勤益科大機構典藏:Item 987654321/3421
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    NCUTIR > College of Management > a > a >  Item 987654321/3421


    Please use this identifier to cite or link to this item: http://ir.lib.ncut.edu.tw/handle/987654321/3421


    Title: Constructing BCa Bootstrap Confidence Interval for the Difference between Two Non-normal Process Capability Indices CNpmk
    Authors: Lee-Ing Tong
    Hsi-Tien Chen
    Yu-Fang Tai
    Contributors: 國立交通大學
    勤益科技大學
    國立交通大學
    Keywords: bootstrap simulation method
    confidence interval
    non-normal
    Date: 2008-04
    Issue Date: 2010-05-11 16:02:36 (UTC+8)
    Abstract: Process capability index is a highly effective means of assessing product quality and process performance. Among many developed process capability indices, Cp, Cpk, Cpm, and Cpmk are the four most popular indices under normally distributed processes. Engineers always emphasize applicability and accuracy when a capability index is used to measure how a process performs. However, using these traditional indices to evaluate a non-normally distributed process often leads to inaccurate results. Thus, CNp, CNpk, CNpm, and CNpmk were proposed to overcome this shortcoming under non-normally distributed processes. Pearn and Kotz (1994) compared the index CNpmk to CNp, CNpk, and CNpm as well as found CNpmk is more restrictive and sensitive with regard to process median deviation from the target value than the other indices. Thus, this study employed an appropriate index CNpmk to evaluate non-normally and normally distributed processes. However, the exact probability distribution of CNpmk is too complicated to be derived. Consequently, the related hypotheses testing and confidence interval cannot be developed. For this reason, the applicability of CNpmk is limited. The main purpose of this study is to utilize bootstrap simulation method to construct a 100(1 - 2α)% BCa confidence interval for the difference between two indices, CNpmk1 - CNpmk2. The proposed bootstrap interval can be effectively employed to determine which one of the two processes or suppliers has a better process capability. Moreover, engineers without much statistics background can also easily adopt the proposed index and related procedures to compare processes or select suppliers. If this research procedure performs effectively, the industries can use it to analyze the capabilities of any process distributions in the future.
    Relation: Quality Engineering
    209-220頁
    Appears in Collections:[a] a

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