יום שלישי, 15 בספטמבר 2026 LIVE
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כתבה arXiv cs.LG ·

Towards Unified Approaches in Self-Supervised Event Stream Modeling: Progress and Prospects

תקציר מקורי באנגליתarXiv:2502.04899v4 Announce Type: replace Abstract: The proliferation of digital interactions across diverse domains, such as healthcare, e-commerce, gaming, and finance, has resulted in the generation of vast volumes of event stream (ES) data. ES data comprises continuous sequences of timestamped events that encapsulate detailed contextual information relevant to each domain. While ES data holds significant potential for extracting actionable insights and enhancing decision-making, its effective utilization is hindered by challenges such as the scarcity of labeled data and the fragmented nature of existing research efforts. Self-Supervised Learning (SSL) has emerged as a promising paradigm to address these challenges by enabling the extraction of meaningful representations from unlabeled
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