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Chapter 8: Logistic

Chapter 8   Logistic   Available Software: RGA More Resources: RGA examples

Logistic

The Logistic reliability growth model has an S-shaped curve and is given by [3]:

where [math]\displaystyle{ b }[/math] and [math]\displaystyle{ k }[/math] are parameters. Similar to the analysis given for the Gompertz curve (Chapter 7), the following may be concluded:

1) The point of inflection is given by:

[math]\displaystyle{ {{T}_{i}}=\frac{\ln (b)}{k} }[/math]

2) When [math]\displaystyle{ b\gt 1 }[/math] then [math]\displaystyle{ {{T}_{i}}\gt 0 }[/math] and an S-shaped curve will be generated. However, w[math]\displaystyle{ % }[/math]hen [math]\displaystyle{ 0\lt b\le 1 }[/math] then [math]\displaystyle{ {{T}_{i}}\le 0 }[/math] and the Logistic reliability growth model will not be described by an S-shaped curve.

3) The value of [math]\displaystyle{ R }[/math] is equal to 0.5 at the inflection point.

Parameter Estimation

Example 1
Using the reliability growth data given in Table 8.1, do the following:

1) Find a Gompertz curve that represents the data and plot it with the raw data.
2) Find a Logistic reliability growth curve that represents the data and plot it with the raw data.

Table 8.1 - Development time versus observed reliability data and predicted reliabilities

Time, Raw Data Gompertz Logistic months Reliability ( [math]\displaystyle{ % }[/math] ) Reliability ( ) Reliability ( [math]\displaystyle{ % }[/math] ) 0 31.00 24.85 22.73 1 35.50 38.48 38.14 2 49.30 51.95 56.37 3 70.10 63.82 73.02 4 83.00 73.49 85.01 5 92.20 80.95 92.24 6 96.40 86.51 96.14 7 98.60 90.54 98.12 8 99.00 93.41 99.09

Solution

1) Figure Logistic1 shows the entered data and the estimated parameters using the Standard Gompertz model.
Therefore:

[math]\displaystyle{ \begin{align} & \widehat{a}= & 0.9999 \\ & \widehat{b}= & 0.2485 \\ & \widehat{c}= & 0.6858 \end{align} }[/math]

[math]\displaystyle{ R=(0.9999){{(0.2485)}^{{{0.6858}^{T}}}} }[/math]

The values of predicted reliabilities are plotted in Figure Logig81.

[math]\displaystyle{ }[/math]

Figure 8.1: Estimated Standard Gompertz parameters for Example 1.

Figure 8.2: Gompertz Reliability vs. Time plot.

Notice how the Standard Gompertz model is not really capable of handling the S-shaped characteristics of this data.

2. The least squares estimators of the Logistic growth curve parameters are [9]:

where:

[math]\displaystyle{ \begin{align} & {{{\hat{b}}}_{1}}= & \frac{\underset{i=0}{\overset{N-1}{\mathop{\sum }}}\,{{T}_{i}}{{Y}_{i}}-N\cdot \bar{T}\cdot \bar{Y}}{\underset{i=0}{\overset{N-1}{\mathop{\sum }}}\,T_{i}^{2}-N\cdot {{{\bar{T}}}^{2}}} \\ & {{{\hat{b}}}_{0}}= & \bar{Y}-{{{\hat{b}}}_{1}}\bar{T} \\ & {{Y}_{i}}= & \ln \left( \frac{1}{{{R}_{i}}}-1 \right) \\ & \bar{Y}= & \frac{1}{N}\underset{i=0}{\overset{N-1}{\mathop \sum }}\,{{Y}_{i}} \end{align} }[/math]

In this example [math]\displaystyle{ N=9 }[/math] , which gives:

From Eqns. (eq37) and (eq38):

And from Eqns. (eq36a) and (eq36b):

[math]\displaystyle{ \begin{align} & \widehat{b}= & {{e}^{1.2235}} \\ & = & 3.3991 \\ & \widehat{k}= & -(-0.7398) \\ & = & 0.7398 \end{align} }[/math]

Therefore, the Logistic reliability growth curve that represents this data set is given by:

[math]\displaystyle{ R=\frac{1}{1+3.3991\,{{e}^{-0.7398\,T}}} }[/math]

Figure Logig82 shows the Reliability vs. Time plot. The plot shows that the observed data set is estimated well by the Logistic reliability growth curve, except in the region closely surrounding the inflection point of the observed reliability. This problem can be overcome by using the Modified Gompertz model, which was presented in Chapter 7.

