scholarly journals Lexical and Phrasal Semantic Extension of Japanese Color Words Based on Metonymic Motivation

Author(s):  
Samsul Maarif
Keyword(s):  
2012 ◽  
Vol 532-533 ◽  
pp. 1263-1267
Author(s):  
Hui Jia ◽  
Guo Hua Geng ◽  
Jin Xia Yang

This paper presented a new method to construct semantic web of three-dimension model database based on ontology. Firstly we build ontology of three-dimension model database, according the model to extract classes, objects and attributes. Secondly utilize WordNet which is an English ontology to expand original ontology node to semantic extension node, including synonym, hypernym, hyponym and holonym. Experiment result shows that this method not only effectively expands the semantic vocabularies of a 3D model database, but also keeps good semantic relevance of the expanded vocabularies to the original ones, so as to achieve semantic based 3D model retrieval effectively.


2020 ◽  
pp. 351-368
Author(s):  
Jethro Akinyemi Adejumo

This article contains a descriptive survey on the acceptability of equivalence-based translation of the menu of TECNO Android phones into the Yorùbá language, one of the three major languages in Nigeria. Words translated into Yorùbá were categorized into strategies of borrowing, semantic extension and composition and analysed from equivalence effect. In the follow-up survey, information and communication technology experts and general mobile phone users were carefully chosen and consulted for an assessment of the appropriateness of the translation. The study concluded that equivalence, the key term of linguistic translation theories, is still a viable concept in the translation of information and communication technology and equivalence-based translation into Yorùbá will not only promote the language but also contribute to effective communication in a multilingual global village that the world is fast becoming.


2017 ◽  
Vol 13 (4) ◽  
pp. 109-133 ◽  
Author(s):  
Pu Li ◽  
Yuncheng Jiang ◽  
Ju Wang ◽  
Zhilei Yin

With the advent of Big Data Era, users prefer to get knowledge rather than pages from Web. Linked Data, a new form of knowledge representation and publishing described by RDF, can provide a more precise and comprehensible semantic structure to satisfy the aforementioned requirement. Further, the SPARQL query language for RDF is the foundation of many current researches about Linked Data querying. However, these SPARQL-based methods cannot fully express the semantics of the query, so they cannot unleash the potential of Linked Data. To fill this gap, this paper designs a new querying method which extends the SPARQL pattern. Firstly, the authors present some new semantic properties for predicates in RDF triples and design a Semantic Matrix for Predicates (SMP). They then establish a well-defined framework for the notion of Semantically-Extended Query Model for the Linked Data (SEQMLD). Moreover, the authors propose some novel algorithms for executing queries by integrating semantic extension into SPARQL pattern. Lastly, experimental results show that the authors' proposal has a good generality and performs better than some of the most representative similarity search methods.


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