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LESIM (LEarned Segmentation Index with Multiple pointers)
The Hong Kong University of Science and Technology Department of Computer Science and Engineering MPhil Thesis Defence Title: "LESIM (LEarned Segmentation Index with Multiple pointers)" By Mr. Max PRIOR Abstract: Indexes are essential for efficient information retrieval. This thesis presents LESIM (LEarned Segmentation Index with Multiple pointers), a learned structure for indexing records based on their timestamps. LESIM overcomes limitations of existing index structures, and supports efficient updates at the current time, as well as point queries over the past and the present. Extensive experiments were conducted based on two common real-world datasets. In comparison to the state-of-the-art learned Piecewise Geometric Model index (PGM), results demonstrate that LESIM provides a significant improvement in query and append performance. However, this comes at the cost of increased space consumption. The build time is competitive. Date: Tuesday, 6 June 2023 Time: 10:00am - 12:00noon Venue: Room 3494 lifts 25/26 Committee Members: Prof. Dimitris Papadias (Supervisor) Prof. Raymond Wong (Chairperson) Prof. Qiong Luo **** ALL are Welcome ****