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Because we began with the specific hypothesis that perception of coherence would be differentiated within the mOFC (stronger activation for coherent perception), the significance levels are reported as a one-tail test for this ROI; for all other ROIs significance levels are evaluated and reported as two-tail tests.
These parts are responsible for integrating touch and vision into a coherent perception.
How these widely spaced neuronal responses are "bound" together into the coherent perception of a rolling apple is, as yet, unknown.Some neuroscientists, notably Wolf Singer, at the Max Planck Institute in Frankfurt, think the brain achieves perceptual binding by combining the activities of disparate groups of nerve cells into one synchronised, wavelike processing unit.
His research focuses on sensory integration in rats, attempting to understand how neural activity in different parts of the brain is combined or coordinated to generate a single coherent perception, by recording electrical impulses from many neurons at once while the rats perform behavioral tasks that depend on correctly sensing particular stimuli.
Several major cognitive neuroscience models have posited that focal spatial attention is required to integrate different features of an object to form a coherent perception of it within a complex visual scene.
It assembles simple linear segments, each aligned in a specific direction, obtaining outlines that define the borders of an image, and builds up coherent perception of the shape of an object.
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At present there exists a large gap in size, performance, adaptability and robustness between natural and artificial information processors for performing coherent perception-action tasks under real-time constraints.
The brain's amazing capacity to filter sensory information is critical to forming coherent perceptions of the world.
The road from multineuronal activity patterns to coherent perceptions of dynamic visual scenes probably involves also processes related to visual memory such that timescales operant for stimulus representation (<100 ms) could be bridged with behaviorally relevant timescales (>500 ms).
Volz and von Cramon [8] also reported that activity in the ventral-temporal-occipital (VTO) regions differentiated between coherent and non-coherent perception, but they did not find functional correlation between the VTO and mOFC.
Similarly, we also found that activity in the left inferior temporal lobe differentiated coherent from non-coherent perception (see Table 2 and joint-time-frequency results) and that activity in this region does not correlate with mOFC activation.
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