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関連する概念動画

Generation of Three-Phase Voltage01:21

Generation of Three-Phase Voltage

1.1K
A three-phase AC generator has a rotor with a rotating magnet placed within the stator mounted with the stationary three-phase winding to generate three-phase voltages via mutual induction. These windings are evenly distributed around the inner circumference of the stator and are arranged 120 electrical degrees apart. Three-phase stator windings consist of three separate coils or groups of coils, known as phases, each connected in Y (star) configuration or Delta configuration.
As the rotor...
1.1K
Carrier Generation and Recombination01:22

Carrier Generation and Recombination

1.5K
Carrier generation is the process by which electron-hole pairs (EHPs) are created within the semiconductor. In direct-bandgap semiconductors, such as gallium arsenide (GaAs), this occurs efficiently when energy absorption prompts valence electrons to leap into the conduction band, leaving behind holes.
This process is given by the generation rate G and is efficient due to the conservation of momentum between the valence band maximum and conduction band minimum.
Indirect generation involves an...
1.5K
Voltage Doubler Circuit01:23

Voltage Doubler Circuit

2.3K
A voltage doubler circuit integrates two main components: a clamping section and a rectifier section. The clamping section consists of a capacitor (C1) and a diode (D1), whereas the rectifier section is equipped with another diode (D2) and capacitor (C2). This circuit produces an output voltage with twice the amplitude of the sinusoidal input voltage.
2.3K
Three-Winding Transformers01:19

Three-Winding Transformers

1.0K
Three identical single-phase transformers can be configured to form a three-phase transformer connection, which involves high-voltage and low-voltage windings. The high-voltage windings are denoted by capital letters A-B-C, while the low-voltage windings are labeled with lowercase letters a-b-c, representing their respective phases. This notation helps distinguish between the high and low voltage sides of the transformer.
In the per-unit equivalent circuit of a grounded Y-Y three-phase...
1.0K
Power System Three-Phase Short Circuits01:21

Power System Three-Phase Short Circuits

742
Determining the subtransient fault current in a power system involves representing transformers by their leakage reactances, transmission lines by their equivalent series reactances, and synchronous machines as constant voltage sources behind their subtransient reactances. In this analysis, certain elements are excluded, such as winding resistances, series resistances, shunt admittances, delta-Y phase shifts, armature resistance, saturation, saliency, non-rotating impedance loads, and small...
742
Bus Impedance Matrix01:24

Bus Impedance Matrix

622
Calculating subtransient fault currents for three-phase faults in an N-bus power system involves using the positive-sequence network. When a three-phase short circuit occurs at a specific bus, the analysis uses the superposition method to evaluate two separate circuits.
In the first circuit, all machine voltage sources are short-circuited, leaving only the prefault voltage source at the fault location. The positive-sequence bus impedance matrix can be determined by solving the nodal equations,...
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関連する実験動画

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Gradient Echo Quantum Memory in Warm Atomic Vapor
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Gradient Echo Quantum Memory in Warm Atomic Vapor

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超伝導回路による3量子ビット量子エラー修正を実現.

M D Reed1, L DiCarlo, S E Nigg

  • 1Department of Physics, Yale University, New Haven, Connecticut 06520, USA. matthew.reed@yale.edu

Nature
|February 3, 2012
PubMed
まとめ

研究者は,超伝導回路の3量子ビットコードを使用して量子エラー補正を実証しています. この方法は,ビットフリップとフェーズフリップのエラーを修正し,より堅牢でスケーラブルな量子コンピュータへの道を開きます.

科学分野:

  • 量子コンピューティング
  • 量子エラー補正 量子エラー補正
  • 超伝導回路について

背景:

  • 量子コンピュータは指数関数的なスピードアップを提供するが,エラーに容易である.
  • 量子エラー補正コードは,量子一貫性を維持するために不可欠です.
  • 3量子ビットコードは最も単純な形式であり,1量子ビットを3にコードします.

研究 の 目的:

  • 超伝導回路におけるフェーズとビットフリップのエラー修正コードを実証する.
  • エラー訂正のための3キビットゲートを実装する.
  • 間違いに対する第一級の無感性を示すために.

主な方法:

  • 量子状態を3量子ビット絡み合いの状態にコーディングする.
  • シングルクビットエラー (ビットフリップとフェーズフリップ) を誘導します.
  • エラーシンドロームの解読と修正用の3量子ビットゲート (Toffoliゲート) の適用.

主要な成果:

  • Toffoliゲートの古典的な動作に対して85±1%の精度を達成しました.
  • 理想的な量子プロセスの行列の78±1%の精度を達成しました.
  • 予測通り,エラーに対する第一級無感性を示した.

さらに関連する動画

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Generation and Coherent Control of Pulsed Quantum Frequency Combs
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Generation and Coherent Control of Pulsed Quantum Frequency Combs

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関連する実験動画

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Gradient Echo Quantum Memory in Warm Atomic Vapor
10:00

Gradient Echo Quantum Memory in Warm Atomic Vapor

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Silicon Metal-oxide-semiconductor Quantum Dots for Single-electron Pumping
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Silicon Metal-oxide-semiconductor Quantum Dots for Single-electron Pumping

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Generation and Coherent Control of Pulsed Quantum Frequency Combs
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Generation and Coherent Control of Pulsed Quantum Frequency Combs

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結論:

  • 実装された3量子ビットコードは,単量子ビットエラーを効果的に修正します.
  • このアプローチは,改善されたコヒーレンス時間と組み合わせた場合,スケーラブルな量子テクノロジーの有望さを示しています.
  • 9キビットデバイス上のコードの連結は,任意の1キビットエラーを修正することができます.