- -

Multi-user interference mitigation under limited feedback requirements for WCDMA systems with base station cooperation

RiuNet: Repositorio Institucional de la Universidad Politécnica de Valencia

Compartir/Enviar a

Citas

Estadísticas

  • Estadisticas de Uso

Multi-user interference mitigation under limited feedback requirements for WCDMA systems with base station cooperation

Mostrar el registro completo del ítem

Botella Mascarell, C.; Piñero Sipán, MG.; Diego Antón, MD. (2016). Multi-user interference mitigation under limited feedback requirements for WCDMA systems with base station cooperation. Telecommunication Systems. 61(3):543-557. https://doi.org/10.1007/s11235-015-0011-z

Por favor, use este identificador para citar o enlazar este ítem: http://hdl.handle.net/10251/84850

Ficheros en el ítem

Metadatos del ítem

Título: Multi-user interference mitigation under limited feedback requirements for WCDMA systems with base station cooperation
Autor: Botella Mascarell, Carmen Piñero Sipán, María Gemma Diego Antón, María de
Entidad UPV: Universitat Politècnica de València. Escuela Técnica Superior de Ingenieros de Telecomunicación - Escola Tècnica Superior d'Enginyers de Telecomunicació
Fecha difusión:
Resumen:
One of the techniques that has been recently identified for dealing with multi-user interference (MUI) in future communications systems is base station (BS) cooperation or joint processing. However, perfect MUI cancellation ...[+]
Palabras clave: Coordinated MultiPoint , WCDMA , Multi-user interference mitigation
Derechos de uso: Reserva de todos los derechos
Fuente:
Telecommunication Systems. (issn: 1018-4864 )
DOI: 10.1007/s11235-015-0011-z
Editorial:
Springer Verlag (Germany)
Versión del editor: http://dx.doi.org/10.1007/s11235-015-0011-z
Código del Proyecto:
info:eu-repo/grantAgreement/MICINN//CSD2008-00010/ES/Foundations and Methodologies for Future Communication and Sensor Networks/
info:eu-repo/grantAgreement/MINECO//TEC2013-47141-C4-4-R/ES/TECNICAS DE ACCESO RADIO PARA REDES INALAMBRICAS HETEROGENEAS/
info:eu-repo/grantAgreement/MINECO//TEC2012-38142-C04-01/ES/PROCESADO DISTRIBUIDO Y COLABORATIVO DE SEÑALES SONORAS: CONTROL ACTIVO/
info:eu-repo/grantAgreement/GVA//PROMETEOII%2F2014%2F003/ES/Computación y comunicaciones de altas prestaciones y aplicaciones en ingeniería/
Agradecimientos:
C. Botella's work has been partially supported by the Spanish MINECO Grants CONSOLIDER-INGENIO 2010 CSD 2008-00010 COMONSENS and RACHEL TEC2013-47141-C4-4-R. G. Pinero and M. de Diego's work has been supported by European ...[+]
Tipo: Artículo

References

Jungnickel, V., Manolakis, K., Zirwas, W., Panzner, B., Braun, V., Lossow, M., et al. (2014). The role of small cells, coordinated multipoint, and massive MIMO in 5G. IEEE Communications Magazine, 52(5), 44–50.

Hossain, E., & Lei, Z. (2013). Multicell cooperation. IEEE Wireless Communications, special issue, 20(1).

Karakayali, M. K., Foschini, G. J., & Valenzuela, R. A. (2006). Network coordination for spectrally efficient communications in cellular systems. IEEE Wireless Communications, 13(4), 56–61. [+]
Jungnickel, V., Manolakis, K., Zirwas, W., Panzner, B., Braun, V., Lossow, M., et al. (2014). The role of small cells, coordinated multipoint, and massive MIMO in 5G. IEEE Communications Magazine, 52(5), 44–50.

Hossain, E., & Lei, Z. (2013). Multicell cooperation. IEEE Wireless Communications, special issue, 20(1).

