Resource Allocation for Downlink Cellular OFDMA Systems-Part I: Optimal Allocation
In this pair of papers (Part I and Part II in this issue), we investigate the issue of power control and subcarrier assignment in a sectorized two-cell downlink OFDMA system impaired by multicell interference. As recommended for WiMAX, we assume that the first part of the available bandwidth is like...
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Published in | IEEE transactions on signal processing Vol. 58; no. 2; pp. 720 - 734 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
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New York, NY
IEEE
01.02.2010
Institute of Electrical and Electronics Engineers The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
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Abstract | In this pair of papers (Part I and Part II in this issue), we investigate the issue of power control and subcarrier assignment in a sectorized two-cell downlink OFDMA system impaired by multicell interference. As recommended for WiMAX, we assume that the first part of the available bandwidth is likely to be reused by different base stations (and is thus subject to multicell interference) and that the second part of the bandwidth is shared in an orthogonal way between the different base stations (and is thus protected from multicell interference). Although the problem of multicell resource allocation is nonconvex in this scenario, we provide in Part I the general form of the global solution. In particular, the optimal resource allocation turns out to be ¿binary¿ in the sense that, except for at most one pivot-user in each cell, any user receives data either in the reused bandwidth or in the protected bandwidth, but not in both. The determination of the optimal resource allocation essentially reduces to the determination of the latter pivot-position. |
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AbstractList | In this pair of papers (Part I and Part II in this issue), we investigate the issue of power control and subcarrier assignment in a sectorized two-cell downlink OFDMA system impaired by multicell interference. As recommended for WiMAX, we assume that the first part of the available bandwidth is likely to be reused by different base stations (and is thus subject to multicell interference) and that the second part of the bandwidth is shared in an orthogonal way between the different base stations (and is thus protected from multicell interference). Although the problem of multicell resource allocation is nonconvex in this scenario, we provide in Part I the general form of the global solution. In particular, the optimal resource allocation turns out to be "binary" in the sense that, except for at most one pivot-user in each cell, any user receives data either in the reused bandwidth or in the protected bandwidth, but not in both. The determination of the optimal resource allocation essentially reduces to the determination of the latter pivot-position. In this pair of papers (Part I and Part II in this issue), we investigate the issue of power control and subcarrier assignment in a sectorized two-cell downlink OFDMA system impaired by multicell interference. As recommended for WiMAX, we assume that the first part of the available bandwidth is likely to be reused by different base stations (and is thus subject to multicell interference) and that the second part of the bandwidth is shared in an orthogonal way between the different base stations (and is thus protected from multicell interference). Although the problem of multicell resource allocation is nonconvex in this scenario, we provide in Part I the general form of the global solution. In particular, the optimal resource allocation turns out to be ¿binary¿ in the sense that, except for at most one pivot-user in each cell, any user receives data either in the reused bandwidth or in the protected bandwidth, but not in both. The determination of the optimal resource allocation essentially reduces to the determination of the latter pivot-position. |
Author | Hachem, W. Bianchi, P. Ksairi, N. Ciblat, P. |
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Keywords | Availability Mobile radiocommunication Base station Wireless telecommunication Resource allocation Frequency division multiple access Downlink Cell network Subcarrier multicell resource allocation Optimal allocation Power control Orthogonal frequency division multiplexing Signal processing OFDMA networks Long distance transmission Resource management Distributed resource allocation High rate transmission |
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References | ref13 ref14 ref11 ref10 yan (ref8) 2003; 3 ref2 ref17 ref19 ref18 deuflhard (ref27) 2005 chiang (ref1) 2005; 2 gault (ref12) 2005; 55 (ref24) 0 plass (ref25) 2004 ref23 ref26 ref20 ref22 ref21 (ref15) 0 ksairi (ref29) 2009 (ref28) 1999 ref7 ref4 ref6 ref5 li (ref9) 2003; 3 (ref16) 2004 gesbert (ref3) 2007 |
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SubjectTerms | Allocations Applied sciences Bandwidth Base stations Constraint optimization Distributed resource allocation Downlink Exact sciences and technology Information, signal and communications theory Interference Iterative algorithms Miscellaneous multicell resource allocation Multiplexing OFDMA networks Optimization Partitioning algorithms Power control Protection Resource allocation Resource management Signal and communications theory Signal processing Stations Studies Subcarriers Telecommunications and information theory |
Title | Resource Allocation for Downlink Cellular OFDMA Systems-Part I: Optimal Allocation |
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