Metafitting: Weight Optimization for Least-Squares Fitting of PTTI Data

Abstract

For precise time intercomparisons between a master frequency standard and a slave time scale, we have found it useful to quantitatively compare different fitting strategies by examining the standard uncertainty in time or average frequency. It is particularly useful when designing procedures which use intermittent intercomparisons, with some parameterized fit used to interpolate or extrapolate from the calibrating intercomparisons. We use the term ""metafitting"" for the choices that are made before a fitting procedure is operationally adopted. We present methods for calculating the standard uncertainty for general, weighted least-squares fits and a method for optimizing these weights for a general noise model suitable for many PTTI applications. We present the results of the metafitting of procedures for the use of a regular schedule of (hypothetical) high-accuracy frequency calibration of a maser time scale. We have identified a cumulative series of improvements that give a significant reduction of the expected standard uncertainty, compared to the simplest procedure of resetting the maser synthesizer after each calibration. The metafitting improvements presented include the optimum choice of weights for the calibration runs, optimized over a period of a week or 10 days.

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Document Details

Document Type
Technical Report
Publication Date
Dec 01, 1994
Accession Number
ADA515745

Entities

People

  • J. Boulanger
  • R. J. Douglas

Organizations

  • National Research Council Canada

Tags

Communities of Interest

  • Materials and Manufacturing Processes

DTIC Thesaurus Topics

  • Accuracy
  • Algorithms
  • Atomic Beam Masers
  • Autocorrelation
  • Calibration
  • Coefficients
  • Computer Languages
  • Data Sets
  • Dead Time
  • Dynamic Range
  • Extrapolation
  • Frequency
  • Frequency Standards
  • Measurement
  • Optimization
  • Standards
  • Time Intervals

Readers

  • Adaptive Control and Estimation with Uncertainty in Dynamic Systems.
  • Computational Modeling and Simulation
  • Positioning, Navigation, and Timing (PNT) Technology.