WiMi Develops a Quantum Technology-Based Random Access Memory Architecture
WiMi Develops a Quantum Technology-Based Random Access Memory Architecture
BEIJING, Dec. 26, 2024 /PRNewswire/ -- WiMi Hologram Cloud Inc. (NASDAQ: WiMi) ("WiMi" or the "Company"), a leading global Hologram Augmented Reality ("AR") Technology provider, today announced the development of a Quantum Technology-Based Random Access Memory Architecture, known as QRAM. This architecture successfully implements fundamental logical operations such as AND, OR, NOT, and NOR gates in quantum logic gates by combining key basic operations in quantum computing, such as the CNOT gate, V gate, and V+ gate. Quantum Random Access Memory (QRAM) is a memory architecture specifically designed for quantum computing environments, with the core goal of enabling efficient reading and writing of information while maintaining the state of the quantum system. The design of QRAM is not only intended to leverage the parallel processing capabilities of quantum computing but also to utilize quantum properties such as superposition and entanglement to significantly enhance computational efficiency.
北京時間2024年12月26日 /PRNewswire/ -- 微美全息公司(納斯達克:WiMi)("WiMi"或"公司"),作爲全球領先的全息增強現實("AR")科技提供者,今天宣佈開發了一種基於量子科技的隨機存取存儲器架構,稱爲QRAm。這種架構通過結合量子計算中的關鍵基本操作,如CNOt門、V門和V+門,成功實現了基本邏輯操作,如與門(AND)、或門(OR)、非門(NOt)和或非門(NOR)。量子隨機存取存儲器(QRAM)是一種專門爲量子計算環境設計的存儲架構,核心目標是實現高效的信息讀取和寫入,同時保持量子系統的狀態。QRAm的設計不僅旨在利用量子計算的並行處理能力,還利用量子特性,如疊加和糾纏,顯著提高計算效率。
In WiMi's QRAM architecture, the quantum CNOT gate, V gate, and V+ gate serve as the fundamental operation units. Each quantum operation is equivalent to certain logical operations in classical computing, but simultaneously leverages the properties of quantum states to achieve efficient computation.
在微美的QRAm架構中,量子CNOt門、V門和V+門作爲基本操作單元。每個量子操作相當於經典計算中的某些邏輯操作,但同時利用量子狀態的特性實現高效計算。
CNOT Gate (Controlled-NOT Gate): The CNOT gate is a crucial operation in quantum computing, used to control the relationship between two quantum bits (qubits). In classical computing, this is similar to the function of an XOR gate, but in the quantum environment, it allows qubits to exist in a superposition of states, enabling the simultaneous processing of multiple states.
CNOt門(受控非門):CNOt門是量子計算中的一個關鍵操作,用於控制兩個量子比特(qubit)之間的關係。在經典計算中,這類似於異或門(XOR)的功能,但在量子環境中,它允許量子比特存在於狀態的疊加中,從而使多個狀態能夠同時處理。
V Gate and V+ Gate: The V gate and V+ gate are quantum gates used to implement more complex logic. The operations of these two gates are similar to the AND and OR gates in classical computing. However, their advantage lies in the ability to process multiple potential outcomes in the quantum system simultaneously, without the need to evaluate each possibility separately.
V門和V+門:V門和V+門是量子門,用於實現更復雜的邏輯。這兩個門的操作與經典計算中的與門(AND)和或門(OR)相似。然而,它們的優勢在於能夠同時在量子系統中處理多個潛在的結果,而無需分別評估每個可能性。
By combining these fundamental quantum gates, basic operations in quantum logic such as AND, OR, NOT, and NOR can be successfully implemented. This provides the necessary support for designing complex quantum circuits, while being more flexible and efficient compared to classical logic gates.
通過結合這些基本量子門,可以成功實現量子邏輯中的基本操作,如與(AND)、或(OR)、非(NOT)和或非(NOR)。這爲設計複雜的量子電路提供了必要的支持,同時相比於經典邏輯門更具靈活性和效率。
One of the major advantages of the QRAM architecture is its full utilization of the properties of quantum superposition and quantum entanglement. In classical computing, memory read and write operations are linear and must be performed sequentially. However, in quantum computing, because qubits can exist in multiple states (superposition), parallel read and write operations can be performed simultaneously. This ability significantly enhances computational efficiency, especially when handling large-scale datasets or complex computational tasks.
QRAm架構的一大主要優勢是充分利用量子疊加態和量子糾纏的特性。在經典計算中,內存讀寫操作是線性的,必須順序執行。然而,在量子計算中,由於量子位可能存在於多個狀態(疊加態),可以同時進行並行的讀寫操作。這種能力顯著提高了計算效率,特別是在處理大規模數據集或複雜計算任務時。
Additionally, quantum entanglement enables the correlation between multiple qubits without the need for direct communication, further improving the speed of data transfer and computation. Memory operations with entangled qubits are much faster and more efficient than traditional memory operations, opening up new possibilities for parallel computing.
