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SURVIVABILITY OF ONBOARD COMPUTERS OF GROUND ROBOTS
N.А. Bocharov, I.N. Bychkov, P.V. Korenev, N.B. Paramonov2024-04-16Abstract ▼Research in the field of creating specialized computing systems for robots is conducted in
many world scientific centers, including our country. The development of capabilities of sensor systems,
global navigation systems, growth of computing power and improvement of algorithms allow
creating onboard computing systems with broad intellectual capabilities. An important, but unsolved
problem remains in the equipping of such computing systems with domestically produced microprocessors.
An urgent direction in the development of prospective robot control systems is the development
of high-performance on-board computers with the property of survivability. A significant but
unresolved issue remains in the equipping of such computers with computer equipment of domestic
development. The appearance of modern domestic microprocessors Elbrus-2S3 and Elbrus-8SV
opens up new opportunities for robot developers. The emergence of hardware technologies such as a
watchdog timer and a time-binding module makes it possible to create robots with high survivability
in combat conditions. For special purpose robots, it is possible to divide the period of normal operation
of the robot into modes by analogy with the degrees of combat readiness of the armed forces, for
each of which the robot will operate in a special mode. The modes are characterized according to the
prevailing situation and the corresponding failure rate. The paper presents a threat model for the
harshest of the operating modes. This paper presents a method for ensuring the survivability of onboard
robot computers by using adaptive redundancy to ensure the survivability of on-board computers.
The method consists in switching between redundancy schemes to ensure high performance
while maintaining sufficient reliability, depending on the current level of failure flow. Using the model
developed by the authors, an experimental study was conducted to evaluate the effectiveness of the
developed method when working with a domestic onboard computer based on the Elbrus microprocessor.
Using the developed method made it possible to increase the average functionality of the
robot by 23-43% compared to the mode with constant redundancy. -
INTELLIGENT STRATEGY PLANNING AND CONTROL OF A GROUP OF MOBILE ROBOTS UNDER CONDITIONS OF INCOMPLETE INFORMATION
I.V. Bychkov, А.V. Davydov, М.Y. Kenzin, N.V. Nagul, А.А. Tolstikhin2023-04-10Abstract ▼Different problems of strategy planning and control of a mobile robot group under complex dynamic
conditions with incomplete information about the external environment are considered. Approaches
to solving problems of effective work scheduling under conditions of inconstant active group
composition, searching for the source of a nonstationary concentration field, supervisory control of
discrete-event systems are presented. An original mathematical model formulated in terms of work-shift
scheduling problems and a problem-oriented modification of evolutionary algorithms with a specialized
set of heuristics for its efficient solution are developed for the problem of scheduling top-level group
work. Searching and monitoring the source of the nonstationary concentration field is carried out using
a decentralized multi-agent control strategy that combines elements of bionic and gradient approaches,
as well as a method for generating artificial potential fields. The considered control strategy has low
computational complexity, high variability with respect to the types of fields surveyed, and is easily scalable
to control any available number of mobile robots. The latter is of special importance, in particular
when considering the problem of parallel and independent monitoring of multiple sources. It is proposed
to use the means of logical inference, namely automatic theorem proving in the calculus of positively
constructed formulas, to solve various problems of the supervised control theory of discrete-event
systems used at different levels of the robotic complex hierarchical control system. Features of the calculus
allows solving complex problems of dynamic systems control, as well as processing and controlling
events based on environmental data in real time in the process of logical inference efficiently. The
approach based on positively constructed formulas allows studying the properties of automata-based
discrete-event systems, as well as to synthesize and model finite automata for the construction and realization
of monolithic and modular supervisors. A general scheme combining the considered approaches
for controlling a group of mobile robots at different levels and time scales within a single hierarchical
control system is proposed.








