JOURNAL ARTICLE

Multivariate Process Control Chart for Controlling the False Discovery Rate

Jangho ParkChi‐Hyuck Jun

Year: 2012 Journal:   Industrial Engineering & Management Systems Vol: 11 (4)Pages: 385-389

Abstract

With the development of computer storage and the rapidly growing ability to process large amounts of data, the multivariate control charts have received an increasing attention. The existing univariate and multivariate control charts are a single hypothesis testing approach to process mean or variance by using a single statistic plot. This paper proposes a multiple hypothesis approach to developing a new multivariate control scheme. Plotted Hotelling's $T^2$ statistics are used for computing the corresponding p-values and the procedure for controlling the false discovery rate in multiple hypothesis testing is applied to the proposed control scheme. Some numerical simulations were carried out to compare the performance of the proposed control scheme with the ordinary multivariate Shewhart chart in terms of the average run length. The results show that the proposed control scheme outperforms the existing multivariate Shewhart chart for all mean shifts.

Keywords:
Multivariate statistics Univariate Control chart Statistic Multivariate analysis Statistics Multivariate analysis of variance Chart False discovery rate Computer science Shewhart individuals control chart EWMA chart Multiple comparisons problem Variance (accounting) Data mining Mathematics Process (computing)

Metrics

18
Cited By
3.70
FWCI (Field Weighted Citation Impact)
11
Refs
0.94
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Advanced Statistical Process Monitoring
Social Sciences →  Decision Sciences →  Statistics, Probability and Uncertainty
Advanced Statistical Methods and Models
Physical Sciences →  Mathematics →  Statistics and Probability
Pesticide Residue Analysis and Safety
Life Sciences →  Agricultural and Biological Sciences →  Food Science

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