Optimal feature integration in visual search

被引:31
作者
Vincent, Benjamin T. [1 ]
Baddeley, Roland J. [2 ]
Troscianko, Tom [2 ]
Gilchrist, Iain D. [2 ]
机构
[1] Univ Dundee, Sch Psychol, Dundee DD1 4HN, Scotland
[2] Univ Bristol, Dept Expt Psychol, Bristol, Avon, England
关键词
2-AFC; yes/no; detection; visual search; attention; Bayes; signal detection theory; target visibility; optimal observer; Monte Carlo; internal noise; external noise; EYE-MOVEMENTS; SET-SIZE; ATTENTION; SCENE; STIMULUS; ACCOUNT; MODELS;
D O I
10.1167/9.5.15
中图分类号
R77 [眼科学];
学科分类号
100212 ;
摘要
Despite embodying fundamentally different assumptions about attentional allocation, a wide range of popular models of attention include a max-of-outputs mechanism for selection. Within these models, attention is directed to the items with the most extreme-value along a perceptual dimension via, for example, a winner-take-all mechanism. From the detection theoretic approach, this MAX-observer can be optimal under specific situations, however in distracter heterogeneity manipulations or in natural visual scenes this is not always the case. We derive a Bayesian maximum a posteriori (MAP)-observer, which is optimal in both these situations. While it retains a form of the max-of-outputs mechanism, it is based on the maximum a posterior probability dimension, instead of a perceptual dimension. To test this model we investigated human visual search performance using a yes/no procedure while adding external orientation uncertainty to distracter elements. The results are much better fitted by the predictions of a MAP observer than a MAX observer. We conclude a max-like mechanism may well underlie the allocation of visual attention, but this is based upon a probability dimension, not a perceptual dimension.
引用
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页数:11
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