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Blocked Two-Level Regular Designs with Individual Aliased Effect Number Pattern
Min Han1, Shengli Zhao1, Tao Sun1
1School of Statistics and Data Science, Qufu Normal University, Qufu 273165, China.
Abstract:
This paper proposes a blocked individual aliased effect number pattern (BI-AENP) for regular blocked designs and establishes its relationships with the core patterns of several existing optimality criteria. We develop an algorithm to compute the BI-AENP. A catalogue of 16-, 32-, and 64-run BI-AENP 2n-k:2r designs is presented, together with comparisons with the minimum aberration and clear effects criteria.
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