Karakayali, M. K., Foschini, G. J., & Valenzuela, R. A. (2006). Network coordination for spectrally efficient communications in cellular systems. IEEE Wireless Communications, 13(4), 56–61.

Du, Q., & Zhang, X. (2011). Base-station selection for QoS provisioning over distributed multi-user MIMO links in wireless networks. In Proceedings of IEEE INFOCOM.

3GPP TR 36.819, 3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Coordinated multi-point operation for LTE physical layer aspects (Release 11), (2011).

3GPP Release 11, Overview of 3GPP Release 11 V0.2.0 (2014).

Nokia Solutions and Networks, LTE-Advanced (Release 12 and Beyond). (2014). http://networks.nokia.com/file/29961/lte-advanced-rel12-and-beyond .

Rusek, F., Persson, D., Lau, B. K., Larsson, E. G., Marzetta, T. L., Edfors, O., et al. (2013). Scaling up MIMO: Opportunities and challenges with very large arrays. IEEE Signal Processing Magazine, 30(1), 40–60.

Nokia Solutions and Networks, Looking ahead to 5G. (2013). http://networks.nokia.com//file/28771/nsn-5g-white-paper .

Ericsson, HSPA Evolution—beyond 3GPP Release 10. (2011). http://www.3g4g.co.uk/Hspa/HSPAE_WP_1107_Ericsson .

Nokia Siemens Networks, Long Term HSPA Evolution meets ITU IMT-Advanced requirements. (2012). http://networks.nokia.com/system/files/document/nokia_siemens_networks_long_term_hspa_evolution_meets_itu_imt-advanced_requirements_18_04_12_online.pdf .

Qualcomm Incorporated, HSPA+ Advanced Smart Networks: Multipoint Transmission. (2011). https://www.qualcomm.com/invention/research/projects/hspa-advanced/multiflow .

Nokia Solutions and Networks, Taking HSPA to the next level with Release 12 and Beyond. (2014). http://networks.nokia.com/file/30801/taking-hspa-to-the-next-level-with-release-12-and-beyond .

3GPP TSG-RAN, RP-101439, Proposed study item on HSDPA multipoint transmission. (2010).

3GPP TR 25.872, 3rd Generation Partnership Project; Technical Specification Group Radio Access Network; High Speed Packet Access (HSDPA) multipoint transmission (Release 11). (2011).

3GPP TSG-RAN, RP-111375, HSDPA Multiflow data transmission. (2011).

3GPP TSG-RAN WG1, R1–104913, Multi-cell transmission techniques for HSDPA. (2010).

3GPP TSG-RAN WG1, R1–110123, Candidate schemes for multi-point HSDPA. (2011).

Hytonen, V., Puchko, O., Hohne, T., & Chapman, T. (2011). High-speed single-frequency network for HSDPA. In Proceedings of IEEE Swedish Communication Technologies Workshop.

Yang, W., Chang, Y., Liu, S., & Yang, D. (2011). Efficient multi-point transmission scheme for HSDPA networks. In Proceedings of IEEE Vehicular Technology Conference (VTC-Fall).

Petrov, D., Repo, I., & Lampinen, M. (2012). Overview of single frequency multipoint transmission concepts for HSDPA and performance evaluation of intra-site multiflow aggregation scheme. In Proceedings of IEEE Vehicular Technology Conference (VTC-Spring).

Yaver, A., Marsch, P., Pawlak, K., & Moya, F. S. (2012). On the joint usage of MIMO and multiflow in evolved HSPA networks. In Proceedings of IEEE International Conference on Communications (ICC).

Qualcomm Technologies. HSPA+ Multiflow. Solution for cell edge performance improvement and dynamic load balancing. (2014). https://www.qualcomm.com/media/documents/files/hspa-multiflow.pdf .

Nokia Solutions and Networks. (2014). Setting up HSPA+ heterogenous networks for the best customer experience. http://networks.nokia.com/file/31256/setting-up-hspa-heterogeneous-networks-for-the-best-customer-experience .