此外,量子糾纏使得多個量子位之間在無需直接通信的情況下可以產生關聯,進一步提高了數據傳輸和計算的速度。與糾纏量子位進行的內存操作比傳統內存操作更快、更高效,爲並行計算開闢了新的可能性。
In WiMi's QRAM architecture, the entire design logic includes several key steps and technical nodes, such as quantum state-based random access, the introduction of quantum error correction mechanisms, and seamless integration with quantum computers.
在微美的QRAm架構中,整個設計邏輯包括幾個關鍵步驟和技術節點,如基於量子狀態的隨機訪問、引入量子糾錯機制以及與量子計算機的無縫集成。
The core feature of QRAM is its ability to perform random access within a quantum system. Traditional computer RAM achieves reading and writing to memory units through address buses, data buses, and other components, whereas QRAM accomplishes this process through the states of quantum bits (qubits). By utilizing quantum superposition, multiple addresses can be accessed simultaneously in a single operation. This means that in a QRAM system, data can be accessed in parallel across multiple addresses, greatly improving the efficiency of data operations.
QRAm的核心特點是其在量子系統中執行隨機訪問的能力。傳統計算機的RAm通過地址總線、數據總線和其他元件實現對內存單元的讀寫,而QRAm通過量子比特(qubit)的狀態完成這一過程。通過利用量子疊加態,可以在單次操作中同時訪問多個地址。這意味着在QRAm系統中,可以在多個地址之間並行訪問數據,極大地提高了數據操作的效率。
To achieve this, WiMi has designed a system based on CNOT gates, V gates, and V+ gates. These quantum gates allow flexible control over memory access processes while maintaining the quantum state of the system and ensuring the efficient transmission of qubits in an entangled state. Through this system, QRAM not only enables high-speed data reading and writing, but also ensures the reliability and accuracy of information processing.
爲了實現這一目標,微美設計了一個基於CNOT門、V門和V+門的系統。這些量子門允許靈活控制內存訪問過程,同時保持系統的量子狀態,並確保糾纏狀態下的量子位高效傳輸。通過該系統,QRAm不僅實現了高速的數據讀寫,還確保了信息處理的可靠性和準確性。
Furthermore, error correction is crucial in any quantum computing system. Due to the fragile nature of qubit states, even small external disturbances can cause computational errors. Therefore, WiMi's QRAM architecture incorporates a quantum error correction mechanism to ensure that the qubit states are accurately preserved and transmitted during data reading and writing. This includes an error correction method based on quantum entanglement, where redundant entangled qubits are introduced to detect and correct potential errors. This method not only effectively reduces the impact of external noise on the system but also ensures the stability of data during multiple read operations.
此外,錯誤糾正對於任何量子計算系統至關重要。由於量子比特狀態的脆弱性質,甚至小的外部干擾也會導致計算錯誤。因此,微美的QRAm架構結合了量子錯誤糾正機制,以確保量子比特狀態在數據讀取和寫入過程中被準確保留和傳輸。該機制包括基於量子糾纏的錯誤糾正方法,引入冗餘的糾纏量子比特來檢測和糾正潛在的錯誤。這種方法不僅有效降低了外部噪聲對系統的影響,還確保了在多次讀取操作中數據的穩定性。
WiMi's QRAM design is intended to seamlessly integrate with quantum computers. Since quantum computing operations depend on the superposition and entanglement states of qubits, the QRAM system demonstrates high compatibility when interfacing with a quantum processing unit (QPU). The design ensures smooth transmission of qubits between memory and processor during data access, thereby significantly improving computational efficiency.
微美的QRAm設計旨在與量子計算機無縫集成。由於量子計算操作依賴於量子比特的疊加和糾纏狀態,QRAm系統在與量子處理單元(QPU)接口時表現出高度兼容性。該設計確保在數據訪問過程中量子比特在內存和處理器之間的平穩傳輸,從而顯著提高計算效率。
By utilizing the V gate, V+ gate, and CNOT gate, WiMi's QRAM system can quickly execute quantum logic operations and, when handling complex computational tasks, can read and write data at near-real-time speeds. This makes QRAM a key component in large-scale quantum computing applications.
