Quiet standing: The Single Inverted Pendulum model is not so bad after all
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[1] Martina Mancini,et al. Coherence analysis of trunk and leg acceleration reveals altered postural sway strategy during standing in persons with multiple sclerosis. , 2018, Human movement science.
[2] N. Pérez-Fernández,et al. The limits of stability in patients with unilateral vestibulopathy , 2017, Acta oto-laryngologica.
[3] H. Yi,et al. Relationship between postural instability and subcortical volume loss in Alzheimer's disease , 2017, Medicine.
[4] J. Hebert,et al. Reliability and Validity of the Computerized Dynamic Posturography Sensory Organization Test in People with Multiple Sclerosis. , 2017, International journal of MS care.
[5] Z. Dvir,et al. Postural stability in patients with different types of head and neck trauma in comparison to healthy subjects , 2016, Brain injury.
[6] Thad W. Buster,et al. Computerized dynamic posturography detects balance deficits in individuals with a history of chronic severe traumatic brain injury , 2016, Brain injury.
[7] Tamás Insperger,et al. Control at stability's edge minimizes energetic costs: expert stick balancing , 2016, Journal of The Royal Society Interface.
[8] R. Bittar,et al. Glucose metabolism disorders and vestibular manifestations: evaluation through computerized dynamic posturography , 2015, Brazilian journal of otorhinolaryngology.
[9] Hiroki Morimoto,et al. Non-actively controlled double-inverted-pendulum-like dynamics can minimize center of mass acceleration during human quiet standing , 2015, 2015 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[10] Maura Casadio,et al. Revisiting the Body-Schema Concept in the Context of Whole-Body Postural-Focal Dynamics , 2015, Front. Hum. Neurosci..
[11] Arne Ernst,et al. Is posturography able to identify fallers in patients with Parkinson's disease? , 2014, Gait & posture.
[12] Kimitaka Nakazawa,et al. Anti-phase action between the angular accelerations of trunk and leg is reduced in the elderly. , 2014, Gait & posture.
[13] Kimitaka Nakazawa,et al. Interjoint Dynamic Interaction during Constrained Human Quiet Standing Examined by Induced Acceleration Analysis Torque at One Joint Induces Angular Acceleration Not Only at Its Corresponding Dof but Also at Remote Joints. Such Dynamic Interaction among Joints Has , 2022 .
[14] Jared R. Fletcher,et al. Energy cost of running and Achilles tendon stiffness in man and woman trained runners , 2013, Physiological reports.
[15] Yoshiyuki Asai,et al. Learning an Intermittent Control Strategy for Postural Balancing Using an EMG-Based Human-Computer Interface , 2013, PloS one.
[16] Yasuyuki Suzuki,et al. Intermittent control with ankle, hip, and mixed strategies during quiet standing: a theoretical proposal based on a double inverted pendulum model. , 2012, Journal of theoretical biology.
[17] V S Gurfinkel,et al. Foot anatomy specialization for postural sensation and control. , 2012, Journal of neurophysiology.
[18] Yoshiyuki Asai,et al. Correction: A Model of Postural Control in Quiet Standing: Robust Compensation of Delay-Induced Instability Using Intermittent Activation of Feedback Control , 2009, PLoS ONE.
[19] Peter J Gawthrop,et al. Visual control of stable and unstable loads: what is the feedback delay and extent of linear time‐invariant control? , 2009, The Journal of physiology.
[20] Motoki Kouzaki,et al. Effect of the hip motion on the body kinematics in the sagittal plane during human quiet standing , 2009, Neuroscience Letters.
[21] B. Bloem,et al. The clinical utility of posturography , 2008, Clinical Neurophysiology.
[22] Taishin Nomura,et al. Bounded stability of the quiet standing posture: an intermittent control model. , 2008, Human movement science.
[23] Aftab E Patla,et al. The control of upright stance in young, elderly and persons with Parkinson's disease. , 2008, Gait & posture.
[24] T. Kiemel,et al. Coherence analysis of muscle activity during quiet stance , 2008, Experimental Brain Research.
[25] G. Opala,et al. Assessment of postural instability in patients with Parkinson’s disease , 2007, Experimental Brain Research.
[26] Tim Kiemel,et al. The influence of sensory information on two-component coordination during quiet stance. , 2007, Gait & posture.
[27] J. Allum,et al. Postural responses to multidirectional stance perturbations in cerebellar ataxia , 2006, Experimental Neurology.
[28] Herman van der Kooij,et al. Disentangling the contribution of the paretic and non-paretic ankle to balance control in stroke patients , 2006, Experimental Neurology.
[29] P. Morasso,et al. Direct measurement of ankle stiffness during quiet standing: implications for control modelling and clinical application. , 2005, Gait & posture.
[30] Tim Kiemel,et al. A unified view of quiet and perturbed stance: simultaneous co-existing excitable modes , 2005, Neuroscience Letters.
[31] P. Morasso,et al. The sway-density curve and the underlying postural stabilization process. , 2004, Motor control.
