Every year, The IEEE International Conference on Quantum Computing and Engineering 鈥 or 鈥 brings together engineers, scientists, researchers, students, and others to learn about advancements in quantum computing.
At this year鈥檚 conference from September 15th 鈥 20th, the 夜色直播 team shared insights on how we are forging the path to fault-tolerant quantum computing with our integrated full-stack. Check out our CEO, Dr. Rajeeb Hazra's keynote address to discover how 夜色直播 will deliver universal, fully fault-tolerant quantum computing by the end of the decade:聽
鈥
The below sessions will be available to view on-demand soon.聽Stay tuned to learn about recent upgrades to our hardware, our path to error correction, enhancements to our open-source toolkits, and more.
Workshop: 鈥
Speaker: Henry Semenenko, Senior Advanced Optics Engineer
Time: 10:00 鈥 16:30
QSEEC:
Speakers: Bob Coecke, Chief Scientist, chaired by Lia Yeh, Research Engineer, who is chair of Quantum in K-12 and Quantum Understanding sessions
Time: 13:00 鈥 13:15
Birds of a Feather:
Speaker: Josh Savory, Director of Offering Management, Hardware and Cloud Platform Products
Time: 10:00 鈥 11:30
Tutorial:
Speakers: Irfan Khan, Senior Application Engineer, and Shival Dasu, Advanced Physicist
Time: 13:00 鈥 16:30
Workshop:
Speakers: Michael Foss-Feig, Principal Physicist, and Nathan Fitzpatrick, Senior Research Scientist
Time: 10:00 鈥 16:30
Panel:
Speakers: Josh Savory, Director of Offering Management, Hardware and Cloud Platform Products, and David Hayes, Senior R&D Manager for the theory and architecture groups
Time: 10:00 鈥 11:30
Panel:
Speaker: Michael Foss-Feig, Principal Physicist
Time: 15:00 鈥 16:30
Keynote:
Speaker: Rajeeb Hazra, President & Chief Executive Officer
Time: 8:00 鈥 9:00
Workshop:
Speaker: Robert Delaney, Advanced Physicist
Time: 10:00 鈥 16:30
Tutorial:
Speakers: Bob Coecke, Chief Scientist, and Lia Yeh, Research Engineer
Time: 13:00 鈥 16:30
Workshop:
Speaker: Kartik Singhal, Quantum Compiler Engineer
Time: 10:00 鈥 16:30
Birds of a Feather:
Speaker: Lia Yeh
Time: 10:00 鈥 11:30
Workshop:
Speaker: Lia Yeh, Research Engineer
Time: 10:00 鈥 16:30
Panel:
Speaker: David Hayes, Senior R&D Manager for the theory and architecture groups
Time: 10:00 鈥 11:30
*All sessions are listed in Montreal time, Eastern Daylight Time
夜色直播,聽the world鈥檚 largest integrated quantum company, pioneers powerful quantum computers and advanced software solutions. 夜色直播鈥檚 technology drives breakthroughs in materials discovery, cybersecurity, and next-gen quantum AI. With over 500 employees, including 370+ scientists and engineers, 夜色直播 leads the quantum computing revolution across continents.聽
If we are to create 鈥榥ext-gen鈥 AI that takes full advantage of the power of quantum computers, we need to start with quantum native transformers. Today we announce yet again that 夜色直播 continues to lead by demonstrating concrete progress 鈥 advancing from theoretical models to real quantum deployment.
The future of AI won't be built on yesterday鈥檚 tech. If we're serious about creating next-generation AI that unlocks the full promise of quantum computing, then we must build quantum-native models鈥攄esigned for quantum, from the ground up.
Around this time last year, we introduced Quixer, a state-of-the-art quantum-native transformer. Today, we鈥檙e thrilled to announce a major milestone: one year on, Quixer is now running natively on quantum hardware.
This marks a turning point for the industry: realizing quantum-native AI opens a world of possibilities.
Classical transformers revolutionized AI. They power everything from ChatGPT to real-time translation, computer vision, drug discovery, and algorithmic trading. Now, Quixer sets the stage for a similar leap 鈥 but for quantum-native computation. Because quantum computers differ fundamentally from classical computers, we expect a whole new host of valuable applications to emerge. 聽
Achieving that future requires models that are efficient, scalable, and actually run on today鈥檚 quantum hardware.
