Fish are able to sense water flow velocities relative to their body with their mechanoreceptive lateral line organ. This organ consists of an array of flow detectors distributed along the fish body. Using the excitation of these individual detectors, fish can determine the location of nearby moving objects. Inspired by this sensory modality, it is shown here how neural networks can be used to extract an object's location from simulated excitation patterns, as can be measured along arrays of stationary artificial flow velocity sensors. The applicability, performance and robustness with respect to input noise of different neural network architectures are compared. When trained and tested under high signal to noise conditions (46 dB), the Extr...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
Goulet J, van Hemmen JL, Jung SN, Chagnaud BP, Scholze B, Engelmann J. Temporal precision and reliab...
The lateral line organ of fish has inspired engineers to develop flow sensor arrays—dubbed artificia...
Fish are able to sense water flow velocities relative to their body with their mechanoreceptive late...
The lateral line is a mechanosensory organ found in fish and amphibians that allows them to sense an...
Fish and amphibians can sense their hydrodynamic environment via fluid flow sensing organs, called l...
Artificial lateral lines (ALL) are used to detect the movement and locations of sources underwater, ...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
This research focuses on the signal processing required for a sensory system that can simultaneously...
One of the main issues in Computer Vision is to extract the movement of one or several points or obj...
The lateral-line system that has evolved in many aquatic animals enables them to navigate murky flui...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
Goulet J, van Hemmen JL, Jung SN, Chagnaud BP, Scholze B, Engelmann J. Temporal precision and reliab...
The lateral line organ of fish has inspired engineers to develop flow sensor arrays—dubbed artificia...
Fish are able to sense water flow velocities relative to their body with their mechanoreceptive late...
The lateral line is a mechanosensory organ found in fish and amphibians that allows them to sense an...
Fish and amphibians can sense their hydrodynamic environment via fluid flow sensing organs, called l...
Artificial lateral lines (ALL) are used to detect the movement and locations of sources underwater, ...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
This research focuses on the signal processing required for a sensory system that can simultaneously...
One of the main issues in Computer Vision is to extract the movement of one or several points or obj...
The lateral-line system that has evolved in many aquatic animals enables them to navigate murky flui...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
Goulet J, van Hemmen JL, Jung SN, Chagnaud BP, Scholze B, Engelmann J. Temporal precision and reliab...
The lateral line organ of fish has inspired engineers to develop flow sensor arrays—dubbed artificia...