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Text Severity

Care Quality Commission Published 28 Mar 2018 Contracts Finder

key details

Value£24,164
Statuscomplete
Category (CPV) 79000000 +1 more
Deadline25 Jan 2018
Contract start5 Mar 2018
Contract end31 May 2018
Procedurelimited
SME suitableYes
OCIDocds-b5fd17-10766e8f-d5bd-40a3-bfc0-6aca6422570b

Award

SupplierValueDateStatus
QUEEN MARY UNIVERSITY OF LONDON £24,164 5 Feb 2018 active

description

The CQC require an automatic tool to analyse large numbers of online patient comments and detect significant negative changes in care quality. This poses challenges which distinguish

it from standard text mining problems, including:

  1. A highly unbalanced dataset: cases of interest will make up only a very small percentage of the data (c.0.5%);
  2. A variable domain: the tool must cope with comments from a range of online sources, and be adaptable to social media in future; 3. A sensitive use case: the desired characteristics of the output (in particular, whether it is more important to avoid false positives or false negatives) will depend on how it is used.

notice history

1 notice published against this procurement.

PublishedTypeRegimeNotice
28 Mar 2018 Award update (awardUpdate) · 1fc92e8c-e458-41cc-a90a-879e5ffca349-208219

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