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Physiology of Vision: a swift overview Pixels to Percepts A. Efros, CMU, Spring 2011 Some figures from Steve Palmer
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© Stephen E. Palmer, 2002 Understanding the Brain Anatomy: The biological study of the physical structure of organisms. Physiology: The biological study of the functional structure of organisms. Anatomy versus Physiology © Stephen E. Palmer, 2002
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The Brain is tricky business Aristotle thought it’s for cooling the blood Localized or distributed?
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Phrenology How bad Machine Learning got started…
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Localized or Distributed? Evidence from patients with partial brain damage Lots of useful data from soldiers in the Russo-Japanese war But also evidence for distributed nature of processing E.g. [Lashley] showed “graceful degradation” of memory performance in rats
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© Stephen E. Palmer, 2002 The Visual System Both eye and brain are required for functional vision Two kinds of blindness: Normal blindness (eye dysfunction) Cortical blindness (brain dysfunction) © Stephen E. Palmer, 2002
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The Visual System Eyes register optical information Pathways to occipital cortex “What” pathway to temporal cortex “Where” pathway to parietal cortex Convergence on frontal cortex Two pathways from V1 © Stephen E. Palmer, 2002
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Pathways to the Brain Anatomy of Pathway to Visual Cortex © Stephen E. Palmer, 2002
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Pathways to the Brain The Lateral Geniculate Nucleus (LGN) Waystation in Thalamus Projections from both eyes Six layers Projects to cortical area V1 © Stephen E. Palmer, 2002
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Visual Cortex “Unfolded” view of visual areas in the macaque cortex (sizes not to scale). Map of Visual Areas in Cortex © Stephen E. Palmer, 2002
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Visual Cortex Evidence from lesions of monkey cortex What/Where Pathways
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© Stephen E. Palmer, 2002 Visual Cortex Visual agnosia Visual agnosia: Inability to identify objects and/or people Caused by damage to inferior (lower) temporal lobe Disruption of the “what” pathway What/Where Pathways Evidence from Neuropsychology Visual neglect Visual neglect: Inability to see objects in the left visual field Caused by damage to right parietal lobe Disruption of the “where” pathway © Stephen E. Palmer, 2002
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Visual Cortex Visual Features Color Shape Depth Motion Feature-based Pathways Hypothesis Featural Pathways Separate neural pathways in which different features are processed. © Stephen E. Palmer, 2002
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The Gross Summary The visual system is composed of many interactive functional parts: Eye (optics of image formation) Retina (light transduction) LGN (waystation?) Area V1 (hypercolumns) Higher cortical areas (features) Cortical pathways (what/where) © Stephen E. Palmer, 2002
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Image Formation Digital Camera The Eye Film
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Monocular Visual Field: 160 deg (w) X 135 deg (h) Binocular Visual Field: 200 deg (w) X 135 deg (h)
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The Eye is a camera The human eye is a camera! Iris - colored annulus with radial muscles Pupil - the hole (aperture) whose size is controlled by the iris What’s the “film”? –photoreceptor cells (rods and cones) in the retina
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The Retina
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Retina up-close Light
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© Stephen E. Palmer, 2002 Cones cone-shaped less sensitive operate in high light color vision Two types of light-sensitive receptors Rods rod-shaped highly sensitive operate at night gray-scale vision
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Rod / Cone sensitivity The famous sock-matching problem…
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© Stephen E. Palmer, 2002 Distribution of Rods and Cones Night Sky: why are there more stars off-center?
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Electromagnetic Spectrum http://www.yorku.ca/eye/photopik.htm Human Luminance Sensitivity Function
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Why do we see light of these wavelengths? © Stephen E. Palmer, 2002 …because that’s where the Sun radiates EM energy Visible Light
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The Physics of Light Any patch of light can be completely described physically by its spectrum: the number of photons (per time unit) at each wavelength 400 - 700 nm. © Stephen E. Palmer, 2002
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The Physics of Light Some examples of the spectra of light sources © Stephen E. Palmer, 2002
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The Physics of Light Some examples of the reflectance spectra of surfaces Wavelength (nm) % Photons Reflected Red 400 700 Yellow 400 700 Blue 400 700 Purple 400 700 © Stephen E. Palmer, 2002
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The Psychophysical Correspondence There is no simple functional description for the perceived color of all lights under all viewing conditions, but …... A helpful constraint: Consider only physical spectra with normal distributions area mean variance © Stephen E. Palmer, 2002
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The Psychophysical Correspondence MeanHue # Photons Wavelength © Stephen E. Palmer, 2002
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The Psychophysical Correspondence VarianceSaturation Wavelength # Photons © Stephen E. Palmer, 2002
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The Psychophysical Correspondence AreaBrightness # Photons Wavelength © Stephen E. Palmer, 2002
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Three kinds of cones: Physiology of Color Vision Why are M and L cones so close?
