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Toward improved artificial intelligence in requirements engineering: Metadata for tracing datasets

  • Jane Huffman Hayes
  • , Jared Payne
  • , Mallory Leppelmeier

Producción científica: Conference contributionrevisión exhaustiva

11 Citas (Scopus)

Resumen

Data is the driver of artificial intelligence in requirements engineering. While some applications may lend themselves to training sets that are easily accessible (such as sentiment detection, feature request classification, requirements prioritization), other tasks face data challenges. Tracing and domain model building are examples of applications where data is not easily found or in the proper format or with the necessary metadata to support deep learning, machine learning, or other artificial intelligence techniques. This paper surveys datasets available from sources such as the Center of Excellence for Software and Systems Traceability and provides valuable metadata that can be used by re-searchers or practitioners when deciding what datasets to use, what aspects of datasets to use, what features to use in deep learning, and more.

Idioma originalEnglish
Título de la publicación alojadaProceedings - 2019 IEEE 27th International Requirements Engineering Conference Workshops, REW 2019
Páginas256-262
Número de páginas7
ISBN (versión digital)9781728151656
DOI
EstadoPublished - sept 2019
Evento27th IEEE International Requirements Engineering Conference Workshops, REW 2019 - Jeju Island, Korea, Republic of
Duración: sept 23 2019sept 27 2019

Serie de la publicación

NombreProceedings - 2019 IEEE 27th International Requirements Engineering Conference Workshops, REW 2019

Conference

Conference27th IEEE International Requirements Engineering Conference Workshops, REW 2019
País/TerritorioKorea, Republic of
CiudadJeju Island
Período9/23/199/27/19

Nota bibliográfica

Publisher Copyright:
© 2019 IEEE.

Financiación

FinanciadoresNúmero del financiador
National Science Foundation (NSF)1642134

    ASJC Scopus subject areas

    • Computer Networks and Communications
    • Software
    • Safety, Risk, Reliability and Quality
    • Artificial Intelligence

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