Venkatesan, S. (2007). Coordinating base stations for greater uplink spectral efficiency in a cellular network. In Proceedings of IEEE International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).

Boccardi, F., & Huang, H. (2007). Limited downlink network coordination in cellular networks. In Proceedings of IEEE International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).

Papadogiannis, A., Gesbert, D., & Hardouin, E. (2008). A dynamic clustering approach in wireless networks with multi-cell cooperative processing. In Proceedings of IEEE International Conference on Communications (ICC).

Boccardi, F., Huang, H., & Alexiou, A. (2008). Network MIMO with reduced backhaul requirements by MAC coordination. In Proceedings of IEEE Asilomar Conference on Signals, Systems and Computers.

Zhang, H., Mehta, N. B., Molisch, A. F., Zhang, J., & Dai, H. (2008). Asynchronous interference mitigation in cooperative base station systems. IEEE Transactions on Wireless Communications, 7(1), 155–165.

Gee, S. B., Lei, Z., & Chew, Y. H. (2011). Cooperative multiuser MIMO precoding design for asynchronous interference mitigation. In Proceedings of IEEE Global Telecommunications Conference workshops (GLOBECOM).

Medjahdi, Y., Terre, M., Le Ruyet, D., Roviras, D., & Dziri, A. (2011). Performance analysis of asynchronous OFDM/FBMC based multi-cellular networks. IEEE Transactions on Wireless Communications, 10(8), 2630–2639.

Zarikoff, B. W., & Cavers, J. K. (2010). Coordinated multi-cell systems: Carrier frequency offset estimation and correction. IEEE Journal on Selected Areas in Communications, 28(9), 1490–1501.

Awoniyi, O., Mehta, N. B., & Greenstein, L. J. (2003). Characterizing the orthogonality factor in WCDMA downlinks. IEEE Transactions on Wireless Communications, 2(4), 621–625.

Mehta, N. B., Greenstein, L. J., Willis, T. M., & Kostic, Z. (2003). Analysis and results for the orthogonality factor in WCDMA downlinks. IEEE Transactions on Wireless Communications, 2(6), 1138–1149.

Mehta, N. B., Molisch, A. F., & Greenstein, L. J. (2006). Macrocell-wide behavior of the orthogonality factor in WCDMA downlinks. IEEE Transactions on Wireless Communications, 5(12), 3394–3399.

Botella, C., Piñero, G., González, A., & de Diego, M. (2006). Spreading sequence assignment in WCDMA for distributed antenna arrays based on interference knowledge. In Proceedings of IEEE Workshop on Signal Processing Advances in Wireless Communications (SPAWC).

Chang, Y.-J., Tao, Z., Zhang, J., & Kuo, C.-C. J. (2008). A graph-based approach to multi-cell OFDMA downlink resource allocation. In Proceedings of IEEE Global Telecommunications Conference (GLOBECOM).

Pi $$\tilde{{\rm n}}$$ n ~ ero, G., Botella, C., González, A., de Diego, M., & Cardona, N. (2004). Downlink power control and beamforming for a cooperative wireless system. In Proceedings of IEEE International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).

Botella, C., Piñero, G., González, A., & de Diego, M. (2008). Coordination in a multi-cell multi-antenna multi-user W-CDMA system: A beamforming approach. IEEE Transactions on Wireless Communications, 7(11), 4479–4485.

3GPP TR 25.996, 3rd Generation Partnership Project; Technical Specification Group Radio Access Network; Spatial channel model for Multiple Input Multiple Output (MIMO) simulations (Release 11). (2012).

Cheun, K. (1997). Performance of direct-sequence spread-spectrum RAKE receivers with random spreading sequences. IEEE Transactions on Communications, 45(9), 1130–1143.

