Investigating the potential of Zernike polynomials to characterise spatial distribution of macular pigment

Piers Allen1, Antonio Calcagni1,2,3, Anthony G Robson3,4

  • 1School of Computer Science, University of Birmingham, Birmingham, United Kingdom.

Plos One
|May 25, 2019
PubMed

Insights

Zernike polynomials accurately represent macular pigment (MP) distribution patterns. This method effectively classifies MP maps by age and age-related macular degeneration (AMD) status, identifying key spatial features.

Area of Science:

  • Ophthalmology
  • Biomedical Optics
  • Image Analysis

Background:

  • Macular pigment (MP) distribution patterns are theorized to influence eye disease risk, including age-related macular degeneration (AMD).
  • Quantifying MP distribution is crucial for understanding its role in ocular health and disease progression.

Purpose of the Study:

  • To evaluate Zernike polynomials (ZP) for characterizing MP level and distribution.
  • To assess the suitability of ZP as a representation for analyzing MP patterns in relation to age and AMD.
  • To determine if ZP-based MP representations can classify individuals by age and AMD status.

Main Methods:

  • MP distribution maps were acquired from 90 volunteers across three groups: young healthy, older healthy, and older with AMD.
  • Zernike polynomials (105 coefficients) were fitted to MP maps using least-squares optimization.
  • Statistical analyses, including MANOVA and linear discriminant analysis, were performed on ZP coefficients.

Main Results:

  • Zernike polynomials accurately represented MP maps (RMSE<10-1).
  • Significant differences in ZP means were found among the three subject groups (p<0.0001).
  • Classification accuracy for age and AMD status using ZP was significantly above chance (up to 87%).

Conclusions:

  • Zernike polynomial coefficients effectively capture spatial patterns of macular pigment distribution.
  • ZP-based MP analysis allows for accurate classification based on age and AMD status.
  • Peak elevation, pattern irregularity, and radial asymmetry are identified as significant MP features.

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