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A fuzzy discrete event systems approach to selecting second-round combination antiretroviral therapy for HIV/AIDS patients

  • Hao Ying(corresponding author)
    ,
  • Feng Lin
    ,
  • Rodger David MacArthur
    ,
  • Jonathan A. Cohn
    ,
  • Daniel C. Barth-Jones
    ,
  • Bhavna Bharadwaj
*Corresponding author for this work
Scholary Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Sustainable Development Goals

  • SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well

Related Event

Title

NAFIPS 2006 - 2006 Annual Meeting of the North American Fuzzy Information Processing Society

Event type

Other

Date

06/03/2006 - 06/06/2006

Location

Montreal, QCCanada

Abstract

We have recently pioneered the development of an innovative general-purpose decision-making and optimization technology, called fuzzy discrete event systems (FDES). In the previous papers, we reported results of applying FDES to selecting optimal first-round regimens for HIV/AIDS patients. In the present paper, we describe our further effort to apply the FDES framework to the second-round treatment, which is more challenging primarily due to drug resistance that occurs during the first-round treatment. We focused on five currently popular second-round regimens and 16 different treatment objectives. Two clinical AIDS experts on our team independently rated the five regimens as first-choice to fifth-choice regimen for each objective and their selections were used as golden standard. We used a genetic algorithm to optimize 20 parameters of our system named AIDS-FDES so that its regimen choices best matched those of the experts individually (i.e., through two different parameters sets). Our preliminary results showed that for the first-choice regimens, the exact agreements between AIDS-FDES and expert A and expert B were 87.5% and 100%, respectively, whereas the mean agreement rate for the five regimens was 77.5% and 80.1%, respectively. For all the five regimens, the agreement within one preference level (i.e., one physician's second choice is another physician's first or third choice), which was an overall agreement measure, for experts A and B was 92.5% and 96.3%, respectively. We also optimized and used just one parameter set to match AIDS-FDES to both the experts simultaneously. The agreement within one preference level for expert A was 90% and 86.3% for expert B. In order to adjust for any agreement likely to occur simply by chance, a weighted Cohen's Kappa was used. The results for the expert's combined selections relative to AIDS-FDES demonstrated that the specialists agreed with the treatment selection made by the computer system with a weighted Cohen's Kappa of 0.78 (95% confidence interval is [0.69, 0.87]), which indicates that the expert's combined agreement with the System's choices (beyond that expected by chance) was importantly improved over that of either expert's agreement with each other.

Publication Information

Output type

Scholary Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Original language

English (US)

Article number

4216792

Pages from-to (Number of pages)

Pages 148-153 (6 pages)

Publication milestones

  • Published - 2006

Publication status

Published - 2006

Publication series

  • Publication series name: Annual Conference of the North American Fuzzy Information Processing Society - NAFIPS
1424403634, 9781424403639

Publication IDs

  • Scopus: 46749159283

Host publication title

Annual Conference of the North American Fuzzy Information Processing Society - NAFIPS

Publication metrics

Metrics

SciVal
Author count
8
SciVal
Paper percentile
25
Fractional count
1
Fractional count
0.13
Fractional count
7
Fractional count
0.88
Fractional count
1
Fractional count
1