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A time-causal and time-recursive analogue of the Gabor transform
KTH, School of Electrical Engineering and Computer Science (EECS), Computer Science, Computational Science and Technology (CST). (Computational Brain Science Lab)ORCID iD: 0000-0002-9081-2170
2023 (English)Report (Other academic)
Abstract [en]

This paper presents a time-causal analogue of the Gabor filter, as well as a both time-causal and time-recursive analogue of the Gabor transform, where the proposed time-causal representations obey both temporal scale covariance and a cascade property over temporal scales. The motivation behind these constructions is to enable theoretically well-founded time-frequency analysis over multiple temporal scales for real-time situations, or for physical or biological modelling situations, when the future cannot be accessed, and the non-causal access to the future in Gabor filtering is therefore not viable for a time-frequency analysis of the system.

We develop a principled axiomatically determined theory for formulating these time-causal time-frequency representations, obtained by replacing the Gaussian kernel in the Gabor filtering with a time-causal kernel, referred to as the time-causal limit kernel, and which guarantees simplification properties from finer to coarser levels of scales in a time-causal situation, similar as the Gaussian kernel can be shown to guarantee over a non-causal temporal domain. We do also develop an axiomatically determined theory for implementing a discrete analogue of the proposed time-causal frequency analysis method on discrete data, based on first-order recursive filters coupled in cascade, with provable variation-diminishing properties that strongly suppress the influence from local perturbations and noise, and with specially chosen time constants to achieve self-similarity over scales and temporal scale covariance.

In these ways, the proposed time-frequency representations guarantee well-founded treatment over multiple temporal scales, in situations when the characteristic scales in the signals, or physical or biological phenomena, to be analyzed may vary substantially, and additionally all steps in the time-frequency analysis have to be fully time-causal.

Place, publisher, year, edition, pages
2023. , p. 31
Keywords [en]
time-frequency analysis, Gabor filter, Gabor transform, Time-causal, time-recursive, temporal scale, scale covariance, harmonic analysis, signal processing
National Category
Signal Processing Mathematical Analysis
Research subject
Computer Science
Identifiers
URN: urn:nbn:se:kth:diva-334893DOI: 10.48550/arXiv.2308.14512OAI: oai:DiVA.org:kth-334893DiVA, id: diva2:1792265
Projects
Covariant and invariant deep networks
Funder
Swedish Research Council, 2022-02969
Note

QC 20231123

Available from: 2023-08-29 Created: 2023-08-29 Last updated: 2024-12-19Bibliographically approved

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Publisher's full textarXiv:2308.14512

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Lindeberg, Tony

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