Journal articles on the topic 'Functional systems analysis'

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1

Schoenemann, Brigitte, and Euan N. K. Clarkson. "At first sight Functional Analysis of Lower Cambrian Eye Systems." Palaeontographica Abteilung A 297, no. 5-6 (November 19, 2012): 123–49. http://dx.doi.org/10.1127/pala/297/2012/123.

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2

Ferreira, José M., and Sandra Pinelas. "Oscillatory retarded functional systems." Journal of Mathematical Analysis and Applications 285, no. 2 (September 2003): 506–27. http://dx.doi.org/10.1016/s0022-247x(03)00421-9.

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3

Fantoni, G., Arnaud De Grave, and Hans Norgaard Hansen. "Functional analysis for micro mechanical systems." International Journal of Design Engineering 3, no. 4 (2010): 355. http://dx.doi.org/10.1504/ijde.2010.040522.

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4

Singh, R. K., P. Singh, and V. K. Pandey. "Functional homomorphisms and dynamical systems." Banach Journal of Mathematical Analysis 4, no. 2 (2010): 37–44. http://dx.doi.org/10.15352/bjma/1297117239.

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5

Röckner, Michael, and Feng-Yu Wang. "Functional Inequalities for Particle Systems on Polish Spaces." Potential Analysis 24, no. 3 (May 2006): 223–43. http://dx.doi.org/10.1007/s11118-005-0913-6.

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6

Pietrucha-Urbanik, K., and B. Tchórzewska-Cieślak. "Water network functional analysis." IOP Conference Series: Earth and Environmental Science 900, no. 1 (November 1, 2021): 012034. http://dx.doi.org/10.1088/1755-1315/900/1/012034.

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Abstract Water distribution systems should have a high level of reliability and availability. Water distribution system failures should be diagnosed and categorised, according to their consequences, causes, frequency, and other important factors. A failure analysis of the water distribution system is considered in this study, as well as a method for establishing a failure susceptibility index and evaluating the risk of failures within a defined area, based on categories and zonal characteristics. A risk scale, such as tolerable, controlled, and unacceptable, will be used to assess the risk of failure. The methodology is provided to help in the performance and risk assessments of water distribution systems, as well as decision-making.
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7

Thompson, Travis. "RELATIONS AMONG FUNCTIONAL SYSTEMS IN BEHAVIOR ANALYSIS." Journal of the Experimental Analysis of Behavior 87, no. 3 (May 2007): 423–40. http://dx.doi.org/10.1901/jeab.2007.21-06.

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8

Viveros, Pablo, René Tapia, Fredy Kristjanpoller, Luis Barberá, and Vicente González-Prida. "FUNCTIONAL STOCKPILE ANALYSIS IN COMPLEX PRODUCTIVE SYSTEMS." IFAC Proceedings Volumes 45, no. 31 (2012): 13–18. http://dx.doi.org/10.3182/20121122-2-es-4026.00008.

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9

Khodaygan, S., and M. R. Movahhedy. "Functional process capability analysis in mechanical systems." International Journal of Advanced Manufacturing Technology 73, no. 5-8 (May 9, 2014): 899–912. http://dx.doi.org/10.1007/s00170-014-5800-0.

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10

Kuzmenko, Alexander. "Functional analysis of popular content management systems." Ergodesign, no. 4 (November 18, 2022): 262–66. http://dx.doi.org/10.30987/2658-4026-2022-4-262-266.

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The article discusses various functions of the web content management system that must be taken into account when developing an educational website. A number of improvements are presented for the development of CMS-based web applications based on an approach based on the lifecycle model of content management systems. These materials are recommendations that allow you to improve the overall quality of the CMS being developed.
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11

Kamont, Zdzisław. "Infinite systems of hyperbolic functional differential inequalities." Nonlinear Analysis: Theory, Methods & Applications 51, no. 8 (December 2002): 1429–45. http://dx.doi.org/10.1016/s0362-546x(01)00907-5.

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12

Korovin, S. K., I. S. Medvedev, and V. V. Fomichev. "Functional observers for linear systems with uncertainty." Differential Equations 42, no. 10 (October 2006): 1374–84. http://dx.doi.org/10.1134/s0012266106100028.

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13

Ignat’ev, A. O. "Equiasymptotic stability in delay differential-functional systems." Differential Equations 36, no. 4 (April 2000): 511–16. http://dx.doi.org/10.1007/bf02754245.

