Literature DB >> 19403361

Neural decoding of finger movements using Skellam-based maximum-likelihood decoding.

Hyun-Chool Shin1, Vikram Aggarwal, Soumyadipta Acharya, Marc H Schieber, Nitish V Thakor.   

Abstract

We present an optimal method for decoding the activity of primary motor cortex (M1) neurons in a nonhuman primate during single finger movements. The method is based on the maximum-likelihood (ML) inference, which assuming the probability of finger movements is uniform, is equivalent to the maximum a posteriori (MAP) inference. Each neuron's activation is first quantified by the change in firing rate before and after finger movement. We then estimate the probability density function of this activation given finger movement, i.e., Pr(neuronal activation (x) | finger movements (m)). Based on the ML criterion, we choose finger movements to maximize Pr(x |m). Experimentally, data were collected from 115 task-related neurons in M1 as the monkey performed flexion and extension of each finger and the wrist (12 movements). With as few as 20--25 randomly selected neurons, the proposed method decoded single-finger movements with 99% accuracy. Since the training and decoding procedures in the proposed method are simple and computationally efficient, the method can be extended for real-time neuroprosthetic control of a dexterous hand.

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Year:  2009        PMID: 19403361     DOI: 10.1109/TBME.2009.2020791

Source DB:  PubMed          Journal:  IEEE Trans Biomed Eng        ISSN: 0018-9294            Impact factor:   4.538


  18 in total

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3.  Neuron selection based on deflection coefficient maximization for the neural decoding of dexterous finger movements.

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5.  Neuron Selection by Relative Importance for Neural Decoding of Dexterous Finger Prosthesis Control Application.

Authors:  Hyoung-Nam Kim; Yong-Hee Kim; Hyun-Chool Shin; Vikram Aggarwal; Marc H Schieber; Nitish V Thakor
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10.  Myocardial infarction induces structural and functional remodelling of the intrinsic cardiac nervous system.

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