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    WiMi Explores Collaborative Quantum Generative Networks Using Quantum Generative Machine Learning

    9/17/25 11:50:00 AM ET
    $WIMI
    Computer Software: Prepackaged Software
    Technology
    Get the next $WIMI alert in real time by email

    BEIJING, Sept. 17, 2025 /PRNewswire/ -- WiMi Hologram Cloud Inc. (NASDAQ:WIMI) ("WiMi" or the "Company"), a leading global Hologram Augmented Reality ("AR") Technology provider, announced that they are exploring an innovative solution—Synergic Quantum Generative Network (SQGEN). The core of SQGEN lies in its parallel quantum learning framework. In SQGEN, the generator and discriminator components run simultaneously within a quantum computing environment, interacting through quantum communication channels. This parallel design not only accelerates the training process but also enhances the overall efficiency of the algorithm. Within the quantum computing framework, the generator and discriminator leverage the superposition and entanglement properties of quantum bits (qubits), simultaneously processing multiple data samples, enabling parallel data generation and discrimination.

    In order to optimize the quantum circuit, SQGEN employs the Nelder-Mead optimization algorithm, which does not require gradient information and is suitable for situations where calculating gradients directly is difficult in quantum computing. Additionally, SQGEN introduces innovation in the design of the cost function by relaxing the reversibility condition, which improves the lower bound of the cost function and reduces the number of cost function evaluations required per training cycle. This feature not only reduces the consumption of quantum resources but also enhances the stability of the algorithm. In SQGEN, the cost function is designed as a measure of the game between the generator and the discriminator. When both the discriminator and the generator perform the task in the optimal way, the cost function will reach its maximum value. This ensures that SQGEN can continuously approach the optimal solution during the training process. In SQGEN, the interaction between the generator and the discriminator is achieved through quantum communication channels. These channels, utilizing quantum entanglement and other properties, enable fast information transmission and synchronization. At the same time, SQGEN adopts an efficient synchronization mechanism to ensure that the generator and discriminator stay in sync throughout the training process, thus avoiding instability during training.

    The collaborative quantum generative network architecture researched by WiMi offers significant technological advantages. By utilizing a parallel quantum learning framework and optimized quantum circuit algorithms, it significantly improves training efficiency and shortens the time for the model to reach a converged state. Furthermore, by reducing the number of cost function evaluations and optimizing the quantum communication mechanism, the collaborative quantum generative network reduces quantum resource consumption, making quantum generative learning more economically feasible. In addition, through a carefully designed cost function and synchronization mechanism, it effectively addresses the training instability issue in quantum generative adversarial learning, enhancing the robustness and generalization ability of the model. Within the collaborative learning framework, the generator and discriminator continuously optimize each other, making the generated data closer to the distribution of real data, thus improving the quality and diversity of the generated data. In terms of training speed, SQGEN is also significantly faster than QGAN, and the quality and diversity of the generated data are both improved. This achievement not only validates the effectiveness and superiority of SQGEN but also provides new ideas and methods for the development of quantum generative learning.

    As an innovative generative quantum machine learning framework, SQGEN achieves significant improvements over QGAN through its parallel quantum learning framework, optimized quantum circuit algorithms, cost function optimization and evaluation, as well as efficient quantum communication and synchronization mechanisms. In the future, with the continuous development of quantum computing technology and the increasing availability of quantum resources, SQGEN, explored by WiMi, may find applications and be promoted in more fields, injecting new momentum into the development of machine learning and artificial intelligence.

    About WiMi Hologram Cloud

    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.

    Safe Harbor Statements

    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.

    Further information regarding these and other risks is included in the Company's annual report on Form 20-F and the current report on Form 6-K and other documents filed with the SEC. All information provided in this press release is as of the date of this press release. The Company does not undertake any obligation to update any forward-looking statement except as required under applicable laws.

    Cision View original content:https://www.prnewswire.com/news-releases/wimi-explores-collaborative-quantum-generative-networks-using-quantum-generative-machine-learning-302559375.html

    SOURCE WiMi Hologram Cloud Inc.

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