An array of fluid flow sensors can be used to detect and track underwater objects via the fluid flow field these objects create. The sensed flows combine to a spatio-temporal velocity profile, which can be used to solve the inverse problem; determining the relative position and orientation of a moving source via a trained model. In this study, two training strategies are used: simulated data resulting from continuous motion in a path and from vibratory motion at discrete locations on a grid. Furthermore, we investigate two sensing modalities found in literature: 1D and 2D sensitive flow sensors; all while varying the sensor detection threshold via a noise level. Results show that arrays with 2D sensors outperform those with 1D sensors, espe...
This research focuses on the signal processing required for a sensory system that can simultaneously...
The lateral line is a mechanosensory organ found in fish and amphibians that allows them to sense an...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2011.Cataloge...
An array of fluid flow sensors can be used to detect and track underwater objects via the fluid flow...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
Fish and amphibians can sense their hydrodynamic environment via fluid flow sensing organs, called l...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
Artificial lateral lines are fluid flow sensor arrays, bio-inspired by the fish lateral line organ, ...
The lateral-line system that has evolved in many aquatic animals enables them to navigate murky flui...
Fish are able to sense water flow velocities relative to their body with their mechanoreceptive late...
Most fish have the capability of sensing flows and nearby movements even in dark or murky conditions...
Various marine animals possess the ability to track their preys and navigate dark aquatic environmen...
This research focuses on the signal processing required for a sensory system that can simultaneously...
The lateral line is a mechanosensory organ found in fish and amphibians that allows them to sense an...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2011.Cataloge...
An array of fluid flow sensors can be used to detect and track underwater objects via the fluid flow...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
Fish and amphibians can sense their hydrodynamic environment via fluid flow sensing organs, called l...
This thesis explores the information that is left behind by underwater objects in their wake, how th...
Artificial lateral lines are fluid flow sensor arrays, bio-inspired by the fish lateral line organ, ...
The lateral-line system that has evolved in many aquatic animals enables them to navigate murky flui...
Fish are able to sense water flow velocities relative to their body with their mechanoreceptive late...
Most fish have the capability of sensing flows and nearby movements even in dark or murky conditions...
Various marine animals possess the ability to track their preys and navigate dark aquatic environmen...
This research focuses on the signal processing required for a sensory system that can simultaneously...
The lateral line is a mechanosensory organ found in fish and amphibians that allows them to sense an...
Thesis (S.M.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2011.Cataloge...