28 results on '"Shafaei-Bajestan, Elnaz"'
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2. The pluralization palette: unveiling semantic clusters in English nominal pluralization through distributional semantics
3. Making sense of spoken plurals
4. How direct is the link between words and images?
5. Language with Vision: a Study on Grounded Word and Sentence Embeddings
6. Semantic properties of English nominal pluralization: Insights from word embeddings
7. The processing of pseudoword form and meaning in production and comprehension: A computational modeling approach using linear discriminative learning
8. Language with vision: A study on grounded word and sentence embeddings
9. How direct is the link between words and images?
10. Making sense of spoken plurals
11. pyndl: Naïve Discriminative Learning in Python
12. Modelling semantic difference between the Indonesian prefixes PE- and PEN- using a vector space model
13. A semantic vector model for the Indonesian prefixes pe- and peN
14. LDL-AURIS: Error-driven Learning in Modeling Spoken Word Recognition
15. Visual grounding of abstract and concrete words: A response to G\'unther et al. (2020)
16. LDL-AURIS: a computational model, grounded in error-driven learning, for the comprehension of single spoken words.
17. Exploring semantic differences between the Indonesian prefixes PE- and PEN- using a vector space model
18. Predictive articulatory speech synthesis with semantic discrimination
19. Exploring semantic differences between the Indonesian prefixes PE- and PEN- using a vector space model.
20. LDL-AURIS: a computational model, grounded in error-driven learning, for the comprehension of single spoken words
21. LDL-AURIS: a computational model, grounded in error-driven learning, for the comprehension of single spoken words
22. Exploring semantic differences between the Indonesian prefixesPE-andPEN-using a vector space model
23. On the processing of nonwords in word naming and auditory lexical decision
24. LDL-AURIS: A computational model, grounded in error-driven learning, for the comprehension of single spoken words
25. The processing of pseudoword form and meaning in production and comprehension: A computational modeling approach using linear discriminative learning
26. Semantic Vector Model on the Indonesian Prefixes pe- and peN
27. The Discriminative Lexicon: A Unified Computational Model for the Lexicon and Lexical Processing in Comprehension and Production Grounded Not in (De)Composition but in Linear Discriminative Learning
28. Wide Learning for Auditory Comprehension
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