_seconds else None
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self._update_freq(node)
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return
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if len(self.store) >= self.capacity:
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self._evict()
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self._add_node(key, value, ttl_seconds)
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def _evict(self):
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"""Evicts the least frequently used item (O(1) via min_freq bucket)."""
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if self.min_freq in self.freq_map:
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dll = self.freq_map[self.min_freq]
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node = dll.pop_head()
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if node:
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self.store.pop(node.key, None)
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self._ttl_keys.discard(node.key)
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self._cleanup_freq_lists()
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def _add_node(self, key: Any, value: Any, ttl_seconds: Optional[float]):
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"""Inserts new node into freq 1 bucket."""
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node = Node(key, value, 1, time.time() + ttl_seconds if ttl_seconds else None)
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self.store[key] = node
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if ttl_seconds:
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self._ttl_keys.add(key)
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if 1 not in self.freq_map:
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self.freq_map[1] = DoublyLinkedList()
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self.min_freq = 1
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self.freq_map[1].add_to_tail(node)
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async def delete(self, key: Any) -> bool:
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async with self._lock:
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if key in self.store:
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self._remove_node(key)
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return True
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return False
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async def size(self) -> int:
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async with self._lock:
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return len(self.store)
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# ---------------------------------------------------------------------------
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# Executable Unit Tests
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# ---------------------------------------------------------------------------
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async def test_lfu_eviction_order():
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"""a) O(1) LFU eviction order when capacity is reached."""
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cache = LFUCache(3)
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await cache.put(1, 'a')
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await cache.put(2, 'b')
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await cache.put(3, 'c')
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# Access 1 twice to make it most frequent
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await cache.get(1)
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await cache.get(1)
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# Insert 4 -> should evict 2 (freq 1, least used)
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await cache.put(4, 'd')
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assert await cache.get(2) is None, "Failed: Least frequent key should be evicted"
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assert await cache.get(1) == 'a', "Failed: Key 1 should still exist"
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assert await cache.get(3) == 'c', "Failed: Key 3 should still exist"
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assert await cache.get(4) == 'd', "Failed: Key 4 should exist"
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print("✅ Test a) LFU eviction order: PASSED")
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async def test_ttl_eviction():
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"""b) Lazy TTL vs. Background Async Sweep eviction."""
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cache = LFUCache(10)
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await cache.start_evictor()
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# Lazy eviction
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await cache.put('lazy', 'val', ttl_seconds=0.1)
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assert await cache.get('lazy') == 'val', "Failed: Should return value before TTL"
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await asyncio.sleep(0.15)
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assert await cache.get('lazy') is None, "Failed: Lazy eviction should trigger on next get"
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# Background sweep eviction
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await cache.put('bg', 'val2', ttl_seconds=0.1)
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await asyncio.sleep(0.25) # Wait for background task cycle
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assert await cache.get('bg') is None, "Failed: Background sweep should evict expired key"
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await cache.stop_evictor()
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print("✅ Test b) TTL eviction (Lazy & Background): PASSED")
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async def test_transaction_isolation():
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"""c) Transaction commit visibility vs. rollback state restoration."""
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cache = LFUCache(10)
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await cache.put('a', 1)
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# Commit test
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tx = cache.begin_transaction()
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await tx.put('a', 2)
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await tx.put('b', 3)
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# Read your own writes
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assert await tx.get('a') == 2, "Failed: Should see local write"
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assert await tx.get('b') == 3, "Failed: Should see local write"
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# Global shouldn't see uncommitted changes
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assert await cache.get('a') == 1, "Failed: Global should not see uncommitted write"
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await tx.commit()
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assert await cache.get('a') == 2, "Failed: Global should see committed write"
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assert await cache.get('b') == 3, "Failed: Global should see committed write"
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# Rollback test
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tx2 = cache.begin_transaction()
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await tx2.put('c', 4)
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assert await tx2.get('c') == 4, "Failed: Should see local write"
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await tx2.rollback()
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assert await cache.get('c') is None, "Failed: Rollback should discard changes"
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print("✅ Test c) Transaction isolation (Commit & Rollback): PASSED")
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async def test_stress_concurrency():
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"""d) Stress test with 50 concurrent async tasks reading/writing simultaneously."""
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cache = LFUCache(100)
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await cache.start_evictor()
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tasks = []
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for i in range(50):
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async def worker(idx: int):
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for j in range(10):
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key = f"k{idx}"
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await cache.put(key, f"v{idx}_{j}")
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val = await cache.get(key)
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assert val == f"v{idx}_{j}", f"Failed: Read mismatch for {key}"
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tasks.append(asyncio.create_task(worker(i)))
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await asyncio.gather(*tasks)
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# All 50 keys should exist
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assert await cache.size() == 50, f"Failed: Expected 50 keys, got {await cache.size()}"
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# Verify concurrent reads/writes didn't corrupt data
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for i in range(50):
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assert await cache.get(f"k{i}") == f"v{i}_9", f"Failed: Data corruption for k{i}"
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await cache.stop_evictor()
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print("✅ Test d) Stress concurrency (50 tasks): PASSED")
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async def main():
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print("🚀 Running LFU Cache Unit Tests...\n")
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await test_lfu_eviction_order()
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await test_ttl_eviction()
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await test_transaction_isolation()
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await test_stress_concurrency()
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print("\n🎉 All tests passed successfully.")
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if __name__ == "__main__":
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asyncio.run(main())
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