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Published:2026/1/11 11:41:55

きゃ~!Airbnbの検索システムをギャルが解説しちゃうよ~!💕

Airbnb検索爆アゲ大作戦!🚀 埋め込み検索でIT界を席巻☆

  1. ギャル的キラキラポイント✨

    • Airbnbの検索が超絶進化するってコト💖
    • 検索結果がマジで神レベルになるらしい!✨
    • IT企業はこれで新しいビジネスチャンス掴めるかも!💰
  2. 詳細解説

    • 背景: Airbnbの検索って、お部屋がいっぱいありすぎて大変じゃん?😱 ゲストにピッタリのお部屋を見つけるのがマジ難しい問題だったの!
    • 方法: 検索したい言葉とかお部屋の情報を、数字のベクトル(埋め込み)にしちゃう!💫 そうすることで、似てるものをすぐに見つけられるようになるんだって!
    • 結果: 検索の精度が爆上がりして、検索スピードも速くなるって!😎 ゲストもAirbnbもハッピーになれるね🎵
    • 意義: これでAirbnbの売り上げもアップしちゃうかも!?🎉IT企業は、この技術を使って、新しいサービスを開発できるチャンスがあるってこと!✨
  3. リアルでの使いみちアイデア💡

    • ECサイトの検索を賢くする!🛍️ 商品が見つけやすくなって、ついつい買っちゃうよね~!
    • 動画サイトで、好みの動画をオススメ!🎬 好きな動画が見つかりやすくなって、時間があっという間!

続きは「らくらく論文」アプリで

Applying Embedding-Based Retrieval to Airbnb Search

Mustafa Abdool / Soumyadip Banerjee / Moutupsi Paul / Do-kyum Kim / Xioawei Liu / Bin Xu / Tracy Yu / Hui Gao / Karen Ouyang / Huiji Gao / Liwei He / Stephanie Moyerman / Sanjeev Katariya

The goal of Airbnb search is to match guests with the ideal accommodation that fits their travel needs. This is a challenging problem, as popular search locations can have around a hundred thousand available homes, and guests themselves have a wide variety of preferences. Furthermore, the launch of new product features, such as \textit{flexible date search,} significantly increased the number of eligible homes per search query. As such, there is a need for a sophisticated retrieval system which can provide high-quality candidates with low latency in a way that integrates with the overall ranking stack. This paper details our journey to build an efficient and high-quality retrieval system for Airbnb search. We describe the key unique challenges we encountered when implementing an Embedding-Based Retrieval (EBR) system for a two sided marketplace like Airbnb -- such as the dynamic nature of the inventory, a lengthy user funnel with multiple stages, and a variety of product surfaces. We cover unique insights when modeling the retrieval problem, how to build robust evaluation systems, and design choices for online serving. The EBR system was launched to production and powers several use-cases such as regular search, flexible date and promotional emails for marketing campaigns. The system demonstrated statistically-significant improvements in key metrics, such as booking conversion, via A/B testing.

cs / cs.IR / cs.LG