Literature DB >> 16271872

Mechanisms for allocating auditory attention: an auditory saliency map.

Christoph Kayser1, Christopher I Petkov, Michael Lippert, Nikos K Logothetis.   

Abstract

Our nervous system is confronted with a barrage of sensory stimuli, but neural resources are limited and not all stimuli can be processed to the same extent. Mechanisms exist to bias attention toward the particularly salient events, thereby providing a weighted representation of our environment. Our understanding of these mechanisms is still limited, but theoretical models can replicate such a weighting of sensory inputs and provide a basis for understanding the underlying principles. Here, we describe such a model for the auditory system-an auditory saliency map. We experimentally validate the model on natural acoustical scenarios, demonstrating that it reproduces human judgments of auditory saliency and predicts the detectability of salient sounds embedded in noisy backgrounds. In addition, it also predicts the natural orienting behavior of naive macaque monkeys to the same salient stimuli. The structure of the suggested model is identical to that of successfully used visual saliency maps. Hence, we conclude that saliency is determined either by implementing similar mechanisms in different unisensory pathways or by the same mechanism in multisensory areas. In any case, our results demonstrate that different primate sensory systems rely on common principles for extracting relevant sensory events.

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Year:  2005        PMID: 16271872     DOI: 10.1016/j.cub.2005.09.040

Source DB:  PubMed          Journal:  Curr Biol        ISSN: 0960-9822            Impact factor:   10.834


  50 in total

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8.  Encoding of natural sounds by variance of the cortical local field potential.

Authors:  Nai Ding; Jonathan Z Simon; Shihab A Shamma; Stephen V David
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9.  Prominence Detection Using Auditory Attention Cues and Task-Dependent High Level Information.

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10.  Sensory processing during viewing of cinematographic material: computational modeling and functional neuroimaging.

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