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Application of LSSVM and ANFIS for workspace investigation
Details
In ergonomics and occupational biomechanics, an understanding of human posture is significant during manual operation in order to reduce the musculoskeletal disorders (MSDs). Avoidance of unnatural and awkward posture reduces muscle and joint stress and hence evaluates physical fatigue. Thus posture prediction is a method to avoid these inappropriate postures during manual operation. In this paper a kinematic model of human upper extremity is analyzed allowing the movements of all axes of kinematic chain of upper arm within a comfort zone representing the workspace in order to predict human upper arm comfort posture. The diagnosis of posture analysis of the upper extremities from the comfort work zone allows the operator to have a comfort work range within which possible posture can be accepted. Two artificial intelligence methods:Adaptive Neuro Fuzzy Inference System (ANFIS) and Least Square Support Vector Machine (LSSVM) are used to predict upper arm posture. This posture prediction can be described through a standard workspace design considering standard Indian anthropometric data.Results of predicted joint angles & actual joint angles are compared and the errors are evaluated.
Autorentext
O Dr. Pragyan Paramita Mohanty está actualmente associado ao Departamento de Engenharia Mecânica, Veer Surendra Sai University of Technology, Índia. Obteve o seu doutoramento no prestigioso Instituto Nacional de Tecnologia, Rourkela, Índia. A sua área de investigação inclui Advance Manufacturing, Engenharia Industrial, Ergonomia e Energias Renováveis.
Weitere Informationen
- Allgemeine Informationen
- GTIN 09783330349605
- Genre Technology Encyclopedias
- Anzahl Seiten 52
- Herausgeber LAP LAMBERT Academic Publishing
- Größe H220mm x B150mm
- Jahr 2017
- EAN 9783330349605
- Format Kartonierter Einband
- ISBN 978-3-330-34960-5
- Veröffentlichung 15.08.2017
- Titel Application of LSSVM and ANFIS for workspace investigation
- Autor Pragyan Paramita Mohanty
- Sprache Englisch