ɫɫ

News

Finnish researchers look at noisy quantum computer

Researchers from CSC – IT center for science, Aalto University and Åbo Akademi and their collaborators from Boston University in the USA have for the first time demonstrated how the noise impacts on quantum computing in a systematic way. The results are published in the prestigious journal Physical Review Letters.
Image: D-wave Systems Inc.
Kuva: D-wave Systems Inc.

In a classical computer, all data are broken down to sequences of bits taking the values 0 and 1, and these two values correspond to "on" or "off" states of the millions of tiny electronic switches in the computer's processing unit and memory.

According to the principles of quantum mechanics, the concept of a bit can be generalized to a "qubit", the state of which can be both 0 and 1 at the same time and in many different ways (a superposition). A quantum computer can be built using a large number of these qubits, which have to be programmed using completely new algorithms and languages. A quantum computer may in principle be able to solve problems that are practically impossible to solve on a classical computer - for example, designing new molecules or materials with desired properties by calculations at the atomic and electronic level (which itself requires the use of quantum mechanics).

From having been a theoretical concept explored mainly in university laboratories, quantum computers are now rapidly emerging on the commercial scene. The available machines are still largely experimental, and are used by companies and research institutions to explore potential applications and prepare for the anticipated era of "quantum supremacy" (meaning that quantum computers become more powerful than classical ones, at least for some problems).

The qubits are very sensitive to noise

 A major challenge is that the qubits are very sensitive to noise that quickly can destroy their quantum superposition states. Even if the devices are cooled to just a fraction of a degree above the absolute zero of temperature to minimize the noise arising from the thermal environment, the life time of the superposition states is still very short, often less than a microsecond.

With a type of quantum computer produced by the Canadian company D-Wave Systems, certain optimization problems can be solved by the principle of quantum annealing. Here the quantum property of the qubits is gradually changed in such a way that they eventually "quantum freeze" into solution of the problem programmed on the device. However, this process is sensitive to noise in a way that is not well understood.

Now a team of researchers from three Finnish institutions (CSC, Aalto University, and Abo Akademi University) and their collaborators from Boston University in the USA have for the first time demonstrated how the noise impacts a calculation in a systematic way. By varying the time over which the quantum property of the qubits is changed (from microseconds to milliseconds) and studying different numbers of coupled qubits in a D-Wave device, they were able to confirm a general principle of defect creation (meaning errors in the calculation).

According to this principle, a longer computing time should give a better result, but the researchers found that the noise negatively affects the results more if the time is longer. They explained this behavior by a mathematical model, which will be a useful tool for diagnosing future quantum annealing devices and to find the best ways to operate them.

According to team member Anders Sandvik (Boston University), quantum annealing devices may soon become important tools for simulating quantum behaviors of matter, once the amount of noise is further reduced.

– The team's successful work represents the first major Finnish research effort on the quantum annealing paradigm of quantum computing, said Jan Åström, team member from CSC.

– Quantum computing is rapidly evolving, and CSC is planning additional projects to promote the building of strong Finnish competence in this critical forefront-area of science and technology.

More information

Phillip Weinberg, Marek Tylutki, Jami M. Rönkkö, Jan Westerholm, Jan A. Åström, Pekka Manninen, Päivi Törmä, and Anders W. Sandvik: Scaling and Diabatic Effects in Quantum Annealing with a D-Wave Device. Phys. Rev. Lett. 124, 090502 – Published 5 March 2020.

Päivi Törmä, Professor, Aalto University
email paivi.torma@aalto.fi
mobile. +358503826770

Jan Åström, Senior Applications Specialist, CSC,
email jan.astrom@csc.fi
mobile +358503819473

Pekka Manninen, Program Director, CSC
email pekka.manninen@csc.fi
mobile +358503812831

  • Updated:
  • Published:
Share
URL copied!

Read more news

Winners on stage for the EAA best student paper award
Awards and Recognition, Research & Art Published:

EAA Best Paper and Presentation Award for Young Researchers for postdoctoral researcher Thomas Deppisch

The awarded work shows how speech can be made clearer in noisy environments while still preserving directional cues
Curly-haired woman speaks into a microphone indoors, standing next to a screen.
Research & Art Published:

Professor Hanna Maylett: “Without time spent together, a shared vision cannot emerge”

According to Hanna Maylett, associate professor of film directing, a director doesn’t need to know all the answers; rather, their role is to create a process through which those answers can be discovered together.
Alex and Lucie Lampen
Cooperation, Research & Art Published:

From humble beginnings to a captain of industry – a visionary’s final gift lives on at Aalto University

The Lampén bequest supports Aalto University chemical engineering students and future professionals through scholarships. Honorary counsellor and Master of Science (Technology) in chemical engineering Aleksander Lampén was a significant pioneer in the Finnish wood processing and cellulose industries. His legacy continues to promote internationalisation and high-quality research in the field of bioproduct technology. A donation ɫɫ University is an impactful investment in education, innovation and the renewal of society.
Woman sitting in a clear bubble chair beside a bright sign reading “Made in Aalto University” in a dark room
Research & Art Published:

Six Aalto’s fields rank among the world’s top 100 in ShanghaiRanking

The comparison assesses research quality and impact, research excellence, international collaboration, academic recognition and leadership