SwissMAP Annual General Meeting
from
Sunday, 30 August 2026 (19:00)
to
Wednesday, 2 September 2026 (14:00)
Monday, 24 August 2026
Tuesday, 25 August 2026
Wednesday, 26 August 2026
Thursday, 27 August 2026
Friday, 28 August 2026
Saturday, 29 August 2026
Sunday, 30 August 2026
19:30
Welcome Dinner
Welcome Dinner
19:30 - 21:15
Monday, 31 August 2026
09:00
Colloquium: Yilin Wang (ETH Zurich)
Colloquium: Yilin Wang (ETH Zurich)
09:00 - 09:45
09:45
Coffee Break – Group Photograph
Coffee Break – Group Photograph
09:45 - 10:15
10:15
Colloquium: Marcos Mariño (UNIGE)
Colloquium: Marcos Mariño (UNIGE)
10:15 - 11:00
11:15
Colloquium: Chiara Saffirio (University of Basel)
Colloquium: Chiara Saffirio (University of Basel)
11:15 - 12:00
12:15
Lunch
Lunch
12:15 - 13:45
16:00
Coffee Break
Coffee Break
16:00 - 16:30
16:30
Short talks
Short talks
16:30 - 19:00
19:15
Dinner
Dinner
19:15 - 21:15
Tuesday, 1 September 2026
09:00
Colloquium: Victor Gorbenko (EPFL)
Colloquium: Victor Gorbenko (EPFL)
09:00 - 09:45
09:45
Coffee Break
Coffee Break
09:45 - 10:15
10:15
Colloquium: Maryna Viazovska (EPFL)
Colloquium: Maryna Viazovska (EPFL)
10:15 - 11:00
11:15
Colloquium: Marcello Porta (SISSA)
Colloquium: Marcello Porta (SISSA)
11:15 - 12:00
12:15
Lunch
Lunch
12:15 - 13:45
17:00
Coffee Break
Coffee Break
17:00 - 17:30
18:00
Poster session & welcome aperitif
Poster session & welcome aperitif
18:00 - 19:30
19:45
Raclette Dinner - Domaine Les Sources
Raclette Dinner - Domaine Les Sources
19:45 - 21:40
Wednesday, 2 September 2026
09:00
Colloquium: Matthias Cristandl (University of Copenhagen) - Fault-tolerant quantum input/output
Colloquium: Matthias Cristandl (University of Copenhagen) - Fault-tolerant quantum input/output
09:00 - 09:45
Usual scenarios of fault-tolerant computation are concerned with the fault-tolerant realization of quantum algorithms that compute classical functions, such as Shor's algorithm for factoring. In particular, this means that input and output to the quantum algorithm are classical. In contrast to stand-alone single-core quantum computers, in many distributed scenarios, quantum information might have to be passed on from one quantum information processing system to another one, possibly via noisy quantum communication channels with noise levels above fault-tolerant thresholds. In such situations, quantum information processing devices will have quantum inputs, quantum outputs or even both, which pass qubits among each other. Working in the fault-tolerant framework of [Kitaev, 1997], we show that any quantum circuit with quantum input and output can be transformed into a fault-tolerant circuit that produces the ideal circuit with some controlled noise applied at the input and output. The framework allows the direct composition of the statements, enabling versatile future applications. We illustrate this with a concrete application, namely, communication over a noisy channel with faulty encoding and decoding operations [Christandl and M{ü}ller-Hermes, 2024]. For communication codes with linear minimum distance, we construct fault-tolerant encoders and decoders for general noise (including coherent errors). For the weaker, but standard, model of local stochastic noise, we obtain fault-tolerant encoders and decoders for any communication code that can correct a constant fraction random errors.
09:45
Coffee Break
Coffee Break
09:45 - 10:15
10:15
Colloquium: João Penedones (EPFL)
Colloquium: João Penedones (EPFL)
10:15 - 11:00
11:15
Colloquium: Martin Hairer (EPFL, ICL)
Colloquium: Martin Hairer (EPFL, ICL)
11:15 - 12:00
12:15
Lunch
Lunch
12:15 - 13:45