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1

Müller, Martin. "Cryofixation of Biological Objects." Proceedings, annual meeting, Electron Microscopy Society of America 48, no. 2 (1990): 318–19. http://dx.doi.org/10.1017/s0424820100135198.

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The immobilisation of biological material kept under optimally controlled physiological conditions is the first and most critical step when attempting to preserve the complex interactions of organelles, macromolecules, ions and water in close relationship to the living state. Immobilization must be sufficiently rapid, trapping dynamic events at membranes, (e.g. membrane fusion and exocytosis which occur on a milisecond time scale) and preventing the lateral displacement of lipids and proteins within the membranes. Techniques based on chemical immobilisation (aldehyde fixation) seem to approach
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2

Yi, Jingru, Hui Tang, Pengxiang Wu, et al. "Object-Guided Instance Segmentation for Biological Images." Proceedings of the AAAI Conference on Artificial Intelligence 34, no. 07 (2020): 12677–84. http://dx.doi.org/10.1609/aaai.v34i07.6960.

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Instance segmentation of biological images is essential for studying object behaviors and properties. The challenges, such as clustering, occlusion, and adhesion problems of the objects, make instance segmentation a non-trivial task. Current box-free instance segmentation methods typically rely on local pixel-level information. Due to a lack of global object view, these methods are prone to over- or under-segmentation. On the contrary, the box-based instance segmentation methods incorporate object detection into the segmentation, performing better in identifying the individual instances. In th
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3

Skytsiouk, Volodymyr, and Tatiana Klotchko. "PHANTOM MODEL OF DISTRIBUTION OF VIRAL OBJECTS IN A PANDEMIC. PART 3." Bulletin of Kyiv Polytechnic Institute. Series Instrument Making, no. 61(1) (June 30, 2021): 101–8. http://dx.doi.org/10.20535/1970.61(1).2021.237113.

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The article states that the nature of the virus's interaction with objects during its spread in any environment is a significant problem. Therefore, taking into account the peculiarities of such a complex fractional composition of flows can make it possible to determine the nature of the interaction of the object, in particular biological, with complex particles of viral flows when touching.
 The author's previous works consider the peculiarities of the spread of viruses in the surrounding space of the pandanus zone of the object under the condition of a single fraction of the particle, i
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4

A.P, Batyanov. "The Effect of Ultra-Weak Radiation on Biological Objects." Journal of Electrical Electronics Engineering 4, no. 3 (2025): 01–07. https://doi.org/10.33140/jeee.04.03.04.

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The data on the influence of ultra-weak radiation on the development of Crassula shoots are presented. The issue of the similarity of the mechanism of energy generation and transmission in bio and inorganic systems is discussed. The assumption is made about the transmission of ultra-weak radiation outside the optical range, due to the electromagnetic field of electron vacancies - the field of "holes"
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5

CHUBB, CHARLIE, YOSHI INAGAKI, C. COTMAN, B. CUMMINGS, and P. C. Y. SHEU. "SEMANTIC BIOLOGICAL IMAGE MANAGEMENT AND ANALYSIS." International Journal on Artificial Intelligence Tools 13, no. 04 (2004): 881–96. http://dx.doi.org/10.1142/s0218213004001879.

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Most commercially available image retrieval systems are so generic that they are not specialized to handle biological images and the feature domains associated with them. In molecular biology, neurobiology and cellular biology, for example, the recognition, classification and retrieval of distinct cellular features is a critically needed tool representing a computational problem that embodies the central challenges facing biological image database research. It often requires the consideration of expert/conceptual knowledge of images and the objects contained within such images. This paper disc
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6

Tsareva, L. G., N. F. Marakushin, and A. I. Vangonen. "Polariscope for studying biological objects." Journal of Optical Technology 69, no. 3 (2002): 201. http://dx.doi.org/10.1364/jot.69.000201.

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7

Il’inskii, A. V., F. Silva-Andrade, E. B. Shadrin, V. O. Samoilov, and A. L. Orbeli. "Biological structures as photonic objects." Biophysics 51, no. 4 (2006): 664–67. http://dx.doi.org/10.1134/s0006350906040233.

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8

Washizu, Masao. "Electrostatic manipulation of biological objects." Journal of Electrostatics 25, no. 1 (1990): 109–23. http://dx.doi.org/10.1016/0304-3886(90)90040-3.

