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PredPsych: A toolbox for predictive machine learning-based approach in experimental psychology research
Recent years have seen an increased interest in machine learning-based predictive methods for analyzing quantitative behavioral data in experimental psychology. While these methods can achieve relatively greater sensitivity compared to conventional univariate techniques, they still lack an establish...
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Published in: | Behavior research methods 2018-08, Vol.50 (4), p.1657-1672 |
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Main Authors: | , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites Items that cite this one |
Online Access: | Get full text |
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Summary: | Recent years have seen an increased interest in machine learning-based predictive methods for analyzing quantitative behavioral data in experimental psychology. While these methods can achieve relatively greater sensitivity compared to conventional univariate techniques, they still lack an established and accessible implementation. The aim of current work was to build an open-source R toolbox – “
PredPsych
” – that could make these methods readily available to all psychologists.
PredPsych
is a user-friendly, R toolbox based on machine-learning predictive algorithms. In this paper, we present the framework of
PredPsych
via the analysis of a recently published multiple-subject motion capture dataset. In addition, we discuss examples of possible research questions that can be addressed with the machine-learning algorithms implemented in
PredPsych
and cannot be easily addressed with univariate statistical analysis. We anticipate that
PredPsych
will be of use to researchers with limited programming experience not only in the field of psychology, but also in that of clinical neuroscience, enabling computational assessment of putative bio-behavioral markers for both prognosis and diagnosis. |
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ISSN: | 1554-3528 1554-351X 1554-3528 |
DOI: | 10.3758/s13428-017-0987-2 |