The 'Arm Force Field' method to predict manual arm strength based on only hand location and force direction.
暂无分享,去创建一个
[1] S M McGill,et al. Dynamic shoulder flexion strength: for use in occupational risk analysis and clinical assessment. , 1994, Clinical biomechanics.
[2] Clark R Dickerson,et al. The roles of whole body balance, shoe-floor friction and joint strength during maximum exertions: searching for the "weakest link". , 2013, Journal of applied biomechanics.
[3] G. Stucki,et al. Maximal Isometric Muscle Strength: Normative Values and Gender-Specific Relation to Age , 2000, Clinical Rheumatology.
[4] Jim Chiang,et al. Retooling Jack’s Static Strength Prediction Tool , 2006 .
[5] T. Harbo,et al. Maximal isokinetic and isometric muscle strength of major muscle groups related to age, body mass, height, and sex in 178 healthy subjects , 2011, European Journal of Applied Physiology.
[6] R. Palmer,et al. Introduction to the theory of neural computation , 1994, The advanced book program.
[7] S H Snook,et al. The design of manual handling tasks: revised tables of maximum acceptable weights and forces. , 1991, Ergonomics.
[8] J. Adamson. "The weakest link". , 1981, The Journal of plastic and reconstructive surgical nursing : official organ of the American Society of Plastic and Reconstructive Surgical Nurses.
[9] Clark R. Dickerson,et al. Shoulder strength of females while sitting and standing as a function of hand location and force direction. , 2009, Applied ergonomics.
[10] H. J. Coury,et al. Measurements of shoulder adduction strength in different postures , 1998 .
[11] Maury Nussbaum,et al. Measurement and prediction of single and multi-digit finger strength , 2003, Ergonomics.
[12] Robert Bridger. Design of manual handling tasks , 2008 .
[13] Anil Mital,et al. Development of non-linear polynomials in identifying human isometric strength behaviour , 1984 .
[14] Nicholas J La Delfa,et al. Predicting manual arm strength: A direct comparison between artificial neural network and multiple regression approaches. , 2016, Journal of biomechanics.
[15] Dave Winkler,et al. Bayesian Regularization of Neural Networks , 2009, Artificial Neural Networks.
[16] Robert J. Marley,et al. Isokinetic strength characteristics in wrist flexion and extension , 2000 .
[17] Don B Chaffin,et al. Wrist strength is dependent on simultaneous power grip intensity , 2008, Ergonomics.
[18] D. Chaffin,et al. Digital human modeling for computer-aided ergonomics , 2005 .
[19] Nazaruddin,et al. Grip strength prediction for Malaysian industrial workers using artificial neural networks , 2005 .
[20] E. Juratovac,et al. Age-Related Changes , 2017 .
[21] LW O'Sullivan,et al. Forearm torque strengths and discomfort profiles in pronation and supination , 2005, Ergonomics.
[22] Nicholas J La Delfa,et al. Testing the assumption in ergonomics software that overall shoulder strength can be accurately calculated by treating orthopedic axes as independent. , 2016, Journal of electromyography and kinesiology : official journal of the International Society of Electrophysiological Kinesiology.
[23] Don B. Chaffin,et al. Development of Computerized Human Static Strength Simulation Model for Job Design , 1997 .
[24] J. Potvin,et al. Maximum forces and joint stability implications during in-line arm pushes , 2015 .
[25] Beverley Norris,et al. Filling 'gaps' in strength data for design. , 2003, Applied ergonomics.
[26] Jim R. Potvin,et al. The interacting effects of forearm rotation and exertion direction on male and female wrist strength , 2015 .
[27] Philippe Gorce,et al. Toward isometric force capabilities evaluation by using a musculoskeletal model: Comparison with direct force measurement. , 2015, Journal of biomechanics.
[28] Biman Das,et al. Isometric Pull-Push Strengths in Workspace: 1. Strength Profiles , 2004, International journal of occupational safety and ergonomics : JOSE.
[29] R E Hughes,et al. Age-Related Changes in Normal Isometric Shoulder Strength , 1999, The American journal of sports medicine.
[30] Cheng-Lung Lee,et al. Formulating grip strength and key pinch strength prediction models for Taiwanese: a comparison between stepwise regression and artificial neural networks , 2015, J. Ambient Intell. Humaniz. Comput..
[31] M. M. Ayoub,et al. Modeling of Isometric Strength and Lifting Capacity , 1980 .
[32] Brian J. Taylor,et al. Verification and validation of neural networks: a sampling of research in progress , 2003, SPIE Defense + Commercial Sensing.
[33] Nicholas J La Delfa,et al. Equations to predict female manual arm strength based on hand location relative to the shoulder , 2014, Ergonomics.
[34] Imre Horváth,et al. Using artificial neural networks for human body posture prediction , 2010 .
[35] Terrence John Stobbe. The development of a practical strength testing program for industry , 1982 .
[36] Janet M. Twomey,et al. Predicting peak pinch strength: Artificial neural networks vs. regression , 1996 .
[37] H. Bubb,et al. Isometric elbow flexion and extension joint torque measurements considering biomechanical aspects , 2011 .
[38] Bogdan Pietraszewski,et al. Predictive torque equations for joints of the extremities , 2002 .
[39] Allison Stephens,et al. Maximal acceptable forces for manual insertions using a pulp pinch, oblique grasp and finger press , 2006 .
[40] Nicholas J La Delfa,et al. Multidirectional manual arm strength and its relationship with resultant shoulder moment and arm posture , 2016, Ergonomics.
[41] M Parnianpour,et al. Relative performances of artificial neural network and regression mapping tools in evaluation of spinal loads and muscle forces during static lifting. , 2013, Journal of biomechanics.
[42] Don B. Chaffin. Human Motion Simulation for Vehicle and Workplace Design , 2007 .
[43] D. Roman-Liu,et al. Upper limb strength in relation to upper limb posture , 2005 .
[44] Kurt T. Hegmann,et al. Maximum one-handed shoulder strength for overhead work as a function of shoulder posture in females , 2005 .
[45] Jim R. Potvin,et al. Predicting Maximum Acceptable Efforts for Repetitive Tasks , 2012, Hum. Factors.
[46] S. Snook. The design of manual handling tasks. , 1978, Ergonomics.
[47] A Garg,et al. Revised NIOSH equation for the design and evaluation of manual lifting tasks. , 1993, Ergonomics.
[48] Jim R Potvin,et al. Wrist rotations about one or two axes affect maximum wrist strength. , 2016, Applied ergonomics.
[49] Laura L. Pullum,et al. Verification and Validation of Neural Networks - Guidance , 2007 .
[50] Mark S. Redfern,et al. A predictive model for slip resistance using artificial neural networks , 1995 .
[51] Amy Y. Chow,et al. Determinants and magnitudes of manual force strengths and joint moments during two-handed standing maximal horizontal pushing and pulling , 2016, Ergonomics.