Mice Can Use Second-Order, Contrast-Modulated Stimuli to Guide Visual Perception
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Steffen Katzner | Laura Busse | Ovidiu F. Jurjuţ | L. Busse | Steffen Katzner | Zeinab Khastkhodaei | Zeinab Khastkhodaei | Ovidiu Jurjut | S. Katzner
[1] T. Bonhoeffer,et al. Mapping Retinotopic Structure in Mouse Visual Cortex with Optical Imaging , 2002, The Journal of Neuroscience.
[2] C. Gallistel,et al. The learning curve: implications of a quantitative analysis. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[3] Li I. Zhang,et al. Visual Receptive Field Structure of Cortical Inhibitory Neurons Revealed by Two-Photon Imaging Guided Recording , 2009, The Journal of Neuroscience.
[4] Geoffrey R. Loftus,et al. Standard errors and confidence intervals in within-subjects designs: Generalizing Loftus and Masson (1994) and avoiding the biases of alternative accounts , 2012, Psychonomic Bulletin & Review.
[5] Hans Op de Beeck,et al. Neural discriminability in rat lateral extrastriate cortex and deep but not superficial primary visual cortex correlates with shape discriminability , 2015, Front. Neural Circuits.
[6] J. Anthony Movshon,et al. Neuronal Responses to Texture-Defined Form in Macaque Visual Area V2 , 2011, The Journal of Neuroscience.
[7] D. Tank,et al. Imaging Large-Scale Neural Activity with Cellular Resolution in Awake, Mobile Mice , 2007, Neuron.
[8] D. C. Essen,et al. Neurons in monkey visual area V2 encode combinations of orientations , 2007, Nature Neuroscience.
[9] Henk Spekreijse,et al. Neural responses in cat visual cortex reflect state changes in correlated activity , 2005, The European journal of neuroscience.
[10] R. Shapley,et al. Orientation Selectivity in Macaque V1: Diversity and Laminar Dependence , 2002, The Journal of Neuroscience.
[11] L. Saksida,et al. Discrimination of computer-graphic stimuli by mice: a method for the behavioral characterization of transgenic and gene-knockout models. , 2001, Behavioral Neuroscience.
[12] Ian R. Wickersham,et al. Monosynaptic Restriction of Transsynaptic Tracing from Single, Genetically Targeted Neurons , 2007, Neuron.
[13] C. Baker,et al. Neuronal response to texture- and contrast-defined boundaries in early visual cortex , 2007, Visual Neuroscience.
[14] B. Willmore,et al. Neural Representation of Natural Images in Visual Area V2 , 2010, The Journal of Neuroscience.
[15] M. Tovée,et al. Translation invariance in the responses to faces of single neurons in the temporal visual cortical areas of the alert macaque. , 1994, Journal of neurophysiology.
[16] D. Hubel,et al. Receptive fields, binocular interaction and functional architecture in the cat's visual cortex , 1962, The Journal of physiology.
[17] R. Reid,et al. Frontiers in Cellular Neuroscience Cellular Neuroscience Methods Article , 2022 .
[18] Quanxin Wang,et al. Area map of mouse visual cortex , 2007, The Journal of comparative neurology.
[19] A Schnee,et al. Rats are able to navigate in virtual environments , 2005, Journal of Experimental Biology.
[20] C. Gallistel,et al. The rat approximates an ideal detector of changes in rates of reward: implications for the law of effect. , 2001, Journal of experimental psychology. Animal behavior processes.
[21] Georg B. Keller,et al. Learning Enhances Sensory and Multiple Non-sensory Representations in Primary Visual Cortex , 2015, Neuron.
[22] Davide Zoccolan,et al. Multifeatural Shape Processing in Rats Engaged in Invariant Visual Object Recognition , 2013, The Journal of Neuroscience.
[23] Hans P. Op de Beeck,et al. A Multivariate Approach Reveals the Behavioral Templates Underlying Visual Discrimination in Rats , 2012, Current Biology.
[24] H. Neumann,et al. The Role of Attention in Figure-Ground Segregation in Areas V1 and V4 of the Visual Cortex , 2012, Neuron.
