Tag - Quantum computing

Chris Godsil: Algebraic graph theory and quantum computing

This is a 32-lecture course, with each lecture being about 45 minutes, given by Chris Godsil. Note that the 17th lecture was not recorded, but slides are at least available for it. The other 31 lectures are still of interest, but this needs to be known.

This course will provide an introduction to problems in quantum computing that can be studied using tools from algebraic graph theory. The quantum topics will relate to quantum walks and to quantum homomorphisms, automorphisms and colouring. The tools from algebraic graph theory include graphs automorphisms and homomorphisms, spectral decomposition and generating functions.

Prerequisites: I will assume a solid background in linear algebra and knowledge of what a permutation group is. Other topics will be covered in class, or in the notes. I will assume the knowledge of physics I had when I started on this topic, that is, no knowledge.

Deny Hamel: From Photon Pairs to Photon Triplets: Exploring Cascaded Down Conversion and its Applications

Multi-photon states can play an important role for optical quantum information, but producing these effectively can be challenging. Most commonly, independent photon pairs are produced by downconversion and then combined probabilistically, using post-selection to obtain the desired multi-photon state. This dependence on post-selection limits the suitability of the resulting states for some application. An alternative approach is to use cascaded downconversion: by sending photons produced with downconversion into a second non-linear crystal to be downconverted again, it is possible to produce photon triplets directly. In this talk, I will present work from my group and others exploring this novel process and discuss current research directions aiming to make cascaded downconversion more useful for state generation and beyond.

Mankei Tsang: Quantum waveform estimation, detection, and noise spectroscopy

Thousands of papers have been written about quantum metrology, but few have acknowledged the reality that quantum sensors such as gravitational-wave detectors are dynamical systems and the signals are often time-varying. This talk presents fundamental quantum limits to such sensors, as well as measurements to achieve them. For the task of noise spectroscopy with an optical interferometer, I show the surprising result that spectral photon counting can be far superior to homodyne detection. This idea has recently been adopted by Caltech scientists, who will build an experiment based on the idea to detect signatures of quantum gravity under the GQuEST project.

Marco Liscidini: High-dimensional quantum states: where to find them and how to study them

High-dimensional quantum states are desirable for the study of complex quantum systems and the development of quantum technologies. Yet, their implementation can be challenging as it is their characterization. In the first part of this talk, I will focus on recent progress in the generation of high-dimensional quantum states in photonic circuits. I will show how this approach can make the implementation of large quantum states flexible and scalable by exploiting the intrinsic advantages of integrated devices. In the second part of the talk, I will deal with the more general problem of characterizing large quantum systems. Specifically, I will present some recent results on the study of multi-qubit systems by means of threshold quantum state tomography, an approach that can significantly reduce the number of measurements necessary to reconstruct the whole state density matrix.

Mankei Tsang: Quantum conditional expectations

The conditional expectation is an essential concept in probability theory and a basic tool in Bayesian estimation, as it allows one to infer hidden variables from observations in an optimal sense. Many have tried to generalize the concept for quantum mechanics, but the literature on the subject remains fragmented, confusing, and controversial. This talk presents a formalism of generalized conditional expectations that unifies most of the previous approaches. I also show how a certain version of the generalized conditional expectation can be useful for the study of quantum estimation. For example, it leads to a quantum Rao-Blackwell theorem, which may be used to improve the design of a quantum sensor in the same way the classical theorem can improve an estimator.

Shruti Puri: Good qubits and good codes

In this talk I will discuss some criteria for good codes and good qubits for quantum error correction. A good qubit has a highly structured noise channel and good codes are the ones that have special underlying symmetries with respect to this channel. For fault-tolerance it is also necessary that we are able to implement the code with physical operations that preserve the symmetries. I will highlight this deep connection between what makes a good qubit and good code using Rydberg atom qubits and surface codes.

Mankei Tsang: Resolving starlight: a quantum perspective

The wave-particle duality of light introduces two fundamental problems to imaging, namely, the diffraction limit and the photon shot noise. Quantum information theory can tackle them both in one holistic formalism: model the light as a quantum object, consider any quantum measurement and pick the one that gives the best statistics. While Helstrom pioneered the theory half a century ago and first applied it to incoherent imaging, it was not until recently that the approach offered a genuine surprise on the age-old topic by predicting a new class of superior imaging methods. For the resolution of two sub-Rayleigh sources, the new methods have been shown theoretically and experimentally to outperform direct imaging and approach the true quantum limits. Recent efforts to generalize the theory for an arbitrary number of sources suggest that, despite the existence of harsh quantum limits, the quantum-inspired methods can still offer significant improvements over direct imaging for subdiffraction objects, potentially benefiting many applications in astronomy as well as fluorescence microscopy.

Takato Mori: Quantum discord in holography and Markov gap

In this talk, I discuss holographic calculations of quantum discord (QD). QD characterizes quantum correlations beyond entanglement for mixed states, however, it is notoriously difficult to compute QD due to the optimization in the definition. We demonstrate that, under certain assumptions, one can indeed compute QD, at least its upper bound, in holography. This approach enables us to explore quantum correlations beyond entanglement in large, strongly-coupled quantum systems. Finally, I will also argue a surprising connection between the non-entanglement quantum correlation with the Markov gap in holographic systems and two-qubit mixed states. This talk is based on my work in preparation.

Jasminder Sidhu: Global quantum networking for distributed technologies

A network of quantum technologies will herald improvements to applications ranging from communications, sensing, and computing. Finite resources available in practical implementations and losses are two prominent limitations to the global scale-up of distributed quantum technologies. This can lead to a significant departure in the expected performance of these applications and limits their range. In this talk, I will highlight recent work that looks into the impact of finite resources to determine practical performances in satellite-based quantum communications. I will also introduce recent proposals that leverage space-based quantum repeaters to extend the range of quantum networks.

Clarice Aiello: ‘Quantum Biology’: how nature harnesses quantum processes to function optimally, and how might we control such quantum processes to therapeutic and tech advantage

Imagine driving cell activities to treat injuries and disease simply by using tailored magnetic fields. Many relevant physiological processes, such as: the regulation of oxidative stress, proliferation, and respiration rates in cells; wound healing; ion channel functioning; and DNA repair were all demonstrated to be controlled by weak magnetic fields (with a strength on the order of that produced by your cell phone). Such macroscopic physiological responses to magnetic fields are consistent with being driven by chemical reactions that depend on the electron quantum property of spin. In the long-term, the electromagnetic fine-tuning of endogenous 'quantum knobs' existing in nature could enable the development of drugs and therapeutic devices that could heal the human body — in a way that is non-invasive, remotely actuated, and easily accessible by anyone with a mobile phone. However, whereas spin-dependent chemical reactions have been unambiguously established for test-tube chemistry (bearing uncanny similarities with what physicists call 'spin quantum sensing'), current research has not been able to deterministically link spin states to physiological outcomes in vivo and in real time. With novel quantum instrumentation, we are learning to control spin states within cells and tissues, having as a goal to write the 'codebook' on how to deterministically alter physiology with weak magnetic fields to therapeutic and technological advantage.