Please use this identifier to cite or link to this item: http://repository.futminna.edu.ng:8080/jspui/handle/123456789/9321
Title: EFFECTS OF MISSING OBSERVATIONS ON PREDICTIVE CAPABILITY OF CENTRAL COMPOSITE DESIGNS
Authors: Yakubu, Yisa
Unna Chukwu, Angela
Bamiduro, Timothy Adebayo
Amahia, Godwin Nwonzo
Keywords: Central Composite Designs
Missing Observations
Predictive Capability
Precision of parameter estimates
Issue Date: Dec-2014
Publisher: International Journal on Computational Sciences & Applications (IJCSA)
Citation: Yakubu Y., Unna Chukwu A., Bamiduro T. A., & Amahia G. N. (2014). Effects of Missing Observations on Predictive Capability of Central Composite Designs, International Journal on Computational Sciences & Applications (IJCSA), Vol.4, No.6, pp 1-18
Abstract: Quite often in experimental work, many situations arise where some observations are lost or become unavailable due to some accidents or cost constraints. When there are missing observations, some desirable design properties like orthogonality,rotatability and optimality can be adversely affected. Some attention has been given, in literature, to investigating the prediction capability of response surface designs; however, little or no effort has been devoted to investigating same for such designs when some observations are missing. This work therefore investigates the impact of a single missing observation of the various design points: factorial, axial and center points, on the estimation and predictive capability of Central Composite Designs (CCDs). It was observed that for each of the designs considered, precision of model parameter estimates and the design prediction properties were adversely affected by the missing observations and that the largest loss in precision of parameters corresponds to a missing factorial point.
URI: http://repository.futminna.edu.ng:8080/jspui/handle/123456789/9321
ISSN: 2200-0011
Appears in Collections:Statistics

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