Abstract We present a new supervised deep-learning approach to the problem of the extraction of smeared spectral densities from Euclidean lattice correlators. A distinctive feature of our method is a model-independent training strategy that we implement by parametrizing the training sets over a functional space spanned by Chebyshev polynomials. The other distinctive feature is a relia... https://www.perfumetank.com/product-category/microfiber-mops/
Teaching to extract spectral densities from lattice correlators to a broad audience of learning-machines
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