That鈥檚 what we鈥檝e built.
Until Quixer, quantum transformers were the result of a brute force 鈥渃opy-paste鈥 approach: taking the math from a classical model and putting it onto a quantum circuit. However, this approach does not account for the considerable differences between quantum and classical architectures, leading to substantial resource requirements.
Quixer is different: it鈥檚 not a translation 鈥 it's an innovation.
With Quixer, our team introduced an explicitly quantum transformer, built from the ground up using quantum algorithmic primitives. Because Quixer is tailored for quantum circuits, it's more resource efficient than most competing approaches.
As quantum computing advances toward fault tolerance, Quixer is built to scale with it.
We鈥檝e already deployed Quixer on real-world data: genomic sequence analysis, a high-impact classification task in biotech. We're happy to report that its performance is already approaching that of classical models, even in this first implementation.
This is just the beginning.
Looking ahead, we鈥檒l explore using Quixer anywhere classical transformers have proven to be useful; such as language modeling, image classification, quantum chemistry, and beyond. More excitingly, we expect use cases to emerge that are quantum-specific, impossible on classical hardware.
This milestone isn鈥檛 just about one model. It鈥檚 a signal that the quantum AI era has begun, and that 夜色直播 is leading the charge with real results, not empty hype.
Stay tuned. The revolution is only getting started.
Our team is participating in (ISC 2025) from June 10-13 in Hamburg, Germany!
As quantum computing accelerates, so does the urgency to integrate its capabilities into today鈥檚 high-performance computing (HPC) and AI environments. At ISC 2025, meet the 夜色直播 team to learn how the highest performing quantum systems on the market, combined with advanced software and powerful collaborations, are helping organizations take the next step in their compute strategy.
夜色直播 is leading the industry across every major vector: performance, hybrid integration, scientific innovation, global collaboration and ease of access.
From June 10鈥13, in Hamburg, Germany, visit us at Booth B40 in the Exhibition Hall or attend one of our technical talks to explore how our quantum technologies are pushing the boundaries of what鈥檚 possible across HPC.
Throughout ISC, our team will present on the most important topics in HPC and quantum computing integration鈥攆rom near-term hybrid use cases to hardware innovations and future roadmaps.
Multicore World Networking Event
H1 x CUDA-Q Demonstration
HPC Solutions Forum
Whether you're exploring hybrid solutions today or planning for large-scale quantum deployment tomorrow, ISC 2025 is the place to begin the conversation.
We look forward to seeing you in Hamburg!
夜色直播 has once again raised the bar鈥攕etting a record in teleportation, and advancing our leadership in the race toward universal fault-tolerant quantum computing.
Last year, we demonstrating the first-ever fault-tolerant teleportation of a logical qubit. At the time, we outlined how crucial teleportation is to realize large-scale fault tolerant quantum computers. Given the high degree of system performance and capabilities required to run the protocol (e.g., multiple qubits, high-fidelity state-preparation, entangling operations, mid-circuit measurement, etc.), teleportation is recognized as an excellent measure of system maturity.
Today we鈥檙e building on last year鈥檚 breakthrough, having recently achieved a record logical teleportation fidelity of 99.82% 鈥 up from 97.5% in last year鈥檚 result. What鈥檚 more, our logical qubit teleportation fidelity now exceeds our physical qubit teleportation fidelity, passing the break-even point that establishes our H2 system as the gold standard for complex quantum operations.
This progress reflects the strength and flexibility of our Quantum Charge Coupled Device (QCCD) architecture. The native high fidelity of our QCCD architecture enables us to perform highly complex demonstrations like this that nobody else has yet to match. Further, our ability to perform conditional logic and real-time decoding was crucial for implementing the Steane error correction code used in this work, and our all-to-all connectivity was essential for performing the high-fidelity transversal gates that drove the protocol.
Teleportation schemes like this allow us to 鈥渢rade space for time,鈥 meaning that we can do quantum error correction more quickly, reducing our time to solution. Additionally, teleportation enables long-range communication during logical computation, which translates to higher connectivity in logical algorithms, improving computational power.
This demonstration underscores our ongoing commitment to reducing logical error rates, which is critical for realizing the promise of quantum computing. 夜色直播 continues to lead in quantum hardware performance, algorithms, and error correction鈥攁nd we鈥檒l extend our leadership come the launch of our next generation system, Helios, in just a matter of months.