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WiMi Develops Single-Qubit Quantum Neural Network Technology for Multi-Task Design

MWN-AI** Summary

WiMi Hologram Cloud Inc. (NASDAQ: WiMi), a prominent global provider of Hologram Augmented Reality (AR) technology, has unveiled its groundbreaking single-qubit quantum neural network (SQ-QNN) technology aimed at improving multi-task design. Announced on October 20, 2025, this innovation promises to reshape the landscape of deep learning by harnessing the high-dimensional capabilities of quantum systems for efficient data processing.

Traditional neural networks face challenges due to the expansive parameter requirements and resource demands associated with training large-scale models. As category numbers increase, the growth in model complexity leads to inefficiencies. WiMi's SQ-QNN addresses this dilemma by leveraging quantum bits (qubits) and multi-level quantum systems (qudits), allowing for the natural representation of high-dimensional data.

The SQ-QNN design distinguishes itself by using a single high-dimensional qudit to handle multi-class classification efficiently, contrasting with classical models that rely on extensive neuron networks. Each category corresponds to a dimension of the quantum system, and the classification is achieved through a high-dimensional unitary operator, constructed using skew-symmetric matrices. This method enhances quantum circuit stability and promotes efficiency, significantly reducing circuit depth and training overhead.

Moreover, WiMi employs a hybrid training methodology that integrates extended activation functions with Support Vector Machine (SVM) optimization, bolstering the neural network's capability for nonlinear classification while maintaining a compact architecture. This approach ensures fast convergence to global optimal solutions, alleviating the strain on quantum hardware and enhancing training effectiveness.

With these advancements, WiMi's SQ-QNN technology represents a significant step forward in the integration of quantum computing and artificial intelligence, promising to accelerate industrial progress in AI applications.

MWN-AI** Analysis

WiMi Hologram Cloud Inc. (NASDAQ: WiMi) has announced a significant technological advancement with its development of single-qubit quantum neural network (SQ-QNN) technology for multi-task design, marking a pivotal moment in the convergence of quantum computing and artificial intelligence. This innovation not only addresses the inefficiencies associated with traditional neural networks but also harnesses the principles of quantum mechanics to optimize computational efficiency and effectiveness.

From a market perspective, WiMi’s innovative technology presents substantial investment opportunities. With the limitations of classical computing, particularly in AI, the introduction of quantum neural networks could revolutionize data processing speeds and efficiency. The ability of the SQ-QNN to manage multi-class classification tasks using a compact quantum circuit can lead to a paradigm shift in sectors reliant on large data sets, such as healthcare, finance, and logistics.

Investors should closely monitor WiMi’s developments, as the successful implementation of SQ-QNN could lead to a competitive advantage in the tech sector and position WiMi as a leader in quantum machine learning. The integration of a hybrid training method utilizing support vector machine optimization further distinguishes this technology, suggesting potential for a robust framework that can sustain efficiency under real-world conditions.

However, caution is warranted. The quantum computing landscape is still evolving, and operationalizing these technologies at scale remains a challenge. Potential regulatory hurdles and the evolving competitive landscape in AI and quantum computing warrant close scrutiny.

Overall, WiMi's announcement could serve as a catalyst for growth within the company’s stock and the broader quantum computing market. Investors might consider positions in WiMi but should remain observant of regulatory developments and technological advancements in this rapidly evolving field.

