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      The analysis of visual motion: a comparison of neuronal and psychophysical performance

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      The Journal of Neuroscience
      Society for Neuroscience

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          Abstract

          We compared the ability of psychophysical observers and single cortical neurons to discriminate weak motion signals in a stochastic visual display. All data were obtained from rhesus monkeys trained to perform a direction discrimination task near psychophysical threshold. The conditions for such a comparison were ideal in that both psychophysical and physiological data were obtained in the same animals, on the same sets of trials, and using the same visual display. In addition, the psychophysical task was tailored in each experiment to the physiological properties of the neuron under study; the visual display was matched to each neuron's preference for size, speed, and direction of motion. Under these conditions, the sensitivity of most MT neurons was very similar to the psychophysical sensitivity of the animal observers. In fact, the responses of single neurons typically provided a satisfactory account of both absolute psychophysical threshold and the shape of the psychometric function relating performance to the strength of the motion signal. Thus, psychophysical decisions in our task are likely to be based upon a relatively small number of neural signals. These signals could be carried by a small number of neurons if the responses of the pooled neurons are statistically independent. Alternatively, the signals may be carried by a much larger pool of neurons if their responses are partially intercorrelated.

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          Author and article information

          Journal
          J Neurosci
          J. Neurosci
          jneuro
          The Journal of Neuroscience
          Society for Neuroscience
          0270-6474
          1529-2401
          1 December 1992
          : 12
          : 12
          : 4745-4765
          Affiliations
          Department of Neurobiology, Stanford University School of Medicine, California 94305.
          Article
          PMC6575768 PMC6575768 6575768 jneuro;12/12/4745
          10.1523/JNEUROSCI.12-12-04745.1992
          6575768
          1464765
          e41ccca4-80f9-4366-ab3c-656752281b62
          © 1992 by Society for Neuroscience
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          12/12/4745
          4745

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