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Risk-Adjusted Control Charts for Health Care Monitoring

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  • Willem Albers

Abstract

Attribute data from high-quality processes can be monitored effectively by deciding on whether or not to stop at each time where 𠑟 ≥ 1 failures have occurred. The smaller the degree of change in failure rate during out of control one wants to be optimally protected against, the larger the r should be. Under homogeneity, the distribution involved is negative binomial. However, in health care monitoring, (groups of) patients will often belong to different risk categories. In the present paper, we will show how information about category membership can be used to adjust the basic negative binomial charts to the actual risk incurred. Attention is also devoted to comparing such conditional charts to their unconditional counterparts. The latter do take possible heterogeneity into account but refrain from risk-adjustment. Note that in the risk adjusted case several parameters are involved, which will all be typically unknown. Hence, the potentially considerable estimation effects of the new charts will be investigated as well.

Suggested Citation

  • Willem Albers, 2011. "Risk-Adjusted Control Charts for Health Care Monitoring," International Journal of Mathematics and Mathematical Sciences, Hindawi, vol. 2011, pages 1-16, October.
  • Handle: RePEc:hin:jijmms:895273
    DOI: 10.1155/2011/895273
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    Cited by:

    1. Athanasios Sachlas & Sotirios Bersimis & Stelios Psarakis, 2019. "Risk-Adjusted Control Charts: Theory, Methods, and Applications in Health," Statistics in Biosciences, Springer;International Chinese Statistical Association, vol. 11(3), pages 630-658, December.

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