ReliaSoft's Alternate Ranking Method (RRM) Step-by-Step Example

This section illustrates the ReliaSoft ranking method (RRM), which is an iterative improvement on the standard ranking method (SRM). This method is illustrated in this section using an example for the two-parameter Weibull distribution. This method can also be easily generalized for other models.

Consider the following test data, as shown in the following Table B.1.

Table B.1- The test data
Number of Items	Type	Last Inspection	Time
1	Exact Failure		10
1	Right Censored		20
2	Left Censored	0	30
2	Exact Failure		40
1	Exact Failure		50
1	Right Censored		60
1	Left Censored	0	70
2	Interval Failure	20	80
1	Interval Failure	10	85
1	Left Censored	0	100

Initial parameter estimation

As a preliminary step, we need to provide a crude estimate of the Weibull parameters for this data. To begin, we will extract the exact times-to-failure: 10, 40, and 50 and append them to the midpoints of the interval failures: 50 (for the interval of 20 to 80) and 47.5 (for the interval of 10 to 85). Now, our extracted list consists of the data in Table B.2.

Using the traditional rank regression, we obtain the first initial estimates:

[math]\displaystyle{ \begin{align} & {{\widehat{\beta }}_{0}}= & 1.91367089 \\ & {{\widehat{\eta }}_{0}}= & 43.91657736 \end{align} }[/math]

Table B.2- The Union of Exact times-to-failure with the "midpoint" of the interval failures
Number of Items	Type	Last Inspection	Time
1	Exact Failure		10
2	Exact Failure		40
1	Exact Failure		47.5
3	Exact Failure		50

Step 1

For all intervals, we obtain a weighted ``midpoint using:

[math]\displaystyle{ \begin{align} {{{\hat{t}}}_{m}}\left( \hat{\beta },\hat{\eta } \right)= & \frac{\int_{LI}^{TF}t\text{ }f(t;\hat{\beta },\hat{\eta })dt}{\int_{LI}^{TF}f(t;\hat{\beta },\hat{\eta })dt}, \\ = & \frac{\int_{LI}^{TF}t\tfrac{{\hat{\beta }}}{{\hat{\eta }}}{{\left( \tfrac{t}{{\hat{\eta }}} \right)}^{\hat{\beta }-1}}{{e}^{-{{\left( \tfrac{t}{{\hat{\eta }}} \right)}^{{\hat{\beta }}}}}}dt}{\int_{LI}^{TF}\tfrac{{\hat{\beta }}}{{\hat{\eta }}}{{\left( \tfrac{t}{{\hat{\eta }}} \right)}^{\hat{\beta }-1}}{{e}^{-{{\left( \tfrac{t}{{\hat{\eta }}} \right)}^{{\hat{\beta }}}}}}dt} \end{align} }[/math]

This transforms our data into the format in Table B.3.

Table B.3- The Union of Exact times-to-failure with the "midpoint" of the interval failures, based upon the parameters [math]\displaystyle{ \beta }[/math] and [math]\displaystyle{ \eta }[/math].
Number of Items	Type	Last Inspection	Time	Weighted "Midpoint"
1	Exact Failure		10
2	Exact Failure		40
1	Exact Failure		50
2	Interval Failure	20	80	42.837
1	Interval Failure	10	85	39.169

Step 2

Now we arrange the data as in Table B.4.

Table B.4- The Union of Exact times-to-failure with the "midpoint" of the interval failures, in ascending order.
Number of Items	Time
1	10
1	39.169
2	40
2	42.837
1	50

Step 3

We now consider the left and right censored data, as in Table B.5.

Table B.5- Computation of increments, in a matrix format, for computing a revised Mean Order Number.
Number of items	Time of Failure	2 Left Censored t = 30	1 Left Censored t = 70	1 Left Censored t = 100	1 Right Censored t = 20	1 Right Censored t = 60
1	10	[math]\displaystyle{ 2 \frac{\int_0^{10} f_0(t)dt}{F_0 (30)-F_0 (0)} }[/math]	[math]\displaystyle{ \frac{\int_0^{10} f_0 (t)dt}{F_0(70)-F_1(0)} }[/math]	[math]\displaystyle{ \frac{\int_0^{10} f_0(t)dt}{F_0(100)-F_0(0)} }[/math]	0	0
1	39.169	[math]\displaystyle{ 2 \frac{\int_{10}^{30} f_0(t)dt}{F_0(30)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{10}^{39.169} f_0(t)dt}{F_0(70)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{10}^{39.169} f_0(t)dt}{F_0(100)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{20}^{39.169} f_0(t)dt}{F_0(\infty)-F_0(20)} }[/math]	0
2	40	0	[math]\displaystyle{ \frac{\int_{39.169}^{40} f_0(t)dt}{F_0(70)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{39.169}^{40} f_0(t)dt}{F_0(100)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{39.169}^{40} f_0(t)dt}{F_0(\infty)-F_0(20)} }[/math]	0
2	42.837	0	[math]\displaystyle{ \frac{\int_{40}^{42.837} f_0(t)dt}{F_0(70)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{40}^{42.837} f_0(t)dt}{F_0(100)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{40}^{42.837} f_0(t)dt}{F_0(\infty)-F_0(0)} }[/math]	0
1	50	0	[math]\displaystyle{ \frac{\int_{42.837}^{50} f_0(t)dt}{F_0(70)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{42.837}^{50} f_0(t)dt}{F_0(100)-F_0(0)} }[/math]	[math]\displaystyle{ \frac{\int_{42.837}^{50} f_0(t)dt}{F_0(\infty)-F_0(0)} }[/math]	0

In general, for left censored data:

• The increment term for [math]\displaystyle{ n }[/math] left censored items at time [math]\displaystyle{ ={{t}_{0}}, }[/math] with a time-to-failure of .. when [math]\displaystyle{ {{t}_{0}}\le {{t}_{i-1}} }[/math] is zero.

