Discrete-time quantum walk approach to high-dimensional quantum state
transfer and quantum routing
- URL: http://arxiv.org/abs/2108.04923v1
- Date: Tue, 10 Aug 2021 21:15:41 GMT
- Title: Discrete-time quantum walk approach to high-dimensional quantum state
transfer and quantum routing
- Authors: Hengji Li and Jian Li and Xiubo Chen
- Abstract summary: We propose a class of quantum-walk architecture networks that admit the efficient routing of high-dimensional quantum states.
Perfect state transfer of an arbitrary unknown qudit state can be achieved between two arbitrary nodes via a one-dimensional lackadaisical discrete-time quantum walk.
- Score: 6.236377496735381
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: High-dimensional quantum systems can offer extended possibilities and
multiple advantages while developing advanced quantum technologies. In this
paper, we propose a class of quantum-walk architecture networks that admit the
efficient routing of high-dimensional quantum states. Perfect state transfer of
an arbitrary unknown qudit state can be achieved between two arbitrary nodes
via a one-dimensional lackadaisical discrete-time quantum walk. In addition,
this method can be generalized to the high-dimensional lattices, where it
allows distillable entanglement to be shared between arbitrary input and output
ports. Implementation of our scheme is more feasible through exploiting the
coin degrees of freedom and the settings of the coin flipping operators are
simple. These results provide a direct application in a high-dimensional
computational architecture to process much more information.
Related papers
- Entanglement distribution based on quantum walk in arbitrary quantum networks [6.37705397840332]
We develop a series of scheme for generating high-dimensional entangled states via quantum walks with multiple coins or single coin.
We also give entanglement distribution schemes on arbitrary quantum networks according to the above theoretical framework.
Our work can serve as a building block for constructing larger and more complex quantum networks.
arXiv Detail & Related papers (2024-07-05T08:26:41Z) - A Quantum-Classical Collaborative Training Architecture Based on Quantum
State Fidelity [50.387179833629254]
We introduce a collaborative classical-quantum architecture called co-TenQu.
Co-TenQu enhances a classical deep neural network by up to 41.72% in a fair setting.
It outperforms other quantum-based methods by up to 1.9 times and achieves similar accuracy while utilizing 70.59% fewer qubits.
arXiv Detail & Related papers (2024-02-23T14:09:41Z) - Enhanced quantum state transfer: Circumventing quantum chaotic behavior [35.74056021340496]
We show how to transfer few-particle quantum states in a two-dimensional quantum network.
Our approach paves the way to short-distance quantum communication for connecting distributed quantum processors or registers.
arXiv Detail & Related papers (2024-02-01T19:00:03Z) - Empowering high-dimensional quantum computing by traversing the dual
bosonic ladder [0.12045539806824922]
We present a robust, hardware-efficient, and experimental approach for operating multidimensional solid-state systems using Raman-assisted two-photon interactions.
Our work illuminates the quantum electrodynamics of strongly driven multi-qudit systems and provides the experimental foundation for the future development of high-dimensional quantum applications.
arXiv Detail & Related papers (2023-12-29T18:49:26Z) - Quantum process tomography of continuous-variable gates using coherent
states [49.299443295581064]
We demonstrate the use of coherent-state quantum process tomography (csQPT) for a bosonic-mode superconducting circuit.
We show results for this method by characterizing a logical quantum gate constructed using displacement and SNAP operations on an encoded qubit.
arXiv Detail & Related papers (2023-03-02T18:08:08Z) - State Transfer and Entanglement between Two- and Four-Level Atoms in A
Cavity [0.4724825031148412]
We propose a scheme to transfer quantum information from multiple atomic qubits to a single qudit and vice versa in an optical cavity.
With the qubit-qudit interaction, our scheme can transfer quantum states efficiently and measurement-independently.
arXiv Detail & Related papers (2023-02-22T03:16:54Z) - 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) - Efficient criteria of quantumness for a large system of qubits [58.720142291102135]
We discuss the dimensionless combinations of basic parameters of large, partially quantum coherent systems.
Based on analytical and numerical calculations, we suggest one such number for a system of qubits undergoing adiabatic evolution.
arXiv Detail & Related papers (2021-08-30T23:50:05Z) - Direct Quantum Communications in the Presence of Realistic Noisy
Entanglement [69.25543534545538]
We propose a novel quantum communication scheme relying on realistic noisy pre-shared entanglement.
Our performance analysis shows that the proposed scheme offers competitive QBER, yield, and goodput.
arXiv Detail & Related papers (2020-12-22T13:06:12Z) - Entanglement transfer, accumulation and retrieval via quantum-walk-based
qubit-qudit dynamics [50.591267188664666]
Generation and control of quantum correlations in high-dimensional systems is a major challenge in the present landscape of quantum technologies.
We propose a protocol that is able to attain entangled states of $d$-dimensional systems through a quantum-walk-based it transfer & accumulate mechanism.
In particular, we illustrate a possible photonic implementation where the information is encoded in the orbital angular momentum and polarization degrees of freedom of single photons.
arXiv Detail & Related papers (2020-10-14T14:33:34Z)
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.