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14

Kong, Qingkai. "Oscillation for Systems of Functional Differential Equations." Journal of Mathematical Analysis and Applications 198, no. 2 (March 1996): 608–19. http://dx.doi.org/10.1006/jmaa.1996.0102.

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15

Prykarpatski, Anatolij K. "On symmetry analysis of differential systems on functional manifolds." Journal of Mathematical Analysis and Applications 490, no. 2 (October 2020): 124326. http://dx.doi.org/10.1016/j.jmaa.2020.124326.

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16

Colonius, F. "Optimality for periodic control of functional differential systems." Journal of Mathematical Analysis and Applications 120, no. 1 (November 1986): 119–49. http://dx.doi.org/10.1016/0022-247x(86)90208-8.

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17

Zhang, Na, Binxiang Dai, and Yuming Chen. "Positive periodic solutions of nonautonomous functional differential systems." Journal of Mathematical Analysis and Applications 333, no. 2 (September 2007): 667–78. http://dx.doi.org/10.1016/j.jmaa.2006.09.084.

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18

Yang, Zhuyu, Maria Fabrizia Clemente, Katia Laffréchine, Charlotte Heinzlef, Damien Serre, and Bruno Barroca. "Resilience of Social-Infrastructural Systems: Functional Interdependencies Analysis." Sustainability 14, no. 2 (January 6, 2022): 606. http://dx.doi.org/10.3390/su14020606.

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Critical infrastructures serve human activities and play an essential role in societies. Infrastructural systems are not isolated but are interdependent with regard to social systems, including those of public health and economic and sustainable development. In recent years, both social and infrastructural systems have frequently been in dysfunction due to increasing natural or human-made disasters and due to the internal and external dependencies between system components. The interconnectedness between social-infrastructural systems (socio-economic systems and technical-infrastructural systems), implies that the damage to one single system can extend beyond its scope. For that reason, cascading dysfunction can occur and increase system vulnerability. This article aims to study the functional interdependencies between social-infrastructural systems and to propose a methodology to analyse and improve the resilience of these systems. Combining Actor Network Theory and the Functional Models approach, the social-infrastructural Interdependence Resilience (SIIR) framework was proposed. To assess the applicability of the approach, the framework was applied to study the interdependence of a social-infrastructural system in the Nantes Metropolis. The studied system was composed of the local Highway Infrastructure (an infrastructural system) and the Emergency Medical Service (a social system). The results (1) show the feasibility of SIIR for investigating the interdependencies of two urban systems, and (2) provide a guideline for decision-makers to improve the functional interdependencies of urban systems.
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19

Worren, Nicolay. "Functional analysis of organizational designs." International Journal of Organizational Analysis 24, no. 5 (November 7, 2016): 774–91. http://dx.doi.org/10.1108/ijoa-03-2015-0846.

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Purpose The purpose of this paper is to describe an analytical approach – functional analysis – that can be used to evaluate the current design of an organization and identify alternative designs that may increase the ability to realize strategic and operational goals. Design/methodology/approach The approach described in this paper is based on key concepts in systems theory and axiomatic design theory (Suh, 1990, 2001). A brief case example is used to illustrate the practical application of the approach. Findings It is shown that functional analysis can be used to map the design of an organization and identify key design challenges (e.g. related to overlapping or conflicting functions). Research limitations/implications The case study that is described is considered to be a pilot application of the approach as it is based on a limited number of interviews. Practical implications This paper should be relevant for applied researchers, management consultants, project managers and others who are analyzing the current structure of an organization and/or are involved in re-designing an organization. Social implications Application of the functional approach may improve design processes and thereby enhance the effectiveness of social systems, including public and private sector organizations. Originality/value This paper describes how key concepts in systems theory and axiomatic design theory can provide the basis for a new framework for analyzing organization designs.
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20

Byatt-Smith, J. G. B., and H. W. Braden. "Functional Equations and Poincaré Invariant Mechanical Systems." SIAM Journal on Mathematical Analysis 34, no. 3 (January 2002): 736–58. http://dx.doi.org/10.1137/s0036141001393742.

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21

Tsurkan, Vasyl. "METHOD OF INFORMATION SECURITY MANAGEMENT SYSTEMS FUNCTIONAL ANALYSIS." Cybersecurity: Education, Science, Technique 4, no. 8 (2020): 192–201. http://dx.doi.org/10.28925/2663-4023.2020.8.192201.

