Skip to main content Skip to main navigation menu Skip to site footer
##common.pageHeaderLogo.altText##
Izvestiya SFedU
Engineering sciences
  • Current
  • Previous issues
    • Archive
    • Issues 1995 – 2019
  • Editorial Board
  • About journal
    • Officially
    • The main tasks
    • Main sections
    • Specialties of the Higher Attestation Commission of the Russian Federation
    • Editor-in-Chief
ISSN 1999-9429 print
ISSN 2311-3103 online
  • Login
  1. Home /
  2. Search

Search

Advanced filters
Published After
Published Before

Search Results

##search.searchResults.foundPlural##
  • HARDWARE AND SOFTWARE IMPLEMENTATION OF A REMOTELY OPERATED UNMANNED UNDERWATER VEHICLE OF THE MICRO-CLASS

    О.V. Shindor, P.А. Kokunin, А. А. Egorchev, L.N. Safina, Y. S. Murin
    2025-01-30
    Abstract ▼

    In modern underwater robotics, the tasks of control, increasing autonomy, increasing the functions
    performed and the possibility of import substitution are relevant. The paper considers an example of building a
    remotely controlled unmanned underwater vehicle (RCUV) of the micro class, the main purpose of which is to
    use for educational purposes, in particular for involving schoolchildren in engineering and programming, students
    in programming microcontrollers, practical study of control systems, digital image processing using wavelet
    transform. The article presents the basic principles and features of the design, hardware, algorithmic and
    software implementation of a robotic designer based on a RCUV of the micro class. The justification for the
    application of the design solution for using the RCUV for educational purposes is given, the principles of algorithmic
    movement of the underwater unit are considered. Based on the two-dimensional wavelet transform for
    processing underwater images, an algorithm was developed and verified. The wavelet transform is a modern
    and effective tool for identifying local features of signals and image processing. The use of two-dimensional
    wavelet decomposition, which is the process of decomposing a signal into high-frequency and low-frequency
    components, allows us to form four matrices of wavelet coefficients containing approximating ones with lowfrequency
    components and detailing coefficients (high-frequency) of three types: carrying information about the
    vertical, horizontal and diagonal parameters of the analyzed image. In the process of image processing after
    applying the wavelet transform, the approximation coefficients are changed to increase the image contrast, then
    the RGB components are determined based on the approximation matrix of the wavelet coefficients based on
    grayscale and the average and maximum values are calculated for each of the components. Then the color rendering
    coefficient and improvement coefficients are calculated, on the basis of which a modified matrix of wavelet
    coefficients is formed and the inverse transform is applied. As a result of applying the algorithm to test images,
    the possibility of color correction was demonstrated, in particular, the reduction of the influence of green and
    blue components by 8.6%. The results obtained can be used in the construction of image recognition systems in
    the underwater environment and the design of autonomous unmanned underwater vehicles.

  • METHODS FOR OBTAINING INFORMATION FOR BIOMEDICAL MONITORING OF HEART RATE USING BUILT-IN SMARTPHONE SENSORS

    М. R. Sharipov, А.F. Fahrutdinov, P.А. Kokunin
    2023-10-23
    Abstract ▼

    Non-invasive monitoring is a promising direction in medicine for determining biometric indicators.
    The purpose of the study is to review modern non-invasive methods for determining such
    biometric indicators as heart rate. The problems of existing solutions related to calculation formulas,
    as well as those related to testing are shown. Nowadays, a smartphone is an integral part of
    any person's life. With the help of these devices, users can perform almost any activity from the
    comfort of their homes, such as shopping, watching movies and entertainment, making their lives
    much easier, more convenient and efficient. In addition, today's smartphones have extensive telecommunication
    capabilities, allowing groups of people to communicate frequently in real time.
    With the COVID-19 pandemic, the need for health monitoring has become relevant, as well as the
    need to constantly monitor the biomedical indicators of employees who are on the job. One of the
    most important indicators is the heart rate, the analysis of this indicator allows to characterize the
    performance of the most important cardiovascular system. This review discusses techniques for
    monitoring heart rate based on methods that can be utilized on smartphones, using sensors that all
    modern smartphones are equipped with. The basic approach that can be applied in smartphones to
    detect heart rate is to use a light source and a light-sensitive device that receives light passing
    through capillaries, most commonly the finger of the person whose heart rate is being measured.
    The difference between the approaches lies in the hardware - what light source is used and what is
    used as a receiver of reflected light. As a light source can be used LED, in smartphones it is powerful
    LEDs, which are used in the photoflash, as a receiver or photodiode or video camera. In
    terms of processing the received signal there are several approaches in this review they are considered.

  • ALGORITHM FOR DETECTING FINE MOTOR DEFECTS BASED ON INFORMATION FROM SMARTPHONE SENSORS

    А.А. Egorchev, D.E., D.М. Pashin, А.F. Fahrutdinov, P.А. Kokunin
    2023-10-23
    Abstract ▼

    Digitalization is the leading trend of modern humanity. It allows you to solve many everyday
    tasks with the help of devices with specialized algorithms, facilitating everyday life, as well as
    solving a number of tasks for which qualified specialists were needed yesterday. One of these tasks
    is the independent preliminary diagnosis of patients in medicine. The ability to perform such diagnostics
    allows you to reduce the time to identify problems with various diseases, in particular neurological
    disorders, including cases such as a defect of fine motor skills, this allows you to reduce
    the burden on medical specialists. It is worth noting that time plays a crucial role in the process of
    providing medical care, and the timely provision of medical care can save a person's life. Thus,
    the development of a solution that allows independent preliminary diagnosis of fine motor defects
    by using technical tools that almost everyone has is an urgent task today. The aim of the work is to
    expand the methods for diagnosing the presence of defects in fine motor skills. To achieve this
    goal, the tasks were set to study the available solutions on the topic and develop a specialized algorithm intended for use in smartphones as part of a biomedical monitoring system. The article
    presents an algorithm for determining the defects of fine motor skills of a person according to the
    kinematic sensors of a smartphone – a three-axis accelerometer. The presented solution is based
    on the analysis of the deviation angles obtained from the smartphone accelerometer when the
    patient performs the assigned task (exercise). The task requires the patient to take a starting position
    for three seconds and then hold the smartphone at arm's length for 10 seconds, during which
    the readings of the three-axis accelerometer are measured. The test results of the solution showed
    the accuracy of the solution at the level of 0.05 of the alpha error and 0.09 of the beta error. The
    results obtained indicate the possibility of using the solution for preliminary self-diagnosis and
    can be used as an element of the diagnostic module in large biomedical monitoring systems.

1 - 3 of 3 items

links

For authors
  • Submit article
  • Author Guidelines
  • Editorial Policy
  • Reviewing
  • Ethics of scientific publications
  • Open access policy
  • Supporting documents
Language
  • English
  • русский

journal

* not an advertisement

index

Индексация журнала
* not an advertisement
Information
  • For Readers
  • For Authors
  • For Librarians
Address: 347900, Taganrog, Chekhov St., 22, A-211 Phone: +7 (8634) 37-19-80 E-mail: iborodyanskiy@sfedu.ru
Publication is free
More information about the publishing system, Platform and Workflow by OJS/PKP.
logo Developed by RDCenter