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Salīdzināt metodes

Apskatiet izvēlētās metodes blakus; rindas, kas atšķiras, ir izceltas.

Pilnībā randomizēts dizains (PRD)×Pilna faktorālā eksperimenta dizains×Vienvirziena dispersijas analīze×
NozareEksperimentu plānošanaEksperimentu plānošanaStatistika
SaimeHypothesis testHypothesis testHypothesis test
Izcelsmes gads193519261925
AutorsR. A. FisherR. A. FisherRonald A. Fisher
TipsParametric group comparison via one-way ANOVAParametric factorial experimentParametric mean comparison
PirmavotsMontgomery, D.C. (2017). Design and Analysis of Experiments. Wiley. ISBN: 978-1119320937Box, G. E. P., Hunter, J. S., & Hunter, W. G. (2005). Statistics for Experimenters: Design, Innovation, and Discovery (2nd ed.). Wiley. ISBN: 978-0471718130Fisher, R. A. (1925). Statistical Methods for Research Workers. Edinburgh: Oliver and Boyd. link ↗
Citi nosaukumiCRD, completely randomised design, one-way experimental design, Tam Tesadüf Deneme Deseni (CRD)factorial experiment, 2^k factorial, full factorial, Faktöriyel Deneme Deseni (Full Factorial, 2^k)one-factor ANOVA, single-factor ANOVA, analysis of variance, tek yönlü ANOVA
Saistītās354
KopsavilkumsThe completely randomized design is the most fundamental experimental design, in which experimental units are assigned to treatments entirely at random with no restrictions. Analysed by one-way ANOVA, it was formalised by R. A. Fisher in the 1930s and remains the reference starting point for experimental research whenever the experimental material is homogeneous and nuisance variation is absent or negligible.A full factorial design is a parametric experimental method in which every combination of factor levels is tested simultaneously, enabling the estimation of all main effects and all interaction effects in a single study. Rooted in R. A. Fisher's foundational work on designed experiments (1926) and systematically developed by Box, Hunter, and Hunter (2005) and Montgomery (2017), the 2^k form tests k two-level factors across 2^k experimental runs and is the benchmark against which all other factorial designs are measured.One-way ANOVA is a parametric hypothesis test that compares the means of three or more independent groups on a single continuous outcome to decide whether at least one group mean differs. It rests on the variance-partitioning framework introduced by Ronald A. Fisher in 1925.
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ScholarGateSalīdzināt metodes: Completely Randomized Design · Full Factorial Design · One-way ANOVA. Izgūts 2026-06-19 no https://scholargate.app/lv/compare