作者
Marcelo Bertalmío, Alex Gomez-Villa, Adrián Martín, Javier Vazquez-Corral, David Kane, Jesús Malo
发表日期
2020/10/1
期刊
Scientific reports
卷号
10
期号
1
页码范围
16277
出版商
Nature Publishing Group UK
简介
The responses of visual neurons, as well as visual perception phenomena in general, are highly nonlinear functions of the visual input, while most vision models are grounded on the notion of a linear receptive field (RF). The linear RF has a number of inherent problems: it changes with the input, it presupposes a set of basis functions for the visual system, and it conflicts with recent studies on dendritic computations. Here we propose to model the RF in a nonlinear manner, introducing the intrinsically nonlinear receptive field (INRF). Apart from being more physiologically plausible and embodying the efficient representation principle, the INRF has a key property of wide-ranging implications: for several vision science phenomena where a linear RF must vary with the input in order to predict responses, the INRF can remain constant under different stimuli. We also prove that Artificial Neural Networks with INRF modules …
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