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1
Frequency-Dependent Regularization in Syntactic Constructions
In: Proceedings of the Society for Computation in Linguistics (2021)
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2
StoryMiner: An Automated and Scalable Framework for Story Analysis and Detection from Social Media
Shahbazi, Behnam. - : eScholarship, University of California, 2019
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3
Collecting, Transcribing, Analyzing : Machine-Assisted Linguistic Fieldwork ; Collecter, Transcrire, Analyser : quand la machine assiste le linguiste dans son travail de terrain
Gauthier, Elodie. - : HAL CCSD, 2018
In: https://tel.archives-ouvertes.fr/tel-01893309 ; Informatique et langage [cs.CL]. Université Grenoble Alpes, 2018. Français. ⟨NNT : 2018GREAM011⟩ (2018)
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4
Feature Representation in Mining and Language Processing
Vu, Thuy. - : eScholarship, University of California, 2017
In: Vu, Thuy. (2017). Feature Representation in Mining and Language Processing. UCLA: Computer Science 0201. Retrieved from: http://www.escholarship.org/uc/item/9g54h388 (2017)
Abstract: Feature representation has been one of the most important factors for the success of machine learning algorithms. Since 2006, deep learning has been widely considered for various problems in different disciplines and, most of the time, has reset state-of-the-art results --- thanks to its excellent ability to learn highly abstract representations of data. I focus on extracting additional structural features in network analysis and natural language processing (NLP) --- via learning novel vector-based representations, usually known as embeddings.For network analysis, I propose to learn representations for nodes, node embeddings, for social network applications. The embeddings are computed using attributes and links of nodes in the network. Experimental studies on community detection and mining tasks suggest that node embeddings can further reveal deeper structure of the network.For NLP, I address the learning of representations at three levels: words, word relations, and linguistic expressions. First, I propose to extend the standard word embedding training process into two phases, treating context as second order in nature. This strategy can effectively compute embeddings for polysemous concepts of words, adding an extra conceptual layer for standard word embeddings. Second, I introduce the representations of ``semantic binders'' for words. These representations are learned using categorial grammar and are shown to effectively handle disambiguation, especially when meaning of a word largely depends on a specific context. Finally, I present a three-layer framework to learn representation for linguistic expressions --- for solving the semantic compositionality problem, using recurrent neural networks driven by categorial-based combinatory rules. This strategy specifically addresses the limitations of recurrent neural network approaches in deciding how --- and when --- to include individual information in the compositional embedding. The framework is flexible and can be integrated with the proposed representations. I study the efficiency of the proposed representations in different NLP applications: word analogies, subject-verb-object agreement, paraphrasing, and sentiment analysis.
Keyword: Computer science; data mining; feature representation; large scale data processing; machine learning; natural language processing; neural network
URL: http://www.escholarship.org/uc/item/9g54h388
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5
Computational and Statistical Tradeoffs via Data Summarization
Lucic, Mario. - : ETH Zurich, 2017
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6
Dynamics, causation, duration in the predicate-argument structure of verbs : a computational approach based on parallel corpora ...
Samardzic, Tanja. - : Université de Genève, 2013
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7
Dynamics, causation, duration in the predicate-argument structure of verbs : a computational approach based on parallel corpora
Samardzic, Tanja. - : Université de Genève, 2013
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8
Textual Query of Personal Photos Facilitated by Large-scale Web Data
In: http://www.cs.princeton.edu/%7Eyimingl/proj/largedb/photo_ret_pami.pdf (2010)
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9
Using Large-Scale Web Data to Facilitate Textual Query Based Retrieval of Consumer Photos
In: http://www.ntu.edu.sg/home/IvorTsang/publication/ACM_MM09.pdf (2009)
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10
Schema Matching and Integration in Large Scale Scenarios ; Intégration de Schémas Large Echelle
Saleem, Khalid. - : HAL CCSD, 2008
In: https://tel.archives-ouvertes.fr/tel-00352352 ; Computer Science [cs]. Université Montpellier II - Sciences et Techniques du Languedoc, 2008. English (2008)
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11
Applications in pharmacokinetic modeling
Arnold, Esther. - : uga, 2003
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12
光ディスクを使用した大量日本語データの蓄積
斎藤 秀紀; Hidenori SAITO. - : 国立国語研究所, 1987
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13
High-Speed Integrated Circuits for Military Applications.
In: DTIC AND NTIS (1979)
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14
Exploiting Lexical Dependencies from Large-Scale Data for Better Shift-Reduce Constituency Parsing
In: http://aclweb.org/anthology/C/C12/C12-1194.pdf
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15
Textual Query of Personal Photos Facilitated by Large-scale Web Data
In: http://vc.sce.ntu.edu.sg/index_files/pami_bitstream.pdf
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16
Harnessing the Scientific Data Produced by the Experimental Evaluation of Search Engines and Information Access Systems
In: http://publik.tuwien.ac.at/files/PubDat_203905.pdf
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