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20202026
most citedFATA-Trans: Field And Time-Aware Transformer for Sequential Tabular Data

12 citations · 43 across the 22 of their papers we have counts for

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cs.LG2024

Matrix Profile for Anomaly Detection on Multidimensional Time Series

Chin-Chia Michael Yeh, Audrey Der, Uday Singh Saini +11

The Matrix Profile (MP), a versatile tool for time series data mining, has been shown effective in time series anomaly detection (TSAD). This paper delves into the problem of anoma…

cs.LG2024

RPMixer: Shaking Up Time Series Forecasting with Random Projections for Large Spatial-Temporal Data

Chin-Chia Michael Yeh, Yujie Fan, Xin Dai +9

Spatial-temporal forecasting systems play a crucial role in addressing numerous real-world challenges. In this paper, we investigate the potential of addressing spatial-temporal fo…

cs.LG2024

PUPAE: Intuitive and Actionable Explanations for Time Series Anomalies

Audrey Der, Chin-Chia Michael Yeh, Yan Zheng +5

In recent years there has been significant progress in time series anomaly detection. However, after detecting an (perhaps tentative) anomaly, can we explain it? Such explanations…

cs.LG2023

Ego-Network Transformer for Subsequence Classification in Time Series Data

Chin-Chia Michael Yeh, Huiyuan Chen, Yujie Fan +8

Time series classification is a widely studied problem in the field of time series data mining. Previous research has predominantly focused on scenarios where relevant or foregroun…

cs.LG202312 cited

FATA-Trans: Field And Time-Aware Transformer for Sequential Tabular Data

Dongyu Zhang, Liang Wang, Xin Dai +7

Sequential tabular data is one of the most commonly used data types in real-world applications. Different from conventional tabular data, where rows in a table are independent, seq…

cs.LG2023

Multitask Learning for Time Series Data with 2D Convolution

Chin-Chia Michael Yeh, Xin Dai, Yan Zheng +7

Multitask learning (MTL) aims to develop a unified model that can handle a set of closely related tasks simultaneously. By optimizing the model across multiple tasks, MTL generally…