Neural Cell Colonies for Limitless Information Storage

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Solution Overview

Problem

Existing information storage systems face limitations in capacity, obsolescence, scope, and data security, particularly in storing and retrieving subjective and quantitative data, with none capable of storing limitless quantities or subjective values effectively.

Innovation Solution

The system utilizes neural cell colonies connected to electronic input-and-retrieval nodes to store and retrieve information directly in the (n)fora, encrypting it in a quasi-absolute manner, accessible only to the original neural system or its replica, with limitless capacity due to the nature of the (n)fora.

Engineering Contradictions & Design Principles

VSEngineering Contradiction Analysis

1Quantity of substance

If traditional information storage systems (magnetic media, digital storage, cloud) are used, then information can be stored and retrieved, but the storage capacity is limited and the data is subject to obsolescence and degradation

Engineering Contradiction:
Improvestorage capacityVSAvoiddata durability
Core Design Contradiction:
Quantity of substanceVSReliability

Solution Approach 1:

The patent replaces mechanical and electronic storage systems with a biological neural system. Neural cells store information through synaptic connections and neural patterns, eliminating the need for physical media that degrade. The brain's natural biological mechanisms provide unlimited storage capacity and immunity to obsolescence, as neural patterns can be maintained indefinitely without physical decay.

Inventive Principle:
Principle #28Mechanics substitution (Replace mechanical system)

Solution Approach 2:

The invention creates a composite system combining biological neural cells with electronic interfaces. Neural cell colonies are integrated with electronic nodes that enable information input and retrieval, forming a hybrid system that leverages both biological capacity and electronic accessibility. This composite approach allows the brain's unlimited storage to be accessed through electronic means while maintaining biological durability.

Inventive Principle:
Principle #40Composite materials

2Quantity of substance

If neural cell colonies are fused to electronic nodes, then limitless information storage capacity is achieved, but the system complexity increases

Engineering Contradiction:
Improveinformation storage capacityVSAvoidsystem complexity
Core Design Contradiction:
Quantity of substanceVSDevice complexity

Solution Approach 1:

The patent divides the neural storage system into discrete neural cell colonies, each capable of independent information storage. These cellular units are fused to electronic nodes that serve as interface points. This segmentation allows the complex neural system to be modularized, making the integration with electronic components more manageable while preserving the unlimited storage capacity of the collective neural network.

Inventive Principle:
Principle #1Segmentation

3Reliability

If information is stored in the (n)fora through neural systems, then quasi-absolute security is achieved, but the accessibility is restricted to the original neural system or its replica

Engineering Contradiction:
Improvedata securityVSAvoidinformation accessibility
Core Design Contradiction:
ReliabilityVSEase of operation

Solution Approach 1:

The patent employs neural replication as a security mechanism. The original neural cell colony creates a unique neural pattern that serves as both the storage medium and the access key. A replica neural system with identical configuration can access the same information, providing a form of distributed access control. This copying approach ensures security through neural uniqueness while allowing access to authorized replicas.

Inventive Principle:
Principle #26Copying

Data Source

PatentUS20240330642A1Composite biological-electronic system whose immediate, dual function is the storing and retrieving of organically encrypted, virtually limitless quantities of information through the use of neural cell colonies fused to electronic input-and-retrieval nodes
Publication Date: 2024.10.03 MIATTI MICHAEL

AI summary

A composite biological-electronic system in which neural cells are ambiented within a bio-electronically enriched environment that nurtures, monitors, and trains their development and wellness. The tutoring ambient is connected to a system of information encryptors and decryptors, nodes that feed and retrieve analog or electronic information toward, and from, the (n)fora. The ambient is the launching as well as the receiving platform toward or from the (n)fora, whereas it transforms information into (n)formation through (n)foric processes and conversely receives and translates the incoming (n)foraic flow into human-processable information. Once the information has been decrypted at the output end, it is digitized for computerized use and further dissemination.