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9

WERSING, HEIKO, STEPHAN KIRSTEIN, MICHAEL GÖTTING, et al. "ONLINE LEARNING OF OBJECTS IN A BIOLOGICALLY MOTIVATED VISUAL ARCHITECTURE." International Journal of Neural Systems 17, no. 04 (2007): 219–30. http://dx.doi.org/10.1142/s0129065707001081.

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We present a biologically motivated architecture for object recognition that is capable of online learning of several objects based on interaction with a human teacher. The system combines biological principles such as appearance-based representation in topographical feature detection hierarchies and context-driven transfer between different levels of object memory. Training can be performed in an unconstrained environment by presenting objects in front of a stereo camera system and labeling them by speech input. The learning is fully online and thus avoids an artificial separation of the inte
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10

Tiras, H. P. "THE APOLOGY OF THE WHOLE." Bioethics 27, no. 1 (2021): 13–17. http://dx.doi.org/10.19163/2070-1586-2021-1(27)-13-17.

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At the level of the whole organism, an idea of the complexity of living things is formed as a combination of levels of organization (layers) of biological and virtual reality, which develops as a space for visualization (digitization) of living objects. New digital formats of living objects, coupled with the naturalistic ethics of obtaining them, create a trend towards a complete transition of biology to a quantitatively new level of obtaining biological information – information about the state of living biological objects. The development of digital biology contributes to an increasingly lar
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11

Aleksanyan, Grayr. "A symmetry - based algorithm to determine the presence of the internal structure heterogeneity of the of a biological object." E3S Web of Conferences 389 (2023): 01052. http://dx.doi.org/10.1051/e3sconf/202338901052.

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This article proposes a two-level approach for solving the problems of electrical impedance tomography of biological objects, which consists in successively applying the methods of “rough” and “fine” reconstruction to the potentials measured on the surface of the object. To perform a “rough” reconstruction procedure, it is proposed to use a method for determining the presence of heterogeneity in the internal structure of a biological object based on the symmetry algorithm. Thus, consistent localization and identification of the boundaries of the heterogeneity of the internal structure of the b
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12

LYAPIN, VICTOR, and MAKSIM SAMOKHVALOV. "STUDYING OF ELECTRICAL PARAMETERS OF PLANT AND SOIL OBJECTS AS ACTIVE-CAPACITIVE BIPOLAR." Elektrotekhnologii i elektrooborudovanie v APK 4, no. 41 (2020): 125–36. http://dx.doi.org/10.22314/2658-4859-2020-67-4-125-136.

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The key elements of the system for predicting electromagnetic damage are the electromagnetic source and the biological object. There is no complex of analytical models and programs for predicting damaging and critical conditions of electromagnetic impact on biological objects, as well as software components that implement developed mathematical models of real electromagnetic processes occurring in biological structures at different levels of the organization. (Research purpose) The research purpose is in developing a system for determining the electrical parameters of soil and biological objec
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13

Tanaka, Takayuki, Kazuo Yamafuji, and Yasunori Yamazaki. "New Biological Real-time Pattern Extraction Emulating Fly's Behavior." Journal of Robotics and Mechatronics 13, no. 1 (2001): 68–73. http://dx.doi.org/10.20965/jrm.2001.p0068.

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We propose biological real-time pattern extraction. In order to extract objects from a frame image taken by a camera, many virtual flies (VFs) scattered on the CRT display are utilized. An individual VF composed of 3×3 pixels can freely fly in the display. Fundamental object extraction is to detect objects just like flies sensing food and swarming around. Methodology realized by soft-computing technology and experimental results are described in detail.
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14

Zakirdjan, Abidovich Yuldashev, and Ismatovna Nurmatova Malokhat. "Storage of Imidaclopride and Acetamyprid in Biological Objects and Study of Conservative Effects on This Process." RA JOURNAL OF APPLIED RESEARCH 07, no. 12 (2021): 2754–57. https://doi.org/10.47191/rajar/v7i12.10.

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ABSTRACT: In this article is studied the biological conditions of imidacloprid and acetamiprid pesticides under laboratory conditions and the storage of the objects in a state preserved in ethyl alcohol. There were determined in the composition of the biological object stored in the laboratory the imidacloprid was detected after 13.07% in 90 days and in objects preserved with ethyl alcohol - 14.05%. When the biological object containing acetamiprid was analyzed after 90 days, it was found to be 4.45%, and when the object was stored under 95% ethyl alcohol5.72%. In the analysis of acute poisoni
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15

Vendik, Irina, Orest Vendik, Vladimir Pleskachev, Irina Munina, Pavel Turalchuk, and Vitalii Kirillov. "Wireless Monitoring of Biological Objects at Microwaves." Electronics 10, no. 11 (2021): 1288. http://dx.doi.org/10.3390/electronics10111288.

