VLDB 2026 Research / reviewers in the wild / expert
Xuesong Chen 0005
dblp:33/205-5
· DBLP profile ↗
4ranked-venue papers
1as first author
4since 2021 · last 2022
0000-0003-4875-0743ORCID · conflict
Domains — the database's venue-derived domains; a paper can count in several
Databases, data management, data science and information retrieval · 3 · 1 first-author · 3 since 2021Artificial intelligence and machine learning · 1 · 1 first-author · 1 since 2021Graphics, computer vision, multimedia, augmented reality and games · 1 · 1 since 2021Applied, interdisciplinary, general and emerging computing · 1 · 1 since 2021
| Year | Publication | Venue | Position |
|---|---|---|---|
| 2022 | Brain Topography Adaptive Network for Satisfaction Modeling in Interactive Information Access SystemabstractWith the growth of information on the Web, most users heavily rely on information access systems (e.g., search engines, recommender systems, etc.) in their daily lives. During this procedure, modeling users' satisfaction status plays an essential part in improving their experiences with the systems. In this paper, we aim to explore the benefits of using Electroencephalography (EEG) signals for satisfaction modeling in interactive information access system design. Different from existing EEG classification tasks, the arisen of satisfaction involves multiple brain functions, such as arousal, prototypicality, and appraisals, which are related to different brain topographical areas. Thus modeling user satisfaction raises great challenges to existing solutions. To address this challenge, we propose BTA, a Brain Topography Adaptive network with a multi-centrality encoding module and a spatial attention mechanism module to capture cognitive connectives in different spatial distances. We explore the effectiveness of BTA for satisfaction modeling in two popular information access scenarios, i.e., search and recommendation. Extensive experiments on two real-world datasets verify the effectiveness of introducing brain topography adaptive strategy in satisfaction modeling. Furthermore, we also conduct search result re-ranking task and video rating prediction task based on the satisfaction inferred from brain signals on search and recommendation scenarios, respectively. Experimental results show that brain signals extracted with BTA help improve the performance of interactive information access systems significantly. Ziyi Ye, Xiaohui Xie, Yiqun Liu 0001, Xuesong Chen 0005, Min Zhang 0006, Shaoping Ma |
ACM Multimedia | 5 |
| 2022 | Why Don't You Click: Understanding Non-Click Results in Web Search with Brain SignalsabstractWeb search heavily relies on click-through behavior as an essential feedback signal for performance evaluation and improvement. Traditionally, click is usually treated as a positive implicit feedback signal of relevance or usefulness, while non-click is regarded as a signal of irrelevance or uselessness. However, there are many cases where users satisfy their information need with the contents shown on the Search Engine Result Page (SERP). This raises the problem of measuring the usefulness of non-click results and modeling user satisfaction in such circumstances. Ziyi Ye, Xiaohui Xie, Yiqun Liu 0001, Xuancheng Li, Jiaji Li, Xuesong Chen 0005, Min Zhang 0006, Shaoping Ma |
SIGIR | 7 |
| 2022 | Web Search via an Efficient and Effective Brain-Machine InterfaceabstractWhile search technologies have evolved to be robust and ubiquitous, the fundamental interaction paradigm has remained relatively stable for decades. With the maturity of the Brain-Machine Interface(BMI), we build an efficient and effective communication system between human beings and search engines based on electroencephalogram (EEG) signals, called Brain Machine Search Interface (BMSI)system. The BMSI system provides functions including query reformulation and search result interaction. In our system, users can perform search tasks without having to use the mouse and keyboard. Therefore, it is useful for application scenarios in which hand-based interactions are infeasible, e.g, for users with severe neuromuscular disorders. Besides, based on brain signals decoding, our system can provide abundant and valuable user-side context information (e.g., real-time satisfaction feedback, extensive context information, and a clearer description of information needs) to the search engine, which is hard to capture in the previous paradigm. In our implementation, the system can decode user satisfaction from brain signals in real-time during the interaction process and re-rank the search results list based on user satisfaction feedback.The demo video is available at http://www.thuir.cn/group/YQLiu/videos/BMSISystem.html Xuesong Chen 0005, Ziyi Ye, Xiaohui Xie, Yiqun Liu 0001, Xiaorong Gao, Weihang Su, Shuqi Zhu, Yike Sun, Min Zhang 0006, Shaoping Ma |
WSDM | 1 |
| 2022 | Towards a Better Understanding of Human Reading Comprehension with Brain SignalsabstractReading comprehension is a complex cognitive process involving many human brain activities. However, little is known about what happens in human brain during reading comprehension and how these cognitive activities can affect information retrieval process. Additionally, with the advances in brain imaging techniques such as electroencephalogram (EEG), it is possible to collect brain signals in almost real time and explore whether it can be utilized as feedback to facilitate information acquisition performance. Ziyi Ye, Xiaohui Xie, Yiqun Liu 0001, Xuesong Chen 0005, Min Zhang 0006, Shaoping Ma |
WWW | 5 |