Reference library

Caching & Redis

Cache-aside, TTL, invalidation, hot keys, and in-memory lookup patterns at scale.

3 matches
Caching & Redis medium

How to Build a Bloom Filter to Reduce Cache Misses in Python

Implement a probabilistic Bloom filter in Python that lets a cache quickly determine which keys are definitely not present, reducing expensive source lookups on cache misses.

bloom-filter caching probabilistic
Python
import hashlib
import random

class BloomFilter:
    def __init__(self, size=100, num_hashes=3):
        self.size = size
        self.num_hashes = num_hashes
        self.bit_array = [0] * size

    def _hashes(self, item):
        result = []
        for i in range(self.num_hashes):
            hash_value = int(hash…
14 0 Open
Caching & Redis medium

How to Implement a Negative Cache with TTL in Python

This code provides a TTL mock cache that stores negative results (cache misses) for a short time to reduce repeated lookups of missing keys.

cache ttl negative-cache
Python
from time import time, sleep

class TTLMockCache:
    def __init__(self, ttl_seconds=5):
        self.ttl = ttl_seconds
        self.store = {}
        self.negative_cache = {}

    def get(self, key):
        now = time()
        if key in self.store:
            value, expires_at = self.store[key]
            if exp…
13 0 Open
Caching & Redis easy

Simple Redis Cache Helper in Python

Build a minimal Redis-backed cache with TTL, JSON serialization, and automated fetching to speed up repeated expensive lookups.

redis caching cache-aside
Python
import time
import redis
import json


class SimpleCache:
    def __init__(self, host="localhost", port=6379, db=0, default_ttl=60):
        self.client = redis.Redis(host=host, port=port, db=db, decode_responses=True)
        self.default_ttl = default_ttl

    def get(self, key):
        value = self.client.get(key)…
10 0 Open

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