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Electromagnetic (EM) wave propagation inside and along the surface of the human body is the subject of active research in the field of biomedical applications of microwaves. This research area is the basis for wireless monitoring of biological object parameters and characteristics. Solutions to the following problems are crucial for achieving the stated goals in the area of wireless monitoring: EM wave propagation inside and on-body surface. The biological object monitoring is based on a consideration of the following problems: (i) dielectric properties of a biological issue; (ii) EM wave prop
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16

Mackenzie, Adrian. "Technical Objects in the Biological Century." Zeitschrift für Medien- und Kulturforschung 3, no. 1 (2012): 151–68. http://dx.doi.org/10.28937/1000106361.

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Wie unterscheidet sich ein Betriebssystem wie bspw. Linux von einer Mikrobe? Der Beitrag untersucht, wie technische Objekte im »Jahrhundert der Biologie« aufgefasst werden. Anhand des Werks von Gilbert Simondon wird gefragt, welche Existenzweisen biotechnische Objekte aufweisen. Die Prozesse von Abstraktion und Konkretisierung, die auf dem Feld der Synthetischen Biologie stattfinden, können einen Weg aufweisen, diese Fragen zu beantworten. </br></br>How does a computer operating system such as Linux differ from a microbe? This paper explores how technical objects are envisaged in t
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17

Panitz, J. A. "Point-projection imaging of biological objects." Proceedings, annual meeting, Electron Microscopy Society of America 46 (1988): 440–41. http://dx.doi.org/10.1017/s0424820100104261.

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Point-projection microscopy is an attractive surface imaging modality. High magnification, resolution, and contrast are easily achieved by radially projecting charged particles from a specimen mounted several centimeters in front of an imaging detector within a vacuum environment. Stigmation, drift and alignment problems are negligible, or nonexistent. The trick is to generate charged particles at or near the surface of the specimen that must coincide with the surface of a smoothly curved, conducting electrode of radius R. A potential difference applied between this electrode and a counter ele
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18

Erk, Inge, Gisèle Nicolas, Anne Caroff, and Jean Lepault. "Bulk biological objects: Cryoultramicrotomy or cryosubstitution?" Biology of the Cell 90, no. 3 (1998): 286. http://dx.doi.org/10.1016/s0248-4900(98)80067-1.

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19

Marinova, Iliana, and Valentin Mateev. "Electromagnetic field in biological tissue objects." Facta universitatis - series: Electronics and Energetics 22, no. 2 (2009): 197–207. http://dx.doi.org/10.2298/fuee0902197m.

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In this paper a method for automatic 3D model building is presented. These models are suitable for investigations of electromagnetic field distribution with Finite Element Method (FEM). Models are made by meshed structures and specific electromagnetic material properties for each tissue type. Mesh is built according to specific FEM criteria for achieving good solution accuracy. Bioimpedance measurement system is developed and electromagnetic properties, acquired by the system, are used in 3D FEM model. Achieved models are applied for electromagnetic field distribution investigation. .
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20

Baranov, G. A., A. A. Belyaev, S. B. Onikienko, S. A. Smirnov, and V. V. Khukharev. "Hydrodynamic modification of microscopic biological objects." Technical Physics Letters 30, no. 12 (2004): 1027–29. http://dx.doi.org/10.1134/1.1846847.

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21

Zakhidov, Erkin. "Charge Transfer Processes in Biological Objects." Molecular Crystals and Liquid Crystals Science and Technology. Section A. Molecular Crystals and Liquid Crystals 230, no. 1 (1993): 57–60. http://dx.doi.org/10.1080/10587259308032212.

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22

Es'kov, V. M., O. E. Filatova, and V. A. Papshev. "Scanning moving surfaces of biological objects." Measurement Techniques 39, no. 5 (1996): 573–75. http://dx.doi.org/10.1007/bf02375772.

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23

Ksenofontov, S. Yu, A. D. Mansfeld, and A. M. Reyman. "Reconstructive acoustic thermotomography of biological objects." Radiophysics and Quantum Electronics 40, no. 6 (1997): 498–503. http://dx.doi.org/10.1007/bf02675926.