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The process of functional analysis of information security management systems was considered. The relevance of their presentation with many interrelated functions with internal and external interfaces is shown. Taking this into account, the methods of functional analysis of information security management systems are analyzed. Among them, graphic notation IDEF0 is highlighted. This choice is based on the ability to display both interfaces of functions and the conditions and resources of their execution. The orientation of the graphic notation IDEF0 use is established mainly for the presentation of the international standards ISO/IEC 27k series, the display of the main stages of the information security management systems life cycle, the development of individual elements of information security management systems, in particular, risk management. These limitations have been overcome by the method of information security management systems in functional analysis. This was preceded by the definition of the theoretical foundations of this method. Its use allows to allocate their functions at both levels of the system, and levels of its structural elements (subsystems, complexes, components). To do this, define the purpose, viewpoint and establishes information security management as the main activity. It is represented by a set of hierarchically related functions that are represented by a family tree. Each function of this tree defines incoming, outgoing data, management, and mechanisms. This makes it possible to establish their consistency with the organizational structure at the “activity-system”, “process-subsystem”, “operation-module (complex)” and “action-block (component)” levels. In future studies, it is planned to define a hierarchy of functions and develop a logical structure of information security management systems based on the proposed method of functional analysis.
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22

Cherkesov, G. N., A. O. Nedosekin, and V. V. Vinogradov. "Functional survivability analysis of structurally complex technical systems." Dependability 18, no. 2 (June 6, 2018): 17–24. http://dx.doi.org/10.21683/1729-2646-2018-18-2-17-24.

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23

Krasnosel'skii, M. A., N. A. Bobylev, A. A. Vladimirov, A. M. Krasnosel'skii, and A. V. Pokrovskii. "Functional Analysis and Dynamics of Nonlinear Control Systems." IFAC Proceedings Volumes 20, no. 5 (July 1987): 11–15. http://dx.doi.org/10.1016/s1474-6670(17)55058-2.

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24

Lambert, Manuel, Bernard Riera, and Grégory Martel. "Application of functional analysis techniques to supervisory systems." Reliability Engineering & System Safety 64, no. 2 (May 1999): 209–24. http://dx.doi.org/10.1016/s0951-8320(98)00064-7.

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25

Martynyuk, A. A. "Stability analysis of large-scale functional differential systems." Ukrainian Mathematical Journal 59, no. 3 (March 2007): 423–38. http://dx.doi.org/10.1007/s11253-007-0027-y.

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26

Ruan, Shigui, Yilei Tang, and Weinian Zhang. "Versal unfoldings of predator–prey systems with ratio-dependent functional response." Journal of Differential Equations 249, no. 6 (September 2010): 1410–35. http://dx.doi.org/10.1016/j.jde.2010.06.015.

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27

Wolansky, G. "Chemotactic systems in the presence of conflicts: A new functional inequality." Journal of Differential Equations 261, no. 9 (November 2016): 5119–43. http://dx.doi.org/10.1016/j.jde.2016.07.021.

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28

Pal, Mahendra. "Analysis of Functional Foods and Active Ingredients used in Sports." Nutrition and Food Processing 04, no. 5 (August 12, 2021): 01–03. http://dx.doi.org/10.31579/2637-8914/059.

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There are more and more group sports events and individual sporting opportunities in the world. In this case, a number of factors need coordinated organ function. This requires an increased attention to the protection of the athlete's health.The regular consumption of functional foods with physiologically active substances found in them can stimulate organ function. Physiologically active ingredients in these functional foods include minerals, macronutrients, conjugated linoleic acid, coenzyme Q10, probiotics, prebiotics, omega-3 fatty acids, choline, and vitamins. Their effect is also beneficial in the functioning of the movement system, circulatory system, visceral organs, regulatory system and sensory system. Our publication is aimed to analyze the organ systems used in the physical activity, the functional foods that affect them, and the active ingredients in them. It is imperative to use nutritionally rich foods for keeping good health.
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29

Liu, Xinzhi. "Iterative methods for solutions of impulsive functional differential systems." Applicable Analysis 44, no. 3-4 (April 1992): 171–82. http://dx.doi.org/10.1080/00036819208840076.

