Search Results for author: Kamil Faber

Found 9 papers, 1 papers with code

Towards efficient deep autoencoders for multivariate time series anomaly detection

no code implementations4 Mar 2024 Marcin Pietroń, Dominik Żurek, Kamil Faber, Roberto Corizzo

First, pruning reduces the number of weights, while preventing catastrophic drops in accuracy by means of a fast search process that identifies high sparsity levels.

Anomaly Detection Model Compression +3

System Design for an Integrated Lifelong Reinforcement Learning Agent for Real-Time Strategy Games

no code implementations8 Dec 2022 Indranil Sur, Zachary Daniels, Abrar Rahman, Kamil Faber, Gianmarco J. Gallardo, Tyler L. Hayes, Cameron E. Taylor, Mustafa Burak Gurbuz, James Smith, Sahana Joshi, Nathalie Japkowicz, Michael Baron, Zsolt Kira, Christopher Kanan, Roberto Corizzo, Ajay Divakaran, Michael Piacentino, Jesse Hostetler, Aswin Raghavan

In this paper, we introduce the Lifelong Reinforcement Learning Components Framework (L2RLCF), which standardizes L2RL systems and assimilates different continual learning components (each addressing different aspects of the lifelong learning problem) into a unified system.

Continual Learning reinforcement-learning +2

WATCH: Wasserstein Change Point Detection for High-Dimensional Time Series Data

no code implementations18 Jan 2022 Kamil Faber, Roberto Corizzo, Bartlomiej Sniezynski, Michael Baron, Nathalie Japkowicz

Detecting relevant changes in dynamic time series data in a timely manner is crucially important for many data analysis tasks in real-world settings.

Change Point Detection Human Activity Recognition +3

Ensemble neuroevolution based approach for multivariate time series anomaly detection

no code implementations8 Aug 2021 Kamil Faber, Dominik Żurek, Marcin Pietroń, Kamil Piętak

To our knowledge, this is the first approach in which an ensemble deep learning anomaly detection model is built in a fully automatic way using a neuroevolution strategy.

Anomaly Detection Time Series +1

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