Title of article :
Semiparametric Estimation of Tag Loss and Reporting Rates for Tag-Recovery Experiments Using Exact Time-at-Liberty Data
Author/Authors :
N.G.، Cadigan نويسنده , , J.، Brattey نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2003
Pages :
-868
From page :
869
To page :
0
Abstract :
We present a semiparametric likelihood approach to estimating reporting rates and tag-loss rates from the tags returned from capture-recapture studies. Such studies are commonly used to estimate critical population parameters. Tag loss rates are estimated using double-tagged animals, while reporting rates are estimated using information from highreward tags. A likelihood function is constructed based on the conditional distribution of the type of tag returned (low or high reward, single or double tag), given that a tag has been returned. This involves many sparse 5 × 1 tag-return contingency tables, and choosing a good functional form for the tag loss rate is difficult with such data. We model tagloss rates using monotone-smoothing splines, and use these nonparametric estimates to diagnose the parametric form of the tag-loss rate. The nonparametric methods can also be used directly to model tag-loss rates.
Keywords :
Double tagging , Mark-recapture , Monotone smoothing , penalized likelihood , Spline regression
Journal title :
BIOMETRICS (BIOMETRIC SOCIETY)
Serial Year :
2003
Journal title :
BIOMETRICS (BIOMETRIC SOCIETY)
Record number :
84196
Link To Document :
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