The Meta-Metaverse: Ideation and Future Directions
Abstract
:1. Introduction
2. Motivation
3. Fractals and the Meta-Metaverse
4. Possible Connections and Implementation
- Ring Structure: The ring structure forms a circular arrangement, connecting each Metaverse platform to its neighboring platforms. This closed-loop configuration facilitates efficient data transfer and communication, ensuring a continuous flow of information. The output of one platform seamlessly becomes the input for the next, creating an uninterrupted chain of interconnected platforms;
- Series Structure: The series structure connects Metaverse platforms linearly, one after another. This allows for sequential data processing, where the output of one platform serves as the input for the next. It enables step-by-step transformation of information as it progresses through the connected platforms, facilitating progressive analysis and refinement;
- Hybrid Structures: Hybrid structures combines elements of both series and parallel configurations. It comprises interconnected platforms that operate in series for some data flows and in parallel for others. This provides flexibility and adaptability, allowing for a combination of sequential and parallel processing based on specific application requirements. In these structures, nested structures have been used. These represent a hierarchical arrangement of Metaverse platforms, akin to nesting software. Platforms exist within larger platforms, forming a nested network. This structure enables encapsulation of functionalities and modularization of processes, enhancing scalability and flexibility. The nested structure enables seamless connections and interactions between platforms, creating a comprehensive and interconnected ecosystem.
4.1. Ring Connection
- The cyclical flow of data within the ring structure limits non-linear interactions and branching scenarios within the Metaverse, constraining users’ navigation and interaction outside the predefined path established by the platform connections;
- High demand or processing requirements in specific platforms may result in bottlenecks as data flow sequentially through the platforms. This can lead to latency issues or reduced performance for users accessing those platforms;
- The ring network configuration lacks redundancy and alternative paths, making it susceptible to technical issues or disruptions in a single platform that can impact the entire network’s functionality. This can potentially affect user experiences and system reliability;
- In terms of implications and future considerations, our research suggests the following:
- Further exploration of alternative network topologies, such as mesh networks or hybrid configurations, can address the limitations of the ring structure, offering enhanced flexibility, fault tolerance, and adaptability for the ever-expanding Metaverse ecosystem;
- By leveraging network engineering principles, we can optimize the design, scalability, and functionality of interconnected platforms within the Metaverse, contributing to the creation of a more robust and immersive digital realm for users.
4.2. Series Connection
- The series network enables a streamlined flow of data between the platforms within the Metaverse. By establishing a linear connection, it facilitates efficient communication and seamless information transfer. This ensures that data reach their intended destination without unnecessary delays or detours;
- The linear structure of the series network simplifies the maintenance and troubleshooting process. Due to its linear nature, it becomes relatively straightforward to identify and resolve issues. Network administrators can trace the connection path between platforms, making it easier to pinpoint any disruptions or problems. This simplification of the maintenance process enhances the overall efficiency of managing the network.
- The series network presents challenges when it comes to scaling. As each new platform needs to be connected in series with the existing ones, there are inherent limitations on the number of platforms that can be effectively integrated into the network. Adding new platforms requires extending the linear chain of connections, which can become complex and potentially lead to performance degradation or bottlenecks;
- Single Point of Failure: The series network is susceptible to disruptions or failures in any individual platform. If one platform encounters technical issues or disruptions, it can have a cascading effect on the connectivity and functionality of subsequent platforms in the series. In other words, the failure of one platform can disrupt the entire chain of communication, potentially leading to system-wide interruptions. This vulnerability to a single point of failure highlights the need for redundancy and backup solutions to mitigate such risks.