• When [math]\displaystyle{ {{t}_{0}}\gt {{t}_{i-1}}, }[/math] the contribution is:

[math]\displaystyle{ \frac{n}{{{F}_{0}}({{t}_{0}})-{{F}_{0}}(0)}\underset{{{t}_{i-1}}}{\overset{MIN({{t}_{i}},{{t}_{0}})}{\mathop \int }}\,{{f}_{0}}\left( t \right)dt }[/math]

or:

[math]\displaystyle{ n\frac{{{F}_{0}}(MIN({{t}_{i}},{{t}_{0}}))-{{F}_{0}}({{t}_{i-1}})}{{{F}_{0}}({{t}_{0}})-{{F}_{0}}(0)} }[/math]

where [math]\displaystyle{ {{t}_{i-1}} }[/math] is the time-to-failure previous to the [math]\displaystyle{ {{t}_{i}} }[/math] time-to-failure and [math]\displaystyle{ n }[/math] is the number of units associated with that time-to-failure (or units in the group).

In general, for right censored data:

• The increment term for [math]\displaystyle{ n }[/math] right censored at time [math]\displaystyle{ ={{t}_{0}}, }[/math] with a time-to-failure of [math]\displaystyle{ {{t}_{i}} }[/math], when [math]\displaystyle{ {{t}_{0}}\ge {{t}_{i}} }[/math] is zero.

• When [math]\displaystyle{ {{t}_{0}}\lt {{t}_{i}}, }[/math] the contribution is:

[math]\displaystyle{ \frac{n}{{{F}_{0}}(\infty )-{{F}_{0}}({{t}_{0}})}\underset{MAX({{t}_{0}},{{t}_{i-1}})}{\overset{{{t}_{i}}}{\mathop \int }}\,{{f}_{0}}\left( t \right)dt }[/math]

or:

[math]\displaystyle{ n\frac{{{F}_{0}}({{t}_{i}})-{{F}_{0}}(MAX({{t}_{0}},{{t}_{i-1}}))}{{{F}_{0}}(\infty )-{{F}_{0}}({{t}_{0}})} }[/math]

where [math]\displaystyle{ {{t}_{i-1}} }[/math] is the time-to-failure previous to the [math]\displaystyle{ {{t}_{i}} }[/math] time-to-failure and [math]\displaystyle{ n }[/math] is the number of units associated with that time-to-failure (or units in the group).

Step 4

Sum up the increments (horizontally in rows), as in Table B.6.

Table B.6- Increments solved numberically, along with the sum of each row.
Number of items	Time of Failure	2 Left Censored t=30	1 Left Censored t=70	1 Left Censored t=100	1 Right Censored t=20	1 Right Censored t=60	Sum of row(increment)
1	10	0.299065	0.062673	0.057673	0	0	0.419411
1	39.169	1.700935	0.542213	0.498959	0.440887	0	3.182994
2	40	0	0.015892	0.014625	0.018113	0	0.048630
2	42.831	0	0.052486	0.048299	0.059821	0	0.160606
1	50	0	0.118151	0.108726	0.134663	0	0.361540

Step 5

Compute new mean order numbers (MON), as shown Table B.7, utilizing the increments obtained in Table B.6, by adding the ``number of items plus the ``previous MON plus the current ``increment.

Table B.7- Mean Order Numbers (MON)
Number of items	Time of Failure	Sum of row(increment)	Mean Order Number
1	10	0.419411	1.419411
1	39.169	3.182994	5.602405
2	40	0.048630	7.651035
2	42.837	0.160606	9.811641
1	50	0.361540	11.173181

Step 6

Compute the median ranks based on these new MONs as shown in Table B.8.

Table B.8- Mean Order Numbers with their ranks for a sample size of 13 units.
Time	MON	Ranks
10	1.419411	0.0825889
39.169	5.602405	0.3952894
40	7.651035	0.5487781
42.837	9.811641	0.7106217
50	11.173181	0.8124983

Step 7

Compute new [math]\displaystyle{ \beta }[/math] and [math]\displaystyle{ \eta , }[/math] using standard rank regression and based upon the data as shown in Table B.9.

Time	Ranks
10	0.0826889
39.169	0.3952894
40	0.5487781
42.837	0.7106217
50	0.8124983

Step 8

Return and repeat the process from Step 1 until an acceptable convergence is reached on the parameters (i.e. the parameter values stabilize).

Results

The results of the first five iterations are shown in Table B.10. Using Weibull++ with rank regression on X yields:

Table B.10-The parameters after the first five iterations
Iteration	[math]\displaystyle{ \beta }[/math]	[math]\displaystyle{ \eta }[/math]
1	1.845638	42.576422
2	1.830621	42.039743
3	1.828010	41.830615
4	1.828030	41.749708
5	1.828383	41.717990

[math]\displaystyle{ {{\widehat{\beta }}_{RRX}}=1.82890,\text{ }{{\widehat{\eta }}_{RRX}}=41.69774 }[/math]

The direct MLE solution yields:

[math]\displaystyle{ {{\widehat{\beta }}_{MLE}}=2.10432,\text{ }{{\widehat{\eta }}_{MLE}}=42.31535 }[/math]