Ueyama Y. (2017). Optimal feedback control to describe multiple representations of primary motor cortex neurons. Journal of computational neuroscience. 43 [PubMed]

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References and models cited by this paper

Ajemian R et al. (2008). Assessing the function of motor cortex: single-neuron models of how neural response is modulated by limb biomechanics. Neuron. 58 [PubMed]

Braun DA, Nagengast AJ, Wolpert DM. (2011). Risk-sensitivity in sensorimotor control. Frontiers in human neuroscience. 5 [PubMed]

Cheng EJ, Scott SH. (2000). Morphometry of Macaca mulatta forelimb. I. Shoulder and elbow muscles and segment inertial parameters. Journal of morphology. 245 [PubMed]

Churchland MM et al. (2012). Neural population dynamics during reaching. Nature. 487 [PubMed]

Clamann HP. (1969). Statistical analysis of motor unit firing patterns in a human skeletal muscle. Biophysical journal. 9 [PubMed]

Desmurget M et al. (1999). Role of the posterior parietal cortex in updating reaching movements to a visual target. Nature neuroscience. 2 [PubMed]

Dimitriou M, Wolpert DM, Franklin DW. (2013). The temporal evolution of feedback gains rapidly update to task demands. The Journal of neuroscience : the official journal of the Society for Neuroscience. 33 [PubMed]

Doyle JC, Csete M. (2011). Architecture, constraints, and behavior. Proceedings of the National Academy of Sciences of the United States of America. 108 Suppl 3 [PubMed]

Franklin DW et al. (2008). CNS learns stable, accurate, and efficient movements using a simple algorithm. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Georgopoulos AP, Ashe J, Smyrnis N, Taira M. (1992). The motor cortex and the coding of force. Science (New York, N.Y.). 256 [PubMed]

Georgopoulos AP, Kalaska JF, Caminiti R, Massey JT. (1982). On the relations between the direction of two-dimensional arm movements and cell discharge in primate motor cortex. The Journal of neuroscience : the official journal of the Society for Neuroscience. 2 [PubMed]

Georgopoulos AP, Kettner RE, Schwartz AB. (1988). Primate motor cortex and free arm movements to visual targets in three-dimensional space. II. Coding of the direction of movement by a neuronal population. The Journal of neuroscience : the official journal of the Society for Neuroscience. 8 [PubMed]

Graham KM, Scott SH. (2003). Morphometry of Macaca mulatta forelimb. III. Moment arm of shoulder and elbow muscles. Journal of morphology. 255 [PubMed]

Griffin DM, Hudson HM, Belhaj-Saïf A, McKiernan BJ, Cheney PD. (2008). Do corticomotoneuronal cells predict target muscle EMG activity? Journal of neurophysiology. 99 [PubMed]

Harris CM, Wolpert DM. (1998). Signal-dependent noise determines motor planning. Nature. 394 [PubMed]

Herter TM, Kurtzer I, Cabel DW, Haunts KA, Scott SH. (2007). Characterization of torque-related activity in primary motor cortex during a multijoint postural task. Journal of neurophysiology. 97 [PubMed]

Hirashima M, Nozaki D. (2012). Learning with slight forgetting optimizes sensorimotor transformation in redundant motor systems. PLoS computational biology. 8 [PubMed]

Izawa J, Rane T, Donchin O, Shadmehr R. (2008). Motor adaptation as a process of reoptimization. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Izawa J, Shadmehr R. (2008). On-line processing of uncertain information in visuomotor control. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Jones KE, Hamilton AF, Wolpert DM. (2002). Sources of signal-dependent noise during isometric force production. Journal of neurophysiology. 88 [PubMed]

Kakei S, Hoffman DS, Strick PL. (1999). Muscle and movement representations in the primary motor cortex. Science (New York, N.Y.). 285 [PubMed]

Kalaska JF, Sergio LE, Hamel-Paquet C. (2005). Motor cortex neural correlates of output kinematics and kinetics during isometric-force and arm-reaching tasks Journal of Neurophysiology. 94(4)

Kurtzer I, Pruszynski JA, Herter TM, Scott SH. (2006). Primate upper limb muscles exhibit activity patterns that differ from their anatomical action during a postural task. Journal of neurophysiology. 95 [PubMed]

Lillicrap TP, Scott SH. (2013). Preference distributions of primary motor cortex neurons reflect control solutions optimized for limb biomechanics. Neuron. 77 [PubMed]

Liu D, Todorov E. (2007). Evidence for the flexible sensorimotor strategies predicted by optimal feedback control. The Journal of neuroscience : the official journal of the Society for Neuroscience. 27 [PubMed]

Lockhart DB, Ting LH. (2007). Optimal sensorimotor transformations for balance. Nature neuroscience. 10 [PubMed]

Maciejowski JM. (2001). Predictive control with constraints.

