您的量子计算入门指南。
0%
菜单
什么是量子? 技术原理 各种各样的量子计算机 改变世界 安全性的故事 投资格局 学习(课程) 公司 应用 词汇表 时间线 如何评估声明 课程 Quantum, But Friendly Inside a Quantum Computer Quantum in the Real World Quantum Computing Foundations Quantum Circuits, Algorithms, and Industry Fault-Tolerant Quantum Computing and Technical Strategy 我的进度 资讯 FAQ 补充资源 问问量子 AI智能体 ★ 已保存
关于 关于我们 方法论 联系我们 免责声明
我的进度
0%

量子好奇者

查看完整进度
保存你的学习进度

Progress lives in this browser and is lost if you log out or clear it: unless you save it with your email. Same email on any device = same progress.

深色模式

引导视图
对这一切都陌生?我们会在你学习过程中额外添加通俗易懂的提示和提醒。课程内容完全相同,只是内置了更多辅助说明。

专家视角
You just want the lessons: clean, fast and compact, with no extra reminders. This is the default view.

界面语言

Quantum Circuits, Algorithms, and Industry · 模块 2/8: Multi-Qubit Systems and Entanglement

学习目标
  • Explain the core ideas in multi-qubit systems and entanglement.
  • Apply the concepts to a small circuit or business/technical evaluation.
  • Identify limitations and appropriate benchmarks.
Tap Next (or use your arrow keys) to move one idea at a time. A fixed three-question check waits at the end: the course's own checkpoint, same questions every attempt. The ← up top exits whenever you like; progress keeps.

Tensor products

Two qubits live in a four-dimensional state space with basis |00⟩, |01⟩, |10⟩, |11⟩. The tensor product combines individual systems. With n qubits, the pure state has 2ⁿ amplitudes.

State-space growth is exponential, but readable classical output remains limited.

Separable and entangled states

A separable state can be factored into individual qubit states. The Bell state (|00⟩+|11⟩)/√2 cannot. Measuring one qubit produces correlations with the other.

Entanglement is joint structure, not a communication channel.

Density matrices and partial trace

Density matrices represent pure and mixed states and allow subsystem analysis. Taking the partial trace of an entangled Bell state yields a maximally mixed single-qubit state.

A globally pure entangled state can produce locally mixed subsystems.

Applied activity

Complete a simulator or analysis exercise: reproduce the lesson's central example, record assumptions and outputs, and explain one source of error or limitation.

模块测验: Multi-Qubit Systems and Entanglement

3 questions: drawn fresh from the bank every attempt. Pass mark 60%. Unlimited retakes.

阅读完整课程文本

1. Tensor products

Two qubits live in a four-dimensional state space with basis |00⟩, |01⟩, |10⟩, |11⟩. The tensor product combines individual systems. With n qubits, the pure state has 2ⁿ amplitudes.

State-space growth is exponential, but readable classical output remains limited.

2. Separable and entangled states

A separable state can be factored into individual qubit states. The Bell state (|00⟩+|11⟩)/√2 cannot. Measuring one qubit produces correlations with the other.

Entanglement is joint structure, not a communication channel.

3. Density matrices and partial trace

Density matrices represent pure and mixed states and allow subsystem analysis. Taking the partial trace of an entangled Bell state yields a maximally mixed single-qubit state.

A globally pure entangled state can produce locally mixed subsystems.

4. Applied activity

Complete a simulator or analysis exercise: reproduce the lesson's central example, record assumptions and outputs, and explain one source of error or limitation.

Quantum, But Friendly

How Small Is Small?The Spinning CoinBit vs QubitSpooky Friends 结课测试

Inside a Quantum Computer

The Golden ChandelierHow It ThinksGood At, Bad At 结课测试

Quantum in the Real World

Quantum You Already OwnThe Great Quantum RaceFollowing the Quantum Money 结课测试

量子学院

Quantum Computing FoundationsQuantum Circuits, Algorithms, and IndustryFault-Tolerant Quantum Computing and Technical Strategy 完整课程体系

快速解答

词汇表FAQ 补充资源问问量子 量子资讯