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क्वांटम क्या है? तकनीक अलग-अलग Quantum Computers दुनिया बदलना सुरक्षा की कहानी निवेश परिदृश्य सीखें (पाठ्यक्रम) कंपनियाँ अनुप्रयोग ग्लॉसरी समयरेखा दावों का मूल्यांकन कोर्स 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 मेरी प्रगति खबरें FAQ अतिरिक्त संसाधन Quantum से पूछें AI Agents ★ सेव हो गया
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Quantum Curious

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डार्क मोड

Guided View
यह सब नया लग रहा है? हम सीखते समय अतिरिक्त सरल संकेत और याद दिलाने वाली बातें जोड़ते हैं। वही पाठ, बस मदद पहले से शामिल।

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

इंटरफ़ेस भाषा

तकनीक / हार्डवेयर

हार्डवेयर: modality तुलना

The reference table. Seven ways to build a qubit plus the software layer above them. Physical principle, strengths, challenges, maturity, and who is pursuing each. Quantitative specs change quarterly, so this table carries honest unknowns rather than invented numbers.

माध्यम (मोडैलिटी)qubit कैसे लागू किया जाता हैविशेषताएँचुनौतियाँपरिपक्वताकंपनियाँ
Superconducting circuits Microwave-controlled electrical circuits at millikelvin temperatures Fast gates · Semiconductor-style fabrication · Mature ecosystem Cryogenics · Wiring · Crosstalk · Coherence early-commercial (cloud access); fault tolerance in progress IBM · Google Quantum AI · Rigetti Computing · IQM · Fujitsu / RIKEN · AWS (Amazon) · Alice & Bob
Trapped ions Electromagnetically trapped charged atoms controlled with lasers High-fidelity operations · Long coherence · Strong connectivity Slower gates · Optical complexity · Scaling ion control early-commercial (cloud access); scaling architectures in progress IonQ · Quantinuum · Alpine Quantum Technologies · Universal Quantum
Neutral atoms Laser-trapped neutral atoms arranged in programmable arrays Large arrays · Flexible geometry · Promising scaling Gate fidelity · Atom loss · Control and readout prototype → early-commercial QuEra · Pasqal · Atom Computing · Infleqtion · planqc
Photonic Single photons and optical modes Room-temperature transmission · Networking potential Photon loss · Deterministic sources · Detectors · Large overhead prototype; betting on a leap to fault tolerance PsiQuantum · Xanadu · Quandela · ORCA Computing
Silicon spin qubits Electron or nuclear spins in semiconductor devices Tiny footprint · Compatibility with chip manufacturing Uniformity · Control · Cryogenic integration research → prototype Intel · Diraq · Quantum Motion · Silicon Quantum Computing · Quobly
Topological Quantum information protected by exotic quasiparticle states Potentially intrinsic error resilience Underlying physics and scalable implementation remain difficult research Microsoft
Quantum annealing Analog evolution toward low-energy solutions (a distinct paradigm, not gate-based) Commercial access · Large device sizes Not equivalent to universal gate-model computing · Advantage is problem-specific commercial for specific optimization workloads D-Wave
Software & error suppression The hardware-agnostic layer: control, error suppression, algorithm design, middleware Wins whichever qubit recipe prevails Value depends on the hardware ecosystem maturing commercial today; grows with every machine shipped Q-CTRL · Classiq · Multiverse Computing

Gate speeds, fidelities, coherence times and qubit counts are deliberately absent: they change quarterly and vendor figures are not independently comparable. Where a spec matters, check the primary sources on each modality page. Treat "unknown" as the honest state, not a gap.

Physical vs logical architecture

PHYSICAL QUBITS noisy · error-prone · many error-correcting code + decoding ONE LOGICAL QUBIT reliable · what algorithms see one logical qubit may need hundreds or thousands of physical qubits plus classical control

A complete system also requires cryogenics or vacuum, control electronics, calibration software, compilers, networking, and classical compute. The race that matters is not toward bigger chips but toward reliable logical operations at useful scale. "Below threshold" behavior, where growing the code shrinks the logical error rate.

निवेशक नज़रिया: each row is a different bet with a different risk shape, and no modality has conclusively won. The same map with tickers and framing lives on the निवेश पृष्ठ; इसका सरल कार्ड संस्करण है अलग-अलग Quantum Computers.

और गहराई में जाएं (हर एक 5 मिनट)

सरल संस्करणवही सात, कार्ड के रूप में कंपनी निर्देशिकासभी निर्माता, फ़िल्टर करने योग्य Hardware, Noise, and Error Correctionशुरुआती मॉड्यूल Hardware and Systems Architectureउन्नत मॉड्यूल

इसे पक्का करना चाहते हैं? The Academy covers hardware at every tier: from the beginner hardware module to advanced systems architecture.

मज़ेदार पाठ शुरू करें → मुफ़्त · न ग्रेड, न दबाव · असीमित retakes वाले मज़ेदार क्विज़

Quantum, But Friendly

How Small Is Small?The Spinning CoinBit vs QubitSpooky Friends अंतिम परीक्षा

Inside a Quantum Computer

The Golden ChandelierHow It ThinksGood At, Bad At अंतिम परीक्षा

Quantum in the Real World

Quantum You Already OwnThe Great Quantum RaceFollowing the Quantum Money अंतिम परीक्षा

The Academy

Quantum Computing FoundationsQuantum Circuits, Algorithms, and IndustryFault-Tolerant Quantum Computing and Technical Strategy पूरा पाठ्यक्रम

झटपट जवाब

ग्लॉसरीFAQ अतिरिक्त संसाधनQuantum से पूछें Quantum खबरें