Non Parametric RDA MCF Example: Difference between revisions
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[math]\displaystyle{ \begin{matrix}
Equipment ID & Months \\
\text{1} & \text{5, 10 , 15, 17+} \\
\text{2} & \text{6, 13, 17, 19+} \\
\text{3} & \text{12, 20, 25, 26+} \\
\text{4} & \text{13, 15, 24+} \\
\text{5} & \text{16, 22, 25, 28+} \\
\end{matrix} }[/math]
[math]\displaystyle{ \begin{matrix}
ID & Months ({{t}_{i}}) & State & {{r}_{i}} & 1/{{r}_{i}} & {{M}^{*}}({{t}_{i}}) \\
\text{1} & \text{5} & \text{F} & \text{5} & \text{0}\text{.20} & \text{0}\text{.20} \\
\text{2} & \text{6} & \text{F} & \text{5} & \text{0}\text{.20} & \text{0}\text{.20 + 0}\text{.20 = 0}\text{.40} \\
\text{1} & \text{10} & \text{F} & \text{5} & \text{0}\text{.20} & \text{0}\text{.40 + 0}\text{.20 = 0}\text{.60} \\
\text{3} & \text{12} & \text{F} & \text{5} & \text{0}\text{.20} & \text{0}\text{.60 + 0}\text{.20 = 0}\text{.80} \\
\text{2} & \text{13} & \text{F} & \text{5} & \text{0}\text{.20} & \text{0}\text{.80+0}\text{.20 =1}\text{.00} \\
\text{4} & \text{13} & \text{F} & \text{5} & \text{0}\text{.20} & \text{1}\text{.00 + 0}\text{.20 = 1}\text{.20} \\
\text{1} & \text{15} & \text{F} & \text{5} & \text{0}\text{.20} & \text{1}\text{.20 + 0}\text{.20 =1}\text{.40} \\
\text{4} & \text{15} & \text{F} & \text{5} & \text{0}\text{.20} & \text{1}\text{.40 + 0}\text{.20 = 1}\text{.60} \\
\text{5} & \text{16} & \text{F} & \text{5} & \text{0}\text{.20} & \text{1}\text{.60 + 0}\text{.20 = 1}\text{.80} \\
\text{2} & \text{17} & \text{F} & \text{5} & \text{0}\text{.20} & \text{1}\text{.80 + 0}\text{.20 = 2}\text{.0} \\
\text{1} & \text{17} & \text{S} & \text{4} & {} & {} \\
\text{2} & \text{19} & \text{S} & \text{3} & {} & {} \\
\text{3} & \text{20} & \text{F} & \text{3} & \text{0}\text{.33} & \text{2}\text{.00 + 0}\text{.33 = 2}\text{.33} \\
\text{5} & \text{22} & \text{F} & \text{3} & \text{0}\text{.33} & \text{2}\text{.33 + 0}\text{.33 = 2}\text{.66} \\
\text{4} & \text{24} & \text{S} & \text{2} & {} & {} \\
\text{3} & \text{25} & \text{F} & \text{2} & \text{0}\text{.50} & \text{2}\text{.66 + 0}\text{.50 = 3}\text{.16} \\
\text{5} & \text{25} & \text{F} & \text{2} & \text{0}\text{.50} & \text{3}\text{.16 + 0}\text{.50 = 3}\text{.66} \\
\text{3} & \text{26} & \text{S} & \text{1} & {} & {} \\
\text{5} & \text{28} & \text{S} & \text{0} & {} & {} \\
\end{matrix} }[/math]
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Estimate the MCF values | Estimate the MCF values ignoring the repair duration. | ||
Revision as of 18:03, 22 February 2012
Recurrent Events Data Non-parameteric MCF Example
A health care company maintains five identical pieces of equipment used by a hospital. When a piece of equipment fails, the company sends a crew to repair it. The following table gives the failure and censoring ages for each machine, where the + sign indicates a censoring age.
[math]\displaystyle{ }[/math] Estimate the MCF values ignoring the repair duration.
Solution
The MCF estimate is obtained as follows: