133,487 research outputs found
Energy-Throughput Tradeoff in Sustainable Cloud-RAN with Energy Harvesting
In this paper, we investigate joint beamforming for energy-throughput
tradeoff in a sustainable cloud radio access network system, where multiple
base stations (BSs) powered by independent renewable energy sources will
collaboratively transmit wireless information and energy to the data receiver
and the energy receiver simultaneously. In order to obtain the optimal joint
beamforming design over a finite time horizon, we formulate an optimization
problem to maximize the throughput of the data receiver while guaranteeing
sufficient RF charged energy of the energy receiver. Although such problem is
non-convex, it can be relaxed into a convex form and upper bounded by the
optimal value of the relaxed problem. We further prove tightness of the upper
bound by showing the optimal solution to the relaxed problem is rank one.
Motivated by the optimal solution, an efficient online algorithm is also
proposed for practical implementation. Finally, extensive simulations are
performed to verify the superiority of the proposed joint beamforming strategy
to other beamforming designs.Comment: Accepted by ICC 201
Quantum Phase Transition in the Sub-Ohmic Spin-Boson Model: Extended Coherent-state Approach
We propose a general extended coherent state approach to the qubit (or
fermion) and multi-mode boson coupling systems. The application to the
spin-boson model with the discretization of a bosonic bath with arbitrary
continuous spectral density is described in detail, and very accurate solutions
can be obtained. The quantum phase transition in the nontrivial sub-Ohmic case
can be located by the fidelity and the order-parameter critical exponents for
the bath exponents can be correctly given by the fidelity
susceptibility, demonstrating the strength of the approach.Comment: 4 pages, 3 figure
Quantum phase transitions in coupled two-level atoms in a single-mode cavity
The dipole-coupled two-level atoms(qubits) in a single-mode resonant cavity
is studied by extended bosonic coherent states. The numerically exact solution
is presented. For finite systems, the first-order quantum phase transitions
occur at the strong interatomic interaction. Similar to the original Dicke
model, this system exhibits a second-order quantum phase transition from the
normal to the superradiant phases. Finite-size scaling for several observables,
such as the average fidelity susceptibility, the order parameter, and
concurrence are performed for different interatomic interactions. The obtained
scaling exponents suggest that interatomic interactions do not change the
universality class.Comment: 13 pages, 5 figure
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