通過利用V門、V+門和CNOt門,微美的QRAm系統能夠快速執行量子邏輯操作,並在處理複雜計算任務時,以近乎實時的速度讀寫數據。這使得QRAm成爲大規模量子計算應用中的關鍵組成部分。
The successful development of QRAM technology has had a revolutionary impact across multiple fields. As a critical component of quantum computers, QRAM will significantly enhance the overall performance of quantum computing systems. Its efficient parallel data access capabilities make it especially well-suited for handling large-scale computational tasks such as molecular simulations, climate modeling, and complex optimization problems. By significantly reducing computation time, QRAM will play an indispensable role in the future of high-performance quantum computing.
QRAm技術的成功開發在多個領域產生了革命性的影響。作爲量子計算機的關鍵組成部分,QRAm將顯著提升量子計算系統的整體性能。其高效的並行數據訪問能力使其特別適合處理大規模計算任務,如分子模擬、氣候建模和複雜優化問題。通過顯著縮短計算時間,QRAm將在未來高性能量子計算中扮演不可或缺的角色。
Another important application of QRAM is in quantum communication and quantum encryption. By leveraging quantum entanglement, QRAM can enable high-speed data transmission while ensuring data security. The non-locality of quantum entanglement guarantees that data cannot be intercepted during transmission, providing a solid foundation for future quantum encryption technologies.
QRAm的另一個重要應用是在量子通信和量子加密中。通過利用量子糾纏,QRAm可以實現高速數據傳輸,同時確保數據安全。量子糾纏的非局部性保證了數據在傳輸過程中無法被攔截,爲未來的量子加密技術提供了堅實的基礎。
With the development of quantum computing, the field of quantum machine learning has also gradually emerged. QRAM's efficient data access capabilities make it highly suitable for handling large-scale datasets, enabling model training to be completed in a shorter time. This will significantly advance the development of quantum artificial intelligence, allowing complex machine learning tasks to be solved quickly on quantum computers.
隨着量子計算的發展,量子機器學習領域也逐漸出現。QRAM高效的數據訪問能力使其非常適合處理大規模數據集,從而使模型訓練能夠在更短的時間內完成。這將顯著推動量子人工智能的發展,使複雜的機器學習任務能夠在量子計算機上快速解決。
As quantum technology continues to evolve, QRAM, as a core technology, will provide crucial support for the future of quantum computing. WiMi is committed to continuing the development of QRAM technology, continually optimizing its performance, reducing implementation costs, and expanding its applications across various industries.
隨着量子技術的不斷髮展,作爲核心技術的QRAm將爲未來的量子計算提供關鍵支持。微美全息致力於持續發展QRAm技術,不斷優化其性能,降低實現成本,並擴大其在各行業的應用。
The successful development of QRAM technology marks an important step in the advancement of quantum computing. As quantum computers progress and quantum technologies mature, QRAM will become an indispensable core component of quantum computing systems. With the ongoing optimization and promotion of this technology, QRAM is expected to bring disruptive innovations across multiple fields and lay a solid foundation for the arrival of the quantum era.
QRAm技術的成功開發標誌着量子計算進步的重要一步。隨着量子計算機的發展和量子技術的成熟,QRAm將成爲量子計算系統不可或缺的核心組件。隨着該技術的持續優化和推廣,QRAm預計將在多個領域帶來顛覆性創新,併爲量子時代的到來奠定堅實的基礎。
About WiMi Hologram Cloud
關於微美全息雲
WiMi Hologram Cloud, Inc. (NASDAQ:WiMi) is a holographic cloud comprehensive technical solution provider that focuses on professional areas including holographic AR automotive HUD software, 3D holographic pulse LiDAR, head-mounted light field holographic equipment, holographic semiconductor, holographic cloud software, holographic car navigation and others. Its services and holographic AR technologies include holographic AR automotive application, 3D holographic pulse LiDAR technology, holographic vision semiconductor technology, holographic software development, holographic AR advertising technology, holographic AR entertainment technology, holographic ARSDK payment, interactive holographic communication and other holographic AR technologies.
微美全息科技公司(納斯達克:WiMi)是一家全息雲綜合技術解決方案提供商,專注於包括全息AR汽車HUD軟件、3D全息脈衝激光雷達、頭戴式光場全息設備、全息半導體、全息雲軟件、全息汽車導航等專業領域。其服務和全息AR技術包括全息AR汽車應用、3D全息脈衝激光雷達技術、全息視覺半導體技術、全息軟件開發、全息AR廣告技術、全息AR娛樂技術、全息AR支付、互動全息通信及其他全息AR技術。
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安全港聲明
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關於這些及其他風險的更多信息已包含在公司提交給SEC的20-F表格年度報告和6-K表格當前報告及其他文件中。本新聞稿中提供的所有信息均以本新聞稿的日期爲準。除適用法律要求外,公司不承擔更新任何前瞻性聲明的義務。
SOURCE WiMi Hologram Cloud Inc.
來源:WiMi全息雲
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