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Journal ArticleDOI

LTE-advanced: next-generation wireless broadband technology [Invited Paper]

TLDR
An overview of the techniques being considered for LTE Release 10 (aka LTEAdvanced) is discussed, which includes bandwidth extension via carrier aggregation to support deployment bandwidths up to 100 MHz, downlink spatial multiplexing including single-cell multi-user multiple-input multiple-output transmission and coordinated multi point transmission, and heterogeneous networks with emphasis on Type 1 and Type 2 relays.
Abstract
LTE Release 8 is one of the primary broadband technologies based on OFDM, which is currently being commercialized. LTE Release 8, which is mainly deployed in a macro/microcell layout, provides improved system capacity and coverage, high peak data rates, low latency, reduced operating costs, multi-antenna support, flexible bandwidth operation and seamless integration with existing systems. LTE-Advanced (also known as LTE Release 10) significantly enhances the existing LTE Release 8 and supports much higher peak rates, higher throughput and coverage, and lower latencies, resulting in a better user experience. Additionally, LTE Release 10 will support heterogeneous deployments where low-power nodes comprising picocells, femtocells, relays, remote radio heads, and so on are placed in a macrocell layout. The LTE-Advanced features enable one to meet or exceed IMT-Advanced requirements. It may also be noted that LTE Release 9 provides some minor enhancement to LTE Release 8 with respect to the air interface, and includes features like dual-layer beamforming and time-difference- of-arrival-based location techniques. In this article an overview of the techniques being considered for LTE Release 10 (aka LTEAdvanced) is discussed. This includes bandwidth extension via carrier aggregation to support deployment bandwidths up to 100 MHz, downlink spatial multiplexing including single-cell multi-user multiple-input multiple-output transmission and coordinated multi point transmission, uplink spatial multiplexing including extension to four-layer MIMO, and heterogeneous networks with emphasis on Type 1 and Type 2 relays. Finally, the performance of LTEAdvanced using IMT-A scenarios is presented and compared against IMT-A targets for full buffer and bursty traffic model.

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Citations
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Proceedings ArticleDOI

Intra-frequency handover algorithm design in LTE networks using Doppler frequency estimation

TL;DR: A dynamic method to trigger the handover algorithm in LTE networks is proposed, which utilizes Doppler frequency estimation in the downlink for adjustment and shows a marked decrease in the average number of handovers.
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Transmit power optimization for relay-aided multi-carrier D2D communication

TL;DR: The duality theory is exploited to decompose the problem into several sub-problems and use Karush-Kuhn- Tucker (KKT) conditions to solve each sub-problem, and a joint optimization scheme under a Decode-and-Forward (DF) relaying protocol to maximize the sum throughput of D2D and cellular networks via power allocation over different sub-carrier.
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Energy-Efficient Dynamic Point Selection and Scheduling Method for Intra-cell CoMP in LTE-A

TL;DR: The proposed dynamic point selection and user scheduling method for improving the energy efficiency in distributed antenna systems without cell edge spectral efficiency degradation achieves a significant energy efficiency gain over closed-loop spatial multiplexing applied on localized or distributed transmitting antennas.
Journal ArticleDOI

Estimation based on weighted channel variance for HTRCI‐MIMO/OFDM with QRM‐MLD and channel ranking under fast fading Channel

TL;DR: The non-linear prediction method for an HTRCI-MIMO/OFDM with the QRM-MLD and channel ranking is proposed, which requires large complexity because of the iterative processing.
Proceedings ArticleDOI

Secured Handover Key Management among LTE Entities Using Device Certification

TL;DR: An improved approach such as device certification based key agreement among all the entities in the LTE is proposed and the same status should be followed for MME and EPC, whenever UE moves from one eNB to another.
References
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Proceedings ArticleDOI

Overview of UMTS Air-Interface Evolution

TL;DR: A preliminary look at the air interface for Evolved UTRA (E-UTRA) and associated key technologies required to reach its design objectives are provided.
Proceedings ArticleDOI

On UMTS-LTE Physical Uplink Shared and Control Channels

TL;DR: The proposed channel estimation technique is shown to have significant gains in performance compared to other well known channel estimation techniques such as the maximum-likelihood (ML) and the inverse fast Fourier transform (IFFT) channel estimation methods.
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LTE-Advanced (also known as LTE Release 10) significantly enhances the existing LTE Release 8 and supports much higher peak rates, higher throughput and coverage, and lower latencies, resulting in a better user experience.