累计引用
- 近两年引用
- 未提供
- 观测日期
- 2026-07-28
- 推导版本
- qec-impact-v1
Paper · 2024 · Nature Physics 20, 1084–1090
Xu et al.
Research record
当前迁移记录只包含书目信息和技术关联,摘要将在获得可靠来源后补充。
Impact snapshots
累计引用
累计引用
Crossref 与 OpenAlex 的口径和更新节奏不同,因此分别披露;这里不计算统一影响力分、热门分或质量分。
Representative roles
Co-designs nonlocal qLDPC syndrome extraction with atom rearrangement and analyzes an effectively constant-overhead schedule.
Abstract; Figs. 1–2; nonlocal syndrome-extraction protocolProves and simulates a constant-overhead qLDPC fault-tolerant architecture compatible with reconfigurable atom arrays.
Abstract; Figs. 1–2; logical architecture and resource simulationsDefines a constant-overhead QEC architecture matched to reconfigurable atom transport and connectivity.
Architecture and resource-scaling figuresProvides workload and architecture-linked constant-overhead resource simulations.
Architecture and resource-scaling figuresConnected entities
安排 checks、路由和测量轮次,控制深度、串扰、闲置误差和连接开销。
Shows how reconfigurable connectivity changes routing and scheduling for nonlocal checks.
平台决定连接、门集、误差通道、测量速度和适合的码族。
原始来源在上述位置定义、构造、实现或实证讨论了“物理平台”,用于支撑该技术实体与论文的显式连接。
把纠错循环嵌入逻辑 Clifford、非 Clifford、lattice surgery 与 magic-state 工厂。
Extends the computation layer to high-rate qLDPC blocks, nonlocal extraction and fault-tolerant code interfaces.
在高编码率、稀疏校验量子 LDPC 码上实现容错 Clifford/non-Clifford 门、联合逻辑测量或代码适配,而不放弃其低开销优势。
Benchmarks a modern qLDPC fault-tolerant architecture at algorithmic scale.
利用光镊阵列、Rydberg 相互作用、原子输运和可重构连接实现编码、逻辑操作与 QEC 的硬件平台。
Provides an independent QEC architecture tailored to atom-array connectivity.
把逻辑工作负载和目标误差预算转换为物理量子比特、纠错周期、工厂、路由、控制和经典处理资源。
Constant-overhead fault-tolerant quantum computation with reconfigurable atom arrays 为 Fault-tolerant resource estimation 提供正式论文证据。