Example 2
A prototype was tested under a success/failure pattern. The test consisted of 15 runs and Table 8.2 presents the data from the test. Find the Logistic model that best fits the data set and plot it along with the reliability observed from the raw data.

Table 8.2 - Sequential success/failure data with observed reliability values

Observed Time Result Reliability 0 F 0.5000 1 F 0.3333 2 S 0.5000 3 S 0.6000 4 F 0.5000 5 S 0.5714 6 S 0.6250 7 S 0.6667 8 S 0.7000 9 F 0.6364 10 S 0.6667 11 S 0.6923 12 S 0.7143 13 S 0.7333

Solution
The first run is ignored because it was a success and the reliability at that point was 100%. This failure will be ignored throughout the analysis because it is considered that the test starts when the reliability is not equal to zero or one. The test essentially begins at time 1, and is now considered as time 0 with [math]\displaystyle{ N=14 }[/math] . The observed reliability is shown in the last column of Table 8.2. Keep in mind that the observed reliability values still account for the initial suspension. Eqn. (eq41a) becomes:

[math]\displaystyle{ \begin{align} & \bar{Y}= & \frac{1}{N}\underset{i=0}{\overset{N-1}{\mathop \sum }}\,{{Y}_{i}} \\ & = & \frac{1}{14}\underset{i=0}{\overset{13}{\mathop \sum }}\,\ln \left( \frac{1}{{{R}_{i}}}-1 \right) \\ & = & -0.43163 \end{align} }[/math]

and:

[math]\displaystyle{ \begin{align} & \bar{T}= & \frac{1}{14}\underset{i=0}{\overset{13}{\mathop \sum }}\,{{T}_{i}} \\ & = & 6.5 \\ & \underset{i=0}{\overset{13}{\mathop \sum }}\,T_{i}^{2}= & 819.0 \\ & \underset{i=0}{\overset{13}{\mathop \sum }}\,{{T}_{i}}{{Y}_{i}}= & -61.69 \end{align} }[/math]

Now, from the least squares estimators, Eqns. (eq37) and (eq38) are:

Therefore:

[math]\displaystyle{ \begin{align} & \widehat{b}= & {{e}^{0.2087}} \\ & = & 1.2321 \\ & \widehat{k}= & -(-0.0985) \\ & = & 0.0985 \end{align} }[/math]

The Logistic reliability model that best fits the data is given by:

[math]\displaystyle{ R=\frac{1}{1+1.2321\cdot \ \,{{e}^{-0.0985T}}} }[/math]

Figure Logig83 shows the Reliability vs. Time plot.

Example 3 Some equipment underwent testing in different stages. The testing may have been performed in subsequent days, weeks or months with an unequal number of units tested every day. Each group was tested and several failures occurred. The data set is given in columns 1 and 2 of Table 8.3. Find the Logistic model that best fits the data and plot it along with the reliability observed from the raw data.

Table 8.3 - Grouped per configuration data

Number of Number of Observed Units Failures [math]\displaystyle{ {{T}_{i}} }[/math] Reliability 10 5 0 0.5000 8 3 1 0.6250 9 3 2 0.6667 9 2 3 0.7778 10 2 4 0.8000 10 1 5 0.9000 10 1 6 0.9000 10 1 7 0.9000 10 1 8 0.9000

Solution The observed reliability is [math]\displaystyle{ 1-\tfrac{\#\text{ of failures}}{\#\text{ of units}} }[/math] and the last column of Table 8.3 shows the values for each group. With [math]\displaystyle{ N=9 }[/math] , Eqn. (eq41a) becomes:

[math]\displaystyle{ \begin{align} & \bar{Y}= & \frac{1}{9}\underset{i=0}{\overset{8}{\mathop \sum }}\,\ln \left( \frac{1}{{{R}_{i}}}-1 \right) \\ & = & -1.4036 \end{align} }[/math]

and:

[math]\displaystyle{ \begin{align} & \bar{T}= & \frac{1}{9}\underset{i=0}{\overset{8}{\mathop \sum }}\,{{T}_{i}} \\ & = & 4 \\ & \underset{i=0}{\overset{8}{\mathop \sum }}\,T_{i}^{2}= & 204 \\ & \underset{i=0}{\overset{8}{\mathop \sum }}\,{{T}_{i}}{{Y}_{i}}= & -68.33 \end{align} }[/math]

Now from the least squares estimators, Eqns. (eq37) and (eq38) give:

[math]\displaystyle{ \begin{align} & {{{\hat{b}}}_{1}}= & \frac{\underset{i=0}{\overset{8}{\mathop{\sum }}}\,{{T}_{i}}{{Y}_{i}}-N\cdot \bar{T}\cdot \bar{Y}}{\underset{i=0}{\overset{8}{\mathop{\sum }}}\,T_{i}^{2}-N\cdot {{{\bar{T}}}^{2}}} \\ & = & \frac{-68.33-9\cdot 4\cdot \left( -1.4036 \right)}{204-9\cdot {{4}^{2}}} \\ & = & -0.2967 \\ & & \\ & {{{\hat{b}}}_{0}}= & \bar{Y}-{{{\hat{b}}}_{1}}\bar{T} \\ & = & \left( -1.4036 \right)-\left( -0.2967 \right)\cdot 4.0 \\ & = & -0.2168 \end{align} }[/math]

Therefore:

[math]\displaystyle{ \begin{align} & \widehat{b}= & {{e}^{-0.2168}} \\ & = & 0.8051 \\ & \widehat{k}= & -(-0.2967) \\ & = & 0.2967 \end{align} }[/math]

The Logistic reliability model that best fits the data is given by:

[math]\displaystyle{ R=\frac{1}{1+0.8051\cdot \ \,{{e}^{-0.2967T}}} }[/math]

Figure Logig85 shows the Reliability vs. Time plot.

[math]\displaystyle{ }[/math]

Confidence Bounds

Least squares is used to estimate the parameters of the following Logistic model.

[math]\displaystyle{ \ln (\frac{1}{{{{\hat{R}}}_{i}}}-1)=\ln (b)-k{{T}_{i}} }[/math]

Thus the confidence bounds on the parameters are given by:

[math]\displaystyle{ b=\hat{b}{{e}^{{{t}_{n-2,\alpha /2}}SE(\ln \hat{b})}} }[/math]

where:

[math]\displaystyle{ SE(\ln \hat{b})=\sigma \cdot \sqrt{\frac{\underset{i=1}{\overset{n}{\mathop{\sum }}}\,{{({{T}_{i}})}^{2}}}{n\cdot {{S}_{xx}}}},\ \ \ {{S}_{xx}}=\left[ \underset{i=1}{\overset{n}{\mathop \sum }}\,{{({{T}_{i}})}^{2}} \right]-\frac{1}{n}{{\left( \underset{i=1}{\overset{n}{\mathop \sum }}\,{{T}_{i}} \right)}^{2}} }[/math]

[math]\displaystyle{ \sigma =\sqrt{SSE/(n-2)} }[/math]

and:

[math]\displaystyle{ k=\hat{k}\pm {{t}_{n-2,\alpha /2}}SE(\hat{k}) }[/math]

where:

[math]\displaystyle{ SE(\hat{k})=\frac{\sigma }{\sqrt{{{S}_{xx}}}},\ \ {{S}_{xx}}=\left[ \underset{i=1}{\overset{n}{\mathop \sum }}\,{{({{T}_{i}})}^{2}} \right]-\frac{1}{n}{{\left( \underset{i=1}{\overset{n}{\mathop \sum }}\,{{T}_{i}} \right)}^{2}} }[/math]

Since the reliability is always between 0 and 1, the logit transformation is used to obtain the confidence bounds on reliability. 

[math]\displaystyle{ CB=\frac{{{{\hat{R}}}_{i}}}{{{{\hat{R}}}_{i}}+(1-{{{\hat{R}}}_{i}}){{e}^{\pm {{z}_{\alpha }}{{{\hat{\sigma }}}_{R}}/\left[ {{{\hat{R}}}_{i}}(1-{{{\hat{R}}}_{i}}) \right]}}} }[/math]

Example 4 For the data given for Example 1 in Table 8.1, calculate the 2-sided 90% confidence bounds under the Logistic model for the following: 1) The parameters [math]\displaystyle{ b }[/math] and [math]\displaystyle{ k }[/math] . 2) Reliability at month 5.

Solution 1) The values of [math]\displaystyle{ \widehat{b} }[/math] and [math]\displaystyle{ \widehat{k} }[/math] estimated from the least squares analysis in Example 1:

[math]\displaystyle{ \begin{align} & \widehat{b}= & 3.3991 \\ & \widehat{\alpha }= & 0.7398 \end{align} }[/math]

Thus the 2-sided 90% confidence bounds on parameter [math]\displaystyle{ b }[/math] using Eqn. (LogCBb) are:

[math]\displaystyle{ \begin{align} & {{b}_{lower}}= & 2.5547 \\ & {{b}_{upper}}= & 4.5225 \end{align} }[/math]