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30

Tong Cui, Bao, and Wei Nian Li. "Oscillation of systems of hyperbolic equations with functional arguments." Applicable Analysis 72, no. 1-2 (February 1999): 43–56. http://dx.doi.org/10.1080/00036819908840729.

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31

Popescu, Mihai. "On minimum quadratic functional control of affine nonlinear systems." Nonlinear Analysis: Theory, Methods & Applications 56, no. 8 (March 2004): 1165–73. http://dx.doi.org/10.1016/j.na.2003.11.009.

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32

Henríquez, Hernán R., and Eduardo Hernández M. "Approximate controllability of second-order distributed implicit functional systems." Nonlinear Analysis: Theory, Methods & Applications 70, no. 2 (January 2009): 1023–39. http://dx.doi.org/10.1016/j.na.2008.01.029.

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33

Zhao, Hongyong. "Invariant set and attractor of nonautonomous functional differential systems." Journal of Mathematical Analysis and Applications 282, no. 2 (June 2003): 437–43. http://dx.doi.org/10.1016/s0022-247x(02)00370-0.

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34

Ferreira, Jocirei D., Alejandra M. Pulgarin Galvis, and V. Sree Hari Rao. "Dynamic Models of Competition Systems Involving Generalized Functional Response." Differential Equations and Dynamical Systems 27, no. 1-3 (November 11, 2017): 221–48. http://dx.doi.org/10.1007/s12591-017-0398-y.

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35

Balachandran, K., and R. Sakthivel. "Controllability of Functional Semilinear Integrodifferential Systems in Banach Spaces." Journal of Mathematical Analysis and Applications 255, no. 2 (March 2001): 447–57. http://dx.doi.org/10.1006/jmaa.2000.7234.

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36

Karafyllis, Iasson, Pierdomenico Pepe, and Zhong-Ping Jiang. "Stability results for systems described by coupled retarded functional differential equations and functional difference equations." Nonlinear Analysis: Theory, Methods & Applications 71, no. 7-8 (October 2009): 3339–62. http://dx.doi.org/10.1016/j.na.2009.01.244.

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37

Zhao, Jie Min. "Global Stability Analysis of Multimedia Systems." Applied Mechanics and Materials 20-23 (January 2010): 1004–8. http://dx.doi.org/10.4028/www.scientific.net/amm.20-23.1004.

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38

Fechner, Włodzimierz, and Andrzej Olbryś. "Systems of Inequalities Characterizing Ring Homomorphisms." Journal of Function Spaces 2016 (2016): 1–5. http://dx.doi.org/10.1155/2016/8069104.

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Assume thatT:P→RandU:P→Rare arbitrary mappings between two partially ordered ringsPandR. We study a few systems of functional inequalities which characterize ring homomorphisms. For example, we prove that ifTandUsatisfyT(f+g)≥T(f)+T(g), U(f·g)≥U(f)·U(g),for allf,g∈PandT≥U, thenU=Tand this mapping is a ring homomorphism. Moreover, we find two other systems for which we obtain analogous assertions.
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39

Kawayama, Ryuji. "Relationship between Reflexivity in Functional Systems and Science as a Functional System: Toward Analysis of the Internal Structure of Functional Systems." Annual Review of Sociology 2018, no. 31 (August 25, 2018): 36–47. http://dx.doi.org/10.5690/kantoh.2018.36.

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40

Fontich, Ernest, Rafael de la Llave, and Pau Martín. "Dynamical systems on lattices with decaying interaction I: A functional analysis framework." Journal of Differential Equations 250, no. 6 (March 2011): 2838–86. http://dx.doi.org/10.1016/j.jde.2010.07.023.

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41

Stamova, Ivanka, and Gani Stamov. "Stability analysis of impulsive functional systems of fractional order." Communications in Nonlinear Science and Numerical Simulation 19, no. 3 (March 2014): 702–9. http://dx.doi.org/10.1016/j.cnsns.2013.07.005.

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42

Huang, Chengming, and Qianshun Chang. "Stability analysis of numerical methods for systems of functional-differential and functional equations." Computers & Mathematics with Applications 44, no. 5-6 (September 2002): 717–29. http://dx.doi.org/10.1016/s0898-1221(02)00185-2.

