Robust Factorization of Real-world Tensor Streams with Patterns, Missing Values, and Outliers
Dongjin Lee, Kijung Shin
Abstract
Consider multiple seasonal time series being collected in real-time, in the form of a tensor stream. Real-world tensor streams often include missing entries (e.g., due to network disconnection) and at the same time unexpected outliers (e.g., due to system errors). Given such a real-world tensor stream, how can we estimate missing entries and predict future evolution accurately in real-time?
In this work, we answer this question by introducing SOFIA, a robust factorization method for real-world tensor streams. In a nutshell, SOFIA smoothly and tightly integrates tensor factorization, outlier removal, and temporal-pattern detection, which naturally reinforce each other. Moreover, SOFIA integrates them in linear time, in an online manner, despite the presence of missing entries. We experimentally show that SOFIA is (a) robust and accurate: yielding up to 76% lower imputation error and 71% lower forecasting error; (b) fast: up to 935× faster than the second-most accurate competitor; and (c) scalable: scaling linearly with the number of new entries per time step.
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Cited by top-tier papers5
- SliceNStitch: Continuous CP Decomposition of Sparse Tensor StreamsTaehyung Kwon, Inkyu Park, Dongjin Lee, Kijung ShinICDE 2021 · 15 citations
- Fast and Accurate Dual-Way Streaming PARAFAC2 for Irregular Tensors - Algorithm and ApplicationJun-Gi Jang, Jeongyoung Lee, Yong-chan Park, U KangKDD 2023 · 9 citations
- Splitting Tuples of Mismatched EntitiesWenfei Fan, Ziyan Han, Weilong Ren, Ding Wang et al.SIGMOD 2024 · 5 citations
- Online Functional Tensor Decomposition via Continual Learning for Streaming Data CompletionXi Zhang, Yanyi Li, Yisi Luo, Qi Xie et al.NeurIPS 2025 · 5 citations
- Fast and Accurate Online Coupled Matrix-Tensor Factorization via Frequency RegularizationYong-chan Park, Seungjoo Lee, U KangKDD 2026 · 1 citation
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