PSY 369 Psycholinguistics Language Comprehension Sentence comprehension The
- Slides: 62
PSY 369: Psycholinguistics Language Comprehension: Sentence comprehension
The Human Eye n n At its center is the fovea, a pit that is most sensitive to light and is responsible for our sharp central vision. The central retina is conedominated and the peripheral retina is roddominated.
Retinal Sampling
Retinal Sampling
Eye Movements n Within the visual field, eye movements serve two major functions n n Saccades to Fixations – Position target objects of interest on the fovea Tracking – Keep fixated objects on the fovea despite movements of the object or head
Fixations n n The eye is (almost) still – perceptions are gathered during fixations The most important of eye “movements” n n 90% of the time the eye is fixated duration: 150 ms - 600 ms
Saccades n Saccades are used to move the fovea to the next object/region of interest. n n Connect fixations Duration 10 ms - 120 ms n n Very fast (up to 700 degrees/second) No visual perception during saccades n n Vision is suppressed Evidence that some cognitive processing may also be suppressed during eye-movements (Irwin, 1998)
Saccades Move to here
Saccade w/o suppression
Saccades Move to here
Saccades
Saccades n Saccades are used to move the fovea to the next object/region of interest. n n Connect fixations Duration 10 ms - 120 ms n n No visual perception during saccades n n n Very fast (up to 700 degrees/second) Vision is suppressed Ballistic movements (pre-programmed) About 150, 000 saccades per day
Smooth Pursuit n n Smooth movement of the eyes for visually tracking a moving object Cannot be performed in static scenes (fixation/saccade behavior instead)
Smooth Pursuit versus Saccades n n n n Jerky No correction Up to 700 degrees/sec Background is not blurred (saccadic suppression) n Smooth pursuit n n Smooth and continuous Constantly corrected by visual feedback Up to 100 degrees/sec Background is blurred
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Eye-movements in reading are saccadic rather than smooth Clothes make the man. Naked people have little or no influence on society.
Eye-movements in reading n Limitations of the visual field n 130 degrees vertically, 180 degrees horizontally (including peripheral vision n Perceptual span for reading: 7 -12 spaces Clothes make the man. Naked people have little or no influence on society.
Measuring Eye Movements Purkinje Eye Tracker n n n Laser is aimed at the eye. Laser light is reflected by cornea and lens Pattern of reflected light is received by an array of lightsensitive elements. Very precise Also measures pupil accomodation No head movements
Measuring Eye Movements Video-Based Systems n n Infrared camera directed at eye Image processing hardware determines pupil position and size (and possibly corneal reflection) Good spatial precision (0. 5 degrees) for head-mounted systems Good temporal resolution (up to 500 Hz) possible
The man hit the dog with the leash. S NP det N The man
The man hit the dog with the leash. S NP VP V det N The man hit
The man hit the dog with the leash. S NP VP V NP NP det N The man hit the dog
The man hit the dog with the leash. S NP VP V NP NP det N The man hit the dog PP Modifier with the leash
The man hit the dog with the leash. S NP VP V NP NP det N The man hit the dog PP Instrument with the leash
The man hit the dog with the leash. n How do we know which structure to build?
Parsing n The syntactic analyser or “parser” n Main task: To construct a syntactic structure from the words of the sentence as they arrive
Different approaches n n Serial Analysis (Modular): Build just one based on syntactic information and continue to try to add to it as long as this is still possible Interactive Analysis: Use multiple levels (both syntax and semantics) of information to build the “best” structure Parallel Analysis: Build both alternative structures at the same time Minimal Commitment: Stop building - and wait until later material clarifies which analysis is the correct one.
Sentence Comprehension n Modular
Sentence Comprehension n n Modular Interactive models
Sentence Comprehension n Garden path sentences n A garden path sentence invites the listener to consider one possible parse, and then at the end forces him to abandon this parse in favor of another.
