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A comparison of nonparametric shape constrained bioassay estimators

✍ Scribed by Mary C. Meyer


Publisher
Elsevier Science
Year
1999
Tongue
English
Weight
120 KB
Volume
42
Category
Article
ISSN
0167-7152

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✦ Synopsis


The nonparametric Bayesian shape-constrained bioassay estimator of Ramgopal et al. [Ramgopal, P., Laud, P., Smith, A.F.M., 1993. Nonparametric Bayesian bioassay with prior constraints on the shape of the potency curve. Biometrika 80 (3), 489-498.] is compared with the shape constrained maximum likelihood estimator through simulations. The purpose is to illustrate that, in the absence of prior information other than the shape constraints, the less computationally intensive MLE might be an acceptable alternative. Data are simulated from an underlying potency function and both estimates are computed with the assumption that the shape is known (either concave or convex-concave, both nondecreasing over the support). Several di erent sampling functions and sample sizes are chosen to investigate the behavior of the estimators in varying conditions. An e cient algorithm for computing the shape-constrained MLE is presented. A theorem provides the theoretical justiΓΏcation for this new algorithm.


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