Quantum Packet Mapping for Low-Latency Data Reconstruction
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Solution Overview
Problem
Existing networks struggle to provide sufficient bandwidth and speed for complex data centers, leading to increased latency and inefficiencies in data transmission.
Innovation Solution
The use of quantum packets, encoded with quantum bits (qubits) that can hold more information than conventional bits, allowing for efficient data transmission by eliminating the need for separate headers and footers and enabling transmission in any order, with each packet containing a mapping for reconstruction.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Productivity
If conventional packets are used for data transmission, then network infrastructure is simple and compatible, but bandwidth is insufficient and latency is high
Solution Approach 1:
The patent changes the fundamental parameter of information encoding from classical bits to quantum bits (qubits). Each qubit can represent multiple states simultaneously through superposition, allowing a single quantum packet to carry exponentially more information than conventional packets. This parameter change directly increases bandwidth and transmission speed without requiring proportional increases in physical infrastructure.
Solution Approach 2:
The patent introduces quantum dimensionality to classical network transmission. By utilizing quantum superposition and entanglement properties, the system adds an informational dimension that allows parallel representation of multiple data states within the same transmission channel, effectively increasing bandwidth without adding physical channels.
2Reliability
If data is transmitted in blocks requiring assembly, then data integrity is maintained, but latency increases due to sequential processing
Solution Approach 1:
The patent embeds the complete assembly mapping information within each quantum packet during the encoding phase. This preliminary inclusion of reconstruction instructions eliminates the need for sequential waiting and processing at the receiver end. Each packet is self-contained with all necessary information for immediate reconstruction, reducing latency while maintaining data integrity through the pre-planned assembly sequence.
3Manufacturing precision
If separate headers and footers are transmitted for mapping, then data reconstruction is accurate, but transmission overhead increases
Solution Approach 1:
The patent merges the mapping information with the data blocks by encoding both within the same quantum packets. Instead of transmitting separate headers and footers, the system combines structural metadata and payload information into unified quantum packets, eliminating redundant transmission overhead while preserving complete reconstruction capability through the integrated mapping data.
4Productivity
If quantum packets are used for data transmission, then bandwidth increases and latency decreases, but quantum infrastructure complexity increases
Solution Approach 1:
The patent segments the quantum communication system into distinct functional modules: quantum encoding devices that prepare quantum packets, quantum transmission channels for particle transfer, and quantum decoding devices for reconstruction. This segmentation allows each component to be optimized independently and facilitates gradual integration with existing classical infrastructure, managing complexity through modular architecture.
Data Source
AI summary
A system for communicating information using quantum packets includes a memory configured to store data for transmission and a processor operably coupled to the memory. The processor divides the data for transmission into a first number of blocks. Each block is then encoded into a second number of quantum packets encoded as a plurality of quantum bits. Each of the second number of quantum packets includes at least one of the of the blocks and a mapping. The quantum packets are then transmitted through a quantum network to a second system for reconstruction. The second system utilizes the mapping included in each quantum packets to reassemble the data.