The 2-sided 90% confidence bounds on parameter [math]\displaystyle{ k }[/math] using Eqn. (logCBk) are:

[math]\displaystyle{ \begin{align} & {{k}_{lower}}= & 0.6798 \\ & {{k}_{upper}}= & 0.7997 \end{align} }[/math]

1) First calculate the reliability estimation at month 5: 2) 3) [math]\displaystyle{ \begin{align} 4) & {{R}_{5}}= & \frac{1}{1+b{{e}^{-5k}}} \\ 5) & = & 0.9224 6) \end{align} }[/math] 7) 8) Thus the 2-sided 90% confidence bounds on reliability at month 5 using Eqn. (LogCR) are:

[math]\displaystyle{ \begin{align} & {{[{{R}_{5}}]}_{lower}}= & 0.8493 \\ & {{[{{R}_{5}}]}_{upper}}= & 0.9955 \end{align} }[/math]

Figure Logig86 shows a graph of the reliability plotted with 2-sided 90% confidence bounds.

[math]\displaystyle{ }[/math]

General Examples

Example 5

Table 8.4 presents the reliabilities observed monthly for an automobile transmission that was tested for one year. 1) Find a Logistic reliability growth curve that best represents the data. 2) Plot it comparatively with the raw data. 3) If design changes continue to be incorporated and the testing continues, when will the reliability goal of 99% be achieved? 4) If design changes continue to be incorporated and the testing continues, what will be the attainable reliability at the end of January the following year?

Table 8.4 - Reliability data

Observed Month Reliability ( [math]\displaystyle{ % }[/math] ) June 22 July 26 August 30 September 34 October 45 November 58 December 68 January 79 February 85 March 89 April 92 May 95

[math]\displaystyle{ }[/math]

[math]\displaystyle{ }[/math]

Solution to Example 5

1) Figure Loge21 shows the estimated parameters. 2) Figure Loge22 displays the Reliability vs. Time plot. 3) Using the QCP, Figure Loge23 displays when the reliability goal of 99% will be achieved. 4) Figure Loge24 shows the reliability at the end of January the following year (i.e. after 20 months of testing and development).

Example 6

Table 8.5 presents the results for a missile launch test. The test consisted of 20 attempts. If the missile launched, it was recorded as a success. If not, it was recorded as a failure. Note that, at this development stage, the test did not consider whether or not the target was destroyed. 1) Find a Logistic reliability growth curve that best represents the data. 2) Plot it comparatively with the raw data. 3) If design changes continue to be incorporated and the testing continues, when will the reliability goal of 99.5% with a 90% confidence level be achieved? 4) If design changes continue to be incorporated and the testing continues, what will be the attainable reliability at the end of the 35th launch?

Table 8.5 - Sequential success/failure data

Launch Number Result 1 F 2 F 3 S 4 F 5 F 6 S 7 S 8 S 9 F 10 S 11 F 12 S 13 S 14 S 15 S 16 S 17 S 18 S 19 S 20 S

Solution to Example 6

1) Figure Loge31 shows the entered data and the estimated parameters. 2) Figure Loge32 displays the Reliability vs. Time plot. 3) Figure Loge33 displays when the reliability goal of 99.5% will be achieved with a 90% confidence level. 4) Figure Loge34 displays the reliability achieved after the 35th launch.

[math]\displaystyle{ }[/math]

[math]\displaystyle{ }[/math]

[math]\displaystyle{ }[/math]

[math]\displaystyle{ }[/math]

Example 7

Consider the data given for the missile launch test in Example 6. Now suppose that the engineers assigned failure modes to each failure and that the appropriate corrective actions were taken. Table 8.6 presents the data. 1) Find the Logistic reliability growth curve that best represents the data. 2) Plot it comparatively with the raw data. 3) If design changes continue to be incorporated and the testing continues, when will the reliability goal of 99.50% be achieved? 4) If design changes continue to be incorporated and the testing continues, what will be the attainable reliability at the end of the 35th launch?

Table 8.6 - Sequential success/failure data with modes

Launch Number Result Mode 1 F 2 2 F 1 3 S 4 F 3 5 F 3 6 S 7 S 8 S 9 F 2 10 S 11 F 1 12 S 13 S 14 S 15 S 16 S 17 S 18 S 19 S 20 S

Solution to Example 7

1) Figure Loge51 shows the estimated parameters. 2) Figure Loge52 displays the Reliability vs. Time plot. 3) Figure Loge53 displays when the reliability goal of 99.5% will be achieved. 4) Figure Loge54 displays the reliability after the 35th launch.

[math]\displaystyle{ }[/math]