This thesis describes work aimed at discovering computational processes that could underlie the performance of spatial tasks, both in animals and artificial systems. In the mammalian brain, the hippocampus is believed to play an important role in spatial function but is also often said to be a storage place for general memories. The first section of the thesis describes a model of mammalian spatial function in which the neocortex processes sensory information to build an egocentric map of the environment, and the hippocampus acts as an autoassociative memory which stores and recalls snapshots of neocortical activity, providing the animal with the ability to recall a complete egocentric map from a few observable landmarks. The model was implemented on a mobile robot equipped with a sonar sensor. The addition of a modelled hippocampus to previously developed map-making software allowed the robot to perform a task similar to the Morris water maze. The remainder of the thesis describes two novel methods for map construction from sonar sensory data. The first is a neural-network mapping system inspired by models of visual cortex. In this system, the activity of a cell represents the occupancy of a region of space, and lateral connections between cells enforce prior knowledge about probable map configurations. This method produces good results in comparison to other grid-based mapping systems, but is based on heuristics, rather than mathematical principles, and contains many free parameters. The second is a feature-based mapping system which is derived from Bayes' theorem. It requires an accurate probabilistic model of the robot's sensor, which is derived empirically. The sensor model is used to construct a probability function on the space of all possible maps, and the problem of map construction becomes a search for the most probable map. Global optimisation problems of this size are very difficult, but a "mean-field" approximation allows a tractable solution. Tested with identical sonar data, the new method ...
Spatial function in animals and robots
1999-01-01
Doctoral thesis, UCL (University College London).
Hochschulschrift
Elektronische Ressource
Englisch
DDC: | 629 |
Dynamic Legged Locomotion in Robots and Animals
NTIS | 1995
|CHEMICAL PLUME TRACKING BEHAVIOR IN ANIMALS AND MOBILE ROBOTS
Online Contents | 2008
|The Parallel of Animals: If Animals Have Rights, Should Robots Too? ; 또 다른 인간의 동반자: 동물의 권리를 로봇에게도?
BASE | 2020
|The Parallel of Animals: If Animals Have Rights, Should Robots Too? ; 또 다른 인간의 동반자: 동물의 권리를 로봇에게도?
BASE | 2020
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