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---
date: '2022-11-27T13:14:43'
hypothesis-meta:
created: '2022-11-27T13:14:43.604240+00:00'
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title:
- Analysis_of_REF_impact.pdf
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tags:
- lda
- comprehensive impact
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- exact: Topic modelling was used to determine common topics across the wholecorpus.
Sixty-five topics were found (of which 60 were used) using theApache Mallet
Toolkit Latent Dirichlet Allocation (LDA) algorithm.
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source: https://webarchive.nationalarchives.gov.uk/ukgwa/20170712131025mp_/http://www.hefce.ac.uk/media/HEFCE,2014/Content/Pubs/Independentresearch/2015/Analysis,of,REF,impact/Analysis_of_REF_impact.pdf
text: The authors used LDA with k=60 across full text case studies. The Apache Mallet
implementation was used.
updated: '2022-11-27T13:14:43.604240+00:00'
uri: https://webarchive.nationalarchives.gov.uk/ukgwa/20170712131025mp_/http://www.hefce.ac.uk/media/HEFCE,2014/Content/Pubs/Independentresearch/2015/Analysis,of,REF,impact/Analysis_of_REF_impact.pdf
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display_name: James Ravenscroft
in-reply-to: https://webarchive.nationalarchives.gov.uk/ukgwa/20170712131025mp_/http://www.hefce.ac.uk/media/HEFCE,2014/Content/Pubs/Independentresearch/2015/Analysis,of,REF,impact/Analysis_of_REF_impact.pdf
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type: annotation
url: /annotations/2022/11/27/1669554883
---
<blockquote>Topic modelling was used to determine common topics across the wholecorpus. Sixty-five topics were found (of which 60 were used) using theApache Mallet Toolkit Latent Dirichlet Allocation (LDA) algorithm.</blockquote>The authors used LDA with k=60 across full text case studies. The Apache Mallet implementation was used.