Improving machine translation literacy to facilitate and enhance scholarly communication

poster / demo / art installation
Authorship
  1. 1. Lynne Bowker

    Université d'Ottawa (University of Ottawa)

Work text
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English is the main language of scholarly communication, but, most researchers are not native English speakers. Contemporary machine translation approaches such as neural machine translation (NMT) are data-driven and use artificial-intelligence-based machine learning techniques; however, such tools rarely produce high quality output of specialized text without human intervention. There is an emerging need for machine translation (MT) literacy among non-Anglpohone students and faculty who must both read and write in English in order to participate fully in the scholarly communication process. We designed and pilot tested a machine translation literacy workshop to help researchers use MT more effectively for scholarly tasks such as: 1) search and discovery of scholarly texts; 2) reading and evaluating scholarly texts; 3) research communication in international teams; and 4) writing for scholarly publishing. Pre- and post-workshop surveys were used to evaluate the success of the workshop and recommend improvements for future iterations.

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Conference Info

In review

ADHO - 2020
"carrefours / intersections"

Hosted at Carleton University, Université d'Ottawa (University of Ottawa)

Ottawa, Ontario, Canada

July 20, 2020 - July 25, 2020

475 works by 1078 authors indexed

Conference cancelled due to coronavirus. Online conference held at https://hcommons.org/groups/dh2020/. Data for this conference were initially prepared and cleaned by May Ning.

Conference website: https://dh2020.adho.org/

References: https://dh2020.adho.org/abstracts/

Series: ADHO (15)

Organizers: ADHO