How to Code a Million Missions: Developing Bespoke Nonprofit Activity Codes Using Machine Learning Algorithms
National Taxonomy of Exempt Entities (NTEE) codes have become the primary classifier of nonprofit missions since they were developed in the mid-1980s in response to growing demands for a taxonomy of nonprofit activities (Herman in Nonprofit and Voluntary Sector Quarterly 19(3):293–306, 1990, Barman...
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| Published in | Voluntas (Manchester, England) Vol. 34; no. 1; pp. 29 - 38 |
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| Main Authors | , , |
| Format | Journal Article |
| Language | English |
| Published |
New York
Springer US
01.02.2023
Springer Nature B.V |
| Subjects | |
| Online Access | Get full text |
| ISSN | 0957-8765 1573-7888 |
| DOI | 10.1007/s11266-021-00420-z |
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| Abstract | National Taxonomy of Exempt Entities (NTEE) codes have become the primary classifier of nonprofit missions since they were developed in the mid-1980s in response to growing demands for a taxonomy of nonprofit activities (Herman in Nonprofit and Voluntary Sector Quarterly 19(3):293–306, 1990, Barman in Social Science History 37:103–141, 2013). However, the increasingly complex nature of nonprofits means that NTEE codes may be outdated or lack specificity. As an alternative, scholars and practitioners can create a bespoke taxonomy for a specific purpose by hand-coding a training dataset and using machine learning classifiers to apply the codes to a large population. This paper presents a framework for determining training set sizes needed to scale custom taxonomies using machine learning algorithms. |
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| AbstractList | National Taxonomy of Exempt Entities (NTEE) codes have become the primary classifier of nonprofit missions since they were developed in the mid-1980s in response to growing demands for a taxonomy of nonprofit activities (Herman in Nonprofit and Voluntary Sector Quarterly 19(3):293–306, 1990, Barman in Social Science History 37:103–141, 2013). However, the increasingly complex nature of nonprofits means that NTEE codes may be outdated or lack specificity. As an alternative, scholars and practitioners can create a bespoke taxonomy for a specific purpose by hand-coding a training dataset and using machine learning classifiers to apply the codes to a large population. This paper presents a framework for determining training set sizes needed to scale custom taxonomies using machine learning algorithms. |
| Author | van Holm, Eric Joseph Lecy, Jesse D. Santamarina, Francisco J. |
| Author_xml | – sequence: 1 givenname: Francisco J. orcidid: 0000-0003-1724-8769 surname: Santamarina fullname: Santamarina, Francisco J. email: fjsantam@uw.edu organization: Evans School of Public Policy and Governance, University of Washington – sequence: 2 givenname: Jesse D. surname: Lecy fullname: Lecy, Jesse D. organization: Watts College, Arizona State University – sequence: 3 givenname: Eric Joseph surname: van Holm fullname: van Holm, Eric Joseph organization: Department of Political Science, Urban Entrepreneurship and Policy Institute, The University of New Orleans |
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| Cites_doi | 10.1177/089976409001900309 10.1177/0899764020968153 10.18637/jss.v028.i05 10.21105/joss.00774 10.1080/15309576.2018.1526092 10.2307/23361114 10.1177/0899764018768019 10.1007/978-3-319-24277-4 10.1109/ICPR.2010.764 |
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| DOI | 10.1007/s11266-021-00420-z |
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| References | Barman (CR1) 2013; 37 CR3 Lewis, Yang, Rose, Li (CR13) 2004; 5 Fyall, Moore, Gugerty (CR4) 2018; 47 Herman (CR6) 1990; 19 Hand, Yu (CR5) 2001; 69 CR8 CR19 CR7 CR18 CR17 CR16 CR15 CR24 Lecy, Ashley, Santamarina (CR11) 2019; 42 CR12 Ma (CR14) 2021; 50 CR22 CR10 CR21 Benoit, Watanabe, Wang, Nulty, Obeng, Müller, Matsuo (CR2) 2018; 3 Kuhn (CR9) 2008; 28 CR20 R Fyall (420_CR4) 2018; 47 420_CR24 RD Herman (420_CR6) 1990; 19 420_CR12 K Benoit (420_CR2) 2018; 3 420_CR22 420_CR10 420_CR21 420_CR20 DD Lewis (420_CR13) 2004; 5 420_CR3 JD Lecy (420_CR11) 2019; 42 420_CR19 420_CR18 420_CR17 J Ma (420_CR14) 2021; 50 420_CR16 DJ Hand (420_CR5) 2001; 69 420_CR15 M Kuhn (420_CR9) 2008; 28 E Barman (420_CR1) 2013; 37 420_CR8 420_CR7 |