Gkonis, P. K., Tsoulos, G. V., & Kaklamani, D. I. (2011). Performance evaluation of MIMO-WCDMA cellular networks in multiuser frequency selective fading environments. Wireless Communications and Mobile Computing, 13(1), 72–84.

Bottomley, G. E., Ottosson, T., & Wang, Y.-P. E. (2000). A generalized RAKE receiver for interference suppression. IEEE Journal on Selected Areas in Communications, 18(8), 1536–1545.

Fulghum, T. L., Cairns, D., Cozzo, C., Wang, Y.-P. E., & Bottomley, G. E. (2009). Adaptive generalized rake reception in DS-CDMA systems. IEEE Transactions on Wireless Communications, 8(7), 3464–3474.

Wang, C.-X., Hong, X., Wu, H., & Xu, W. (2007). Spatial-temporal correlation properties of the 3GPP spatial channel model and the Kronecker MIMO channel model. EURASIP Journal on Wireless Communications and Networking, Article ID 39871.

Li, J., Svensson, T., Botella, C., Eriksson, T., Xu, X., & Chen, X. (2011). Joint scheduling and power control in coordinated multi-point clusters. In Proceedings of IEEE Vehicular Technology Conference (VTC-fall).

Botella, C., Svensson, T., Xu, X., & Hui, Z. (2010). On the performance of joint processing schemes over the cluster area. In Proceedings of IEEE Vehicular Technology Conference (VTC-spring).

Papadogiannis, A., Bang, H. J., Gesbert, D., & Hardouin, E. (2008). Downlink overhead reduction for multi-cell cooperative processing enabled wireless networks. In Proceedings of IEEE International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).

Mennerich, W., & Zirwas, W. (2010). Implementation issues of the partial CoMP concept. In Proceedings of IEEE International Symposium on Personal, Indoor and Mobile Radio Communications (PIMRC).

3GPP TSG-RAN WG1, R1–092657, Impact of propagation attenuations and delays of CoMP composite. (2009).

Minn, T., & Siu, K.-Y. (2000). Dynamic assignment of orthogonal variable-spreading-factor codes in W-CDMA. IEEE Journal on Selected Areas in Communications, 18(8), 1429–1440.

Tseng, Y.-C., & Chao, C.-M. (2002). Code placement and replacement strategies for wideband CDMA OVSF code tree management. IEEE Transactions on Mobile Computing, 1(4), 293–302.

Dell’Amico, M., Merani, M. L., & Maffioli, F. (2004). A tree partitioning dynamic policy for OVSF codes assignment in wideband CDMA. IEEE Transactions on Wireless Communications, 3(4), 1013–1017.

Ulukus, S., & Yates, R. D. (2001). Iterative construction of optimum signature sequence sets in synchronous CDMA sytems. IEEE Transactions on Information Theory, 47(5), 1989–1998.

Chen, J.-T., Papadias, C., & Foschini, G. J. (2004). Space-time dynamic signature assignment for the reverse link of DS-CDMA systems. IEEE Transactions on Communications, 52(1), 120–129.

Gao, L., & Wong, T. F. (2004). Power control and spreading sequence allocation in a CDMA forward link. IEEE Transactions on Information Theory, 50(1), 105–124.

Papadogiannis, A., Hardouin, E., & Gesbert, D. (2008). A framework for decentralising multi-cell cooperative processing on the downlink. In Proceedings of IEEE Global Telecommunications Conference (GLOBECOM).

Skjevling, H., Gesbert, D., & Hjørungnes, A. (2008). Low-complexity distributed multibase transmission and scheduling. EURASIP Journal on Advances in Signal Processing, Article ID 741593.

Rashid-Farrokhi, F., Ray Liu, K. J., & Tassiulas, L. (1998). Transmit beamforming and power control for cellular wireless systems. IEEE Journal on Selected Areas in Communications, 16(8), 1437–1450.

[-]

recommendations

 

Este ítem aparece en la(s) siguiente(s) colección(ones)

Mostrar el registro completo del ítem