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PUBMED FOR HANDHELDS

Journal Abstract Search


354 related items for PubMed ID: 19732787

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  • 2. Conditional spatial-frequency selective pooling of one-dimensional motion signals into global two-dimensional motion.
    Maruya K, Amano K, Nishida S.
    Vision Res; 2010 Jun 01; 50(11):1054-64. PubMed ID: 20353800
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  • 3. Adaptive pooling of visual motion signals by the human visual system revealed with a novel multi-element stimulus.
    Amano K, Edwards M, Badcock DR, Nishida S.
    J Vis; 2009 Mar 13; 9(3):4.1-25. PubMed ID: 19757943
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  • 7. No interaction of first- and second-order signals in the extraction of global-motion and optic-flow.
    Cassanello CR, Edwards M, Badcock DR, Nishida S.
    Vision Res; 2011 Feb 09; 51(3):352-61. PubMed ID: 21130796
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  • 10. The detection of motion in chromatic stimuli: first-order and second-order spatial structure.
    Cropper SJ.
    Vision Res; 2005 Mar 09; 45(7):865-80. PubMed ID: 15644227
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  • 11. Resolution for spatial segregation and spatial localization by motion signals.
    Burr D, McKee S, Morrone CM.
    Vision Res; 2006 Mar 09; 46(6-7):932-9. PubMed ID: 16289200
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  • 12. Visual motion gradient sensitivity shows scale invariant spatial frequency and speed tuning properties.
    Meso AI, Hess RF.
    Vision Res; 2010 Jul 09; 50(15):1475-85. PubMed ID: 20451542
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  • 13. Pooling and segmenting motion signals.
    Burr DC, Baldassi S, Morrone MC, Verghese P.
    Vision Res; 2009 Jun 09; 49(10):1065-72. PubMed ID: 19027034
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  • 14. The influence of spatial and temporal noise on the detection of first-order and second-order orientation and motion direction.
    Ledgeway T, Hutchinson CV.
    Vision Res; 2005 Jul 09; 45(16):2081-94. PubMed ID: 15845240
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  • 20. The amblyopic deficit for global motion is spatial scale invariant.
    Aaen-Stockdale C, Hess RF.
    Vision Res; 2008 Sep 09; 48(19):1965-71. PubMed ID: 18625265
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