A preference for phase-based disparity in a neuromorphic implementation of the binocular energy model
- PMID: 15228746
- DOI: 10.1162/089976604774201604
A preference for phase-based disparity in a neuromorphic implementation of the binocular energy model
Abstract
The relative depth of objects causes small shifts in the left and right retinal positions of these objects, called binocular disparity. This letter describes an electronic implementation of a single binocularly tuned complex cell based on the binocular energy model, which has been proposed to model disparity-tuned complex cells in the mammalian primary visual cortex. Our system consists of two silicon retinas representing the left and right eyes, two silicon chips containing retinotopic arrays of spiking neurons with monocular Gabor-type spatial receptive fields, and logic circuits that combine the spike outputs to compute a disparity-selective complex cell response. The tuned disparity can be adjusted electronically by introducing either position or phase shifts between the monocular receptive field profiles. Mismatch between the monocular receptive field profiles caused by transistor mismatch can degrade the relative responses of neurons tuned to different disparities. In our system, the relative responses between neurons tuned by phase encoding are better matched than neurons tuned by position encoding. Our numerical sensitivity analysis indicates that the relative responses of phase-encoded neurons that are least sensitive to the receptive field parameters vary the most in our system. We conjecture that this robustness may be one reason for the existence of phase-encoded disparity-tuned neurons in biological neural systems.
Similar articles
-
Depth is encoded in the visual cortex by a specialized receptive field structure.Nature. 1991 Jul 11;352(6331):156-9. doi: 10.1038/352156a0. Nature. 1991. PMID: 2067576
-
Binocular robot vision emulating disparity computation in the primary visual cortex.Neural Netw. 2008 Mar-Apr;21(2-3):331-40. doi: 10.1016/j.neunet.2007.12.033. Epub 2007 Dec 27. Neural Netw. 2008. PMID: 18272330
-
Disparity estimation through Green's functions of matching equations.Biol Cybern. 2007 Oct;97(4):307-16. doi: 10.1007/s00422-007-0174-0. Epub 2007 Aug 29. Biol Cybern. 2007. PMID: 17762939
-
Mechanisms of stereopsis in monkey visual cortex.Cereb Cortex. 1995 May-Jun;5(3):193-204. doi: 10.1093/cercor/5.3.193. Cereb Cortex. 1995. PMID: 7613075 Review.
-
The neural coding of stereoscopic depth.Neuroreport. 1997 Feb 10;8(3):iii-xii. Neuroreport. 1997. PMID: 9106726 Review.
Cited by
-
Solving stereo transparency with an extended coarse-to-fine disparity energy model.Neural Comput. 2015 May;27(5):1058-82. doi: 10.1162/NECO_a_00722. Epub 2015 Feb 24. Neural Comput. 2015. PMID: 25710090 Free PMC article.
-
Tuning curves vs. population responses, and perceptual consequences of receptive-field remapping.Front Comput Neurosci. 2023 Jan 13;16:1060757. doi: 10.3389/fncom.2022.1060757. eCollection 2022. Front Comput Neurosci. 2023. PMID: 36714528 Free PMC article.
Publication types
MeSH terms
LinkOut - more resources
Full Text Sources