Lesson 3.1.2.2.2
3.1.2.2.2 Binocular depth cues: retinal disparity and convergence Quiz: AQA Psychology, Unit 2
20 questions
In partnership with Revision Ninja
Lesson 3.1.2.2.2, Binocular depth cues: retinal disparity and convergence: 20 multiple choice questions for the AQA GCSE Psychology (8182), Unit 2: Perception, written with Revision Ninja.
Host it live on the board and students join with a game code on their own devices, or revise alone with Free Play. The answers are revealed in the game.
The 20 questions
-
What is retinal disparity?
- The difference in size between a near object and a far object as seen by one eye alone
- The difference in brightness between the centre and edges of the retina of a single eye
- The small difference between the images received by each eye, which gives information about depth
- The tension in the eye muscles that turn the eyes inwards to focus on an object up close
-
What is convergence?
- The spreading of parallel lines in a scene so that the distant parts look larger to the viewer
- The inward turning of the eyes to focus on a close object, with the muscle tension giving depth information
- The outward turning of the eyes to focus on a distant object, with muscle tension giving depth
- The overlap of two objects in the visual field, which shows which object is nearer to the viewer
-
Which depth cues are binocular?
- Relative size and occlusion
- Linear perspective and height in plane
- Motion parallax and relative size
- Retinal disparity and convergence
-
Why does a close object produce a larger retinal disparity than a distant object?
- Because the close object is larger in the visual field, so each eye sees a bigger image of it
- Because the two eyes see the close object from the same angle, so the images are much brighter
- Because the two eyes see the close object from more different angles than they see a distant one
- Because the close object is higher in the visual field than the distant object seen by the eyes
-
A person holds a pencil close to their face and both eyes turn inwards. Which cue is being used?
- Relative size, because the pencil looks bigger than the objects behind it in the room
- Occlusion, because the pencil hides part of the room behind it from the viewer's sight
- Linear perspective, because the sides of the pencil appear to converge towards the far end
- Convergence, because the inward turning of the eyes signals that the pencil is close
-
A child with both eyes working sees a toy closer than a box across the room. Which binocular cue helps?
- Relative size, because the box looks larger on the retina than the toy in the view of the child
- Retinal disparity, because the toy produces a larger difference between the two images than the box does
- Retinal disparity, because the box produces a larger difference between the two images than the toy does
- Height in plane, because the toy is lower in the visual field than the box across the room
-
Why does convergence provide depth information?
- Because the muscle tension used to turn the eyes inwards changes with the distance of the object
- Because the lens of each eye becomes thinner for near objects, giving a fixed signal of distance
- Because the two eyes receive a single shared image of every object in the visual field of view
- Because the eyes turn outwards for distant objects, which makes the convergence cue easy to use
-
Which statement about binocular depth cues is correct?
- They depend on the size of the object alone, so they are unaffected by the number of working eyes
- They need both eyes to work together, so they are lost in someone who sees with only one eye
- They work with one eye alone, so they are kept by someone who sees with only one eye working
- They depend on the amount of light entering each eye, so they are the same in both light and dark
-
Which pair of depth cues depends on both eyes working together?
- Occlusion and linear perspective
- Height in plane and relative size
- Relative size and linear perspective
- Retinal disparity and convergence
-
A stereoscope shows each eye a slightly different picture of a scene, and the scene looks deep. Which cue is simulated?
- Retinal disparity, because each eye receives a slightly different image of the same scene
- Linear perspective alone, because the lines in each picture converge towards the horizon
- Convergence alone, because the eyes turn inwards to look at a single flat image on the card
- Occlusion alone, because one picture hides parts of the other from the viewer's eye
-
Which description best explains how retinal disparity helps depth judgement?
- The brain uses the overlap between objects to decide which of the objects is nearer to the viewer
- The brain uses the difference between the two eyes' images to judge how far away an object is
- The brain uses the brightness of one image to judge whether an object is near or far away
- The brain uses the size of one image to judge how far away an object is from the viewer
-
A person with both eyes working reaches for a cup. Which binocular cue helps them judge its distance?
