Fuzzy Controller Design for Assisted Omni-Directional Treadmill Therapy

One of the defining characteristic of human being is their ability to walk upright. Loss or restriction of such ability whether due to the accident, spine problem, stroke or other neurological injuries can cause tremendous stress on the patients and hence will contribute negatively to their quality of life. Modern research shows that physical exercise is very important for maintaining physical fitness and adopting a healthier life style. In modern days treadmill is widely used for physical exercises and training which enables the user to set up an exercise regime that can be adhered to irrespective of the weather conditions. Among the users of treadmills today are medical facilities such as hospitals, rehabilitation centres, medical and physiotherapy clinics etc. The process of assisted training or doing rehabilitation exercise through treadmill is referred to as treadmill therapy. A modern treadmill is an automated machine having built in functions and predefined features. Most of the treadmills used today are one dimensional and user can only walk in one direction. This paper presents the idea of using omnidirectional treadmills which will be more appealing to the patients as they can walk in any direction, hence encouraging them to do exercises more frequently. This paper proposes a fuzzy control design and possible implementation strategy to assist patients in treadmill therapy. By intelligently controlling the safety belt attached to the treadmill user, one can help them steering left, right or in any direction. The use of intelligent treadmill therapy can help patients to improve their walking ability without being continuously supervised by the specialists. The patients can walk freely within a limited space and the support system will provide continuous evaluation of their position and can adjust the control parameters of treadmill accordingly to provide best possible assistance.

[1]  E. Heikkinen,et al.  Difficulties in mobility among elderly people and their association with socioeconomic factors, dwelling environment and use of services , 1995, Aging.

[2]  D. Joffe,et al.  Treadmill ambulation with partial body weight support for the treatment of low back and leg pain. , 2002, The Journal of orthopaedic and sports physical therapy.

[3]  Hiroo Iwata,et al.  Walking about virtual environments on an infinite floor , 1999, Proceedings IEEE Virtual Reality (Cat. No. 99CB36316).

[4]  K. Palmer,et al.  Back pain in Britain: comparison of two prevalence surveys at an interval of 10 years , 2000, BMJ : British Medical Journal.

[5]  D. Keating-Wilkes,et al.  THE COSTS OF ACCIDENTS AT WORK , 1999 .

[6]  B Vällfors,et al.  Acute, subacute and chronic low back pain: clinical symptoms, absenteeism and working environment. , 1985, Scandinavian journal of rehabilitation medicine. Supplement.

[7]  G. Andersson,et al.  The epidemiology of spinal disorders , 1997 .

[8]  P. Jacobs,et al.  Comparison of training methods to improve walking in persons with chronic spinal cord injury: a randomized clinical trial , 2011, The journal of spinal cord medicine.

[9]  Ingo Borggraefe,et al.  Safety of robotic-assisted treadmill therapy in children and adolescents with gait impairment: A bi-centre survey , 2010, Developmental neurorehabilitation.

[10]  Bruce H Dobkin,et al.  Body-weight-supported treadmill rehabilitation after stroke. , 2011, The New England journal of medicine.

[11]  L. Zadeh,et al.  An Introduction to Fuzzy Logic Applications in Intelligent Systems , 1992 .

[12]  W. E. Hoogendoorn,et al.  Systematic Review of Psychosocial Factors at Work and Private Life as Risk Factors for Back Pain , 2000, Spine.

[13]  A. Gray,et al.  The economic burden of back pain in the UK , 1999, Pain.

[14]  Kevin Morgan,et al.  In the UK… , 1991 .