Deep Learning in the Wild

July 13, 2018 ยท Declared Dead ยท ๐Ÿ› IAPR International Workshop on Artificial Neural Networks in Pattern Recognition

๐Ÿ‘ป CAUSE OF DEATH: Ghosted
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Authors Thilo Stadelmann, Mohammadreza Amirian, Ismail Arabaci, Marek Arnold, Gilbert Franรงois Duivesteijn, Ismail Elezi, Melanie Geiger, Stefan Lรถrwald, Benjamin Bruno Meier, Katharina Rombach, Lukas Tuggener arXiv ID 1807.04950 Category cs.LG: Machine Learning Cross-listed cs.AI, cs.CV, stat.ML Citations 44 Venue IAPR International Workshop on Artificial Neural Networks in Pattern Recognition Last Checked 6 months ago
Abstract
Deep learning with neural networks is applied by an increasing number of people outside of classic research environments, due to the vast success of the methodology on a wide range of machine perception tasks. While this interest is fueled by beautiful success stories, practical work in deep learning on novel tasks without existing baselines remains challenging. This paper explores the specific challenges arising in the realm of real world tasks, based on case studies from research \& development in conjunction with industry, and extracts lessons learned from them. It thus fills a gap between the publication of latest algorithmic and methodical developments, and the usually omitted nitty-gritty of how to make them work. Specifically, we give insight into deep learning projects on face matching, print media monitoring, industrial quality control, music scanning, strategy game playing, and automated machine learning, thereby providing best practices for deep learning in practice.
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