| Literature DB >> 22484251 |
Bruce C Hansen1, Robert F Hess.
Abstract
It has been argued that the human visual system is optimized for identification of broadband objects embedded in stimuli possessing orientation averaged power spectra fall-offs that obey the 1/f(β) relationship typically observed in natural scene imagery (i.e., β=2.0 on logarithmic axes). Here, we were interested in whether individual spatial channels leading to recognition are functionally optimized for narrowband targets when masked by noise possessing naturalistic image statistics (β=2.0). The current study therefore explores the impact of variable β noise masks on the identification of narrowband target stimuli ranging in spatial complexity, while simultaneously controlling for physical or perceived differences between the masks. The results show that β=2.0 noise masks produce the largest identification thresholds regardless of target complexity, and thus do not seem to yield functionally optimized channel processing. The differential masking effects are discussed in the context of contrast gain control.Entities:
Mesh:
Year: 2012 PMID: 22484251 DOI: 10.1016/j.visres.2012.03.017
Source DB: PubMed Journal: Vision Res ISSN: 0042-6989 Impact factor: 1.886