**MWN-AI Summary and Analysis is based on asking OpenAI to summarize and analyze this news release.

Source: GlobeNewswire

BEIJING, Oct. 20, 2025 (GLOBE NEWSWIRE) -- BEIJING, Oct. 20, 2025––WiMi Hologram Cloud Inc. (NASDAQ: WiMi) ("WiMi" or the "Company"), a leading global Hologram Augmented Reality ("AR") Technology provider, today announced the development of single-qubit quantum neural network technology for multi-task design. This technology has extremely disruptive significance; this technology, by demonstrating the feasibility of high-dimensional quantum systems in efficient learning, provides a realistic path for the deep integration of future quantum computing and artificial intelligence.
Nowadays, training large neural networks often requires billions of parameters and massive data center resources, and the sharp rise in power consumption and hardware costs has become a real bottleneck in the development of artificial intelligence. At the same time, although traditional neural networks have achieved high accuracy in multi-class classification problems, as the number of categories increases, the model structure also expands accordingly, leading to a decline in inference latency and computational efficiency.
The rise of quantum computing provides new possibilities for this dilemma. Quantum bits (qubits) and quantum multi-level systems (qudits) can utilize superposition and entanglement to achieve natural representation of high-dimensional data spaces, thereby breaking the resource limitations of classical computing. In this field, Quantum Neural Networks (QNN) have become a frontier direction of research. Compared to traditional deep learning, QNN can achieve complex mappings through shallow quantum circuits, greatly improving model compactness and computational efficiency.
In the wave of quantum machine learning, the single-qudit quantum neural network technology proposed by WiMi not only meets the actual needs of high-dimensional data classification but also breaks through the implementation bottlenecks under the constraints of quantum hardware, becoming an important step in promoting industrial progress.
The core idea of the single-qudit quantum neural network technology proposed by WiMi is to use the state space of a single high-dimensional qudit to directly handle multi-class classification tasks. Unlike classical neural networks that rely on thousands of neurons and complex hierarchical structures, SQ-QNN leverages the high-dimensional characteristics of quantum systems to efficiently encode and distinguish category information within a compact circuit scale.
In this design, each category corresponds to one dimension of the quantum system, and the overall classification process is completed through the action of a high-dimensional unitary operator. WiMi uses the Cayley transform of skew-symmetric matrices to construct the unitary operator; this method not only possesses good mathematical stability but also ensures efficiency in quantum circuit implementation. In this way, the evolution of the quantum state directly establishes a mapping relationship with the category labels, greatly reducing the circuit depth and training overhead.
Additionally, this technology introduces a hybrid training method when optimizing network parameters. It combines extended activation functions with the optimization framework of Support Vector Machines (SVM). The extended activation function originates from the truncated multivariate Taylor series expansion and can effectively introduce nonlinear representational capabilities in the quantum state space, while SVM optimization further ensures the stability of parameter optimization and the acquisition of global optimal solutions.
The entire technical logic of WiMi's SQ-QNN can be divided into three levels: quantum state encoding, unitary evolution design, and hybrid training optimization.
First is the quantum state encoding. In multi-class classification problems, assuming the number of categories is $, a $-dimensional qudit system is constructed to carry the data. After appropriate data preprocessing, the input samples are mapped to the amplitude or phase information of the quantum state. In this process, traditional feature extraction steps are greatly simplified, allowing data to directly enter the neural network in quantum form.
Second is the unitary evolution design. WiMi proposes using the Cayley transform of skew-symmetric matrices to generate $-dimensional unitary operators. The properties of skew-symmetric matrices make their Cayley transform results naturally satisfy unitarity, thereby ensuring the physical rationality and implementability of quantum state evolution. Through this unitary operator, the input quantum state completes the mapping and differentiation of category information in the high-dimensional Hilbert space. Unlike the multi-layer propagation in classical neural networks, this scheme can achieve complex decision boundaries through a single-step evolution, significantly reducing the circuit depth.
Finally, it is the hybrid training optimization. In the parameter training phase, this scheme does not solely rely on quantum computing but adopts a hybrid quantum-classical training method. The introduction of extended activation functions enables the quantum neural network to possess nonlinear classification capabilities while maintaining a shallow structure. At the same time, the support vector machine optimization mechanism provides an efficient path for parameter search, allowing the network to quickly converge to the global optimal solution. Under this training framework, the burden on quantum hardware is effectively shared, and training efficiency is significantly improved.

About WiMi Hologram Cloud Inc.
WiMi Hologram Cloud Inc. (NASDAQ: WiMi) focuses on holographic cloud services, primarily concentrating on professional fields such as in-vehicle AR holographic HUD, 3D holographic pulse LiDAR, head-mounted light field holographic devices, holographic semiconductors, holographic cloud software, holographic car navigation, metaverse holographic AR/VR devices, and metaverse holographic cloud software. It covers multiple aspects of holographic AR technologies, including in-vehicle holographic AR technology, 3D holographic pulse LiDAR technology, holographic vision semiconductor technology, holographic software development, holographic AR virtual advertising technology, holographic AR virtual entertainment technology, holographic ARSDK payment, interactive holographic virtual communication, metaverse holographic AR technology, and metaverse virtual cloud services. WiMi is a comprehensive holographic cloud technology solution provider. For more information, please visit http://ir.wimiar.com .
Translation Disclaimer
The original version of this announcement is the officially authorized and only legally binding version. If there are any inconsistencies or differences in meaning between the Chinese translation and the original version, the original version shall prevail. WiMi Hologram Cloud Inc. and related institutions and individuals make no guarantees regarding the translated version and assume no responsibility for any direct or indirect losses caused by translation inaccuracies.
Investor Inquiries, please contact:
WIMI Hologram Cloud Inc.
Email: pr@wimiar.com

ICR, LLC
Robin Yang
Tel: +1 (646) 975-9495
Email: wimi@icrinc.com


FAQ**

How does WiMi Hologram Cloud Inc. plan to leverage its single-qubit quantum neural network technology to enhance its existing AR holographic solutions in the market?

WiMi Hologram Cloud Inc. plans to integrate its single-qubit quantum neural network technology to improve the processing speed and accuracy of its AR holographic solutions, enhancing user experience and enabling more complex, interactive holographic content in the market.

What measures is WiMi Hologram Cloud Inc. taking to ensure the scalability of its single-qudit quantum neural network technology for diverse industrial applications?

WiMi Hologram Cloud Inc. is investing in advanced research and development, forming strategic partnerships, and enhancing their quantum computation capabilities to ensure that its single-qudit quantum neural network technology is scalable for various industrial applications.

In what ways does WiMi Hologram Cloud Inc. intend to mitigate the power consumption and hardware cost concerns associated with traditional neural networks through its new quantum technology?

WiMi Hologram Cloud Inc. aims to mitigate power consumption and hardware costs by leveraging quantum technology to enhance computational efficiency, enabling faster processing and reduced energy usage compared to traditional neural networks.

How might WiMi Hologram Cloud Inc. address potential challenges in integrating quantum computing with its current AI and holographic technology offerings?

WiMi Hologram Cloud Inc. could address potential challenges in integrating quantum computing with its AI and holographic technology by investing in research partnerships, enhancing its talent pool with quantum experts, and developing scalable solutions to bridge the technologies effectively.

**MWN-AI FAQ is based on asking OpenAI questions about WiMi Hologram Cloud Inc. (NASDAQ: WIMI).

WiMi Hologram Cloud Inc.

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