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ISSN 2311-3103 online
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  • EVOLVABLE ADAS: H-GQM S.M.A.R.T.E.S.T. APPROACH

    D.E. Chickrin, А. А. Egorchev, D.V. Ermakov
    2020-07-20
    Abstract ▼

    The introduction to the mass market of vehicles with an ADAS 3+ level of automation is expected
    in the early 2020s. Currently, the vast majority of automakers conduct research in this
    field, a fairly large number of prototypes, pre-production and production systems have already
    been demonstrated. ADAS (advanced driver assistance systems) are complex hardware & software
    systems, the feature of which is that the core hardware platform remains unchanged for one or
    even several generations of vehicles (5–7 years). At the same time, the system should be able to
    transform and evolve to correct errors and expand functionality, especially due to active development
    of sensory peripheral systems and software algorithms. The GQM methodology and its modifications
    are used to support the development process of complex systems and evaluate them.
    However, these methodologies are limited exclusively to software products. Also, authors of these
    methodologies are not addressing explicitly the issues of applying the GQM methodology for analyzing
    and tracking the process of evolution of complex technical systems. This paper presents HGQM
    (Hardware GQM) methodology for controllable evolution of complex automotive hardware
    & software systems. The H-GQM methodology is based on GQM and is aimed at hardwaresoftware
    systems with a monolithic hardware core, a modifiable software core and atomic peripherals.
    Entity harmonization process is described to prove the applicability of the GQM for software-
    and-hardware systems analysis. S.M.A.R.T.E.S.T goal-setting concept is proposed for choice
    of evolutionary goals. This concept is based on S.M.A.R.T. criteria for the setting objectives of
    business processes and extended with harmonization and evolvability restrictions. The formulation
    of the H-GQM plan framework is provided using ADAS as an example. Within the framework of
    the proposed methodology, an ADAS-specific scalable target template has been formed.

  • EFFECTS OF NONLINEAR INFORMATION INTERACTION OF MARINE TECHNOGENIC OBJECTS

    А.А. Kurnosov
    2021-01-19
    Abstract ▼

    With regard to the interaction of complex systems, the issues of monitoring the information situation,
    the types of information interactions and the topological approach to taking into account the
    multimedia interaction of complex systems in the underwater environment are considered. The classification
    of the main effects arising from information interaction of marine technogenic objects is
    given. Three main groups of effects associated with the physics of media, with the features of the
    propagation of energy in these media and with the features of the actual interaction of two or more
    objects are distinguished. The scheme of clustering of effects is given: uncertainty, incompatibility,
    nonlinearity, relativistic effects, effects on the boundaries of media. Within these clusters, the article
    considers the following effects: an increase in the intensity of information exchange, the emergence
    of unpredictable new connections, causal incompatibility, antipodes, glare, backlights, relativistic
    effects. It is shown that there are certain differences in the information interaction of objects in media
    with different interaction rates and dissipation of interaction energy. These differences are manifested
    in an increase in the intensity of exchange in dense media at some "proximity" distances. In thiscase, the emergence of unpredictable causal relationships is observed. During the exchange of information
    in these regions of the singularity, in addition to the effects caused by the peculiarities of
    the propagation of signals in water, the effects associated precisely with the information interaction
    of two or more objects are observed. It is noted that almost all effects can lead to a significant distortion
    of the information perceived by objects and to a violation of the decision-making process. Incompatibility
    effects have the greatest catastrophic potential. At high speeds of movement of marine
    technogenic objects for individual observers, a violation of causality is possible. The scheme of violation
    of causality in the interaction of objects is shown, associated with the loss of information of
    two types – relativistic (due to the excess of the speed of movement of objects over the speed of interaction
    in the medium) and geometric (due to the exit of a "fast" object from the region of "slow" pulse
    propagation). It is concluded that it is necessary to carry out physical simulation using highperformance
    systems and modern mathematical methods on a single criterion basis.

  • TOP-DOWN VS BOTTOM-UP METHODOLOGIES FOR ADAS SYSTEM DESIGN

    D.E. Chickrin, А. А. Egorchev
    2021-07-18
    Abstract ▼

    Selection of the principal design methodology has a significant impact on final product
    quality, including its evolvability and scalability. The article discusses the features of traditional
    bottom-up and top-down design methodologies in the context of ADAS (driver assistance and automated
    driving systems). Necessity of the combined design methodology is shown due to unacceptability
    of “pure” methodologies for design of this kind of systems. For this purpose, the features
    and limitations of the top-down approach are considered: commitment to maximum compliance
    of the developed system with its requirements; methodological rigor of the approach; difficulty
    of system testing in the process of the development; sensitivity to changes in requirements.
    The features and limitations of the bottom-up approach are considered: possibility of iterative
    development with obtaining intermediate results; possibility of using standard components; scalability
    and flexibility of the developed system; possibility of discrepancy of functions of subsystems
    to requirements, which may appear only at later stages of development; possible inconsistency in
    development of separate subsystems and elements. The features and factors of ADAS system development
    are considered: increased requirements for reliability and safety of the system; heterogeneity
    of used components. Two stages of ADAS-systems development are distinguished: the
    stage of intensive development and the stage of extensive evolution. The applicability of one or
    another methodology to various aspects of ADAS system development and evolution (such as:
    requirements definition; compositional morphism; scalability and extensibility; stability and sustainability;
    cost and development time; development capability) is considered. A comparison of themethodologies concludes that there are aspects of technical system design and development in
    which there is a significant advantage of one or the other of the methodologies. Only the bottomup
    approach can ensure the proper evolution of the system. However, for complex systems, it is
    critical to define the initial requirements for the system, which can only be achieved using the topdown
    methodology.

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