Journal articles on the topic 'Experimental testing'

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1

Savage, S., and D. Ma. "Experimental behaviour testing: pain." British Journal of Anaesthesia 114, no. 5 (May 2015): 721–24. http://dx.doi.org/10.1093/bja/aeu346.

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2

Ogitsu, Takeki, and Manabu Omae. "Experimental Testing of Cooperative Adaptive Cruise Control using Small Electric Vehicles." Journal of the Institute of Industrial Applications Engineers 4, no. 3 (July 25, 2016): 118–21. http://dx.doi.org/10.12792/jiiae.4.118.

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3

Kuryło, Piotr. "EXPERIMENTAL STAND FOR ACTUATOR TESTING." Acta Mechatronica 3, no. 2 (June 30, 2018): 7–10. http://dx.doi.org/10.22306/am.v3i2.33.

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4

Rafiq, O., C. Chraïbi, and R. Castanet. "Experimental testing of transport protocol." ACM SIGCOMM Computer Communication Review 16, no. 4 (August 15, 1986): 23–34. http://dx.doi.org/10.1145/15679.15681.

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5

de Barros, Everaldo, Fernando Juliani, and Leandro Ribeiro de Camargo. "Experimental facilities for modal testing." Aircraft Engineering and Aerospace Technology 89, no. 2 (March 6, 2017): 358–63. http://dx.doi.org/10.1108/aeat-04-2015-0099.

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Purpose The experimental modal analysis requires good knowledge of various engineering fields, such as mechanical vibrations, transducers used in vibration measurement, transducers and system calibration methods, data acquisition systems, digital signal processing and system identification. Test facilities constitute a key factor for improving the quality of the estimated modal model. This paper aims to describe the experimental facilities at the Institute of Aeronautics and Space (IAE) Modal Testing Laboratory in terms of associated instrumentation and data acquisition system, metrological aspects and computational resources. The discussion is completed with a practical application showing a ground vibration testing (GVT) of an unmanned aerial vehicle (UAV). Design/methodology/approach The experimental facilities were evaluated in a typical GVT, using three shakers in both vertical and horizontal excitations and 88 response measurement points. The global excitation method was used to excite all desired modes. The reliability of the experimental modal model was validated by an auto modal assurance criterion matrix for the measured modes of the structure. Findings The experimental facilities were successfully used for validating the dynamical characteristics of the UAV under testing. Originality/value The modal test facilities of the Modal Testing Laboratory at the IAE, the main research center of the Brazilian Air Force, are described in this paper.
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Lewis, G. A., and H. N. E. Stevens. "Experimental Design in Dissolution Testing." Drug Development and Industrial Pharmacy 13, no. 9-11 (January 1987): 1807–16. http://dx.doi.org/10.3109/03639048709068693.

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7

Melcer, Jozef. "Experimental Testing of a Bridge." Applied Mechanics and Materials 486 (December 2013): 333–40. http://dx.doi.org/10.4028/www.scientific.net/amm.486.333.

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The paper is dedicated to describing of experimental processes and experimental technique needed for realization of experimental tests of a bridge. The dynamic loading test was carried out on the monitored bridge. The time courses of bridge vertical displacements were registered. The power spectral densities of obtained records were used for determination of the basic natural frequency. The experimentally obtained results were compared with numerically obtained ones .
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8

Marre, B., P. Thévenod-Fosse, H. Waeselynck, P. Le Gall, and Y. Crouzet. "An Experimental Evaluation of Formal Testing and Statistical Testing." IFAC Proceedings Volumes 25, no. 30 (October 1992): 311–16. http://dx.doi.org/10.1016/s1474-6670(17)49448-1.

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9

Monika Soni. "Experimental Study of Software Testing Strategies used in Mobile Testing." International Journal on Recent and Innovation Trends in Computing and Communication 8, no. 1 (January 31, 2020): 06–10. http://dx.doi.org/10.17762/ijritcc.v8i1.5442.