[32] William H Gage,et al. Kinematic and kinetic validity of the inverted pendulum model in quiet standing. , 2004, Gait & posture.
[33] P. Hodges,et al. Hip Strategy for Balance Control in Quiet Standing Is Reduced in People With Low Back Pain , 2004, Spine.
[34] F. Horak,et al. Postural strategies associated with somatosensory and vestibular loss , 1990, Experimental Brain Research.
[35] E. Bizzi,et al. Arm trajectory formation in monkeys , 2004, Experimental Brain Research.
[36] J. Collins,et al. Open-loop and closed-loop control of posture: A random-walk analysis of center-of-pressure trajectories , 2004, Experimental Brain Research.
[37] Motoki Kouzaki,et al. Importance of body sway velocity information in controlling ankle extensor activities during quiet stance. , 2003, Journal of neurophysiology.
[38] Leonard A. Rozendaal,et al. Stability of bipedal stance: the contribution of cocontraction and spindle feedback , 2003, Biological Cybernetics.
[39] Ian David Loram,et al. Direct measurement of human ankle stiffness during quiet standing: the intrinsic mechanical stiffness is insufficient for stability , 2002, The Journal of physiology.
[40] Tim Kiemel,et al. Multisensory fusion and the stochastic structure of postural sway , 2002, Biological Cybernetics.
[41] P. Morasso,et al. Ankle muscle stiffness alone cannot stabilize balance during quiet standing. , 2002, Journal of neurophysiology.
[42] R. Peterka. Sensorimotor integration in human postural control. , 2002, Journal of neurophysiology.
[43] Thomas Mergner,et al. Sensory contributions to the control of stance: a posture control model. , 2002, Advances in experimental medicine and biology.
[44] K. Black,et al. Using posturography to detect unsteadiness in 13 patients with peripheral neuropathy: a pilot study. , 2002, Neurology & clinical neurophysiology : NCN.
[45] F Honegger,et al. Differential diagnosis of proprioceptive and vestibular deficits using dynamic support-surface posturography. , 2001, Gait & posture.
[46] Frans C. T. van der Helm,et al. An adaptive model of sensory integration in a dynamic environment applied to human stance control , 2001, Biological Cybernetics.
[47] Kimitaka Nakazawa,et al. Reciprocal angular acceleration of the ankle and hip joints during quiet standing in humans , 2001, Experimental Brain Research.
[48] J. Jankovic,et al. Computerized posturography analysis of progressive supranuclear palsy: a case-control comparison with Parkinson's disease and healthy controls. , 2000, Archives of neurology.
[49] Robert J. Peterka,et al. Postural control model interpretation of stabilogram diffusion analysis , 2000, Biological Cybernetics.
[50] P. Morasso,et al. Can muscle stiffness alone stabilize upright standing? , 1999, Journal of neurophysiology.
[51] G. Paludetti,et al. The use of dynamic posturography to detect neurosensorial disorder in IDDM without clinical neuropathy. , 1999, Journal of diabetes and its complications.
[52] F B Horak,et al. Sensory organization for balance: specific deficits in Alzheimer's but not in Parkinson's disease. , 1999, The journals of gerontology. Series A, Biological sciences and medical sciences.
[53] P. Gatev,et al. Feedforward ankle strategy of balance during quiet stance in adults , 1999, The Journal of physiology.
[54] D. Winter,et al. Stiffness control of balance in quiet standing. , 1998, Journal of neurophysiology.
[55] K Beykirch,et al. Static and dynamic posturography in patients with vestibular and cerebellar lesions. , 1998, Archives of neurology.
[56] P. Roland,et al. Vestibular evaluation in patients with early multiple sclerosis. , 1997, The American journal of otology.
[57] A. G. Feldman,et al. The origin and use of positional frames of reference in motor control , 1995, Behavioral and Brain Sciences.
[58] K Laitakari,et al. Does posturography differentiate malingerers from vertiginous patients? , 1995, Journal of vestibular research : equilibrium & orientation.
[59] M Hallett,et al. Biomechanical assessment of quiet standing and changes associated with aging. , 1995, Archives of physical medicine and rehabilitation.
[60] F E Zajac,et al. Human standing posture: multi-joint movement strategies based on biomechanical constraints. , 1993, Progress in brain research.
[61] L Stark,et al. An analysis of the sources of musculoskeletal system impedance. , 1988, Journal of biomechanics.
[62] F. O. Black,et al. Abnormal postural control associated with peripheral vestibular disorders. , 1988, Progress in brain research.
[63] F. Horak,et al. Central programming of postural movements: adaptation to altered support-surface configurations. , 1986, Journal of neurophysiology.
[64] L. Nashner,et al. The organization of human postural movements: A formal basis and experimental synthesis , 1985, Behavioral and Brain Sciences.
[65] H. Diener,et al. Quantification of postural sway in normals and patients with cerebellar diseases. , 1984, Electroencephalography and clinical neurophysiology.
[66] I. Matheson,et al. Reaction of chemical acceptors with singlet oxygen produced by direct laser excitation , 1970 .