Entangled Qubit Control for Low-Latency Distributed Actions
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Solution Overview
Problem
Distributed computing systems face significant communication delays due to vast distances between computing locations, limiting their effectiveness in high-frequency coordinated tasks, especially those defined by Bell inequalities, which conventional communication techniques cannot efficiently connect.
Innovation Solution
Utilizing quantum entanglement to distribute entangled qubits across remote quantum computing systems, enabling rapid quantum measurements and coordinated control actions without relying on classical communication, thereby facilitating faster response times and improved performance in high-frequency distributed computing.
Engineering Contradictions & Design Principles
Engineering Contradiction Analysis
1Length of stationary object
If classical communication techniques are used to connect distributed computing systems, then the systems can be positioned at vast distances, but communication delays increase significantly
Solution Approach 1:
The patent introduces quantum entanglement as an intermediary mechanism that enables instantaneous correlation between distributed quantum computing systems. Entangled qubits serve as mediators that establish direct quantum connections, bypassing the need for classical communication channels and eliminating communication delays regardless of physical distance between systems
Solution Approach 2:
The patent replaces the mechanical/classical communication system with a quantum mechanical system based on entanglement. Instead of using electromagnetic signals that propagate at finite speeds through classical channels, the system uses quantum entangled states that exhibit instantaneous correlations, substituting the slow mechanical communication process with fast quantum interactions
2Loss of time
If quantum entanglement is used for distributed control actions, then response times improve, but the complexity of the system increases
Solution Approach 1:
The patent demonstrates that quantum entanglement serves multiple functions simultaneously: it enables instantaneous communication, establishes coordinated control actions, performs quantum measurements, and facilitates distributed computing operations. This multi-functionality reduces the need for separate specialized components, thereby managing system complexity while achieving fast response times
Solution Approach 2:
The patent changes the fundamental parameter of information transmission from classical bits to quantum entangled qubits. This parameter change enables the system to achieve instantaneous correlations and fast response times. The complexity increase is managed by focusing on specific quantum operations (entanglement generation, measurement, and control) rather than attempting to implement full quantum computing capabilities
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
Quantum entanglement allows for quicker and more effective distributed control actions across distant locations, improving response times and computational efficiency in scenarios where classical communication is inadequate.
Implementation Method 1
Distributed quantum computing can be performed using a pair of entangled qubits, wherein a first entangled qubit is distributed to a first quantum computing system and a second entangled qubit is distributed to a second quantum computing system that is remote from the first quantum computing system.
Data Source
AI summary
Systems and methods for performing a distributed control action are disclosed. The systems and methods can include obtaining, by a quantum computing system including one or more qubits, a first entangled qubit of a pair of entangled qubits. A second entangled qubit of the pair of entangled qubits can be positioned at a second quantum computing system that is remote from the quantum computing system. The systems and methods can include identifying, by the quantum computing system, a coordinated event trigger. The coordinated event trigger can be indicative of an entanglement condition associated with a Bell inequality. The systems and methods can include, in response to identifying the coordinated event trigger, obtaining, by the quantum computing system, quantum measurements of the first entangled qubit. The systems and methods can include performing, by the quantum computing system, a distributed control action based at least in part on the quantum measurements.


