Hướng dẫn của bạn về điện toán lượng tử.
0%
Menu
Lượng tử là gì? Công nghệ Các Máy Tính Lượng Tử Khác Nhau Thay đổi thế giới Câu Chuyện Bảo Mật Bức tranh đầu tư Học (chương trình học) Công ty Ứng dụng Từ điển thuật ngữ Dòng thời gian Đánh giá Tuyên bố Khóa học 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 Tiến độ của tôi Tin tức FAQ Tài nguyên bổ sung Hỏi về Lượng tử AI Agents ★ Đã lưu
Giới thiệu Về chúng tôi Phương pháp Liên hệ Tuyên bố miễn trách
Tiến độ của tôi
0%

Tò mò về Lượng tử

Xem toàn bộ tiến độ
LƯU TIẾN ĐỘ CỦA BẠN

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.

Chế độ tối

Chế độ Hướng dẫn
Mới làm quen với tất cả điều này? Chúng tôi thêm các gợi ý và nhắc nhở dễ hiểu khi bạn học. Cùng bài học đó, nhưng có thêm hỗ trợ tích hợp sẵn.

Chế độ Chuyên gia
You just want the lessons: clean, fast and compact, with no extra reminders. This is the default view.

Ngôn ngữ giao diện

Quantum Computing Foundations · Mô-đun 2/6: Bits, Qubits, and Measurement

Mục tiêu học tập
  • Describe the difference between a bit and a qubit.
  • Interpret probability amplitudes at a conceptual level.
  • Explain why measurement does not reveal the full quantum state.
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.

Classical bits

A classical bit has a definite value, 0 or 1. Logic gates transform definite values according to deterministic rules. Billions of bits can encode text, images, video, financial records, and software.

A classical bit is definite and directly readable without destroying a superposition.

The qubit state

A qubit is commonly written |ψ⟩ = α|0⟩ + β|1⟩. Alpha and beta are complex probability amplitudes. The probability of measuring 0 is |α|², and the probability of measuring 1 is |β|². The two probabilities sum to one.

The phrase "0 and 1 at the same time" is a teaching shortcut. More accurately, the qubit is in a coherent state with amplitudes associated with the two measurement outcomes.

A qubit carries amplitude and phase information, not merely an unknown classical value.

Measurement and repeated shots

Measurement converts a quantum state into a classical outcome. One run gives one result. To learn the distribution, the same circuit is executed many times. The collection of repeated runs is often called shots.

The inability to read every amplitude directly is a fundamental constraint. Quantum algorithms must encode useful global information into outcomes that can be sampled efficiently.

Quantum computation is designed around what can be extracted through measurement, not around directly reading the full state vector.

Applied activity

Use a coin analogy carefully: identify what the analogy explains well and where it fails. A coin can be unknown, but it does not possess quantum phase or coherent interference.

Kiểm tra mô-đun: Bits, Qubits, and Measurement

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

Đọc toàn bộ nội dung bài học

1. Classical bits

A classical bit has a definite value, 0 or 1. Logic gates transform definite values according to deterministic rules. Billions of bits can encode text, images, video, financial records, and software.

A classical bit is definite and directly readable without destroying a superposition.

2. The qubit state

A qubit is commonly written |ψ⟩ = α|0⟩ + β|1⟩. Alpha and beta are complex probability amplitudes. The probability of measuring 0 is |α|², and the probability of measuring 1 is |β|². The two probabilities sum to one.

The phrase "0 and 1 at the same time" is a teaching shortcut. More accurately, the qubit is in a coherent state with amplitudes associated with the two measurement outcomes.

A qubit carries amplitude and phase information, not merely an unknown classical value.

3. Measurement and repeated shots

Measurement converts a quantum state into a classical outcome. One run gives one result. To learn the distribution, the same circuit is executed many times. The collection of repeated runs is often called shots.

The inability to read every amplitude directly is a fundamental constraint. Quantum algorithms must encode useful global information into outcomes that can be sampled efficiently.

Quantum computation is designed around what can be extracted through measurement, not around directly reading the full state vector.

4. Applied activity

Use a coin analogy carefully: identify what the analogy explains well and where it fails. A coin can be unknown, but it does not possess quantum phase or coherent interference.

Quantum, But Friendly

How Small Is Small?The Spinning CoinBit vs QubitSpooky Friends Bài kiểm tra cuối khóa

Inside a Quantum Computer

The Golden ChandelierHow It ThinksGood At, Bad At Bài kiểm tra cuối khóa

Quantum in the Real World

Quantum You Already OwnThe Great Quantum RaceFollowing the Quantum Money Bài kiểm tra cuối khóa

The Academy

Quantum Computing FoundationsQuantum Circuits, Algorithms, and IndustryFault-Tolerant Quantum Computing and Technical Strategy Toàn bộ chương trình học

Câu trả lời nhanh

Từ điển thuật ngữFAQ Tài nguyên bổ sungHỏi về Lượng tử Tin tức Lượng tử