[25] D. Zoccolan,et al. Transformation-Tolerant Object Recognition in Rats Revealed by Visual Priming , 2012, The Journal of Neuroscience.
[26] Demetris K. Roumis,et al. Functional Specialization of Mouse Higher Visual Cortical Areas , 2011, Neuron.
[27] S. Hestrin,et al. Subthreshold Mechanisms Underlying State-Dependent Modulation of Visual Responses , 2013, Neuron.
[28] Michael S. Landy,et al. Visual perception of texture , 2002 .
[29] Chang'an A Zhan,et al. Boundary cue invariance in cortical orientation maps. , 2006, Cerebral cortex.
[30] M. Tarr,et al. Visual Object Recognition , 1996, ISTCS.
[31] Edward M. Callaway,et al. Pattern and Component Motion Responses in Mouse Visual Cortical Areas , 2015, Current Biology.
[32] R. Reid,et al. Local Diversity and Fine-Scale Organization of Receptive Fields in Mouse Visual Cortex , 2011, The Journal of Neuroscience.
[33] Keiji Tanaka,et al. Inferotemporal cortex and object vision. , 1996, Annual review of neuroscience.
[34] R. Desimone,et al. Stimulus-selective properties of inferior temporal neurons in the macaque , 1984, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[35] Lynn Hazan,et al. Klusters, NeuroScope, NDManager: A free software suite for neurophysiological data processing and visualization , 2006, Journal of Neuroscience Methods.
[36] Wei Wang,et al. Distinct Functional Organizations for Processing Different Motion Signals in V1, V2, and V4 of Macaque , 2012, The Journal of Neuroscience.
[37] Nicole C. Rust,et al. Selectivity and Tolerance (“Invariance”) Both Increase as Visual Information Propagates from Cortical Area V4 to IT , 2010, The Journal of Neuroscience.
[38] James H. Marshel,et al. Functional Specialization of Seven Mouse Visual Cortical Areas , 2011, Neuron.
[39] Philipp Berens,et al. CircStat: AMATLABToolbox for Circular Statistics , 2009, Journal of Statistical Software.
[40] C. Connor,et al. Responses to contour features in macaque area V4. , 1999, Journal of neurophysiology.
[41] Eero P. Simoncelli,et al. A functional and perceptual signature of the second visual area in primates , 2013, Nature Neuroscience.
[42] Olaf Sporns,et al. Network Analysis of Corticocortical Connections Reveals Ventral and Dorsal Processing Streams in Mouse Visual Cortex , 2012, The Journal of Neuroscience.
[43] Simon Barthelmé,et al. Spatial statistics and attentional dynamics in scene viewing. , 2014, Journal of vision.
[44] H. P. Op de Beeck,et al. Cue-invariant shape recognition in rats as tested with second-order contours. , 2015, Journal of vision.
[45] L. E. Hallum,et al. Surround suppression supports second-order feature encoding by macaque V1 and V2 neurons , 2014, Vision Research.
[46] A. Leventhal,et al. Neural correlates of boundary perception , 1998, Visual Neuroscience.
[47] T D Albright,et al. Form-cue invariant motion processing in primate visual cortex. , 1992, Science.
[48] J. Maunsell,et al. Psychophysical measurement of contrast sensitivity in the behaving mouse. , 2012, Journal of neurophysiology.
[49] C. Baker,et al. Processing of second-order stimuli in the visual cortex. , 2001, Progress in brain research.
[50] N. Logothetis,et al. Psychophysical and physiological evidence for viewer-centered object representations in the primate. , 1995, Cerebral cortex.
[51] Karl Deisseroth,et al. Activation of Specific Interneurons Improves V1 Feature Selectivity and Visual Perception , 2012, Nature.
[52] J. Fujimoto,et al. Optical coherence tomography of the human retina. , 1995, Archives of ophthalmology.
[53] Lindsey L. Glickfeld,et al. Cortico-cortical projections in mouse visual cortex are functionally target specific , 2013, Nature Neuroscience.
[54] Kasper Vinken,et al. Visual Categorization of Natural Movies by Rats , 2014, The Journal of Neuroscience.
[55] P. Roelfsema,et al. Chronic multiunit recordings in behaving animals: advantages and limitations. , 2005, Progress in brain research.