Matthews PB. (1991). The human stretch reflex and the motor cortex. Trends in neurosciences. 14 [PubMed]

Matthews PB. (1996). Relationship of firing intervals of human motor units to the trajectory of post-spike after-hyperpolarization and synaptic noise. The Journal of physiology. 492 ( Pt 2) [PubMed]

McKiernan BJ, Marcario JK, Karrer JH, Cheney PD. (1998). Corticomotoneuronal postspike effects in shoulder, elbow, wrist, digit, and intrinsic hand muscles during a reach and prehension task. Journal of neurophysiology. 80 [PubMed]

Mistry M, Theodorou E, Schaal S, Kawato M. (2013). Optimal control of reaching includes kinematic constraints. Journal of neurophysiology. 110 [PubMed]

Moran DW, Schwartz AB. (1999). Motor cortical representation of speed and direction during reaching. Journal of neurophysiology. 82 [PubMed]

Morari M, Bemporad A, Dua V, Pistikopoulos EN. (2002). The explicit linear quadratic regulator for constrained systems Automatica. 38(1)

Morrow MM, Miller LE. (2003). Prediction of muscle activity by populations of sequentially recorded primary motor cortex neurons. Journal of neurophysiology. 89 [PubMed]

Mulliken GH, Musallam S, Andersen RA. (2008). Decoding trajectories from posterior parietal cortex ensembles. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Nagengast AJ, Braun DA, Wolpert DM. (2009). Optimal control predicts human performance on objects with internal degrees of freedom. PLoS computational biology. 5 [PubMed]

Nagengast AJ, Braun DA, Wolpert DM. (2010). Risk-sensitive optimal feedback control accounts for sensorimotor behavior under uncertainty. PLoS computational biology. 6 [PubMed]

Nagengast AJ, Braun DA, Wolpert DM. (2011). Risk-sensitivity and the mean-variance trade-off: decision making in sensorimotor control. Proceedings. Biological sciences. 278 [PubMed]

Nagengast AJ, Braun DA, Wolpert DM. (2011). Risk sensitivity in a motor task with speed-accuracy trade-off. Journal of neurophysiology. 105 [PubMed]

Nozaki D, Nakazawa K, Akai M. (2005). Muscle activity determined by cosine tuning with a nontrivial preferred direction during isometric force exertion by lower limb. Journal of neurophysiology. 93 [PubMed]

Osu R et al. (2004). Optimal impedance control for task achievement in the presence of signal-dependent noise. Journal of neurophysiology. 92 [PubMed]

Pruszynski JA et al. (2011). Primary motor cortex underlies multi-joint integration for fast feedback control. Nature. 478 [PubMed]

Rathelot JA, Strick PL. (2009). Subdivisions of primary motor cortex based on cortico-motoneuronal cells. Proceedings of the National Academy of Sciences of the United States of America. 106 [PubMed]

Sakaguchi Y, Miyashita E. (2016). State variables of the arm may be encoded by single neuron activity in the monkey motor cortex IEEE Transactions on Industrial Electronics. 63(3)

Scott SH. (2004). Optimal feedback control and the neural basis of volitional motor control. Nature reviews. Neuroscience. 5 [PubMed]

Scott SH, Gribble PL, Graham KM, Cabel DW. (2001). Dissociation between hand motion and population vectors from neural activity in motor cortex. Nature. 413 [PubMed]

Shadmehr R, Krakauer JW. (2008). A computational neuroanatomy for motor control. Experimental brain research. 185 [PubMed]

Tanaka H, Sejnowski TJ. (2013). Computing reaching dynamics in motor cortex with Cartesian spatial coordinates. Journal of neurophysiology. 109 [PubMed]

Todorov E. (2000). Direct cortical control of muscle activation in voluntary arm movements: a model. Nature neuroscience. 3 [PubMed]

Todorov E. (2002). Cosine tuning minimizes motor errors. Neural computation. 14 [PubMed]

Todorov E. (2004). Optimality principles in sensorimotor control. Nature neuroscience. 7 [PubMed]

Todorov E. (2005). Stochastic optimal control and estimation methods adapted to the noise characteristics of the sensorimotor system. Neural computation. 17 [PubMed]

Todorov E, Jordan MI. (2002). Optimal feedback control as a theory of motor coordination. Nature neuroscience. 5 [PubMed]

Trainin E, Meir R, Karniel A. (2007). Explaining patterns of neural activity in the primary motor cortex using spinal cord and limb biomechanics models. Journal of neurophysiology. 97 [PubMed]

Ueyama Y. (2013). Signal-dependent noise induces muscle co-contraction to achieve required movement accuracy: A simulation study with an optimal control Current Bioinformatics. 8(1)

Ueyama Y. (2014). Mini-max feedback control as a computational theory of sensorimotor control in the presence of structural uncertainty. Frontiers in computational neuroscience. 8 [PubMed]

Ueyama Y. (2014). Feedback gain indicates the preferred direction in optimal feedback control theory I.E. 13th International Workshop on Advanced Motion Control (AMC), 14–16 March 2014.

Ueyama Y, Miyashita E. (2014). Optimal feedback control for predicting dynamic stiffness during arm movement IEEE Transactions on Industrial Electronics. 61(2)

Winter DA. (2009). Biomechanics and motor control of human movement.

Wolpert DM, Ghahramani Z, Jordan MI. (1995). An internal model for sensorimotor integration. Science (New York, N.Y.). 269 [PubMed]

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