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Izvestiya SFedU
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ISSN 1999-9429 print
ISSN 2311-3103 online
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  • SOLUTIONS’ ENCODING IN EVOLUTIONARY METHODS FOR INSTRUMENTAL DESIGN PLATFORM

    E.V. Kuliev, А. А. Lezhebokov, М. М. Semenova, V.A. Semenov
    2020-07-20
    Abstract ▼

    The article considers current issues and analyzes the problems of three-dimensional integration
    and three-dimensional modeling that arise at the design stage during the solution of the
    problem of optimal planning of components of large and extra-large integrated circuits and case
    devices of electronic computing equipment. The main advantages of applying the principles of
    three-dimensional integration are presented and described in sufficient detail, which allow efficiently
    organizing the production of personalized electronics, optimally planning the configuration
    of large and ultra-large integrated circuits, taking into account thermal and energy characteristics.
    In the course of research, the authors developed an approach to encoding decisions based on
    an intelligent mechanism, which is characterized by the presence of built-in means of control of
    acceptable decisions. One of such tools that have experimentally proven their effectiveness is the
    built-in mechanism of “deadly mutations”, which takes into account the status of genes and predetermined
    restrictions on the final configuration of the housing of the designed device. A series of
    general approaches and specific algorithms for solving the planning problem based on the results
    of research by the author's team and modern approaches to solving NP-complete problems are
    proposed. The most important practically significant result of the research of the indicated problem
    is the developed software and instrumental design platform in the modern cross-platform Java
    programming language. The selected development technology allows you to use all the main advantages
    of modern multi-core and multi-processor architectures, to use software multi-threading
    to implement parallel schemes for solving combinatorial problems. The software and tool platform
    has a user-friendly interface, which allows you to effectively manage the process of solving the
    problem of planning the components of large and ultra-large integrated circuits of threedimensional
    integration by visualizing key performance indicators of algorithms on graphs and in
    text statistics blocks. The developed application software made it possible to carry out a series of
    computational experiments based on random data sets, as well as on open-data boron benchmarks
    for such tasks. The results of experimental studies have confirmed the theoretical estimates of the
    time complexity and effectiveness of the proposed approaches and algorithms, including the genetic
    algorithm, which uses the new decision coding mechanism proposed in the work.

  • DEVELOPMENT OF BIOHEURISTICS FOR CREATING AN INTELLECTUAL SUBSYSTEM FOR MAKING EFFECTIVE DECISIONS OF NP-HARD AND NP-DIFFICULT COMBINATORY-LOGICAL PROBLEMS ON GRAPHS

    D. V. Zaruba , E. V. Kuliev , D.Y. Zaporozhets , M. M. Semenova
    2021-11-14
    Abstract ▼

    The article is devoted to the solution of new topical problems that have arisen in the conditions
    of the modern development of information and nanometer technologies in the field of design,
    as well as the development of new innovative methods that provide effective solutions in polynomial
    time. The article deals with the problem of solving NP-hard problems. The description of the
    procedure for measuring the complexity of the problem is presented the features of NP-hard and
    NP-difficult combinatorial logic problems are described. The main differences between the tasks
    are presented, as well as the problems that one has to face when solving this type of task. The general
    decision-making scheme is presented, consisting of the problem formulation; decisionmaking;
    signal in automatic systems and feedback. At the second stage (formation and selection of
    solutions), the solution is based on a bioinspired algorithm for finding solutions to the traveling
    salesman problem. To solve this problem, a modified bioinspired algorithm based on the behaviorof an ant colony was developed. Unlike other optimization methods, metaheuristic algorithms can
    find global optimal solutions for problems where there are many local solutions due to their random
    nature. These reasons have led to the widespread use of such algorithms in solving various
    optimization problems. Bioinspired algorithms are becoming a new revolution in the field of solving
    optimization problems. The statement of the traveling salesman problem is presented, as well
    as the solution of the problem on the basis of the ant algorithm. Algorithms such as genetic algorithms
    and PSO can be very useful, but they still have some disadvantages in solving multimodal
    optimization problems. These algorithms can find optimal solutions regardless of the physical
    nature of the problem. In the framework of experimental studies, the analysis of the work of
    bioinspired algorithms was carried out: the algorithm of a flock of bats, the bacterial algorithm
    and the ant algorithm.

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