Continuum Logic of Control Signals in Analog Cyber–Physical Nets
Abstract
:1. Introduction
2. Materials and Methods
2.1. Setting Goals and Objectives
- a set of working aggregates Π(t) of the technical system;
- the set of energy flows (EF) synthesized by the aggregates ;
- a set of EF parameters X(t).
- parametric dynamics continuously captures the change in time of the parameters of the technical system δX(t);
- structural dynamics determines the change in time of the composition of the PhPr δP(t) with connected aggregates;
- flow dynamics determine the change in time of the set of EF transmitted over the network.
2.2. Analogue Cyber–Physical Networks
2.3. ACPN Structure
2.4. The ACPN Continuous Logic
2.5. Unary Operations of the Continuum Logic of Block Interaction in a Distributed Control Network
2.6. Binary Operations of the Continuum Logic of Block Interaction in a Distributed Control Network
2.7. Operation of Conjunctive Unification of Energy Flows
2.8. Operation of Disjunctive Union of Energy Flows
2.9. Operation of Conjunctive Negation of Energy Flows
2.10. Operation of Disjunctive Negation of Energy Flows
2.11. XOR Operation
3. Results
3.1. Circuitry of Analog Networks
3.2. Continuum Processor
- when the signal x voltage enters the region , the outgoing signal x will appear at the output of the CP π, and there will be no analog signal at the input of the CP ;
- when the signal x voltage enters the region , the outgoing signal will appear at the output of the CP , and there will be no analog signal at the input of the CP π.
4. Discussion
- simultaneously process the states of the technical system and synthesize control signals;
- speed up the response of the control system to changes in the object’s parameters;
- reduce the design complexity, and improve the energy performance of the control system.
5. Conclusions
- (1)
- The possibilities of applying the theory of analog systems continuous logical analysis for obtaining deterministic solutions have been expanded. The developed models replace the fuzzy calculations used in continuum logic with logical operations of dividing decision-making areas into sub-areas, the boundaries of which are uniquely determined by the relationships between the instantaneous values of the parameters of the control object. The unambiguity of the decisions made increases the accuracy and reliability of the results of the situational analysis of the states of the vehicle in comparison with existing methods of continuous logic.
- (2)
- The presented generalized models of the logical analysis of the states of the TS allow systematizing the development of embedded analog devices for the distributed control of technical and technological objects that do not require: analog-to-digital conversions of sensor signals, programmable control devices and matching of embedded digital processors. The obtained hardware solutions are aimed at integrating computing processes into aggregates in order to create an ACPN, in which the synthesis of control signals of the TS takes place at low energy costs and the design complexity of the equipment.
- (3)
- The developed methods for the logical analysis of the states of the TS and the synthesis of control signals are implemented in analog devices based on continuum processors, which allow real-time (at a frequency of up to several tens of megahertz) of the operating modes of aggregates. Built-in CPs turn the TS into a distributed computing structure, in which analog computing is integrated with physical processes, leading to an increase in performance with a decrease in energy parameters due to the transition from sequential high-frequency digital calculations to continuous synthesis analog.
6. Patents
Funding
Data Availability Statement
Conflicts of Interest
References
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Dembitsky, N. Continuum Logic of Control Signals in Analog Cyber–Physical Nets. Inventions 2023, 8, 101. https://doi.org/10.3390/inventions8040101
Dembitsky N. Continuum Logic of Control Signals in Analog Cyber–Physical Nets. Inventions. 2023; 8(4):101. https://doi.org/10.3390/inventions8040101
Chicago/Turabian StyleDembitsky, Nikolay. 2023. "Continuum Logic of Control Signals in Analog Cyber–Physical Nets" Inventions 8, no. 4: 101. https://doi.org/10.3390/inventions8040101
APA StyleDembitsky, N. (2023). Continuum Logic of Control Signals in Analog Cyber–Physical Nets. Inventions, 8(4), 101. https://doi.org/10.3390/inventions8040101