WiMi Develops a New Design Solution for Simulating Quantum Computing Concepts Using FPGA
WiMi Develops a New Design Solution for Simulating Quantum Computing Concepts Using FPGA
BEIJING, Dec. 17, 2024 /PRNewswire/ -- WiMi Hologram Cloud Inc. (NASDAQ: WiMi) ("WiMi" or the "Company"), a leading global Hologram Augmented Reality ("AR") Technology provider, today announced that they announced the development of a new design solution based on FPGA to simulate quantum computing concepts, aiming to provide a more practical and feasible approach for quantum computing research and applications. Quantum computing is based on the principles of quantum mechanics and operates using qubits, offering the potential to surpass classical computers in solving certain specific problems. Although the hardware implementation of quantum computers remains challenging, the unique advantage of quantum computing lies in its parallel processing capabilities and efficiency in solving complex problems. FPGA, as a highly configurable hardware platform, can simulate the fundamental principles of quantum computing at the logical level, providing an effective means to validate and test quantum computing concepts.
北京,2024年12月17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")科技提供商,今天宣佈開發了一種基於FPGA的新設計方案,以模擬量子計算概念,旨在爲量子計算研究和應用提供更實用、可行的方法。量子計算基於量子力學的原理,使用量子比特(qubits)進行運算,在解決某些特定問題上有可能超越經典計算機。儘管量子計算機的硬件實現仍然面臨挑戰,但量子計算的獨特優勢在於其並行處理能力和高效解決複雜問題的能力。FPGA作爲一種高度可配置的硬件平台,可以在邏輯層面模擬量子計算的基本原理,爲驗證和測試量子計算概念提供有效手段。
WiMi's design solution for simulating quantum computing concepts based on FPGA includes:
微美全息基於FPGA模擬量子計算概念的設計方案包括:
FPGA Implementation of Quantum Gate Operations: The fundamental unit of quantum computing is the quantum gate. WiMi has implemented the logical operations of these quantum gates on FPGA. By combining these basic gates, complex quantum algorithms can be simulated.
量子門操作的FPGA實現:量子計算的基本單元是量子門。微美全息已經在FPGA上實現了這些量子門的邏輯操作。通過組合這些基本門,可以模擬複雜的量子算法。
Parallel Processing Architecture: Traditional sequential logic circuit design methods are inefficient when handling complex problems. While parallel circuit design can increase processing speed, it often requires more hardware resources. WiMi's solution integrates the parallel processing concept of quantum computing to build a new parallel architecture on FPGA, enhancing computation speed while effectively controlling hardware resource consumption.
並行處理架構:傳統的順序邏輯電路設計方法在處理複雜問題時效率低下。雖然並行電路設計可以提高處理速度,但通常需要更多的硬件資源。微美全息的解決方案整合了量子計算的並行處理概念,在FPGA上構建了新的並行架構,提高了計算速度,同時有效控制硬件資源的消耗。
Resource Optimization: FPGA resources include lookup tables (LUTs), flip-flops (FFs), and block RAM. During the design process, efficient use of FPGA resources is crucial. By applying proper resource allocation and optimization algorithms, WiMi minimizes hardware resource usage while improving overall performance.
資源優化:FPGA資源包括查找表(LUTs)、觸發器(FFs)和塊RAM。在設計過程中,高效利用FPGA資源至關重要。通過應用適當的資源分配和優化算法,微美全息在提高整體性能的同時,最小化了硬件資源的使用。
Circuit Synthesis and Simulation: WiMi has developed an automated circuit synthesis tool that converts high-level quantum computing descriptions into FPGA logic implementations. Through simulation and verification, the solution ensures the correctness and efficiency of circuit designs.
電路合成與仿真:微美開發了一種自動化電路合成工具,可以將高級量子計算描述轉換爲FPGA邏輯實現。通過仿真和驗證,該方案確保電路設計的正確性和效率。
WiMi's FPGA-based design solution for simulating quantum computing concepts offers significant advantages over traditional solutions. For example, a binary function parity-check circuit was implemented and compared across different approaches. Parity checking, a fundamental error detection method, is widely used in data communication and storage systems. The circuit was implemented using a traditional solution, a parallel solution, and a quantum computing-based solution, and their performances were compared.
微美的基於FPGA的量子計算概念仿真設計解決方案相比傳統解決方案具有顯著優勢。例如,實現了一個二進制函數奇偶校驗電路,並在不同方法之間進行了比較。奇偶校驗是一種基本的錯誤檢測方法,在數據通信和存儲系統中廣泛使用。該電路使用傳統解決方案、並行解決方案和基於量子計算的解決方案進行了實現,並比較了它們的性能。
In the traditional sequential logic circuit design method, the parity-check circuit operates by bit-by-bit inspection and accumulation. While simple, this approach is slow and inefficient, especially when handling large amounts of data. Meanwhile, the parallel circuit design method improves processing speed by handling multiple data bits simultaneously. However, this method requires more logic units and memory resources, leading to higher hardware resource consumption.
