244 research outputs found
On the Secure DoF of the Single-Antenna MAC
A new achievability rate region for the secure discrete memoryless
Multiple-Access-Channel (MAC) is presented. Thereafter, a novel secure coding
scheme is proposed to achieve a positive Secure Degrees-of-Freedom (S-DoF) in
the single-antenna MAC. This scheme converts the single-antenna system into a
multiple-dimension system with fractional dimensions. The achievability scheme
is based on the alignment of signals into a small sub-space at the
eavesdropper, and the simultaneous separation of the signals at the intended
receiver. Tools from the field of Diophantine Approximation in number theory
are used to analyze the probability of error in the coding scheme.Comment: 5 Pages, Submitted to ISIT 201
The Approximate Capacity Region of the Gaussian Z-Interference Channel with Conferencing Encoders
A two-user Gaussian Z-Interference Channel (GZIC) is considered, in which
encoders are connected through noiseless links with finite capacities. In this
setting, prior to each transmission block the encoders communicate with each
other over the cooperative links. The capacity region and the sum-capacity of
the channel are characterized within 1.71 bits per user and 2 bits in total,
respectively. It is also established that properly sharing the total limited
cooperation capacity between the cooperative links may enhance the achievable
region, even when compared to the case of unidirectional transmitter
cooperation with infinite cooperation capacity. To obtain the results,
genie-aided upper bounds on the sum-capacity and cut-set bounds on the
individual rates are compared with the achievable rate region. In the
interference-limited regime, the achievable scheme enjoys a simple type of
Han-Kobayashi signaling, together with the zero-forcing, and basic relaying
techniques. In the noise-limited regime, it is shown that treating interference
as noise achieves the capacity region up to a single bit per user.Comment: 25 pages, 6 figures, submitted to IEEE Transactions on Information
Theor
Multiparameter critical quantum metrology with impurity probes
Quantum systems can be used as probes in the context of metrology for
enhanced parameter estimation. In particular, the delicacy of critical systems
to perturbations can make them ideal sensors. Arguably the simplest realistic
probe system is a spin-1/2 impurity, which can be manipulated and measured
in-situ when embedded in a fermionic environment. Although entanglement between
a single impurity probe and its environment produces nontrivial many-body
effects, criticality cannot be leveraged for sensing. Here we introduce instead
the two-impurity Kondo (2IK) model as a novel paradigm for critical quantum
metrology, and examine the multiparameter estimation scenario at finite
temperature. We explore the full metrological phase diagram numerically and
obtain exact analytic results near criticality. Enhanced sensitivity to the
inter-impurity coupling driving a second-order phase transition is evidenced by
diverging quantum Fisher information (QFI) and quantum signal-to-noise ratio
(QSNR). However, with uncertainty in both coupling strength and temperature,
the multiparameter QFI matrix becomes singular -- even though the parameters to
be estimated are independent -- resulting in vanishing QSNRs. We demonstrate
that by applying a known control field, the singularity can be removed and
measurement sensitivity restored. For general systems, we show that the
degradation in the QSNR due to uncertainties in another parameter is controlled
by the degree of correlation between the unknown parameters.Comment: 19 pages, 9 figure
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