Non-Parametric RDA Transmission Example: Difference between revisions
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'''Recurrent Events Data Non-parameteric Transmission Example''' | '''Recurrent Events Data Non-parameteric Transmission Example''' | ||
The following table displays transmission repairs on a sample of 14 cars with manual transmission in a preproduction road test [31]. Here + denotes the censoring ages (how long a car has been observed). | The following table displays transmission repairs on a sample of 14 cars with manual transmission in a preproduction road test [[Appendix: Weibull References|[31]]]. Here + denotes the censoring ages (how long a car has been observed). | ||
<center><math>\begin{matrix} | <center><math>\begin{matrix} |
Revision as of 18:29, 22 February 2012
Recurrent Events Data Non-parameteric Transmission Example
The following table displays transmission repairs on a sample of 14 cars with manual transmission in a preproduction road test [31]. Here + denotes the censoring ages (how long a car has been observed).
The car manufacturer seeks to estimate the mean cumulative number of repairs per car by 24,000 test miles (equivalently 5.5 x 24,000 = 132,000 customer miles) and to observe whether the population repair rate increases or decreases as a population ages.
Solution
The data is entered into a Non-Parametric RDA Specialized Folio in Weibull++ as follows.
The results are as follows,
The results indicate that after 13,957 miles of testing, the estimated mean cumulative number of repairs per car is 0.5. Therefore, by 24,000 test miles, the estimated mean cumulative number of repairs per car is 0.5.
The MCF plot is shown next.
A smooth curve through the MCF plot has a derivative that decreases as the population ages. That is, the repair rate decreases as each population ages. This is typical of products with manufacturing defects.