A Novel Maximum-Likelihood Detection for the Binary MIMO System Using DC Programming
The multiple-input multiple-output (MIMO) system is widely used in wireless communications. For the problem of the discrete maximum-likelihood (ML) detection for the MIMO system, one can formulate it as binary quadratic programming (BQP). The general BQP problem is an NP-hard problem, which is a cha...
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| Vydáno v: | International Conference on Awareness Science and Technology s. 1 - 6 |
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01.10.2019
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| ISSN: | 2325-5994 |
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| Abstract | The multiple-input multiple-output (MIMO) system is widely used in wireless communications. For the problem of the discrete maximum-likelihood (ML) detection for the MIMO system, one can formulate it as binary quadratic programming (BQP). The general BQP problem is an NP-hard problem, which is a challenge for finding promising solutions. The variable complexity is a special considered issue. In this paper, inspired by the optimization of sparse constrains, we employ a regularization approach to deal with the binary constraints in the proposed formulation and then introduce the difference of convex functions (DC) programming to solve the formulated nonconvex cost function. A novel and robust DC algorithm is proposed. Numerical experiments show that the proposed algorithm, which is based on DC programming, can achieve accurate results with a higher convergence rate. |
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| AbstractList | The multiple-input multiple-output (MIMO) system is widely used in wireless communications. For the problem of the discrete maximum-likelihood (ML) detection for the MIMO system, one can formulate it as binary quadratic programming (BQP). The general BQP problem is an NP-hard problem, which is a challenge for finding promising solutions. The variable complexity is a special considered issue. In this paper, inspired by the optimization of sparse constrains, we employ a regularization approach to deal with the binary constraints in the proposed formulation and then introduce the difference of convex functions (DC) programming to solve the formulated nonconvex cost function. A novel and robust DC algorithm is proposed. Numerical experiments show that the proposed algorithm, which is based on DC programming, can achieve accurate results with a higher convergence rate. |
| Author | Ding, Shuxue Li, Xiang Tan, Benying Asoh, Hideki Akaho, Shotaro Li, Yujie |
| Author_xml | – sequence: 1 givenname: Benying surname: Tan fullname: Tan, Benying organization: The University of Aizu,School of Computer Science and Engineering,Aizuwakamatsu,Japan – sequence: 2 givenname: Xiang surname: Li fullname: Li, Xiang organization: The University of Aizu,School of Computer Science and Engineering,Aizuwakamatsu,Japan – sequence: 3 givenname: Shuxue surname: Ding fullname: Ding, Shuxue organization: Guilin University of Electronic Technology,School of Artificial Intelligence,Guilin,China – sequence: 4 givenname: Yujie surname: Li fullname: Li, Yujie organization: National Institute of Advanced Industrial Science and Technology,Tsukuba,Japan – sequence: 5 givenname: Shotaro surname: Akaho fullname: Akaho, Shotaro organization: National Institute of Advanced Industrial Science and Technology,Tsukuba,Japan – sequence: 6 givenname: Hideki surname: Asoh fullname: Asoh, Hideki organization: National Institute of Advanced Industrial Science and Technology,Tsukuba,Japan |
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| Snippet | The multiple-input multiple-output (MIMO) system is widely used in wireless communications. For the problem of the discrete maximum-likelihood (ML) detection... |
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| SubjectTerms | Antenna measurements binary quadratic programming (BQP) Convex functions DC algorithm (DCA) Detectors difference of convex functions (DC) programming MIMO communication MIMO system ML detection Programming Receiving antennas Transmitting antennas |
| Title | A Novel Maximum-Likelihood Detection for the Binary MIMO System Using DC Programming |
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