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Uncertainty Principle and Phase–Amplitude Analysis of Signals on the Unit Sphere
Pei Dang1; Tao Qian2; Qiuhui Chen3
2017-12-01
Source PublicationAdvances in Applied Clifford Algebras
ISSN1661-4909
Volume27Issue:4Pages:2985-3013
Abstract

This paper is devoted to studying uncertainty principle of Heisenberg type for signals on the unit sphere in the Clifford algebra setting. In the Clifford algebra setting we propose two forms of uncertainty principle for spherical signals, of which both correspond to the strongest form of uncertainty principle for periodic signals. The lower-bounds of the proven uncertainty principles are in terms of a scalar-valued phase derivative.

KeywordPhase Derivative Spherical Dirac Operator Spherical Hilbert Transform Spherical Signals Uncertainty Principle
DOI10.1007/s00006-017-0808-9
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaMathematics ; Physics
WOS SubjectMathematics, Applied ; Physics, Mathematical
WOS IDWOS:000414140500005
Scopus ID2-s2.0-85028874159
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Document TypeJournal article
CollectionUniversity of Macau
Corresponding AuthorPei Dang
Affiliation1.Faculty of Information Technology Macau University of Science and Technology Macao China
2.Department of Mathematics University of Macau Macao China
3.Department of Mathematics College of Mathematics and Informatics South China Agricultural University Guangzhou China
First Author AffilicationUniversity of Macau
Corresponding Author AffilicationUniversity of Macau
Recommended Citation
GB/T 7714
Pei Dang,Tao Qian,Qiuhui Chen. Uncertainty Principle and Phase–Amplitude Analysis of Signals on the Unit Sphere[J]. Advances in Applied Clifford Algebras, 2017, 27(4), 2985-3013.
APA Pei Dang., Tao Qian., & Qiuhui Chen (2017). Uncertainty Principle and Phase–Amplitude Analysis of Signals on the Unit Sphere. Advances in Applied Clifford Algebras, 27(4), 2985-3013.
MLA Pei Dang,et al."Uncertainty Principle and Phase–Amplitude Analysis of Signals on the Unit Sphere".Advances in Applied Clifford Algebras 27.4(2017):2985-3013.
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