WaveSim: A Wavelet-based Multi-scale Similarity Metric for Weather and Climate Fields
Gabriele Accarino, Viviana Acquaviva, Sara Shamekh, Duncan Watson-Parris, David Lawrence

TL;DR
WaveSim is a novel multi-scale similarity metric using wavelet transforms to evaluate spatial fields in weather and climate models, enabling detailed, interpretable comparisons across physical scales.
Contribution
It introduces WaveSim, a wavelet-based metric that decomposes fields into scale-specific components for improved interpretability and diagnostic capability in climate model evaluation.
Findings
Effective in synthetic tests with controlled perturbations
Applicable to climate variability case studies
Provides scale-specific similarity scores
Abstract
We introduce WaveSim, a multi-scale similarity metric for the evaluation of spatial fields in weather and climate applications. WaveSim exploits wavelet transforms to decompose input fields into scale-specific wavelet coefficients. The metric is built by multiplying three orthogonal components derived from these coefficients: Magnitude, which quantifies similarities in the energy distribution of the coefficients, i.e., the intensity of the field; Displacement, which captures spatial shift by comparing the centers of mass of normalized energy distributions; and Structure, which assesses pattern organization independent of location and amplitude. Each component yields a scale-specific similarity score ranging from 0 (no similarity) to 1 (perfect similarity), which are then combined across scales to produce an overall similarity measure. We first evaluate WaveSim using synthetic test…
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Taxonomy
TopicsMeteorological Phenomena and Simulations · Climate variability and models · Tropical and Extratropical Cyclones Research
