A Conceptual Methodology for Recognition of Constrained Control Chart Patterns

Author:

Haghighati Razieh1,Hassan Adnan1

Affiliation:

1. Universiti Teknologi Malaysia

Abstract

Traditional statistical process control (SPC) charting techniques were developed to monitor process status and helping identify assignable causes. Unnatural patterns in the process are recognized by means of control chart pattern recognition (CCPR) techniques. There are a broad set of studies in CCPR domain, however, given the growing doubts concerning the performance of control charts in presence of constrained data, this area has been overlooked in the literature. This paper, reports a preliminary work to develop a scheme for fault tolerant CCPR that is capable of (i) detecting of constrained data that is sampled in a misaligned uneven fashion and/or be partly lost or unavailable and (ii) accommodating the system in order to improve the reliability of recognition.

Publisher

Trans Tech Publications, Ltd.

Subject

General Engineering

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1. Simulation of crowd management using deep learning algorithm;International Journal of Web Information Systems;2021-07-08

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