在傳統的順序邏輯電路設計方法中,奇偶校驗電路通過逐位檢查和累加進行操作。雖然這個方法簡單,但速度慢且效率低,尤其在處理大量數據時。與此同時,並行電路設計方法通過同時處理多個數據位來提高處理速度。然而,這種方法需要更多的邏輯單元和內存資源,導致更高的硬件資源消耗。
WiMi implemented quantum gate operations on FPGA and designed a parity-check circuit using a parallel architecture. Compared to traditional and parallel solutions, WiMi's approach maintains high computation speed while significantly reducing hardware resource usage. Compared to the traditional sequential logic circuit design method, this approach reduces computation time and improves processing speed by more than 2x. Compared to the parallel circuit design method, it reduces hardware resource usage by approximately 30%. Additionally, WiMi's design solution offers high flexibility, allowing adjustments and optimizations to meet different application requirements. It also provides excellent scalability, making it suitable for simulating more complex quantum algorithms.
微美在FPGA上實現了量子門操作,並使用並行架構設計了一個奇偶校驗電路。與傳統和並行解決方案相比,微美的方法在保持高計算速度的同時顯著減少了硬件資源的使用。與傳統的順序邏輯電路設計方法相比,該方法將計算時間減少並使處理速度提高超過2倍。與並行電路設計方法相比,它將硬件資源使用減少了大約30%。此外,微美的設計解決方案提供了高度的靈活性,允許進行調整和優化以滿足不同應用需求。它還提供了出色的可擴展性,適合用於模擬更復雜的量子算法。
WiMi's FPGA-based design solution for simulating quantum computing concepts provides a practical and feasible approach for quantum computing research and applications. In the future, WiMi plans to further optimize the design to enhance circuit performance and resource utilization efficiency. Additionally, the solution will be validated and promoted in more real-world application scenarios, exploring its potential in fields such as data processing, cryptography, and optimization problems. Through continuous innovation and technological breakthroughs, FPGA-based quantum computing simulation is expected to lay a solid foundation for the adoption and application of quantum computing, driving technological progress and industry development.
微美基於FPGA的設計方案用於模擬量子計算概念,提供了一種實用且可行的量子計算研究與應用方法。未來,微美計劃進一步優化設計,以提高電路性能和資源利用效率。此外,該方案將在更多實際應用場景中得到驗證和推廣,探索其在數據處理、密碼學和優化問題等領域的潛力。通過持續創新和技術突破,基於FPGA的量子計算仿真有望爲量子計算的採納和應用奠定堅實基礎,推動科技進步和行業發展。
WiMi has developed a new FPGA-based design solution for simulating quantum computing concepts, successfully synthesizing circuits within FPGA with performance superior to traditional and parallel design methods. Through case analysis and experimental validation, WiMi demonstrated the solution's significant advantages in computation speed and hardware resource utilization. Looking ahead, WiMi will continue to focus on the research and application of quantum computing technology, driving its development and adoption across various fields.
微美開發了一種新的基於FPGA的設計方案,用於模擬量子計算概念,成功地在FPGA內部綜合了電路,其性能優於傳統和並行設計方法。通過案例分析和實驗驗證,微美展示了該方案在計算速度和硬件資源利用方面顯著的優勢。展望未來,微美將繼續專注於量子計算技術的研究和應用,推動其在各個領域的發展和採納。
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。
Safe Harbor Statements
安全港聲明
This press release contains "forward-looking statements" within the Private Securities Litigation Reform Act of 1995. These forward-looking statements can be identified by terminology such as "will," "expects," "anticipates," "future," "intends," "plans," "believes," "estimates," and similar statements. Statements that are not historical facts, including statements about the Company's beliefs and expectations, are forward-looking statements. Among other things, the business outlook and quotations from management in this press release and the Company's strategic and operational plans contain forward−looking statements. The Company may also make written or oral forward−looking statements in its periodic reports to the US Securities and Exchange Commission ("SEC") on Forms 20−F and 6−K, in its annual report to shareholders, in press releases, and other written materials, and in oral statements made by its officers, directors or employees to third parties. Forward-looking statements involve inherent risks and uncertainties. Several factors could cause actual results to differ materially from those contained in any forward−looking statement, including but not limited to the following: the Company's goals and strategies; the Company's future business development, financial condition, and results of operations; the expected growth of the AR holographic industry; and the Company's expectations regarding demand for and market acceptance of its products and services.
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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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