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24

Mackenzie, Adrian. "Technical Objects in the Biological Century." Zeitschrift für Medien- und Kulturforschung 3, no. 1 (2012): 147–64. http://dx.doi.org/10.28937/zmk-3-1_13.

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25

POLIVTSEV, V. P., and V. V. POLIVTSEV. "RESEARCH OF LIQUID RESPIRATION TECHNOLOGY BY THE METHOD OF IMMERSION/ASCENT OF A BIOLOGICAL OBJECT IN A HYDRAULIC CHAMBER WITH HIGH PRESSURE." Fundamental and Applied Problems of Engineering and Technology, no. 4 (2021): 183–89. http://dx.doi.org/10.33979/2073-7408-2021-348-4-183-189.

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The study of liquid respiration technology for the process of immersion/ascent of biological objects in the stand at depths of 500, 1000 and 1500 m is proposed. Safe modes and the depth of immersion/ascent of biological objects are studied. A hydraulic stand and a capsule for immersion/ascent of a biological object were developed and tested. The main characteristics of a hydraulic stand that simulates diving/surfacing to a depth of 1500 meters are given. Safe diving/surfacing modes and maximum diving depths on the spontaneous breathing of the dog are determined. The results of medical studies
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26

Shin, Jongcheon, and Joonsung Yoon. "Concretization, Associated Milieus and Aestheticization of Objects in Bio-Art." Leonardo 53, no. 2 (2020): 189–93. http://dx.doi.org/10.1162/leon_a_01613.

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This article explores an ensemble of technical objects and biological objects in bio-art and proposes aesthetic values that the ensemble reveals. French philosopher Gilbert Simondon considered technical objects carefully in the 1950s. In his study, he was alert to an assimilation of technical objects to biological objects. In our time, the development of molecular biology and genetic engineering offers evidence that technical objects are closely linked to biological objects. The process of concretizing technical objects and biological objects is latent in works of bio-art, which therefore can
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27

LETOVA, ELIZAVETA. "OBJECTS OF NATURE IN THE SYSTEM OF INTELLECTUAL PROPERTY RIGHTS." Gaps in Russian Legislation 15, no. 6 (2022): 160–67. http://dx.doi.org/10.33693/2072-3164-2022-15-6-160-167.

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The purpose of the study. In this article, the author examines the features of objects of nature that are protected results of intellectual activity, as well as the features of biomedical cellular products, which, being objects of nature, are not embedded in the system of objects of intellectual property rights. The signs of various objects of nature are analyzed: breeding achievements, strains of microorganisms, biomedical cell products, comparative characteristics of various modes of protection of such objects are carried out. The author comes to the conclusion that it is expedient to develo
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Лунин, В. Ю., and V. Y. Lunin. "The biological crystallography without crystals." Mathematical Biology and Bioinformatics 12, no. 1 (2017): 55–72. http://dx.doi.org/10.17537/2017.12.55.

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The main obstacle to the determination of the atomic structure of a biological macromolecule by X-ray structural analysis is the need to obtain a crystal of the object under study. This need is due to the complexity of the experimental registration of scattering from a separate molecule. However, it is not always possible to get crystals of biological objects. The development of experimental techniques, in particular the emergence of the X-ray free-electron lasers, allows to approach the practical solution of the problem of registration of the scattering from an isolated particle and thereby t
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29

Korolev, Ilya, Maxim Kravchenko, Elena Fedorova, and Nikolay Dolchinkov. "Protection of biological objects from electromagnetic radiation." E3S Web of Conferences 411 (2023): 02003. http://dx.doi.org/10.1051/e3sconf/202341102003.

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The article deals with issues related to the impact of electromagnetic radiation (EMR) on humans and biological objects (bio-objects). Such types of radiation as electromagnetic fields of low frequency and microwave range, infrared and ultraviolet and ionizing radiation are considered. Data on the harmful effects of EMR on biological objects are given. The basic principles of protection against EMR are considered.
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Palakal, Mathew, Matthew Stephens, Snehasis Mukhopadhyay, Rajeev Raje, and Simon Rhodes. "Identification of Biological Relationships from Text Documents Using Efficient Computational Methods." Journal of Bioinformatics and Computational Biology 01, no. 02 (2003): 307–42. http://dx.doi.org/10.1142/s0219720003000137.

