Direction of arrival estimation using adaptive directional time-frequency distributions
Time-frequency distributions (TFDs) allow direction of arrival (DOA) estimation algorithms to be used in scenarios when the total number of sources are more than the number of sensors. The performance of such time–frequency (t–f) based DOA estimation algorithms depends on the resolution of the under...
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Published in | Multidimensional systems and signal processing Vol. 29; no. 2; pp. 503 - 521 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
New York
Springer US
01.04.2018
Springer Nature B.V |
Subjects | |
Online Access | Get full text |
ISSN | 0923-6082 1573-0824 1573-0824 |
DOI | 10.1007/s11045-016-0435-y |
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Abstract | Time-frequency distributions (TFDs) allow direction of arrival (DOA) estimation algorithms to be used in scenarios when the total number of sources are more than the number of sensors. The performance of such time–frequency (t–f) based DOA estimation algorithms depends on the resolution of the underlying TFD as a higher resolution TFD leads to better separation of sources in the t–f domain. This paper presents a novel DOA estimation algorithm that uses the adaptive directional t–f distribution (ADTFD) for the analysis of close signal components. The ADTFD optimizes the direction of kernel at each point in the t–f domain to obtain a clear t–f representation, which is then exploited for DOA estimation. Moreover, the proposed methodology can also be applied for DOA estimation of sparse signals. Experimental results indicate that the proposed DOA algorithm based on the ADTFD outperforms other fixed and adaptive kernel based DOA algorithms. |
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AbstractList | Time-frequency distributions (TFDs) allow direction of arrival (DOA) estimation algorithms to be used in scenarios when the total number of sources are more than the number of sensors. The performance of such time–frequency (t–f) based DOA estimation algorithms depends on the resolution of the underlying TFD as a higher resolution TFD leads to better separation of sources in the t–f domain. This paper presents a novel DOA estimation algorithm that uses the adaptive directional t–f distribution (ADTFD) for the analysis of close signal components. The ADTFD optimizes the direction of kernel at each point in the t–f domain to obtain a clear t–f representation, which is then exploited for DOA estimation. Moreover, the proposed methodology can also be applied for DOA estimation of sparse signals. Experimental results indicate that the proposed DOA algorithm based on the ADTFD outperforms other fixed and adaptive kernel based DOA algorithms. |
Author | Ali, Sadiq Jansson, Magnus Ali Khan, Nabeel |
Author_xml | – sequence: 1 givenname: Nabeel surname: Ali Khan fullname: Ali Khan, Nabeel organization: Department of Electrical Engineering, Federal Urdu University – sequence: 2 givenname: Sadiq orcidid: 0000-0001-9992-602X surname: Ali fullname: Ali, Sadiq email: dr.sadiq.ali.turi@gmail.com organization: Department of Electrical Engineering, University of Engineering and Technology – sequence: 3 givenname: Magnus surname: Jansson fullname: Jansson, Magnus organization: Signal Processing Lab, Department of Electrical Engineering, KTH-Royal Institute of Technology |
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SubjectTerms | Adaptive algorithms Adaptive directional Time-frequency distribution Algorithms Artificial Intelligence Circuits and Systems Direction of arrival Direction of arrival estimation Electrical Engineering Engineering Frequency estimation High resolution TFDs Instantaneous frequency estimation MUSIC Robustness (control systems) Signal,Image and Speech Processing Source separation Time-frequency distributions |
Title | Direction of arrival estimation using adaptive directional time-frequency distributions |
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