empirical standard deviation
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2018 ◽  
Vol 2 (2) ◽  
pp. 108
Author(s):  
Ahmad Syukri ◽  
Nisaul Fadillah

Abstract: The State Islamic Institute Sulthan Thaha Saifuddin (IAIN STS) Jambi has been applying ISO 9001; 2008 since February 2013. One of previous research findings was the resistance regarding the ISO standards and the certification process. This study was to examine the problem through conducting lecturers’ perception towards ISO 9001; 2008 at IAIN STS Jambi in terms of their awareness, benefits and services. Respondents were lecturers of IAIN STS Jambi as many as 122 people from 4 faculties. The research employed a quantitative survey method that uses a likert-scale questionnaire and analysed with descriptive statistic. The findings show that lecturers’ perception on the application of TQM ISO 9001: 2008 in IAIN STS Jambi included in the group of moderate to high. The mean empirical data (x = 47,30) was higher than the average hypothetical (μ = 42). This indicates that the perception of lecturers on the application of ISO in IAIN STS Jambi is high (positive). Empirical standard deviation (s = 9,910) was higher than the hypothetical standard deviation (σ = 9:33). This shows that the perception of lecturers on the application of ISO 9001: 2008 at IAIN STS Jambi has a high variation. Meanwhile, gender variable has a significant relationship between the perception of ISO 9001: 2008 on improving the quality of teaching. Employment status (fulltime civil employer or non-full-time civil employer) have a significant relationship between the perception of ISO 9001; 2008 for quality of services and quality of coordination.


2011 ◽  
Vol 23 (8) ◽  
pp. 1944-1966 ◽  
Author(s):  
Susanne Ditlevsen ◽  
Petr Lansky

A convenient and often used summary measure to quantify the firing variability in neurons is the coefficient of variation (CV), defined as the standard deviation divided by the mean. It is therefore important to find an estimator that gives reliable results from experimental data, that is, the estimator should be unbiased and have low estimation variance. When the CV is evaluated in the standard way (empirical standard deviation of interspike intervals divided by their average), then the estimator is biased, underestimating the true CV, especially if the distribution of the interspike intervals is positively skewed. Moreover, the estimator has a large variance for commonly used distributions. The aim of this letter is to quantify the bias and propose alternative estimation methods. If the distribution is assumed known or can be determined from data, parametric estimators are proposed, which not only remove the bias but also decrease the estimation errors. If no distribution is assumed and the data are very positively skewed, we propose to correct the standard estimator. When defining the corrected estimator, we simply use that it is more stable to work on the log scale for positively skewed distributions. The estimators are evaluated through simulations and applied to experimental data from olfactory receptor neurons in rats.


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