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The biological literature databases continue to grow rapidly with vital information that is important for conducting sound biomedical research and development. The current practices of manually searching for information and extracting pertinent knowledge are tedious, time-consuming tasks even for motivated biological researchers. Accurate and computationally efficient approaches in discovering relationships between biological objects from text documents are important for biologists to develop biological models. The term "object" refers to any biological entity such as a protein, gene, cell cyc
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31

Krushelnytska, H. L. "CLASSIFICATION OF BIOLOGICAL OBJECTS OF HUMAN ORIGIN AS OBJECTS OF CIVIL RIGHTS." Actual problems of native jurisprudence, no. 6 (2022): 47–53. http://dx.doi.org/10.32782/39221386.

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32

Bölling, Christian, Satpal Bilkhu, Christian Gendreau, Falko Glöckler, James Macklin, and David Shorthouse. "Representation of Object Provenance for Research on Natural Science Objects: Samples, parts and derivatives in DINA-compliant collection data management." Biodiversity Information Science and Standards 6 (September 7, 2022): e94531. https://doi.org/10.3897/biss.6.94531.

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Collection objects in natural science collections span a diverse set of object types of substantially different origin, physical composition, and relevance for different fields and methodologies of research and application. Object provenance is often characterized by elaborate series of interventions from collecting or observing originals in a natural state to generating derived objects that can be physically persistent or are suitable for a given use. This sequence of events gives rise to intermediate objects or object states that can be of a persistent or ephemeral nature in their own right.
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33

Korolyuk, Evgeniy, and Konstantin Brazovskii. "Improved system for identifying biological tissue temperature using electrical impedance tomography." MATEC Web of Conferences 158 (2018): 01019. http://dx.doi.org/10.1051/matecconf/201815801019.

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This paper proposes a cheap and compact medical system that determines the temperature of an object using broadband impedance tomography. This system can be used in medicine to visualize ice structure in tissue during cryosurgical operations, as well as for fault diagnosis and location in studied industrial objects. These effects are achieved by measuring electrical impedance between electrode pairs in the measuring chamber. The assembled prototype is compact, consumes little power, and allows to non-invasively determine the impedance of a target object in real time. The research included expe
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34

Sponheim, N., L. J. Gelius, I. Johansen, and J. J. Stamnes. "Ultrasonic Tomography of Biological Tissue." Ultrasonic Imaging 16, no. 1 (1994): 19–32. http://dx.doi.org/10.1177/016173469401600102.

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In this paper, quantitative tomographic reconstructions of biological tissue are presented. First, the experimental setup and a hybrid filtered backpropagation (FBP) technique are briefly described. Using this technique, which includes exact backpropagation of data prior to reconstruction by means of the classical FBP algorithm, quantitative velocity maps of relatively large biological objects can be obtained. Since the FBP algorithm is based on a first-order scattering approximation, the deteriorating effects of higher-order scattering in diffraction tomography are also discussed. The higher-
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35

Shkorbatov, Yu G. "Effect of Microwave Irradiation on Biological Objects." Telecommunications and Radio Engineering 57, no. 2-3 (2002): 10. http://dx.doi.org/10.1615/telecomradeng.v57.i2-3.160.

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36

Grishin, M. Ya, V. N. Lednev, P. A. Sdvizhenskii, et al. "Lidar Monitoring of Moisture in Biological Objects." Doklady Physics 66, no. 10 (2021): 273–76. http://dx.doi.org/10.1134/s1028335821100050.

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37

HERMANN, René, and Martin MÜLLER. "Towards High Resolution SEM of Biological Objects." Archives of Histology and Cytology 55, Suppl (1992): 17–25. http://dx.doi.org/10.1679/aohc.55.suppl_17.

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38

Kirshners, Arnis. "Clustering-Based Behavioural Analysis of Biological Objects." Environment. Technology. Resources. Proceedings of the International Scientific and Practical Conference 2 (August 5, 2015): 24. http://dx.doi.org/10.17770/etr2011vol2.982.

