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Channel Estimation for Massive MIMO Systems Based on Sparse Representation and Sparse Signal Recovery

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서명/저자사항Channel Estimation for Massive MIMO Systems Based on Sparse Representation and Sparse Signal Recovery.
개인저자Ding, Yacong.
단체저자명University of California, San Diego. Electrical Engineering (Communication Theory and Systems).
발행사항[S.l.]: University of California, San Diego., 2018.
발행사항Ann Arbor: ProQuest Dissertations & Theses, 2018.
형태사항194 p.
기본자료 저록Dissertation Abstracts International 79-12B(E).
Dissertation Abstract International
ISBN9780438169005
학위논문주기Thesis (Ph.D.)--University of California, San Diego, 2018.
일반주기 Source: Dissertation Abstracts International, Volume: 79-12(E), Section: B.
Adviser: Bhaskar D. Rao.
요약Massive multiple-input multiple-output (MIMO) is a promising technology for next generation communication systems, where the base station (BS) is equipped with a large number of antenna elements to serve multiple user equipments. With the large
요약To reduce the training and feedback overhead, compressive sensing methods and sparse recovery algorithms are proposed to robustly estimate the downlink and uplink channel by exploiting the sparse representation of the massive MIMO channel. Previ
일반주제명Electrical engineering.
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