MINIMUF-85: An Improved HF MUF Prediction Algorithm

Abstract

An improved version of MINIMUF-3.5, called MINIMUF-85, was developed to predict accurate maximum usable frequencies (MUFs) under conditions of anomalously high sunspot numbers; also, to predict values of fOF2 suitable for raytracing applications, to predict m3000 factor values usable for determining the mirror height of reflection for oblique incidence propagation, and to predict accurate MUFs for paths having a portion of the path in the polar region. This version includes sunspot number curve, reducing the error in predicted MUF values under very high sunspot number dependence in both FOF2 and the M-factor calculations and provides a natural saturation in the MUF versus sunspot number conditions. The polar and nonpolar FOF2 models are welded together by means of a folding function. MINIMUF-85 predicts 0.14 MHz low on average and has an error of 4.08 MHz; whereas; MINIMUF-3.5 had a bias of 0.51 MHz low and an 4.33 rms error when compared on the same 39 paths. The subjects of the choice of solar index for forecasting purposes, of sounder updating, of the effects of the underlying layers on both M-factor estimation and determination of the mirror height of reflection, and of future improvements in MINIMUF are discussed. Keywords include: Maximum usable frequencies, Sunspot numbers, Raytracing, Solar index.

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Document Details

Document Type
Technical Report
Publication Date
Jul 01, 1986
Accession Number
ADA178305

Entities

People

  • D. B. Sailors
  • R. A. Sprague
  • W. H. Rix

Tags

Communities of Interest

  • Advanced Electronics
  • C4I
  • Energy and Power Technologies
  • Materials and Manufacturing Processes

DTIC Thesaurus Topics

  • Algorithms
  • Communication Systems
  • Computer Programs
  • Data Sets
  • Databases
  • Ecology
  • Electromagnetic Wave Propagation
  • Electron Density
  • Electrons
  • Geographic Distribution
  • Geographic Regions
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  • High Latitudes
  • Ionosphere
  • Polar Regions
  • Regression Analysis
  • Solar Activity

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  • Approximation Theory.
  • Space/Atmospheric Physics.