Difference between revisions of "Event:AMTA 2020"

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|Camera ready=2020/07/27
 
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|Submitting link=https://www.softconf.com/amta2020/papers/
 
|Submitting link=https://www.softconf.com/amta2020/papers/
|has Keynote speaker=ColinCherry, Mona Diab,Chris Wendt, Eric Paquin
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|has Keynote speaker=Colin Cherry, Mona Diab, Chris Wendt, Eric Paquin
 
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  * Advances in adaptive and interactive MT technologies.
 
  * Advances in adaptive and interactive MT technologies.
 
  * Process and criteria for migrating to Neural MT from other systems, such as Statistical MT.
 
  * Process and criteria for migrating to Neural MT from other systems, such as Statistical MT.
  * Using MT for leveraging between similar languages, such as Simplified and TraditionalChinese, Russian and Ukrainian, Spanish and    Catalan; and language variants such as US to UK English, Brazilian to Continental Portuguese.   
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  * Using MT for leveraging between similar languages, such as Simplified and Traditional Chinese, Russian and Ukrainian, Spanish and    Catalan; and language variants such as US to UK English, Brazilian to Continental Portuguese.   
 
  * MT quality and confidence scoring, tools, and metrics that support business KPIs.
 
  * MT quality and confidence scoring, tools, and metrics that support business KPIs.
 
  * Productivity measures and quality frameworks that enhance business processes and translation workflows.
 
  * Productivity measures and quality frameworks that enhance business processes and translation workflows.

Revision as of 11:13, 7 July 2022

Topics

Topics of interest may include, but are not limited to, the following:

* Making the business case for adopting MT to drive business requirements, expand markets and engage with customers.
* Practical applications for using raw (aka stock) MT no human intervention, such as post editing.
* Novel approaches to using MT in a commercial environment.
* Advances in adaptive and interactive MT technologies.
* Process and criteria for migrating to Neural MT from other systems, such as Statistical MT.
* Using MT for leveraging between similar languages, such as Simplified and Traditional Chinese, Russian and Ukrainian, Spanish and     Catalan; and language variants such as US to UK English, Brazilian to Continental Portuguese.  
* MT quality and confidence scoring, tools, and metrics that support business KPIs.
* Productivity measures and quality frameworks that enhance business processes and translation workflows.
* TM cleanup and corpus preparation techniques for engine training.
* Approaches and challenges to building your own MT engines.
* Quality vs. quantity and fit for purpose when choosing corpora for customizing engines (e.g. Translation Memories, terminology/glossaries, Do Not Translate lists).
* MT Post Editing challenges.
* New business applications for MT; for example, speech to speech, speech to text, videos, search and indexing applications, emergency response and disaster management, social media, chatbots.
* API challenges such as tag handling and/or reordering.
* Open Standards for machine translation
* Overview and comparisons of open source MT tools and services.
* Artificial Intelligence approaches to machine translation including Natural Language Processing or Machine Learning applications to enhance the translation process (e.g. information extraction and retrieval, text categorization, Named Entity Recognition, POS tagging, etc.).
* Approaches and challenges to using MT for low-resource or long-tail languages.
* Advances in domain adaptation.
* Handling potentially offensive, illegal or profane language in MT output

The 14th biennial conference of the Association for Machine Translation in the Americas has been rescheduled to OCTOBER 6-9 and will be held as a virtual conference using Microsoft Teams, a powerful, enterprise collaboration platform. It was previously scheduled from September 8th to the 12th in Orlando, Florida

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