- Occlusion, because the cup hides part of the table from the viewer's sight as it is reached for
- Convergence, because the eyes turn inwards and the muscle tension signals how close the cup is
- Relative size, because the cup looks larger on the retina than the table it is standing on
- Linear perspective, because the edges of the table converge as they recede from the viewer
-
Why is retinal disparity described as a binocular cue?
- Because it compares the images from two different objects in a single eye's view
- Because it depends on the two lines of a scene converging towards the horizon for the viewer
- Because it depends on two objects overlapping, so one hides part of the other from view
- Because it compares the images from the two eyes, so it needs both eyes to be working
-
Which cue would be most useful to judge the distance of a fly landing on a window from the viewer's point of view?
- Linear perspective, as the lines of the window frame converge towards the far side of the glass
- Relative size, as the fly looks small compared with the window frame in the viewer's view
- Height in plane, as the fly is higher in the visual field than the window frame below it
- Convergence, as the eyes turn inwards to focus on the fly when it is close
-
What do retinal disparity and convergence have in common?
- Both depend on information from one eye, so both are monocular depth cues
- Both depend on information from both eyes, so both are binocular depth cues
- Both depend on the lines of a scene converging, so both are monocular depth cues
- Both depend on the size of the object alone, so both are monocular depth cues
-
A person covers one eye and finds it harder to thread a needle. Which binocular cues have been lost?
- Occlusion and linear perspective, both of which depend on the position of objects in the scene
- Retinal disparity and convergence, both of which depend on the two eyes working together
- Motion parallax and relative size, both of which depend on the person moving their head around
- Relative size and height in plane, both of which depend on the size of the needle in view
-
Why does a pencil held at arm's length produce less retinal disparity than one held near the face?
- Because a more distant object subtends a smaller angle between the eyes, so the two images are more alike
- Because the pencil near the face is hidden by the nose, which changes the two images the eyes receive
- Because the pencil at arm's length is larger on the retina, which evens out the two images for the brain
- Because the pencil at arm's length has more light falling on it, which makes both images more alike
-
Why is retinal disparity more useful for judging depth of nearby objects than distant ones?
- Disparity is the same for all objects, so it is most useful when the objects are far away from view
- Disparity depends on colour, so it is most useful for bright objects that are placed close to the eyes
- Disparity is largest for distant objects, so the difference between the two images is easier to detect
- Disparity is largest for nearby objects, so the difference between the two images is easier to detect
-
A child watches a 2D film on a flat screen. Why does the film look flat even though both eyes see it?
- The eyes cannot converge on a flat screen, so convergence is missing from the view entirely
- The two eyes receive almost identical images, so there is little retinal disparity to signal depth
- The two eyes receive very different images, so the film has too much disparity to be seen as depth
- The screen lacks motion, so motion parallax is the only depth cue and it is absent from the film
-
Why might a person with eyes that are not aligned (a squint) struggle with depth judgement?
- Because the squint blocks the sensory store, so depth information is lost before it is interpreted
- Because the squint reduces the size of the image, so relative size gives the wrong depth information
- Because the two eyes do not send matching images, so retinal disparity and convergence are disrupted
- Because the squint makes monocular cues stronger, which confuses the brain about how far objects are
Related quizzes
- Difference between sensation and perception Quiz · 3.1.2.1.1 · 20 questions
- Monocular depth cues: height in plane, relative size, occlusion, linear perspective Quiz · 3.1.2.2.1 · 20 questions
- Direct perception without inference and the influence of nature Quiz · 3.1.2.3.1 · 20 questions
- Role of motion parallax in everyday perception Quiz · 3.1.2.3.2 · 20 questions
- Illusion explanations: ambiguity, misread depth cues, fiction, size constancy Quiz · 3.1.2.4.1 · 20 questions
- Examples: Ponzo, Muller-Lyer, Rubin's vase, Ames Room, Kanizsa triangle, Necker cube Quiz · 3.1.2.4.2 · 20 questions
- Inference from visual cues and past experience to construct reality Quiz · 3.1.2.5.1 · 20 questions
- Perceptual set and the influence of culture, motivation, emotion and expectation Quiz · 3.1.2.6.1 · 20 questions
- Gilchrist and Nesberg study of motivation Quiz · 3.1.2.6.2 · 20 questions
- Bruner and Minturn study of perceptual set Quiz · 3.1.2.6.3 · 20 questions