Marco Stricker
4 Papers
12 Citations
Marco Stricker is an academic researcher. The author has contributed to research in topics: Landmark & Computer science. The author has an hindex of 1, co-authored 1 publications.
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Papers
•Posted Content
Facial Landmark Detection for Manga Images
TL;DR: A new landmark annotation model for manga faces, and a deep learning approach to detect these landmarks using the "Deep Alignment Network", a multi stage architecture where the first stage makes an initial estimation which gets refined in further stages.
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On the Importance of Feature Representation for Flood Mapping using Classical Machine Learning Approaches
TL;DR: In this article , a grid-search-based hyperparameter optimization on 23 feature spaces was performed to evaluate the potential of five traditional machine learning approaches such as gradient boosted decision trees, support vector machines or quadratic discriminant analysis.
1
Effect Of Terrain Information On Multimodal Deep Learning For Flood Disaster Detection
Takashi Miyamoto,Marco Stricker,Jun Ogishima,Kevin Iselborn,Marlon Nuske,Andreas Dengel +5 more
- 16 Jul 2023
TL;DR: The inclusion of elevation data into the Sen1floods11 dataset is investigated, suggesting the explicit incorporation of physics-based principles, such as the flow of water based on slope, to enhance model accuracy in future research endeavors.
Fusing Digital Elevation Maps with Satellite Imagery for Flood Mapping
Marco Stricker,Takashi Miyamoto,Kevin Iselborn,Marlon Nuske,Andreas Dengel +4 more
- 16 Jul 2023
TL;DR: The main contribution lies in the fusion of Digital Elevation Maps (DEMs) with Satellite data, and the effect of several different combinations of processing methods of DEMs, such as depression filling, deriving slope and curvature or flow metrics.