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We introduce a benchmark to directly evaluate the alignment between human observers and vision models on a 3D shape inference task.
“Mental rotation of three-dimensional objects”
Roger Shepard and Jacqueline Metzler · 1971
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“Mental rotation of three-dimensional objects”
Roger Shepard and Jacqueline Metzler · 1971
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“The internal representation of solid shape with respect to vision”
Jan Koenderink and Andrea Van · 1979
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“The internal representation of solid shape with respect to vision”
Jan Koenderink and Andrea Van · 1979
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“Vision: A Computational Investigation into the Human Representation and Processing of Visual Information”
David Marr · 1982
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“Vision: A Computational Investigation into the Human Representation and Processing of Visual Information”
David Marr · 1982
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“A case of viewer-centered object perception”
Irvin Rock and Joseph DiVita · 1987
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“Visual routines”
Shimon Ullman · 1987
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“A case of viewer-centered object perception”
Irvin Rock and Joseph DiVita · 1987
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“Visual routines”
Shimon Ullman · 1987
Earlier work this paper cites.
“Perception of shape from shading”
Vilayanur Ramachandran · 1988
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“Perception of shape from shading”
Vilayanur Ramachandran · 1988
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“Psychophysical support for a two-dimensional view interpolation theory of object recognition.”
Heinrich Bülthoff and Shimon Edelman · 1992
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“Psychophysical support for a two-dimensional view interpolation theory of object recognition.”
Heinrich Bülthoff and Shimon Edelman · 1992
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“Perceiving layout and knowing distances: The integration, relative potency, and contextual use of different information about depth”
James Cutting and Peter Vishton · 1995
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“Perceiving layout and knowing distances: The integration, relative potency, and contextual use of different information about depth”
James Cutting and Peter Vishton · 1995
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“Image blur as a pictorial depth cue”
George Mather · 1996
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“Image blur as a pictorial depth cue”
George Mather · 1996
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“Computing local surface orientation and shape from texture for curved surfaces”
Jitendra Malik and Ruth Rosenholtz · 1997
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“Computing local surface orientation and shape from texture for curved surfaces”
Jitendra Malik and Ruth Rosenholtz · 1997
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“A model of saliency-based visual attention for rapid scene analysis”
Laurent Itti, Christof Koch and Ernst Niebur · 1998
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“Image-based object recognition in man, monkey and machine”
Michael Tarr and Heinrich Bülthoff · 1998
Cited alongside, same era.
“Three-dimensional object recognition based on the combination of views”
Shimon Ullman · 1998
Cited alongside, same era.
“A model of saliency-based visual attention for rapid scene analysis”
Laurent Itti, Christof Koch and Ernst Niebur · 1998
Cited alongside, same era.
“Image-based object recognition in man, monkey and machine”
Michael Tarr and Heinrich Bülthoff · 1998
Cited alongside, same era.
“Three-dimensional object recognition based on the combination of views”
Shimon Ullman · 1998
Cited alongside, same era.
“Selective perceptual impairments after perirhinal cortex ablation”
Mark Buckley, Michael Booth, Edmund Rolls and David Gaffan · 2001
Cited alongside, same era.
“Large-scale, high-resolution comparison of the core visual object recognition behavior of humans, monkeys, and state-of-the-art deep artificial neural networks”
Rishi Rajalingham et al · 2018
Later among the works it cites.
“Large-scale, high-resolution comparison of the core visual object recognition behavior of humans, monkeys, and state-of-the-art deep artificial neural networks”
Rishi Rajalingham et al · 2018
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“When the ventral visual stream is not enough: A deep learning account of medial temporal lobe involvement in perception”
Tyler Bonnen, Daniel Yamins and Anthony Wagner · 2021
Later among the works it cites.
“Explanatory models in neuroscience: Part 1–taking mechanistic abstraction seriously”
Rosa Cao and Daniel Yamins · 2021
Later among the works it cites.
“Emerging properties in self-supervised vision transformers”
Mathilde Caron et al · 2021
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“Selective perceptual impairments after perirhinal cortex ablation”
Mark Buckley, Michael Booth, Edmund Rolls and David Gaffan · 2001
Cited alongside, same era.
“The organization of visual object representations: a connectionist model of effects of lesions in perirhinal cortex”
Timothy Bussey and Lisa Saksida · 2002
Cited alongside, same era.
“Perirhinal cortex resolves feature ambiguity in complex visual discriminations”
Timothy Bussey, Lisa Saksida and Elisabeth Murray · 2002
Cited alongside, same era.
“The organization of visual object representations: a connectionist model of effects of lesions in perirhinal cortex”
Timothy Bussey and Lisa Saksida · 2002
Cited alongside, same era.
“Perirhinal cortex resolves feature ambiguity in complex visual discriminations”
Timothy Bussey, Lisa Saksida and Elisabeth Murray · 2002
Cited alongside, same era.
“When is scene identification just texture recognition?”
Laura Renninger and Jitendra Malik · 2004
Cited alongside, same era.
Later among the works it cites.
“When the ventral visual stream is not enough: A deep learning account of medial temporal lobe involvement in perception”
Tyler Bonnen, Daniel Yamins and Anthony Wagner · 2021
Later among the works it cites.
“Explanatory models in neuroscience: Part 1–taking mechanistic abstraction seriously”
Rosa Cao and Daniel Yamins · 2021
Later among the works it cites.
“Emerging properties in self-supervised vision transformers”
Mathilde Caron et al · 2021
Later among the works it cites.
“Deep problems with neural network models of human vision”
Jeffrey Bowers et al · 2022
Later among the works it cites.
“Texture-like representation of objects in human visual cortex”
Akshay Jagadeesh and Justin Gardner · 2022
Later among the works it cites.
“Deep problems with neural network models of human vision”
Jeffrey Bowers et al · 2022
Later among the works it cites.
“Texture-like representation of objects in human visual cortex”
Akshay Jagadeesh and Justin Gardner · 2022
Later among the works it cites.
“Medial temporal cortex supports compositional visual inferences”
Tyler Bonnen, Anthony Wagner and Daniel Yamins · 2023
Later among the works it cites.
“Approaching human 3D shape perception with neurally mappable models”, 2023
Thomas. O’Connell et al · 2023
Later among the works it cites.
“Medial temporal cortex supports compositional visual inferences”
Tyler Bonnen, Anthony Wagner and Daniel Yamins · 2023
Later among the works it cites.
“Approaching human 3D shape perception with neurally mappable models”, 2023
Thomas. O’Connell et al · 2023
Later among the works it cites.
“Probing the 3D Awareness of Visual Foundation Models”
Mohamed Banani et al · 2024
Closest in time.
“Humans Beat Deep Networks at Recognizing Objects in Unusual Poses, Given Enough Time”
Netta Ollikka et al · 2024
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“Probing the 3D Awareness of Visual Foundation Models”
Mohamed Banani et al · 2024
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“Humans Beat Deep Networks at Recognizing Objects in Unusual Poses, Given Enough Time”
Netta Ollikka et al · 2024
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