Creating Shared Understanding in Statistics and Data Science Collaborations

Statisticians and data scientists have been called upon to increase the impact they have through their collaborative projects. Statistics and data science practitioners and their educators can achieve and enable greater impact by learning how to create shared understanding with their collaborators a...

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Published inJournal of Statistics and Data Science Education Vol. 30; no. 1; pp. 54 - 64
Main Authors Vance, Eric A., Alzen, Jessica L., Smith, Heather S.
Format Journal Article
LanguageEnglish
Published Alexandria Taylor & Francis 2022
Taylor & Francis Ltd
Taylor & Francis Group
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ISSN2693-9169
2693-9169
DOI10.1080/26939169.2022.2035286

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Abstract Statisticians and data scientists have been called upon to increase the impact they have through their collaborative projects. Statistics and data science practitioners and their educators can achieve and enable greater impact by learning how to create shared understanding with their collaborators as well as teaching this concept to their students, colleagues, and mentees. In this article, we explore and explain the concepts of common knowledge and shared understanding, which is the basis for action to accomplish greater impacts. We also explore related concepts of misunderstanding and doubtful understanding. We describe a process for teaching oneself and others how to create shared understanding. We conclude that incorporating the concept of shared understanding into one's practice of statistics or data science and following the steps described will result in having more impact on projects and throughout one's career.
AbstractList Statisticians and data scientists have been called upon to increase the impact they have through their collaborative projects. Statistics and data science practitioners and their educators can achieve and enable greater impact by learning how to create shared understanding with their collaborators as well as teaching this concept to their students, colleagues, and mentees. In this paper, we explore and explain the concepts of common knowledge and shared understanding, which is the basis for action to accomplish greater impacts. We also explore related concepts of misunderstanding and doubtful understanding. We describe a process for teaching oneself and others how to create shared understanding. We conclude that incorporating the concept of shared understanding into one’s practice of statistics or data science and following the steps described will result in having more impact on projects and throughout one’s career.
Statisticians and data scientists have been called upon to increase the impact they have through their collaborative projects. Statistics and data science practitioners and their educators can achieve and enable greater impact by learning how to create shared understanding with their collaborators as well as teaching this concept to their students, colleagues, and mentees. In this article, we explore and explain the concepts of common knowledge and shared understanding, which is the basis for action to accomplish greater impacts. We also explore related concepts of misunderstanding and doubtful understanding. We describe a process for teaching oneself and others how to create shared understanding. We conclude that incorporating the concept of shared understanding into one's practice of statistics or data science and following the steps described will result in having more impact on projects and throughout one's career.
Author Alzen, Jessica L.
Smith, Heather S.
Vance, Eric A.
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SubjectTerms Applied mathematics
Capstone Experiences
Collaboration
Common knowledge
Communication
Communication Skills
Consulting
Cooperation
Data Analysis
Data science
Doubtful understanding
Expertise
Interdisciplinary Approach
Interdisciplinary aspects
Knowledge
Laboratories
Mathematics Education
Misconceptions
Science Curriculum
Science education
Science Instruction
Scientists
Skills
Statistical analysis
Statistical Data
Statistical practice
Statistics Education
Subject specialists
Teaching
Teaching Methods
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