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Throughput Maximization in Wireless Powered Communication Networks

Hyungsik Ju, +1 more
- Vol. 13, Iss: 1, pp 418-428
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TLDR
The solution reveals an interesting "doubly near-far" phenomenon due to both the DL and UL distance-dependent signal attenuation, where a far user from the H-AP, which receives less wireless energy than a nearer user in the DL, has to transmit with more power in the UL for reliable information transmission.
Abstract
This paper studies the newly emerging wireless powered communication network in which one hybrid access point (H-AP) with constant power supply coordinates the wireless energy/information transmissions to/from a set of distributed users that do not have other energy sources. A "harvest-then-transmit" protocol is proposed where all users first harvest the wireless energy broadcast by the H-AP in the downlink (DL) and then send their independent information to the H-AP in the uplink (UL) by time-division-multiple-access (TDMA). First, we study the sum-throughput maximization of all users by jointly optimizing the time allocation for the DL wireless power transfer versus the users' UL information transmissions given a total time constraint based on the users' DL and UL channels as well as their average harvested energy values. By applying convex optimization techniques, we obtain the closed-form expressions for the optimal time allocations to maximize the sum-throughput. Our solution reveals an interesting "doubly near-far" phenomenon due to both the DL and UL distance-dependent signal attenuation, where a far user from the H-AP, which receives less wireless energy than a nearer user in the DL, has to transmit with more power in the UL for reliable information transmission. As a result, the maximum sum-throughput is shown to be achieved by allocating substantially more time to the near users than the far users, thus resulting in unfair rate allocation among different users. To overcome this problem, we furthermore propose a new performance metric so-called common-throughput with the additional constraint that all users should be allocated with an equal rate regardless of their distances to the H-AP. We present an efficient algorithm to solve the common-throughput maximization problem. Simulation results demonstrate the effectiveness of the common-throughput approach for solving the new doubly near-far problem in wireless powered communication networks.

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Citations
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Journal ArticleDOI

Energy-Efficient Resource Allocation for Wireless Powered Massive MIMO System With Imperfect CSI

TL;DR: An energy-efficient resource allocation scheme for a wireless power transfer (WPT) enabled multi-user massive multiple-input multiple-output system with imperfect channel estimation and a scheme based on nonlinear fractional programming is utilized.
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Relay Cooperation Enhanced Backscatter Communication for Internet-of-Things

TL;DR: A relay cooperation scheme for backscatter communication systems for performance enhancement, in which one user backscatters incident signals to a relay and a receiver simultaneously, and then the relay decodes the received signals and forwards the decoded signals to the receiver.
Journal ArticleDOI

Multiuser Scheduling Schemes for Simultaneous Wireless Information and Power Transfer Over Fading Channels

TL;DR: An order-based equal throughput (ET) fair scheduler, which schedules the user having the minimum moving average throughput out of the users whose N-SNR orders fall into a given set of allowed orders, is proposed and it is shown that this scheme provides the users with proportionally fair average harvested energy values.
Journal ArticleDOI

Optimized Training for Net Energy Maximization in Multi-Antenna Wireless Energy Transfer Over Frequency-Selective Channel

TL;DR: Numerical results are provided to corroborate the analysis and show the effectiveness of the proposed scheme that optimally balances the diversity and beamforming gains in MISO WET systems with limited-energy training.
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Common Throughput Maximization for UAV-Enabled Interference Channel With Wireless Powered Communications

TL;DR: Numerical results show that the proposed designs significantly outperform benchmark schemes, and the utilization of CoMP achieves much higher uplink throughput than interference coordination.
References
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MIMO Broadcasting for Simultaneous Wireless Information and Power Transfer

TL;DR: This paper studies a multiple-input multiple-output (MIMO) wireless broadcast system consisting of three nodes, where one receiver harvests energy and another receiver decodes information separately from the signals sent by a common transmitter, and all the transmitter and receivers may be equipped with multiple antennas.
Proceedings ArticleDOI

Transporting information and energy simultaneously

TL;DR: The fundamental tradeoff between the rates at which energy and reliable information can be transmitted over a single noisy line is studied.
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Wireless Information and Power Transfer: Architecture Design and Rate-Energy Tradeoff

TL;DR: A general receiver operation, namely, dynamic power splitting (DPS), which splits the received signal with adjustable power ratio for energy harvesting and information decoding, separately is proposed and the optimal transmission strategy is derived to achieve different rate-energy tradeoffs.
Journal ArticleDOI

Multiaccess fading channels. I. Polymatroid structure, optimal resource allocation and throughput capacities

TL;DR: This work focuses on the multiaccess fading channel with Gaussian noise, and defines two notions of capacity depending on whether the traffic is delay-sensitive or not, and characterize the throughput capacity region which contains the long-term achievable rates through the time-varying channel.
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