Literature DB >> 17904610

Binocular contrast interactions: dichoptic masking is not a single process.

Daniel H Baker1, Tim S Meese.   

Abstract

To decouple interocular suppression and binocular summation we varied the relative phase of mask and target in a 2IFC contrast-masking paradigm. In Experiment I, dichoptic mask gratings had the same orientation and spatial frequency as the target. For in-phase masking, suppression was strong (a log-log slope of approximately 1) and there was weak facilitation at low mask contrasts. Anti-phase masking was weaker (a log-log slope of approximately 0.7) and there was no facilitation. A two-stage model of contrast gain control [Meese, T.S., Georgeson, M.A. and Baker, D.H. (2006). Binocular contrast vision at and above threshold. Journal of Vision, 6: 1224-1243] provided a good fit to the in-phase results and fixed its free parameters. It made successful predictions (with no free parameters) for the anti-phase results when (A) interocular suppression was phase-indifferent but (B) binocular summation was phase sensitive. Experiments II and III showed that interocular suppression comprised two components: (i) a tuned effect with an orientation bandwidth of approximately +/-33 degrees and a spatial frequency bandwidth of >3 octaves, and (ii) an untuned effect that elevated threshold by a factor of between 2 and 4. Operationally, binocular summation was more tightly tuned, having an orientation bandwidth of approximately +/-8 degrees , and a spatial frequency bandwidth of approximately 0.5 octaves. Our results replicate the unusual shapes of the in-phase dichoptic tuning functions reported by Legge [Legge, G.E. (1979). Spatial frequency masking in human vision: Binocular interactions. Journal of the Optical Society of America, 69: 838-847]. These can now be seen as the envelope of the direct effects from interocular suppression and the indirect effect from binocular summation, which contaminates the signal channel with a mask that has been suppressed by the target.

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Year:  2007        PMID: 17904610     DOI: 10.1016/j.visres.2007.08.013

Source DB:  PubMed          Journal:  Vision Res        ISSN: 0042-6989            Impact factor:   1.886


  27 in total

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2.  Retinal cross talk in the mammalian visual system.

Authors:  Xiaolan Tang; Radouil Tzekov; Christopher L Passaglia
Journal:  J Neurophysiol       Date:  2016-03-16       Impact factor: 2.714

Review 3.  Binocular vision.

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Journal:  Vision Res       Date:  2010-10-15       Impact factor: 1.886

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Journal:  J Vis       Date:  2009-11-23       Impact factor: 2.240

5.  Suppression during binocular rivalry broadens orientation tuning.

Authors:  Sam Ling; Randolph Blake
Journal:  Psychol Sci       Date:  2009-09-24

6.  Normative reference ranges for binocular summation as a function of age for low contrast letter charts.

Authors:  Stacy L Pineles; Federico G Velez; Fei Yu; Joseph L Demer; Eileen Birch
Journal:  Strabismus       Date:  2014-10-06

7.  Binocular contrast summation and inhibition depends on spatial frequency, eccentricity and binocular disparity.

Authors:  Concetta F Alberti; Peter J Bex
Journal:  Ophthalmic Physiol Opt       Date:  2018-09-16       Impact factor: 3.117

8.  Orientation-specificity of adaptation: isotropic adaptation is purely monocular.

Authors:  John Cass; Ameika Johnson; Peter J Bex; David Alais
Journal:  PLoS One       Date:  2012-11-07       Impact factor: 3.240

9.  Paradoxical psychometric functions ("swan functions") are explained by dilution masking in four stimulus dimensions.

Authors:  Daniel H Baker; Tim S Meese; Mark A Georgeson
Journal:  Iperception       Date:  2013-01-02

10.  A common rule for integration and suppression of luminance contrast across eyes, space, time, and pattern.

Authors:  Tim S Meese; Daniel H Baker
Journal:  Iperception       Date:  2013-01-02
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