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Talk
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PSI 2019/2020 - Computational Physics - Lecture 15
Erik Schnetter Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics - Lecture 14
Erik Schnetter Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics - Lecture 13
Erik Schnetter Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics - Lecture 12
Erik Schnetter Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics - Lecture 10
Erik Schnetter Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics - Lecture 8
Erik Schnetter Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics - Lecture 7
Erik Schnetter Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics - Lecture 6
Erik Schnetter Perimeter Institute for Theoretical Physics
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Talk
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PSI 2019/2020 - Gravitational Physics - Lecture 15
Ruth Gregory King's College London
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PSI 2019/2020 - Gravitational Physics - Lecture 14
Ruth Gregory King's College London
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PSI 2019/2020 - Gravitational Physics - Lecture 13
Ruth Gregory King's College London
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PSI 2019/2020 - Gravitational Physics - Lecture 12
Ruth Gregory King's College London
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PSI 2019/2020 - Gravitational Physics - Lecture 11
Ruth Gregory King's College London
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PSI 2019/2020 - Gravitational Physics - Lecture 10
Ruth Gregory King's College London
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PSI 2019/2020 - Gravitational Physics - Lecture 9
Ruth Gregory King's College London
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PSI 2019/2020 - Gravitational Physics - Lecture 8
Ruth Gregory King's College London
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Talk
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PSI 2019/2020 - Standard Model and Beyond part 1 - Lecture 13
Latham Boyle University of Edinburgh
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PSI 2019/2020 - Standard Model and Beyond - Part 1 - Lecture 12
Latham Boyle University of Edinburgh
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PSI 2019/2020 - Standard Model and Beyond - Part 1 - Lecture 11
Latham Boyle University of Edinburgh
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PSI 2019/2020 - Standard Model and Beyond - Part 1 - Lecture 10
Latham Boyle University of Edinburgh
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PSI 2019/2020 - Standard Model and Beyond - Part 1 - Lecture 9
Latham Boyle University of Edinburgh
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PSI 2019/2020 - Standard Model and Beyond - Part 1 - Lecture 8
Latham Boyle University of Edinburgh
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PSI 2019/2020 - Standard Model and Beyond - Part 1 - Lecture 7
Latham Boyle University of Edinburgh
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PSI 2019/2020 - Standard Model and Beyond - Part 1 - Lecture 6
Latham Boyle University of Edinburgh
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Talk
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PSI 2019/2020 - Quantum Matter Part 1 - Lecture 18
Alioscia Hamma University of Naples Federico II
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PSI 2019/2020 - Quantum Matter Part 1 - Lecture 17
Alioscia Hamma University of Naples Federico II
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PSI 2019/2020 - Quantum Matter Part 1 - Lecture 16
Alioscia Hamma University of Naples Federico II
PIRSA:20010042 -
PSI 2019/2020 - Quantum Matter Part 1 - Lecture 15
Alioscia Hamma University of Naples Federico II
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PSI 2019/2020 - Quantum Matter Part 1 - Lecture 14
Alioscia Hamma University of Naples Federico II
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PSI 2019/2020 - Quantum Matter Part 1 - Lecture 13
Alioscia Hamma University of Naples Federico II
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PSI 2019/2020 - Quantum Matter Part 1 - Lecture 12
Alioscia Hamma University of Naples Federico II
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PSI 2019/2020 - Quantum Matter Part 1 - Lecture 11
Alioscia Hamma University of Naples Federico II
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Talk
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PSI 2019/2020 - QFT III - Lecture 14
Jaume Gomis Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - QFT III - Lecture 13
Jaume Gomis Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - QFT III - Lecture 12
Jaume Gomis Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - QFT III - Lecture 11
Jaume Gomis Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - QFT III - Lecture 10
Jaume Gomis Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - QFT III - Lecture 8
Jaume Gomis Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - QFT III - Lecture 7
Jaume Gomis Perimeter Institute for Theoretical Physics
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10 years of the quantum SWITCH: state of the art and new perspectives
Giulio Chiribella University of Hong Kong (HKU)
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Cyclic quantum causal models and violations of causal inequalities
Ognyan Oreshkov Université Libre de Bruxelles
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TBA
Laura Henderson University of Waterloo
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Composing causal orderings
Aleks Kissinger University of Oxford
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Quantum principle of relativity
Andrzej Dragan University of Warsaw
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What happens when we quantize time?
