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Probabilistic Reasoning and Decision Making in Sensory-Motor Systems [electronic resource] /

Contributor(s): Material type: TextTextSeries: Springer Tracts in Advanced Robotics ; 46Publisher: Berlin, Heidelberg : Springer Berlin Heidelberg, 2008Description: XIX, 378 p. online resourceContent type:
  • text
Media type:
  • computer
Carrier type:
  • online resource
ISBN:
  • 9783540790075
Subject(s): Additional physical formats: Printed edition:: No titleDDC classification:
  • 629.892 23
LOC classification:
  • TJ210.2-211.495
  • T59.5
Online resources:
Contents:
Probability as an Alternative to Logic for Rational Sensory–Motor Reasoning and Decision -- Basic Concepts of Bayesian Programming -- Robotics -- The CyCab: Bayesian Navigation on Sensory–Motor Trajectories -- The Bayesian Occupation Filter -- Topological SLAM -- Probabilistic Contextual Situation Analysis -- Bayesian Maps: Probabilistic and Hierarchical Models for Mobile Robot Navigation -- Bayesian Approach to Action Selection and Attention Focusing -- Industrial Applications -- BCAD: A Bayesian CAD System for Geometric Problems Specification and Resolution -- 3D Human Hip Volume Reconstruction with Incomplete Multimodal Medical Images -- Playing to Train Your Video Game Avatar -- Cognitive Modelling -- Bayesian Modelling of Visuo-Vestibular Interactions -- Bayesian Modelling of Perception of Structure from Motion -- Building a Talking Baby Robot: A Contribution to the Study of Speech Acquisition and Evolution.
In: Springer eBooksSummary: Probabilistic Reasoning and Decision Making in Sensory-Motor Systems by Pierre Bessiere, Christian Laugier and Roland Siegwart provides a unique collection of a sizable segment of the cognitive systems research community in Europe. It reports on contributions from leading academic institutions brought together within the European projects Bayesian Inspired Brain and Artifact (BIBA) and Bayesian Approach to Cognitive Systems (BACS). This fourteen-chapter volume covers important research along two main lines: new probabilistic models and algorithms for perception and action, new probabilistic methodology and techniques for artefact conception and development. The work addresses key issues concerned with Bayesian programming, navigation, filtering, modelling and mapping, with applications in a number of different contexts.
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Holdings
Item type Current library Call number Status Date due Barcode Item holds
E books E books PK Kelkar Library, IIT Kanpur Available EBK899
Total holds: 0

Probability as an Alternative to Logic for Rational Sensory–Motor Reasoning and Decision -- Basic Concepts of Bayesian Programming -- Robotics -- The CyCab: Bayesian Navigation on Sensory–Motor Trajectories -- The Bayesian Occupation Filter -- Topological SLAM -- Probabilistic Contextual Situation Analysis -- Bayesian Maps: Probabilistic and Hierarchical Models for Mobile Robot Navigation -- Bayesian Approach to Action Selection and Attention Focusing -- Industrial Applications -- BCAD: A Bayesian CAD System for Geometric Problems Specification and Resolution -- 3D Human Hip Volume Reconstruction with Incomplete Multimodal Medical Images -- Playing to Train Your Video Game Avatar -- Cognitive Modelling -- Bayesian Modelling of Visuo-Vestibular Interactions -- Bayesian Modelling of Perception of Structure from Motion -- Building a Talking Baby Robot: A Contribution to the Study of Speech Acquisition and Evolution.

Probabilistic Reasoning and Decision Making in Sensory-Motor Systems by Pierre Bessiere, Christian Laugier and Roland Siegwart provides a unique collection of a sizable segment of the cognitive systems research community in Europe. It reports on contributions from leading academic institutions brought together within the European projects Bayesian Inspired Brain and Artifact (BIBA) and Bayesian Approach to Cognitive Systems (BACS). This fourteen-chapter volume covers important research along two main lines: new probabilistic models and algorithms for perception and action, new probabilistic methodology and techniques for artefact conception and development. The work addresses key issues concerned with Bayesian programming, navigation, filtering, modelling and mapping, with applications in a number of different contexts.

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