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CHS: Small: Advancing the Human Work of Data Analytics

CHS: Small: Advancing the Human Work of Data Analytics
CHS:小型:推进数据分析的人类工作
批准号:
1526155
负责人:
Phoebe Sengers
金额:
$50.0万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-09-01 至 2019-08-31

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中文摘要
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英文摘要
Data analytics, the automatic discovery of patterns in large datasets, is an integral part of contemporary digital practice. Owing to their large scale, broad scope, and unprecedented granularity, such data are manually intractable and, thus, data mining algorithms do work that humans cannot. Still, data analytics necessitates human labor to make it work, for example deciding what data to collect, pre-processing the data to make them algorithm-ready, and making sense of the results. This research addresses related technical and societal challenges by identifying, tracking, and analyzing the multiple forms of human labor involved in the practice of data analytics, and by using this analysis to develop new methods for data analytics research and training. By articulating work practices that previously have been taught largely through apprenticeship, this work expands the reach of data analytics beyond those with direct connections to existing researchers. It increases transparency and accountability of data analysis by making clear how data analysis results are developed and by developing techniques to better communicate results. It supports a better fit between data analysis and domain contexts and demonstrates good practices for integrating social and technical research. The key question this project will answer is how people and machines can work together more effectively to make sense of large-scale data.Through a collaboration between sociologists of technology and data scientists, this research will identify and address invisible labor at three stages in the analytics process: (1) Conceptualization: How is a problem conceptualized and translated into a machine-solvable data analytic problem? (2) Pre-processing: How are data collected, cleaned, and made algorithm-ready? (3) Post-processing: How are the results of data analysis contextualized, represented, and made sense of, both individually and publically? This research answers these questions by analyzing the uptake of data analytics in the digital humanities. This is a useful site for surfacing questions of human labor because data analytics is a powerful potential tool for the humanities, but does not map directly onto traditional research methods in this field. Thus, mapping problems onto data analytics and translating the results of data analytics into meaningful arguments for the target domain requires more explicit articulation than is the case in more "data-native" disciplines. This research develops implications for the practice of data analysis in 4 areas: (1) designing new curricula for training in data analysis; (2) developing software systems and research methods that better address and support human labor; (3) exploring new ways to make the process of data analysis transparent, accountable, and communicable; and (4) creating a nuanced sociological understanding of the practice of data analysis.
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