3D Data Tokenization for Quantum-Resistant Security
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Solution Overview
Problem
Current digital security methods, such as username and password protection, are vulnerable to breaches, and existing data encryption techniques do not adequately secure data sets against advanced threats like quantum computing hacks, which can compromise sensitive information.
Innovation Solution
The method employs blockchain-based data tokenization to randomly tokenize data elements within a 3-dimensional form, using Verifiable Self Sovereign Identification (VSSI) and key pairs to reorder and position tokens, ensuring that only authorized entities can decrypt and access the data by defining a random centroid in a tetrahedral shape.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Ease of operation
If traditional username and password security measures are used, then ease of operation is improved, but security reliability deteriorates as hackers can breach these measures and access all data files
Solution Approach 1:
The patent segments data files into multiple encrypted portions distributed across different locations. Each portion alone is insufficient to reconstruct the original data, requiring multiple segments to be gathered and decrypted with proper authorization. This segmentation prevents hackers from accessing complete data even if they breach one location.
Solution Approach 2:
The patent transitions from traditional 2D data storage to a 3-dimensional data structure where data elements are positioned in three-dimensional space. This dimensional transformation adds complexity to data retrieval, requiring not just authentication but also precise spatial reconstruction of data elements to their original positions for successful decryption.
2Reliability
If data is encrypted using traditional methods, then security is improved to some extent, but the encryption can still be compromised by advanced threats like quantum computing hacks
Solution Approach 1:
The patent implements preliminary tokenization of data elements before encryption. Data elements are converted into tokens with unique identifiers and spatial coordinates, creating a preliminary structured representation that is then encrypted. This preliminary action ensures that even if quantum computing breaks traditional encryption, the tokenized structure and spatial relationships remain intact and secure.
Solution Approach 2:
The patent combines multiple security mechanisms into a composite security system: tokenization, encryption, 3-dimensional spatial arrangement, and authentication protocols. This composite approach integrates different security layers that work together, making the system resistant to various threats including quantum computing, as each layer provides different types of protection.
3Reliability
If data elements are tokenized and positioned in a randomized 3-dimensional form, then security against quantum computing hacks is improved, but device complexity and computational requirements increase
Solution Approach 1:
The patent implements self-organizing properties in the tokenized data structure. Each data token contains embedded spatial coordinates and relationship information that enable automatic reconstruction of the 3-dimensional structure without requiring complex external computational processes. The system uses self-referential pointers and coordinate systems that guide automated assembly of data elements.
Solution Approach 2:
The patent transforms data from traditional flat storage parameters to three-dimensional spatial parameters (x, y, z coordinates). This parameter transformation organizes data in a structured 3D space where position, distance, and spatial relationships become the organizing principles. While this increases initial setup complexity, it simplifies retrieval operations as the spatial structure provides inherent organization and indexing capabilities.
Data Source
AI summary
A method is provided to leverage blockchain based data tokenization to randomly tokenize encrypted and nonencrypted data elements within a data set represented in a 3-dimensional form, wherein the tokens are distributed and reordered into the correct position using a key pair match and Verifiable Self Sovereign Identification (VSSI). The key pair and VSSI credentials must be presented in order to distribute the tokenized data elements into the correct 3-dimensional position within the data set upon verification of the match of the key pair and the prescribed VSSI.