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The article examines the problem of processing short time series for bioinformatics tasks using data mining methods in the field of pharmacology. The experiments were conducted using heart contraction (contraction and relaxation) power data that were obtained in experiments with laboratory animals with the goal of registering the power changes of heart contractions in different stages of experiment in a given period of time. The selected data were treated using data preprocessing technologies. The short time series were compared using various time-point similarity search methods using agglomer
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39

Мальований, Мирослав Степанович, Володимир Валентинович Никифоров, Олександр Дмитрович Синельніков, Олена Володимирівна Харламова, and Василь Ярославович Бунько. "Influence of hydrodynamic cavitation on biological objects." Technology audit and production reserves 5, no. 4(25) (2015): 41. http://dx.doi.org/10.15587/2312-8372.2015.50862.

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40

Sarapultsev, Alexey P., Svetlana V. Rempel, Julia V. Kuznetsova, and German P. Sarapultsev. "Nanoparticle’s interactions with biological objects (The review)." Journal of Ural Medical Academic Science, no. 3 (2016): 97–111. http://dx.doi.org/10.22138/2500-0918-2016-15-3-97-111.

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41

Orlov, O. I., T. S. Gurieva, S. V. Ionov, and V. N. Sychev. "EFFECT OF HYPOMAGNETIC ENVIRONMENT ON BIOLOGICAL OBJECTS." Aerospace and Environmental Medicine 58, no. 6 (2024): 24–29. https://doi.org/10.21687/0233-528x-2024-58-6-24-29.

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Recent experimental and theoretical investigations have produced an abundance of facts that the hypomagnetic environment (HME) affects the development and vital functions of organisms. Purpose of the review is to show the HME significance and effects during preparation for and implementation of experiments on the Moon and Mars. In expectation of human exploration missions and prolonged stays on the Moon and Mars, investigators are challenged with a new task, i.e. to explore HME effects on the human organism. Evolution of the biological material advanced in the strong magnetic field of Earth th
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42

Anosov, Andrej, Aleksandr Kazanskij, and Anton Sharakshane. "Acoustothermometrical control during hyperthemia of biological objects." Journal of the Acoustical Society of America 123, no. 5 (2008): 3226. http://dx.doi.org/10.1121/1.2933443.

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43

Grishin, V. N., and N. V. Grishin. "Euclidian space and grouping of biological objects." Bioinformatics 18, no. 11 (2002): 1523–34. http://dx.doi.org/10.1093/bioinformatics/18.11.1523.

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44

Morozov, A. N., Il'ya V. Turchin, V. A. Kamenskii, et al. "Fibreoptic fluorescent microscopy in studying biological objects." Quantum Electronics 40, no. 9 (2010): 842–46. http://dx.doi.org/10.1070/qe2010v040n09abeh014344.

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45

Müller, Martin, and René Hermann. "Towards high-resolution SEM of biological objects." Proceedings, annual meeting, Electron Microscopy Society of America 48, no. 3 (1990): 4–5. http://dx.doi.org/10.1017/s0424820100157553.

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Electron microscopy is currently the only methodology with the inherent potential to observe structures down to molecular dimensions within the context of complex biological systems. Specimen preparation and imaging techniques should be directed towards preservation and imaging of the smallest significant details in order to fully exploit this unique, integrating feature of biological electron microscopy thereby complementing the progress of the techniques used in cell biology, biochemistry and molecular biology. SEM can contribute much to the understanding of events occurring at the surface o
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46

Liu, Yi, Yu Gao, and Chenjie Xu. "Using magnetic nanoparticles to manipulate biological objects." Chinese Physics B 22, no. 9 (2013): 097503. http://dx.doi.org/10.1088/1674-1056/22/9/097503.

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47

Bertenthal, Bennett I., Xinzi Wu, and Jeannine Pinto. "Infants' perception and representation of biological objects." Infant Behavior and Development 21 (April 1998): 150. http://dx.doi.org/10.1016/s0163-6383(98)91365-0.

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48

Reznik, A. N., and N. V. Yurasova. "Near-field microwave tomography of biological objects." Technical Physics 49, no. 4 (2004): 485–93. http://dx.doi.org/10.1134/1.1736920.

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Haber, Matt H., and Jay Odenbaugh. "The Edges and Boundaries of Biological Objects." Biological Theory 4, no. 3 (2009): 219–24. http://dx.doi.org/10.1162/biot.2009.4.3.219.

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Godik, E. E., Yu V. Guljaev, A. G. Markov, A. V. Petrov, and A. M. Taratorin. "Infrared dynamical thermovision of the biological objects." International Journal of Infrared and Millimeter Waves 8, no. 5 (1987): 517–33. http://dx.doi.org/10.1007/bf01013262.

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