20
collaborators
2023–2026
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
4 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Spectral Small-Incremental Entangling: Breaking Quasi-Polynomial Complexity Barriers in Long-Range Interacting Systems | TQC 2026 | regular | Tomotaka Kuwahara, Yusuke Kimura, Hugo Mackay, Ayumi Ukai, Carla Rubiliani, Donghoon Kim, Hideaki Nishikawa, Cheng Shang |
How the detailed entanglement structure emerges from quantum dynamics remains a fundamental challenge, motivated by recent advances in quantum simulators and information processing. As a central milestone, the Small-Incremental-Entangling (SIE) theorem bounds the entanglement-entropy growth rate, but does not control the entanglement spectrum itself. In this work, we define the spectral-entangling strength, which quantifies how strongly an operator can reshape the distribution of Schmidt coefficients across a bipartition. We then prove a spectral SIE theorem: for R\'enyi index $\alpha \ge 1/2$, the growth rate of R\'enyi entanglement entropies admits a universal bound. Remarkably, our bound at $\alpha=1/2$ is both qualitatively and quantitatively optimal; below this threshold ($\alpha<1/2$), no universal speed limit on entanglement growth can exist. This result yields a sharp $1/s^2$ threshold in the tail of the ordered Schmidt coefficients (with $s$ the Schmidt index), enabling rigorous truncation-based error control and establishing a quantitative link between entanglement-spectrum structure and computational complexity. As a practical highlight, for one-dimensional power-law interactions $1/r^{\eta}$ with $\eta>2$, this implies matrix-product-state approximations with bond dimension polynomial in $(n/\varepsilon)$ for ground states, real-time evolved states, and Gibbs states, thereby closing the quasi-polynomial gap. By controlling R\'enyi entanglement, we further obtain a rigorous \emph{a priori} bound on truncation error for time-dependent DMRG/TEBD-type simulations. Overall, we extend the SIE paradigm from bounding entanglement entropies to constraining the entanglement spectrum itself. |
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| Quantum geometric tensor determines the i.i.d. conversion rate in the resource theory of asymmetry for any compact Lie group | QIP 2025 | regular | Koji Yamaguchi, Tomohiro Shitara, Hiroyasu Tajima |
| More global randomness from less random local gates | QIP 2025 | regular | Ryotaro Suzuki, Hosho Katsura, Tomohiro Soejima, Jens Eisert, Nobuyuki Yoshioka |
| Unitary Designs of Symmetric Local Random Circuits | TQC 2025 | regular | Ryotaro Suzuki, Tomohiro Soejima, Nobuyuki Yoshioka |
7 Posters
| Title | Conference | Co-authors |
|---|---|---|
| Symmetric channel verification for purifying noisy quantum channels | QIP 2026 | ▸Kento Tsubouchi, Ryuji Takagi, Nobuyuki Yoshioka |
| Unitary Designs of Symmetric Local Random Circuits | QIP 2025 | Ryotaro Suzuki, Tomohiro Soejima, Nobuyuki Yoshioka |
| The i.i.d. State Convertibility in the Resource Theory of Asymmetry for Finite Groups | QIP 2025 | Tomohiro Shitara, Hiroyasu Tajima |
| Clifford Group and Unitary Designs under Symmetry | QIP 2024 | Nobuyuki Yoshioka |
| Clifford Group and Unitary Designs under Symmetry | TQC 2024 | Nobuyuki Yoshioka |
| Cost-optimal quantum error mitigation for early fault-tolerant quantum computation using white-noise approximation and symmetric Clifford twirling | TQC 2024 | Kento Tsubouchi, Nobuyuki Yoshioka |
| Characterizing Symmetry-Protected Thermal Equilibrium by Work Extraction | QIP 2023 | Kazuya Kaneko, Takahiro Sagawa |
Collaborators
| Co-author | Joint talks |
|---|---|
| Nobuyuki Yoshioka | 7 |
| Ryotaro Suzuki | 3 |
| Tomohiro Soejima | 3 |
| Hiroyasu Tajima | 2 |
| Kento Tsubouchi | 2 |
| Tomohiro Shitara | 2 |
| Ayumi Ukai | 1 |
| Carla Rubiliani | 1 |
| Cheng Shang | 1 |
| Donghoon Kim | 1 |
| Hideaki Nishikawa | 1 |
| Hosho Katsura | 1 |
| Hugo Mackay | 1 |
| Jens Eisert | 1 |
| Kazuya Kaneko | 1 |
| Koji Yamaguchi | 1 |
| Ryuji Takagi | 1 |
| Takahiro Sagawa | 1 |
| Tomotaka Kuwahara | 1 |
| Yusuke Kimura | 1 |