TECHNICAL PAPERS
Jan 1, 1993

Estimating Autocovariance of In‐Situ Soil Properties

Publication: Journal of Geotechnical Engineering
Volume 119, Issue 1

Abstract

The spatial variability of soil properties in situ is often modeled by trend surfaces and residual variations about trend. With the advent of computer‐aided design, statistical procedures are now routinely applied to trend and residual estimation. A maximum likelihood (ML) technique is presented for simultaneously estimating spatial trends, measurement noise, and the autocovariance structure of residuals about spatial trends. This technique has more favorable statistical properties than traditional procedures, and these properties have an important practical advantage in that they lend themselves to incorporation in computerized data‐analysis systems. Simulation experiments are used to verify small‐sample‐size properties of ML estimation and to draw conclusions on optimal boring layouts. The experiments show that analytical asymptotic properties of maximum likelihood estimators are approached even at the modest sample sizes common in geotechnical site investigations. Field vane strengths from a site‐exploration program are analyzed using the maximum likelihood technique and comparisons are made with results obtained using traditional moment estimators.

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Go to Journal of Geotechnical Engineering
Journal of Geotechnical Engineering
Volume 119Issue 1January 1993
Pages: 147 - 166

History

Received: Jan 30, 1992
Published online: Jan 1, 1993
Published in print: Jan 1993

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Authors

Affiliations

Don J. DeGroot, Associate Member, ASCE
Asst. Prof., Univ. of Massachusetts, Amherst, MA 01003
Gregory B. Baecher, Member, ASCE
Pres., Consolve Inc., 70 Westview St., Lexington, MA 02173

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