Airphant: Cloud-oriented Document Indexing
Supawit Chockchowwat, Chaitanya Sood, Yongjoo Park
Abstract
Modern data warehouses can scale compute nodes independently of storage. These systems persist their data on cloud storage, which is always available and cost-efficient. Adhoc compute nodes then fetch necessary data on-demand from cloud storage. This ability to quickly scale or shrink data systems is highly beneficial if query workloads may change over time.
We apply this new architecture to search engines with a focus on optimizing their latencies in cloud environments. However, simply placing existing search engines (e.g., Apache Lucene) on top of cloud storage significantly increases their end-to-end query latencies (i.e., more than 6 seconds on average in one of our studies). This is because their indexes can incur multiple network round-trips due to their hierarchical structure (e.g., skip lists, B-trees, learned indexes). To address this issue, we develop a new statistical index (called IoU Sketch). For lookup, IoU Sketch makes multiple asynchronous network requests in parallel. While IoU Sketch may fetch more bytes than existing indexes, it significantly reduces the index lookup time because parallel requests do not block each other. Based on IoU Sketch, we build an end-to-end search engine, called AIRPHANT; we describe how AIRPHANT builds, optimizes, and manages IoU Sketch; and ultimately, supports keyword-based querying. In our experiments with four real datasets, AIRPHANT's average end-toend latencies are between 13 milliseconds and 300 milliseconds, being up to 8.97× faster than Apache Lucence and 113.39× faster than Elasticsearch.
// index two documents Index index = new Index(); Document doc1 = new Document("hello world"); index.addDocument(doc1); Document doc2 = new Document("hello airphant"); index.addDocument(doc2); // search for documents containing "airphant" Document[] docs = index.search("airphant");
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Install the CLIlune papers fulltext 43b001ba-090f-4d8a-8d41-0587ffb087b0Cited by top-tier papers4
- Kishu: Time-Traveling for Computational NotebooksZhaoheng Li, Supawit Chockchowwat, Areet Sheth, Yongjoo Park et al.VLDB 2025 · 11 citations
- S/C: Speeding up Data Materialization with Bounded MemoryZhaoheng Li, Xinyu Pi, Yongjoo ParkICDE 2023 · 7 citations
- A Step Toward Deep Online AggregationNikhil Sheoran, Supawit Chockchowwat, Arav Chheda, Suwen Wang et al.SIGMOD 2023 · 7 citations
- An Evaluation of N-Gram Selection Strategies for Regular Expression Indexing in Contemporary Text Analysis TasksLing Zhang, Shaleen Deep, Jignesh M. Patel, Karthikeyan SankaralingamVLDB 2025 · 2 citations
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- PA-Tree: Polled-Mode Asynchronous B+ Tree for NVMeLi Wang, Zining Zhang, Bingsheng He, Zhenjie ZhangICDE 2020 · 9 citations
- SAQE: Practical Privacy-Preserving Approximate Query Processing for Data FederationsJohes Bater, Yongjoo Park, Xi He, Xiao Wang et al.VLDB 2020
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