Optimal Superdense Coding Capacity in the Non-Markovian Regime
- URL: http://arxiv.org/abs/2408.10842v1
- Date: Tue, 20 Aug 2024 13:36:01 GMT
- Title: Optimal Superdense Coding Capacity in the Non-Markovian Regime
- Authors: Y. Aiache, S. Al-Kuwari, K. El Anouz, A. El Allati,
- Abstract summary: Superdense coding is a significant technique widely used in quantum information processing.
We propose a model to evaluate the effect of backflow information in a superdense coding protocol through a non-Markovian dynamics.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Superdense coding is a significant technique widely used in quantum information processing. Indeed, it consists of sending two bits of classical information using a single qubit, leading to faster and more efficient quantum communication. In this paper, we propose a model to evaluate the effect of backflow information in a superdense coding protocol through a non-Markovian dynamics. The model considers a qubit interacting with a structured Markovian environment. In order to generate a non-Markovian dynamic, an auxiliary qubit contacts a Markovian reservoir in such a way that the non-Markovian regime can be induced. By varying the coupling strength between the central qubit and the auxiliary qubit, the two dynamical regimes can be switched interchangeably. An enhancement in non-Markovian effects corresponds to an increase in this coupling strength. Furthermore, we conduct an examination of various parameters, namely temperature weight, and decoherence parameters in order to explore the behaviors of superdense coding, quantum Fisher information, and local quantum uncertainty using an exact calculation. The obtained results show a significant relationship between non-classical correlations and quantum Fisher information since they behave similarly, allowing them to detect what is beyond entanglement. In addition, the presence of non-classical correlations enables us to detect the optimal superdense coding capacity in a non-Markovian regime.
Related papers
- Enhancing Quantum Machine Learning: The Power of Non-Linear Optical Reproducing Kernels [5.270019792959673]
Kerr kernels encode data into the phase and amplitude of Kerr coherent states.
We present a novel feature space constructed using Kerr coherent states.
We analyze various datasets ranging from Moon to breast cancer diagnostics.
arXiv Detail & Related papers (2024-07-18T10:23:22Z) - Combining critical and quantum metrology [0.0]
We introduce an approach combining two methodologies into a unified protocol applicable to closed and driven-dissipative systems.
We provide analytical expressions for the quantum and classical Fisher information in such a setup, elucidating as well a straightforward measurement approach.
We showcase these results by focusing on the squeezing Hamiltonian, which characterizes the thermodynamic limit of Dicke and Lipkin-Meshkov-Glick Hamiltonians.
arXiv Detail & Related papers (2023-11-28T04:21:39Z) - Dynamically Emergent Quantum Thermodynamics: Non-Markovian Otto Cycle [49.1574468325115]
We revisit the thermodynamic behavior of the quantum Otto cycle with a focus on memory effects and strong system-bath couplings.
Our investigation is based on an exact treatment of non-Markovianity by means of an exact quantum master equation.
arXiv Detail & Related papers (2023-08-18T11:00:32Z) - Distillation of quantum non-Markovianity [0.0]
Non-Markovianty of open quantum systems dynamics is a physically relevant property which is usually associated with the backflow of (quantum) information.
We investigate how non-Markovianity for qubit dynamics can be distilled when many copies of the channels are used, possibly allowing for a stronger effect on the backflow of information.
arXiv Detail & Related papers (2023-08-10T22:33:23Z) - Efficient motional-mode characterization for high-fidelity trapped-ion
quantum computing [5.930991818928443]
We develop and explore physical models that accurately predict both magnitude and sign of the Lamb-Dicke parameters when the modes are probed.
We discuss potential ramifications of our results to the development of a scalable trapped-ion quantum computer.
arXiv Detail & Related papers (2022-06-09T01:29:28Z) - Transfer Learning in Quantum Parametric Classifiers: An
Information-Theoretic Generalization Analysis [42.275148861039895]
A key step in quantum machine learning with classical inputs is the design of an embedding circuit mapping inputs to a quantum state.
This paper studies a transfer learning setting in which classical-to-quantum embedding is carried out by an arbitrary parametric quantum circuit.
arXiv Detail & Related papers (2022-01-17T09:28:13Z) - Interactive Protocols for Classically-Verifiable Quantum Advantage [46.093185827838035]
"Interactions" between a prover and a verifier can bridge the gap between verifiability and implementation.
We demonstrate the first implementation of an interactive quantum advantage protocol, using an ion trap quantum computer.
arXiv Detail & Related papers (2021-12-09T19:00:00Z) - A quantum processor based on coherent transport of entangled atom arrays [44.62475518267084]
We show a quantum processor with dynamic, nonlocal connectivity, in which entangled qubits are coherently transported in a highly parallel manner.
We use this architecture to realize programmable generation of entangled graph states such as cluster states and a 7-qubit Steane code state.
arXiv Detail & Related papers (2021-12-07T19:00:00Z) - Preserving quantum correlations and coherence with non-Markovianity [50.591267188664666]
We demonstrate the usefulness of non-Markovianity for preserving correlations and coherence in quantum systems.
For covariant qubit evolutions, we show that non-Markovianity can be used to preserve quantum coherence at all times.
arXiv Detail & Related papers (2021-06-25T11:52:51Z) - Tracing Information Flow from Open Quantum Systems [52.77024349608834]
We use photons in a waveguide array to implement a quantum simulation of the coupling of a qubit with a low-dimensional discrete environment.
Using the trace distance between quantum states as a measure of information, we analyze different types of information transfer.
arXiv Detail & Related papers (2021-03-22T16:38:31Z) - Quantifying quantum non-Markovianity based on quantum coherence via skew
information [1.8969868190153274]
We propose a non-Markovianity measure for open quantum processes.
We find that it is equivalent to the three previous measures of non-Markovianity for phase damping and amplitude damping channels.
We also use the modified Tsallis relative $alpha$ entropy of coherence to detect the non-Markovianity of dynamics of quantum open systems.
arXiv Detail & Related papers (2020-01-05T15:37:15Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.