Induced smoothing for the semiparametric accelerated hazards model

نویسندگان

  • Haifen Li
  • Jiajia Zhang
  • Yincai Tang
چکیده

Compared to the proportional hazards model and accelerated failure time model, the accelerated hazards model has a unique property in its application, in that it can allow gradual effects of the treatment. However, its application is still very limited, partly due to the complexity of existing semiparametric estimation methods. We propose a new semiparametric estimation method based on the induced smoothing and rank type estimates. The parameter estimates and their variances can be easily obtained from the smoothed estimating equation; thus it is easy to use in practice. Our numerical study shows that the new method is more efficient than the existing methods with respect to its variance estimation and coverage probability. The proposed method is employed to reanalyze a data set from a brain tumor treatment study.

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عنوان ژورنال:
  • Computational statistics & data analysis

دوره 56 12  شماره 

صفحات  -

تاریخ انتشار 2012