Real Headlines Juvenile Court to Try Shooting Defendant Red tape holds up new bridge Miners Refuse to Work after Death Retired priest may marry Springsteen Local High School Dropouts Cut in Half Panda Mating Fails; Veterinarian Takes Over Kids Make Nutritious Snacks Squad Helps Dog Bite Victim Hospitals are Sued by 7 Foot Doctors
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. S NP The horse VP
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. S NP VP V The horse raced
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. S NP VP V PP P The horse raced past NP
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. S NP VP V PP P NP The horse raced past the barn
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. S NP VP V PP P NP The horse raced past the barn fell
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. S NP VP V PP P NP The horse raced past the barn n raced is initially treated as a past tense verb
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. n n S NP VP V PP P NP The horse raced past the barn fell raced is initially treated as a past tense verb This analysis fails when the verb fell is encountered
Sentence Comprehension n Garden path sentences n The horse raced past the barn fell. n n S NP n raced is initially treated as a past tense verb This analysis fails when the verb fell is encountered raced can be re-analyzed as a past participle. VP V S PP P VP NP NP The horse raced past the barn fell NP V RR PP V P NP The horse raced past the barn fell
A serial model n Formulated by Lyn Frazier (1978, 1987) n Build trees using syntactic cues: n n phrase structure rules plus two parsing principles n n Minimal Attachment Late Closure
A serial model n Minimal Attachment n Prefer the interpretation that is accompanied by the simplest structure. n simplest = fewest branchings (tree metaphor!) n Count the number of nodes = branching points The girl hit the man with the umbrella.
Minimal attachment S 8 Nodes NP Preferred the girl S NP the girl NP hit the man V hit VP V VP NP NP the man PP P NP with the umbrella The girl hit the man with the umbrella. 9 nodes
A serial model n Late Closure n n Incorporate incoming material into the phrase or clause currently being processed. OR Associate incoming material with the most recent material possible. She said he tickled her yesterday
Parsing Preferences. . late closure S Preferred S np np vp she v S' said np he vp said np vp v np S' he adv tickled her yesterday She said he tickled her yesterday adv vp v yesterday np tickled her (Both have 10 nodes, so use LC not MA)
Minimal attachment n Garden path sentences (Rayner & Frazier, ‘ 83) The spy saw the cop with a telescope. minimal attach non-minimal attach Modular prediction Build this structure first Interactive prediction Build this structure first
Minimal attachment n Garden path sentences (Rayner & Frazier, ‘ 83) The spy saw the cop with a revolver. minimal attach non-minimal attach Modular prediction Build this structure first Interactive prediction Build this structure first Lexical information rules this one out
MA S S NP the spy NP VP S’ the spy V PP NP saw P Non-MA VP V NP saw NP PP the cop P NP the cop with the revolver but the cop didn’t see him S’ NP with the revolver but the cop didn’t see him The spy saw the cop with the binoculars. . The spy saw the cop with the revolver … <- takes longer to read (Rayner & Frazier, ‘ 83)
Interactive Models n Other factors (e. g. , semantic context, co-occurrence of usage & expectation) may provide cues about the likely interpretation of a sentence n n The evidence questioned in the trial … The person questioned in the trial … evidence typically gets questioned, but can’t do the questioning
Interactive Models n Other factors (e. g. , semantic context, co-occurrence of usage & expectation) may provide cues about the likely interpretation of a sentence n n The evidence questioned in the trial … The person questioned in the trial … A lawyer often asks questions (more often than answering them)
Semantic expectations n n Other factors (e. g. , semantic context, co-occurrence of usage & expectation) may provide cues about the likely interpretation of a sentence Taraban & Mc. Celland (1988) n n n Expectation The couple admired the house with a friend but knew that it was over-priced. The couple admired the house with a garden but knew that it was over-priced.
Semantic expectations n n n Taraban & Mc. Celland, 1988 The couple admired the house with a friend but knew that it was overpriced. The couple admired the house with a garden but knew that it was overpriced. The Non-MA structure may be favoured
Intonation as a cue A: I’d like to fly to Davenport, Iowa on TWA. B: TWA doesn’t fly there. . . B 1: They fly to Des Moines. B 2: They fly to Des Moines.
Chunking, or “phrasing” A 1: I met Mary and Elena’s mother at the mall yesterday. A 2: I met Mary and Elena’s mother at the mall yesterday.
Phrasing can disambiguate Mary & Elena’s mother mall I met Mary and Elena’s mother at the mall yesterday One intonation phrase with relatively flat overall pitch range.
Phrasing can disambiguate Elena’s mother Mary mall I met Mary and Elena’s mother at the mall yesterday Separate phrases, with expanded pitch movements.
Summing up n Is ambiguity resolution a problem in real life? n n Yes (Try to think of a sentence that isn’t partially ambiguous) Many factors might influence the process of making sense of a string of words. (e. g. syntax, semantics, context, intonation, cooccurrence of words, frequency of usage, …)
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