Machine Learning In Translation Av Peng Wang, David B. Sawyer

Machine Learning In Translation Av Peng Wang, David B. Sawyer

Machine Learning in Translation introduces machine learning (ML) theories and technologies that are most relevant to translation processes, approaching the topic from a human perspective and emphasizing that ML and ML-driven technologies are tools for humans.Providing an explorat......
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<P><I>Machine Learning in Translation </I>introduces machine learning (ML) theories and technologies that are most relevant to translation processes, approaching the topic from a human perspective and emphasizing that ML and ML-driven technologies are tools for humans.</P><P>Providing an exploration of the common ground between human and machine learning and of the nature of translation that leverages this new dimension, this book helps linguists, translators, and localizers better find their added value in a ML-driven translation environment. Part One explores how humans and machines approach the problem of translation in their own particular ways, in terms of word embeddings, chunking of larger meaning units, and prediction in translation based upon the broader context. Part Two introduces key tasks, including machine translation, translation quality assessment and quality estimation, and other Natural Language Processing (NLP) tasks in translation. Part Three focuses on the role of
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Beskrivelse
Machine Learning in Translation introduces machine learning (ML) theories and technologies that are most relevant to translation processes, approaching the topic from a human perspective and emphasizing that ML and ML-driven technologies are tools for humans.Providing an exploration of the common ground between human and machine learning and of the nature of translation that leverages this new dimension, this book helps linguists, translators, and localizers better find their added value in a ML-driven translation environment. Part One explores how humans and machines approach the problem of translation in their own particular ways, in terms of word embeddings, chunking of larger meaning units, and prediction in translation based upon the broader context. Part Two introduces key tasks, including machine translation, translation quality assessment and quality estimation, and other Natural Language Processing (NLP) tasks in translation. Part Three focuses on the role of data in both human and machine learning processes. It proposes that a translator’s unique value lies in the capability to create, manage, and leverage language data in different ML tasks in the translation process. It outlines new knowledge and skills that need to be incorporated into traditional translation education in the machine learning era. The book concludes with a discussion of human-centered machine learning in translation, stressing the need to empower translators with ML knowledge, through communication with ML users, developers, and programmers, and with opportunities for continuous learning.This accessible guide is designed for current and future users of ML technologies in localization workflows, including students on courses in translation and localization, language technology, and related areas. It supports the professional development of translation practitioners, so that they can fully utilize ML technologies and design their own human-centered ML-driven translation workflows and NLP tasks.

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Oppdag kraften i Machine Learning In Translation Av Peng Wang, David B. Sawyer

Er du klar til å ta oversettelsene dine til neste nivå? Machine Learning In Translation gir deg en grundig innføring i hvordan maskinlæring (ML) kan revolusjonere oversettelsesprosessen! Boken kombinerer teori med praktiske verktøy, og presenterer ML som en viktig alliert for oversettere og lingvister.

Unike egenskaper ved boken

  • Praktisk tilnærming: Boken undersøker både menneskelig og maskinell læring, og hvordan disse to kan samarbeide for bedre oversettelser.
  • Interaktive oppgaver: Få innsikt i sentrale oppgaver som maskinoversettelse og kvalitetsevaluering, samt hvordan NLP (Natural Language Processing) kan anvendes.
  • Fokus på data: Lær hvordan språkdata kan brukes til å optimalisere oversettelsesprosesser, og oppdag den unike verdien en oversetter kan tilføre i en ML-drevet verden.
  • Utvikling av ferdigheter: Boken skal hjelpe oversettere med å tilegne seg nye kunnskaper og ferdigheter som er nødvendige i dagens teknologidrevne miljø.

For hvem er Machine Learning In Translation rettet mot?

Denne boken er perfekt for:

  • Studenter som studerer oversettelse og lokalisering.
  • Oversettere som ønsker å profesjonalisere seg i en ML-drevet arbeidsflyt.
  • Språkforskere som ønsker å forstå hvordan teknologi kan forbedre språkprosesser.

Så hvis du ønsker å holde tritt med fremtidens oversettelsesteknologi, er Machine Learning In Translation av Peng Wang og David B. Sawyer et absolutt must-have! Gjør deg klar til å bli inspirert og oppdatert på hvordan maskinlæring kan være en game-changer i oversettelsesindustrien.

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