It focuses on how computers can understand "gapped" sentences—where words are omitted but understood (e.g., "Paul likes coffee and Mary tea"). The authors propose methods to help AI fill in these missing pieces. Source: ACL Anthology N18-1105
This paper introduces "Abstract Syntax Networks," a model designed to convert natural language descriptions into executable code (like Python or SQL) by predicting the structure of the code directly. Source: ACL Anthology P17-1105 1105mp4
This paper uses a Transformer-based model to categorize documents more accurately by figuring out the specific meaning of a word based on the domain it's used in (e.g., "bank" in finance vs. "bank" in geography). Source: ACL Anthology P19-1105 It focuses on how computers can understand "gapped"
2. Sentences with Gapping: Parsing and Reconstructing Elided Material (2018) Computational Linguistics Source: ACL Anthology P17-1105 This paper uses a
3. Text Categorization by Learning Predominant Sense of Words (2019) Machine Learning / NLP
If you are referring to a file named 1105.mp4 rather than an academic paper ID, recent social media results show a video by Birkbecks Jewellers titled "1105.mp4," which features the "hand-off" of a custom ring from a paper design sketch to a finished piece.
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