Alexander Smith Saint Anselm College
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Symmetry, topology, and thermal stability
Stephen Bartlett University of Sydney
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Symmetry-protected topologically ordered phases for measurement-based quantum computation
Akimasa Miyake University of New Mexico
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A resource theory of nonclassicality in Bell scenarios
Robert Spekkens Perimeter Institute for Theoretical Physics
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Variational Quantum Eigensolvers and contextuality
Peter Love Tufts University
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Magic resource theories and classical simulation
Earl Campbell University of Sheffield
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Classical algorithms for quantum mean values
David Gosset Institute for Quantum Computing (IQC)
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Fine-grained quantum supremacy and stabilizer rank
Tomoyuki Morimae Kyoto University
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Towards local testability for quantum coding
Anthony Leverrier Inria Paris Centre
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Welcome and Opening Remarks
Bianca Dittrich Perimeter Institute for Theoretical Physics
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Quantum Spacetime from Lattice Gravity à la CDT
Renate Loll Radboud Universiteit Nijmegen
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How complement maps can cure divergences
Sylvie Paycha University of Potsdam
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The gravitational Wilson loop and the non-Abelian Stokes' theorem
Reiko Toriumi Okinawa Institute of Science and Technology Graduate University
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The dynamics of difference
Lee Smolin Perimeter Institute for Theoretical Physics
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Probing fundamental physics with gravitational waves
Cecilia Chirenti Universidade Federal do ABC
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Implications of the Quantum Nature Space-time for the Big Bang and Black Holes
Abhay Ashtekar Pennsylvania State University
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 16
Lauren Hayward Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 15
Chong Wang Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 14
Chong Wang Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 13
Chong Wang Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 12
Chong Wang Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 11
Chong Wang Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 10
Chong Wang Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Condensed Matter (Wang) - Lecture 9
Chong Wang Perimeter Institute for Theoretical Physics
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PSI 2019/2020 - Computational Physics
PSI 2019/2020 - Computational Physics -
Quantum Field Theory for Cosmology (Kempf)
Quantum Field Theory for Cosmology (Kempf) -
PSI 2019/2020 - Gravitational Physics
PSI 2019/2020 - Gravitational Physics -
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PSI 2019/2020 - Standard Model and Beyond - Part 1
PSI 2019/2020 - Standard Model and Beyond - Part 1 -
PSI 2019/2020 - Quantum Matter Part 1
PSI 2019/2020 - Quantum Matter Part 1 -
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Indefinite Causal Structure
There has been a surge of interest in indefinite causal structure the idea that cause and effect can no longer be sharply distinguished. Motivated both by experimentation with quantum switches and quantum gravity there can be situations in which there is no matter-of-the-fact as to what the causal structure of spacetime is. This meeting will bring together workers in Quantum Foundations and Quantum Gravity in both theoretical experimental physics to discuss the state of the art of current research and set new directions for this emerging subdiscipline.
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Symmetry, Phases of Matter, and Resources in Quantum Computing
Our conference covers three related subjects: quantum fault-tolerance magic states and resource theories and quantum computational phases of matter. The linking elements between them are (a) on the phenomenological side the persistence of computational power under perturbations and (b) on the theory side symmetry. The latter is necessary for the working of all three. The subjects are close but not identical and we expect cross-fertilization between them.Fault tolerance is an essential component of universal scalable quantum computing.However known practical methods of achieving fault tolerance are extremely resource intensive. Distillation of magic states is in the current paradigm of fault-tolerance the costliest operational component by a large margin. It is therefore pertinent to improve the efficiency of such procedures study theoretical limits of efficiency and more generally to establish a resource theory of quantum state magic. During the workshop we will focus on a fundamental connection between fault-tolerant protocols and symmetries.``Computational phases of matters are a surprising link between quantum computation and condensed matter physics. Namely in the presence of suitable symmetries the ground states of spin Hamiltonians have computational power within the scheme of measurement-based quantum computation and this power is uniform across physical phases. Several computationally universal phases have to date been discovered. This subject is distinct from the above but linked to them by the feature of persistence of computational power under deformations and deviations.
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Emmy Noether Workshop: The Structure of Quantum Space Time
Understanding the small-scale structure of spacetime is one of the biggest challenges faced by modern theoretical physics. There are many different attempts to solve this problem and they reflect the diversity of approaches to quantum gravity. This workshop will bring together researchers from a wide range of quantum gravity approaches and give them an opportunity to exchange ideas and gain new insights.
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PSI 2019/2020 - Quantum Field Theory II (David)
PSI 2019/2020 - Quantum Field Theory II (David) -
PSI 2019/2020 - Condensed Matter (Wang)
PSI 2019/2020 - Condensed Matter (Wang)