4.3. Deep Series Connection
4.4. Hybrid Connections
5. Directions
5.1. Healthcare, Medicine, and the Meta-Metaverse
- Displaying 3D models of patient anatomy, enabling doctors to examine and explore different bodily systems with enhanced precision;
- Creating virtual simulations for learning and training, allowing medical students and professionals to practice medical procedures and study various health conditions in a controlled and safe environment;
- Enabling virtual consultations and telemedicine, so that patients can meet with their healthcare providers remotely and participate in more interactive sessions;
- Providing virtual rehabilitation and therapy options, letting patients carry out their exercises and treatment plans in a virtual setting;
- Supporting virtual research and development, enabling scientists and researchers to collaborate and experiment with novel ideas in a virtual laboratory;
- Facilitating virtual conference and event hosting, enabling medical professionals to attend and participate in conferences, lectures, and other events remotely;
- Implementing these features would require specialized software and hardware, such as VR headsets, AR glasses, and motion tracking devices, to deliver a fully immersive and interactive experience.
5.2. Biology, Genetics, and the Meta-Metaverse
5.3. Environmental Engineering and the Meta-Metaverse
5.4. Economy and the Meta-Metaverse
5.5. Gaming and the Meta-Metaverse
5.6. Supply Chain and the Meta-Metaverse
5.7. Trading, Shopping, Marketing, and the Meta-Metaverse
5.8. Interior Design and the Meta-Metaverse
- Intricate, repeating patterns can be created, adding visual interest to the design;
- A sense of depth and movement can be incorporated into the design, increasing its complexity and visual appeal;
- Design layouts can be analyzed and optimized by understanding the flow and functionality of interior spaces, leading to more efficient and effective designs;
- Historical design data can be studied to identify patterns and predict future design trends;
- Designers can work more efficiently and effectively by understanding the most effective design strategies;
- Overall, the Meta-Metaverse approach can help designers create more visually interesting and complex designs, optimize design layouts, and predict future trends in interior design.
5.9. Social Networking and the Meta-Metaverse
5.10. Politics and the Meta-Metaverse
- The Meta-Metaverse-based governance can structure political systems hierarchically, with each level of government having equal power and responsibility. This can promote decentralized decision-making and balance of power;
- Meta-Metaverse-based political parties can be structured within each other, with each unit having equal decision-making power. This can foster internal democracy and prevent concentration of power in a single faction;
- Meta-Metaverse-based voting systems can be designed to reflect society’s diversity, ensuring that individuals have equal say in decisions that affect them. This could include liquid democracy or quadratic voting;
- Meta-Metaverse-based constitutions can be structured to apply at different levels and branches of government, protecting citizens’ and governments’ rights and responsibilities;
- Meta-Metaverse-based budgeting can ensure fair and transparent allocation of resources by giving each level of government equal control over its budget;
- Meta-Metaverse-based political campaigns can promote internal democracy and prevent concentration of power within a single group or faction;
- Policymaking based on the Meta-Metaverse can distribute decision-making power evenly across different levels and branches of government, making the process transparent and inclusive;
- The Meta-Metaverse media can enhance transparency and prevent concentration of power within a single group or faction;
- Meta-Metaverse-based public engagement can give the public a meaningful role in shaping policy decisions that affect them;
- Meta-Metaverse-based education can promote internal democracy and prevent concentration of power within a single group or faction by giving each branch or unit equal decision-making power.
5.11. Smart Manufacturing and the Meta-Metaverse
6. Discussion
7. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Jamshidi, M.; Dehghaniyan Serej, A.; Jamshidi, A.; Moztarzadeh, O. The Meta-Metaverse: Ideation and Future Directions. Future Internet 2023, 15, 252. https://doi.org/10.3390/fi15080252
Jamshidi M, Dehghaniyan Serej A, Jamshidi A, Moztarzadeh O. The Meta-Metaverse: Ideation and Future Directions. Future Internet. 2023; 15(8):252. https://doi.org/10.3390/fi15080252
Chicago/Turabian StyleJamshidi, Mohammad (Behdad), Arash Dehghaniyan Serej, Alireza Jamshidi, and Omid Moztarzadeh. 2023. "The Meta-Metaverse: Ideation and Future Directions" Future Internet 15, no. 8: 252. https://doi.org/10.3390/fi15080252
APA StyleJamshidi, M., Dehghaniyan Serej, A., Jamshidi, A., & Moztarzadeh, O. (2023). The Meta-Metaverse: Ideation and Future Directions. Future Internet, 15(8), 252. https://doi.org/10.3390/fi15080252