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      Improving the Quality of Neural Machine Translation Through Proper Translation of Name Entities

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          Abstract

          In this paper, we have shown a method of improving the quality of neural machine translation by translating/transliterating name entities as a preprocessing step. Through experiments we have shown the performance gain of our system. For evaluation we considered three types of name entities viz person names, location names and organization names. The system was able to correctly translate mostly all the name entities. For person names the accuracy was 99.86%, for location names the accuracy was 99.63% and for organization names the accuracy was 99.05%. Overall, the accuracy of the system was 99.52%

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          Author and article information

          Journal
          12 May 2023
          Article
          10.1109/ISCON57294.2023.10111938
          2305.07360
          42c6c647-5076-447c-ae95-bfb53f0ffeed

          http://creativecommons.org/licenses/by/4.0/

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          4 pages, 4 tables, 1 figure, ISCON 2023 Conference Paper
          cs.CL cs.AI

          Theoretical computer science,Artificial intelligence
          Theoretical computer science, Artificial intelligence

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