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TasRec: A framework for task recommendation in crowdsourcing

  • Kumar Abhinav
  • , Gurpriya Kaur Bhatia
  • , Alpana Dubey
  • , Sakshi Jain
  • , Nitish Bhardwaj
  • Accenture Labs
  • IIIT-Delhi

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

14 Citations (Scopus)

Abstract

Lately, crowdsourcing has emerged as a viable option of getting work done by leveraging the collective intelligence of the crowd. With many tasks posted every day, the size of crowdsourcing platforms is growing exponentially. Hence, workers face an important challenge of selecting the right task. Despite the task filtering criteria available on the platform to select the right task, crowd workers find it difficult to choose the most relevant task and must glean through the filtered tasks to find the relevant tasks. In this paper, we propose a framework for recommending tasks to workers. The proposed framework evaluates the worker's fitment over the tasks based on worker's preference, past tasks (s)he has performed, and tasks done by similar workers. We evaluated our approach on the datasets collected from popular crowdsourcing platform. Our experimental results based on 5,000 tasks and 3,000 workers show that the recommendation made by our framework is significantly better as compared to the baseline approach.

Original languageEnglish
Title of host publicationProceedings - 2020 ACM/IEEE 15th International Conference on Global Software Engineering, ICGSE 2020
PublisherAssociation for Computing Machinery, Inc
Pages86-95
Number of pages10
ISBN (Electronic)9781450370936
DOIs
Publication statusPublished - 26 Jun 2020
Externally publishedYes
Event15th ACM/IEEE International Conference on Global Software Engineering, ICGSE 2020 - Seoul, Korea, Republic of
Duration: 26 Jun 202028 Jun 2020

Publication series

NameProceedings - 2020 ACM/IEEE 15th International Conference on Global Software Engineering, ICGSE 2020

Conference

Conference15th ACM/IEEE International Conference on Global Software Engineering, ICGSE 2020
Country/TerritoryKorea, Republic of
CitySeoul
Period26/06/2028/06/20

Keywords

  • crowdsourcing
  • personalization
  • recommendation
  • task selection

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