Publication:

Towards Generalized FRI Sampling with an Application to Source Resolution in Radioastronomy

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2024-08-09T12:35:23Z

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222498

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LCAV

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EPFL

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10434

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Vetterli, Martin

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datacite.rights

openaccess

dc.contributor.author

Pan, Hanjie

dc.contributor.author

Blu, Thierry

dc.contributor.author

Vetterli, Martin

dc.date.accessioned

2016-10-25T10:39:11

dc.date.available

2016-10-25T10:39:11

dc.date.created

2016-10-25

dc.date.issued

2017

dc.date.modified

2025-01-24T05:09:51.420235Z

dc.description.abstract

It is a classic problem to estimate continuous-time sparse signals, like point sources in a direction-of-arrival problem, or pulses in a time-of-flight measurement. The earliest occurrence is the estimation of sinusoids in time series using Prony's method. This is at the root of a substantial line of work on high resolution spectral estimation. The estimation of continuous-time sparse signals from discrete-time samples is the goal of the sampling theory for finite rate of innovation (FRI) signals. Both spectral estimation and FRI sampling usually assume uniform sampling. But not all measurements are obtained uniformly, as exemplified by a concrete radioastronomy problem we set out to solve. Thus, we develop the theory and algorithm to reconstruct sparse signals, typically sum of sinusoids, from non-uniform samples. We achieve this by identifying a linear transformation that relates the unknown uniform samples of sinusoids to the given measurements. These uniform samples are known to satisfy the annihilation equations. A valid solution is then obtained by solving a constrained minimization such that the reconstructed signal is consistent with the given measurements and satisfies the annihilation constraint. Thanks to this new approach, we unify a variety of FRI-based methods. We demonstrate the versatility and robustness of the proposed approach with five FRI reconstruction problems, namely Dirac reconstructions with irregular time or Fourier domain samples, FRI curve reconstructions, Dirac reconstructions on the sphere and point source reconstructions in radioastronomy. The proposed algorithm improves substantially over state of the art methods and is able to reconstruct point sources accurately from irregularly sampled Fourier measurements under severe noise conditions.

dc.description.sponsorship

LCAV

dc.identifier.doi

10.1109/TSP.2016.2625274

dc.identifier.isi

WOS:000391296100001

dc.identifier.uri

https://infoscience.epfl.ch/handle/20.500.14299/130636

dc.publisher

Institute of Electrical and Electronics Engineers

dc.publisher.place

Piscataway

dc.relation

https://infoscience.epfl.ch/record/222498/files/article.pdf

dc.relation.issn

1053-587X

dc.relation.journal

IEEE Transactions on Signal Processing

dc.size

15

dc.subject

Finite rate of innovation (FRI)

dc.subject

approximation

dc.subject

sparse reconstruction

dc.subject

irregular sampling

dc.subject

continuous-time sparsity

dc.subject

LCAV-MSP

dc.title

Towards Generalized FRI Sampling with an Application to Source Resolution in Radioastronomy

dc.type

text::journal::journal article::research article

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Publication

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Publisher's version

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oai:infoscience.tind.io:222498

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Journal Articles

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ARTICLE

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OpenAIREv4

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fulltext

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IC

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article

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REVIEWED

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http://purl.org/coar/version/c_970fb48d4fbd8a85

epfl.url

https://github.com/hanjiepan/FRI_pkg

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URL

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EPFL

oaire.citation.endPage

835

oaire.citation.issue

4

oaire.citation.startPage

821

oaire.citation.volume

65

oaire.version

http://purl.org/coar/version/c_970fb48d4fbd8a85

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