Please use this identifier to cite or link to this item: http://bura.brunel.ac.uk/handle/2438/32743
Title: Generalized Score Matching: Bridging f-Divergence and Statistical Estimation Under Correlated Noise
Authors: Shen, Y
Gan, L
Ling, C
Keywords: learning systems;parameter estimation;perturbation methods;Gaussian noise;estimation;channel estimation;entropy;vectors;decoding;Gaussian channels
Issue Date: 22-Jun-2025
Publisher: Institute of Electrical and Electronics Engineers (IEEE)
Citation: Shen, Y., Gan, L. and Ling, C. (2025) 'Generalized Score Matching: Bridging f-Divergence and Statistical Estimation Under Correlated Noise', IEEE International Symposium on Information Theory (ISIT), Ann Arbor, MI, USA, 22-27 June, pp. 1 - 6. doi: 10.1109/ISIT63088.2025.11195353.
Abstract: Relative Fisher information, also known as score matching, is a recently introduced learning method for parameter estimation. Fundamental relations between relative entropy and score matching have been established in the literature for scalar and isotropic Gaussian channels. This paper demonstrates that such relations hold for a much larger class of observation models. We introduce the vector channel where the perturbation is non-isotropic Gaussian noise. For such channels, we derive new representations that connect the f-divergence between two distributions to the estimation loss induced by mismatch at the decoder. This approach not only unifies but also greatly extends existing results from both the isotropic Gaussian and classical relative entropy frameworks. Building on this generalization, we extend De Bruijn's identity to mismatched non-isotropic Gaussian models and demonstrate that the connections to generative models naturally follow as a consequence application of this new result.
URI: https://bura.brunel.ac.uk/handle/2438/32743
DOI: https://doi.org/10.1109/ISIT63088.2025.11195353
ISBN: 979-8-3315-4399-0 (ebk)
979-8-3315-4400-3 (PoD)
ISSN: 2157-8095
Other Identifiers: ORCiD: Lu Gan https://orcid.org/0000-0003-1056-7660
Appears in Collections:Dept of Electronic and Electrical Engineering Research Papers

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