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Retinal Processing © Stephen E. Palmer, 2002
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Single Cell Recording Microelectrode Amplifier Electrical response (action potentials) mV © Stephen E. Palmer, 2002
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Single Cell Recording © Stephen E. Palmer, 2002
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Retinal Receptive Fields Receptive field structure in ganglion cells: On-center Off-surround Stimulus condition Electrical response © Stephen E. Palmer, 2002
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Receptive field structure in ganglion cells: On-center Off-surround Stimulus condition Electrical response Retinal Receptive Fields © Stephen E. Palmer, 2002
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Receptive field structure in ganglion cells: On-center Off-surround Stimulus condition Electrical response Retinal Receptive Fields © Stephen E. Palmer, 2002
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Receptive field structure in ganglion cells: On-center Off-surround Stimulus condition Electrical response Retinal Receptive Fields © Stephen E. Palmer, 2002
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Receptive field structure in ganglion cells: On-center Off-surround Stimulus condition Electrical response Retinal Receptive Fields © Stephen E. Palmer, 2002
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Receptive field structure in ganglion cells: On-center Off-surround Stimulus condition Electrical response Retinal Receptive Fields © Stephen E. Palmer, 2002
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RF of On-center Off-surround cells Retinal Receptive Fields © Stephen E. Palmer, 2002
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RF of Off-center On-surround cells Retinal Receptive Fields © Stephen E. Palmer, 2002 Surround Center
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Retinal Receptive Fields
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Receptive field structure in bipolar cells Light Retinal Receptive Fields © Stephen E. Palmer, 2002
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Receptive field structure in bipolar cells Retinal Receptive Fields © Stephen E. Palmer, 2002
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Visual Cortex aka: Primary visual cortex Striate cortex Brodman’s area 17 Cortical Area V1
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Cortical Receptive Fields Single-cell recording from visual cortex David Hubel & Thorston Wiesel © Stephen E. Palmer, 2002
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Cortical Receptive Fields Single-cell recording from visual cortex © Stephen E. Palmer, 2002
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Cortical Receptive Fields Three classes of cells in V1 Simple cells Complex cells Hypercomplex cells © Stephen E. Palmer, 2002
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Cortical Receptive Fields Simple Cells: “Line Detectors” © Stephen E. Palmer, 2002
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Cortical Receptive Fields Simple Cells: “Edge Detectors” © Stephen E. Palmer, 2002
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Cortical Receptive Fields Constructing a line detector © Stephen E. Palmer, 2002
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Cortical Receptive Fields Complex Cells 0o0o © Stephen E. Palmer, 2002
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Cortical Receptive Fields Complex Cells 60 o © Stephen E. Palmer, 2002
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Cortical Receptive Fields Complex Cells 90 o © Stephen E. Palmer, 2002
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Cortical Receptive Fields Complex Cells 120 o © Stephen E. Palmer, 2002
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Cortical Receptive Fields Constructing a Complex Cell © Stephen E. Palmer, 2002
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Cortical Receptive Fields Hypercomplex Cells © Stephen E. Palmer, 2002
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Cortical Receptive Fields Hypercomplex Cells © Stephen E. Palmer, 2002
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Cortical Receptive Fields Hypercomplex Cells © Stephen E. Palmer, 2002
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Cortical Receptive Fields Hypercomplex Cells “End-stopped” Cells © Stephen E. Palmer, 2002
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Cortical Receptive Fields “End-stopped” Simple Cells © Stephen E. Palmer, 2002
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Cortical Receptive Fields Constructing a Hypercomplex Cell © Stephen E. Palmer, 2002
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Mapping from Retina to V1
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Why edges?
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