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Wrocław. New Project Launch: Advancing Fault Detection via Cyclostationary Modelling (WEAVE-UNISONO)

Faculty of Pure and Applied Mathematics, Wrocław University of Science and Technology is pleased to highlight a significant new collaborative research initiative: “Advanced signal processing techniques for cyclostationary modelling in Gaussian and non-Gaussian noisy environment.” Funded under the prestigious WEAVE-UNISONO call by the National Science Centre (NCN), Poland and the Research Foundation – Flanders (FWO), Belgium, this project represents a strategic partnership between two leading institutions in the field of industrial mathematics and diagnostics.

Project overview

Modern industrial machinery operates under increasingly complex conditions, where traditional signal processing often falls short. This project focuses on the detection and estimation of cyclic sources, the “heartbeat” of rotating machinery within environments plagued by both standard (Gaussian) and impulsive, heavy-tailed (non-Gaussian) noise. The primary goal is to develop robust mathematical frameworks and optimized algorithms capable of identifying structural faults (such as bearing or gear damage) long before they lead to catastrophic failure.

Key Research Pillars

Collaborative Leadership

The project brings together a wealth of expertise from Poland and Belgium:

Project Details

This four-year endeavor promises to push the boundaries of predictive maintenance, offering the industry more reliable tools for monitoring critical infrastructure. We look forward to the innovative mathematical solutions and diagnostic breakthroughs this international team will undoubtedly produce.

By Agnieszka Wylomańska and Justyna Witulska (Wrocław University of Science and Technology).

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