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43

Stenin, Alexander A., Victor P. Pasko, and Irina G. Drozdovich. "Optimization of Linear Dynamical Systems by Functional Analysis Methods." Journal of Automation and Information Sciences 51, no. 2 (2019): 50–57. http://dx.doi.org/10.1615/jautomatinfscien.v51.i2.60.

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44

Loganathan, MK, Minu Shikha Gandhi, and OP Gandhi. "Functional cause analysis of complex manufacturing systems using structure." Proceedings of the Institution of Mechanical Engineers, Part B: Journal of Engineering Manufacture 229, no. 3 (April 29, 2014): 533–45. http://dx.doi.org/10.1177/0954405414528310.

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45

Burmistrz, Michał, Bartosz Dudek, Dominika Staniec, Jose Ignacio Rodriguez Martinez, Matthias Bochtler, Jan Potempa, and Krzysztof Pyrc. "Functional Analysis of Porphyromonas gingivalis W83 CRISPR-Cas Systems." Journal of Bacteriology 197, no. 16 (May 26, 2015): 2631–41. http://dx.doi.org/10.1128/jb.00261-15.

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ABSTRACTThe CRISPR-Cas (clustered regularly interspaced short palindromic repeats/CRISPR-associated genes) system provides prokaryotic cells with an adaptive and heritable immune response to foreign genetic elements, such as viruses, plasmids, and transposons. It is present in the majority ofArchaeaand almost half of species ofBacteria.Porphyromonas gingivalisis an important human pathogen that has been proven to be an etiological agent of periodontitis and has been linked to systemic conditions, such as rheumatoid arthritis and cardiovascular disease. At least 95% of clinical strains ofP. gingivaliscarry CRISPR arrays, suggesting that these arrays play an important functionin vivo. Here we show that all four CRISPR arrays present in theP. gingivalisW83 genome are transcribed. For one of the arrays, we demonstratein vivoactivity against double-stranded DNA constructs containing protospacer sequences accompanied at the 3′ end by an NGG protospacer-adjacent motif (PAM). Most of the 44 spacers present in the genome ofP. gingivalisW83 share no significant similarity with any known sequences, although 4 spacers are similar to sequences from bacteria found in the oral cavity and the gastrointestinal tract. Four spacers match genomic sequences of the host; however, none of these is flanked at its 3′ terminus by the appropriate PAM element.IMPORTANCEThe CRISPR-Cas (clustered regularly interspaced short palindromic repeats/CRISPR-associated genes) system is a unique system that provides prokaryotic cells with an adaptive and heritable immunity. In this report, we show that the CRISPR-Cas system ofP. gingivalis, an important human pathogen associated with periodontitis and possibly also other conditions, such as rheumatoid arthritis and cardiovascular disease, is active and provides protection from foreign genetic elements. Importantly, the data presented here may be useful for better understanding the communication between cells in larger bacterial communities and, consequently, the process of disease development and progression.
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46

Beran, Zdeněk, and Sergej Čelikovský. "Application of functional derivatives to analysis of complex systems." Journal of the Franklin Institute 350, no. 10 (December 2013): 2982–93. http://dx.doi.org/10.1016/j.jfranklin.2013.04.007.

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47

Miyazaki, Koyomi, and Norio Ishida. "Functional analysis of mammalian per homologues by overexpression systems." Neuroscience Research 31 (January 1998): S214. http://dx.doi.org/10.1016/s0168-0102(98)82297-9.

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48

Winden, Kellen D., Stanislav L. Karsten, Anatol Bragin, Lili C. Kudo, Lauren Gehman, Josephine Ruidera, Daniel H. Geschwind, and Jerome Engel. "A Systems Level, Functional Genomics Analysis of Chronic Epilepsy." PLoS ONE 6, no. 6 (June 14, 2011): e20763. http://dx.doi.org/10.1371/journal.pone.0020763.

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49

Sando, Shinsuke. "Design of Functional Nucleic Acid Systems for Biomolecular Analysis." Bulletin of the Chemical Society of Japan 84, no. 2 (February 15, 2011): 133–40. http://dx.doi.org/10.1246/bcsj.20100278.

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50

Pinna, Tonio, Danilo Nicola Dongiovanni, and Francesco Iannone. "Functional analysis for complex systems of nuclear fusion plant." Fusion Engineering and Design 109-111 (November 2016): 795–800. http://dx.doi.org/10.1016/j.fusengdes.2016.01.072.

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