[56] D. G. Albrecht,et al. Striate cortex of monkey and cat: contrast response function. , 1982, Journal of neurophysiology.
[57] James J DiCarlo,et al. A rodent model for the study of invariant visual object recognition , 2009, Proceedings of the National Academy of Sciences.
[58] Quanxin Wang,et al. Gateways of Ventral and Dorsal Streams in Mouse Visual Cortex , 2011, The Journal of Neuroscience.
[59] Zengcai V. Guo,et al. Procedures for Behavioral Experiments in Head-Fixed Mice , 2014, PloS one.
[60] Curtis L Baker,et al. Form-Cue Invariant Second-Order Neuronal Responses to Contrast Modulation in Primate Area V2 , 2014, The Journal of Neuroscience.
[61] C. Baker,et al. Envelope-responsive neurons in areas 17 and 18 of cat. , 1994, Journal of neurophysiology.
[62] Maik C. Stüttgen,et al. The Head-fixed Behaving Rat—Procedures and Pitfalls , 2010, Somatosensory & motor research.
[63] R. L. Valois,et al. The orientation and direction selectivity of cells in macaque visual cortex , 1982, Vision Research.
[64] W. M. Keck,et al. Highly Selective Receptive Fields in Mouse Visual Cortex , 2008, The Journal of Neuroscience.
[65] Alexander S. Ecker,et al. Comparing the Feature Selectivity of the Gamma-Band of the Local Field Potential and the Underlying Spiking Activity in Primate Visual Cortex , 2008, Frontiers in systems neuroscience.
[66] I. Ohzawa,et al. Surround suppression of V1 neurons mediates orientation-based representation of high-order visual features. , 2009, Journal of neurophysiology.
[67] A. Burkhalter,et al. Hierarchical organization of areas in rat visual cortex , 1993, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[68] S. R. Jammalamadaka,et al. Topics in Circular Statistics , 2001 .
[69] Isabelle Mareschal,et al. A cortical locus for the processing of contrast-defined contours , 1998, Nature Neuroscience.
[70] C. Baker,et al. Temporal and spatial response to second-order stimuli in cat area 18. , 1998, Journal of neurophysiology.
[71] Andrew D. Zaharia,et al. The Detection of Visual Contrast in the Behaving Mouse , 2011, The Journal of Neuroscience.
[72] Wei Wang,et al. Orientation-Cue Invariant Population Responses to Contrast-Modulated and Phase-Reversed Contour Stimuli in Macaque V1 and V2 , 2014, PloS one.
[73] R. Quian Quiroga,et al. Unsupervised Spike Detection and Sorting with Wavelets and Superparamagnetic Clustering , 2004, Neural Computation.
[74] R. Desimone,et al. Shape recognition and inferior temporal neurons. , 1983, Proceedings of the National Academy of Sciences of the United States of America.
[75] D. Hubel,et al. Receptive fields of single neurones in the cat's striate cortex , 1959, The Journal of physiology.
[76] Peter H. Seeburg,et al. Molecular Neuroscience: Challenges Ahead , 2008, Front. Neurosci..
[77] Y. Chino,et al. Receptive‐field properties of V1 and V2 neurons in mice and macaque monkeys , 2010, The Journal of comparative neurology.
[78] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[79] R. Freeman,et al. Orientation selectivity in the cat's striate cortex is invariant with stimulus contrast , 2004, Experimental Brain Research.
[80] Spencer L. Smith,et al. Parallel processing of visual space by neighboring neurons in mouse visual cortex , 2010, Nature Neuroscience.
[81] G. Orban,et al. Cue-invariant shape selectivity of macaque inferior temporal neurons. , 1993, Science.
[82] R. Vogels,et al. Spatial sensitivity of macaque inferior temporal neurons , 2000, The Journal of comparative neurology.
[83] M. Stryker,et al. Spatial Frequency Maps in Cat Visual Cortex , 2000, The Journal of Neuroscience.
[84] Lief E. Fenno,et al. The development and application of optogenetics. , 2011, Annual review of neuroscience.
[85] J. Movshon,et al. Spatial and temporal contrast sensitivity of neurones in areas 17 and 18 of the cat's visual cortex. , 1978, The Journal of physiology.