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Entropy Reduction Model Resource: The Information Conveyed by Words in Sentences, John Hale.

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1 Entropy Reduction Model Resource: The Information Conveyed by Words in Sentences, John Hale

2  Assumptions on ambiguity resolution  sentence understanders determine a syntactic structure for the perceived signal.  Producer and comprehender share the same grammar. (may be probabilistic one)  Comprehension is eager

3  Sentence processing is done incrementally  There are combinatory relationships between words in the sentence  There is a speaker intended derivation  Due to ambiguity, there is a uncertainty about speaker intended derivation  The uncertainty is greater in initial phases and die out gradually as more and more words are presented

4  Work done by an eager processor  Uncertainty in derivation ▪ total amount of ambiguity resolution work needed to be done  Reduction in uncertainty ▪ Maximal amount of work done between a word and the next one ▪ information conveyed by a word

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8  Grenander’s Theorem  Computes entropy of all derivation trees rooted in a non-terminal symbol  Entropy is sum of ▪ Entropy of the single-rule rewrite decision and ▪ Expected entropy of any children

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12 SPPVPNPPV S0.0 1.0 0.0 PP0.0 1.0 0.0 VP0.00.3 0.50.00.7 NP0.00.40.00.40.0 P V

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16 A horse raced past the barn fell Left recursionReduced relative clause Past participle verb

17 You are stuck here

18 Remove left recursion

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20 Non-left recursive grammar

21 0.0 1.00.0 1.00.0 1.0 0.0 1.00.0 1.00.0 0.50.0 0.5 0.0 1.0 0.0 0.12 0.0 1.00.0 0.12

22 Non-terminalEntropy 5.019 2.013 3.013 3.006 0.000 1.000 0.000 2.013 4.025

23 the horse raced past the barn fell

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26 ‘the’ conveys no information

27 the horse raced past the barn fell

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