Search Results for author: Ludger van Elst

Found 4 papers, 1 papers with code

F2DNet: Fast Focal Detection Network for Pedestrian Detection

2 code implementations4 Mar 2022 Abdul Hannan Khan, Mohsin Munir, Ludger van Elst, Andreas Dengel

However, the current two-stage detectors are inefficient as they do bounding box regression in multiple steps i. e. in region proposal networks and bounding box heads.

Ranked #2 on Pedestrian Detection on Caltech (using extra training data)

object-detection Object Detection +2

KENN: Enhancing Deep Neural Networks by Leveraging Knowledge for Time Series Forecasting

no code implementations8 Feb 2022 Muhammad Ali Chattha, Ludger van Elst, Muhammad Imran Malik, Andreas Dengel, Sheraz Ahmed

End-to-end data-driven machine learning methods often have exuberant requirements in terms of quality and quantity of training data which are often impractical to fulfill in real-world applications.

Anomaly Detection Time Series +1

KINN: Incorporating Expert Knowledge in Neural Networks

no code implementations15 Feb 2019 Muhammad Ali Chattha, Shoaib Ahmed Siddiqui, Muhammad Imran Malik, Ludger van Elst, Andreas Dengel, Sheraz Ahmed

The promise of ANNs to automatically discover and extract useful features/patterns from data without dwelling on domain expertise although seems highly promising but comes at the cost of high reliance on large amount of accurately labeled data, which is often hard to acquire and formulate especially in time-series domains like anomaly detection, natural disaster management, predictive maintenance and healthcare.

Anomaly Detection Management +1

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