| References_xml | – volume: 19 start-page: 293 issue: 3 year: 1990 end-page: 306 ident: CR6 article-title: Methodological issues in studying the effectiveness of nongovernmental and nonprofit organizations publication-title: Nonprofit and Voluntary Sector Quarterly doi: 10.1177/089976409001900309 – ident: CR21 – ident: CR22 – ident: CR19 – ident: CR18 – volume: 50 start-page: 662 issue: 3 year: 2021 end-page: 687 ident: CR14 article-title: Automated coding using machine learning and remapping the US nonprofit sector: A guide and benchmark publication-title: Nonprofit and Voluntary Sector Quarterly doi: 10.1177/0899764020968153 – ident: CR3 – ident: CR15 – volume: 28 start-page: 1 issue: 5 year: 2008 end-page: 26 ident: CR9 article-title: Building predictive models in R using the caret package publication-title: Journal of Statistical Software doi: 10.18637/jss.v028.i05 – ident: CR16 – volume: 3 start-page: 774 issue: 30 year: 2018 ident: CR2 article-title: quanteda: An R package for the quantitative analysis of textual data publication-title: Journal of Open Source Software doi: 10.21105/joss.00774 – ident: CR12 – ident: CR17 – ident: CR10 – volume: 42 start-page: 115 issue: 1 year: 2019 end-page: 141 ident: CR11 article-title: Do nonprofit missions vary by the political ideology of supporting communities? Some preliminary results publication-title: Public Performance & Management Review doi: 10.1080/15309576.2018.1526092 – volume: 37 start-page: 103 year: 2013 end-page: 141 ident: CR1 article-title: Classificatory struggles in the nonprofit sector: The formation of the national taxonomy of exempt entities, 1969–1987 publication-title: Social Science History doi: 10.2307/23361114 – volume: 69 start-page: 385 issue: 3 year: 2001 end-page: 398 ident: CR5 article-title: Idiot's Bayes—not so stupid after all? publication-title: International Statistical Review – ident: CR7 – ident: CR8 – volume: 47 start-page: 677 issue: 4 year: 2018 end-page: 701 ident: CR4 article-title: Beyond NTEE codes: Opportunities to understand nonprofit activity through mission statement content coding publication-title: Nonprofit and Voluntary Sector Quarterly doi: 10.1177/0899764018768019 – ident: CR24 – volume: 5 start-page: 361 issue: Apr year: 2004 end-page: 397 ident: CR13 article-title: Rcv1: A new benchmark collection for text categorization research publication-title: Journal of machine learning research – ident: CR20 – ident: 420_CR10 – ident: 420_CR12 – volume: 3 start-page: 774 issue: 30 year: 2018 ident: 420_CR2 publication-title: Journal of Open Source Software doi: 10.21105/joss.00774 – volume: 5 start-page: 361 issue: Apr year: 2004 ident: 420_CR13 publication-title: Journal of machine learning research – ident: 420_CR22 doi: 10.1007/978-3-319-24277-4 – volume: 19 start-page: 293 issue: 3 year: 1990 ident: 420_CR6 publication-title: Nonprofit and Voluntary Sector Quarterly doi: 10.1177/089976409001900309 – volume: 42 start-page: 115 issue: 1 year: 2019 ident: 420_CR11 publication-title: Public Performance & Management Review doi: 10.1080/15309576.2018.1526092 – volume: 50 start-page: 662 issue: 3 year: 2021 ident: 420_CR14 publication-title: Nonprofit and Voluntary Sector Quarterly doi: 10.1177/0899764020968153 – volume: 47 start-page: 677 issue: 4 year: 2018 ident: 420_CR4 publication-title: Nonprofit and Voluntary Sector Quarterly doi: 10.1177/0899764018768019 – ident: 420_CR24 – volume: 37 start-page: 103 year: 2013 ident: 420_CR1 publication-title: Social Science History doi: 10.2307/23361114 – volume: 28 start-page: 1 issue: 5 year: 2008 ident: 420_CR9 publication-title: Journal of Statistical Software doi: 10.18637/jss.v028.i05 – ident: 420_CR8 – ident: 420_CR3 doi: 10.1109/ICPR.2010.764 – ident: 420_CR7 – ident: 420_CR20 – volume: 69 start-page: 385 issue: 3 year: 2001 ident: 420_CR5 publication-title: International Statistical Review – ident: 420_CR21 – ident: 420_CR15 – ident: 420_CR16 – ident: 420_CR18 – ident: 420_CR17 – ident: 420_CR19 |
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| Title | How to Code a Million Missions: Developing Bespoke Nonprofit Activity Codes Using Machine Learning Algorithms |
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