Mobile Access Architecture for Low-Latency Viral Molecular Networks
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Solution Overview
Problem
The existing Internet infrastructure is inadequate for high-quality delivery of voice, video, and high-capacity data applications due to inefficiencies in TCP/IP protocols, leading to inconsistent performance and latency issues, especially with the advent of 4K/5K/8K ultra high definition TV and real-time interactive services.
Innovation Solution
A Viral Molecular Network utilizing a three-tier infrastructure with Viral Orbital Vehicles (V-ROVERs, Nano-ROVERs, and Atto-ROVERs) and Protonic Switches, employing a cell framing protocol and Instinctive Wise Integrated Circuits (IWIC) for atto-second Time Division Multiple Access (TDMA) to transmit data wirelessly over millimeter waves, minimizing latency and maximizing throughput.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Adaptability or versatility
If TCP/IP protocols are used for data transmission, then network compatibility and broad device support are improved, but transmission latency increases and service quality consistency deteriorates
Solution Approach 1:
The patent segments the network into two distinct layers: a legacy TCP/IP layer for compatibility and a new real-time transport layer for low-latency voice/video transmission. This segmentation allows each layer to optimize for its specific function without compromising the other.
Solution Approach 2:
The patent introduces a real-time transport protocol as an intermediary layer between end devices and the TCP/IP network. This intermediary handles time-sensitive traffic separately, preventing it from being affected by TCP/IP's variable latency while maintaining compatibility with existing infrastructure.
2Adaptability or versatility
If TCP/IP routing with dynamic routes is used, then network flexibility and adaptability are improved, but transmission latency becomes unpredictable and service quality deteriorates
Solution Approach 1:
The patent separates routing functions into two paths: standard TCP/IP routing for data traffic and dedicated real-time routing for voice/video. This ensures that time-sensitive traffic follows predictable routes while data traffic can utilize dynamic routing optimizations.
Solution Approach 2:
The patent extracts real-time transport requirements from the general TCP/IP routing framework, creating a separate routing mechanism that prioritizes latency and jitter constraints over other network optimization goals.
3Ease of manufacture
If narrowband IP architecture is used, then device compatibility and ease of deployment are improved, but bandwidth capacity for high-definition video and ultra-high definition TV deteriorates
Solution Approach 1:
The patent merges narrowband IP infrastructure with broadband real-time transport capabilities, allowing existing devices to connect via standard IP while high-capacity video streams utilize dedicated broadband channels when available.
Solution Approach 2:
The patent adds a new dimension to network architecture by introducing parallel transport channels: standard IP for data and real-time transport for media. This dimensional addition enables high-definition and ultra-high-definition video without disrupting existing narrowband infrastructure.
4Productivity
If variable packet sizes are used in IP transmission, then data efficiency and compression are improved, but router processing delays increase and latency becomes unpredictable
Solution Approach 1:
The patent segments packet handling into two streams: variable-size IP packets for data efficiency and fixed-size real-time packets for predictable router processing. This segmentation eliminates the trade-off by allowing each packet type to be optimized independently.
Solution Approach 2:
The patent changes the packet size parameter for real-time traffic from variable to fixed, ensuring consistent router processing delays. This parameter change maintains data efficiency through proper framing while eliminating the jitter caused by variable packet sizes.
Applied Scientific Principles
This section explains which scientific principles are used to turn an abstract innovation direction into a practical engineering solution.
Function Achieved in This Case
The network provides high-speed, high-capacity terabits per second wireless transmission, supporting ultra-high definition video, interactive services, and corporate applications with reduced latency and increased bandwidth, enabling seamless delivery of multimedia and mission-critical data.
Implementation Method 1
The RF section may be configured to perform wireless transmission and reception using electromagnetic radiation characterized by at least one frequency band in the ultra-high end of the microwave band
Data Source
AI summary
Disclosed is a Viral Orbital Vehicle access device configured to provide connectivity to a Viral Molecular Network. The Viral Orbital Vehicle access device may include at least one Viral Orbital Vehicle Port configured to receive at least one digital data stream from at least one user device and an Instinctive Wise Integrated Circuit (IWIC) communicatively coupled to the at least one Viral Orbital Vehicle Port. Further, the IWIC may be configured to place the at least one digital data stream into a plurality of cell frames, place the plurality of cell frames in a plurality of Orbital Time-Slots (OTS), form a plurality of Atto-Second Multiplexing (ASM) frames based on the plurality of OTS and place the plurality of ASM frames in a plurality of Time Division Multiple Access orbital time slots. The Viral Orbital Vehicle access device may include a Radio Frequency (RF) section communicatively coupled to the IWIC.