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This paper will explain the meaning of mobile testing as well as mobile application testing. This will also discuss about the testing strategies which will be used for mobile testing. There are advantages as well as disadvantages of the mobile testing. There are many job opportunities in the field of mobile testing. Mobile testing can also be manual as well as automated. There are many tools available for mobile testing. This paper will give brief idea about the types of automated tools used for mobile testing.
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10

Melichar, Jindrich, Rostislav Drochytka, and Vit Cerný. "Experimental Testing of Hydroinsulating Injection Screens." Advanced Materials Research 860-863 (December 2013): 2327–30. http://dx.doi.org/10.4028/www.scientific.net/amr.860-863.2327.

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One of the most widespread method of redevelopment of wet masonry is additional creating of hydroinsulating screen in the material. This method has many advantages. The biggest advantage is fact, that building can be repaired from inside without damaging its statics and saving it from being demolished, thus sparing the environment. In comparison to other procedures its application is quick, easy and has excellent final efficiency. Main object of this article is testing of application and total functionality of individual screens in masonry.
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Noskievic, Petr, and Martin Brezina. "EXPERIMENTAL TESTING OF POWER ASSISTED STEERING." MM Science Journal 2018, no. 03 (September 25, 2018): 2494–97. http://dx.doi.org/10.17973/mmsj.2018_10_201853.

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Tomaskova, Marianna. "EXPERIMENTAL TESTING OF STEEL WIRE ROPES." MM Science Journal 2018, no. 04 (November 14, 2018): 2577–80. http://dx.doi.org/10.17973/mmsj.2018_11_201857.

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13

Schmitt. "Introduction: Experimental Approaches to Testing Adaptation." American Naturalist 154 (1999): S1. http://dx.doi.org/10.2307/2463883.

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14

Bošnjaković, Mladen, Marinko Stojkov, and Boris Zlatunić. "Experimental Testing of PV Module Performance." Tehnički glasnik 15, no. 1 (March 4, 2021): 127–32. http://dx.doi.org/10.31803/tg-20200718142815.

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This study compares the manufacturer's technical data of several PV modules with real measured outdoor technical data. The irradiance effect on several PV modules is examined by the changing a tilt angle and comparing different meteorological situations of sky clearness (clouds) on the modules mounted outdoor and exposed to Sun. Also, the influence of temperature and dust on the performance of a PV panel is under research using measurement methods described in the paper. The measured current and voltage data at the clean surface of the PV module correspond to the declared data of the PV module manufacturer, and in the case of fouling of the module surface with dust, a power drop of 7.39% was measured.
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15

Muntean, Diana, Mihaela Oleksik, and Octavian Bologa. "Experimental Testing of Some Polymer Materials." Acta Universitatis Cibiniensis. Technical Series 71, no. 1 (December 1, 2019): 43–48. http://dx.doi.org/10.2478/aucts-2019-0009.

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Abstract The research aims to test polymer materials as the plastic materials: UHMWPE and POM, to observe there characteristics, to determing how they can be used and what we can obtain from them. We wanted to see the strong and the weak values that characterize them, what kind of parts we can produce from them and in what case we can use it. By applying this tests is necessary in order to see real datas that can help you compare them, and lead you to conclusions. Using these methods of testing materials leads to the establishment of real properties of the material and to the establishment of new configurations necessary to be made to the manufactured parts.
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16

Li, W., R. Casini, S. Tomczyk, E. Landi Degl’Innocenti, and B. Marsell. "Experimental Testing of Scattering Polarization Models." Astrophysical Journal 867, no. 2 (November 5, 2018): L22. http://dx.doi.org/10.3847/2041-8213/aaeb34.

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17

Sathish, S., T. Ganapathy, and Thiyagarajan Bhoopathy. "Experimental Testing on Hybrid Composite Materials." Applied Mechanics and Materials 592-594 (July 2014): 339–43. http://dx.doi.org/10.4028/www.scientific.net/amm.592-594.339.

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In recent trend, the most used fiber reinforced composite is the glass fiber composite. The glass-fiber composites have high strength and mechanical properties but it is costlier than sisal and jute fiber. Though the availability of the sisal and jute fiber is more, it cannot be used for high strength applications. A high strength-low cost fiber may serve the purpose. This project focuses on the experimental testing of hybrid composite materials. The hybrid composite materials are manufactured using three different fibers - sisal, glass and jute with epoxy resin with weight ratio of fiber to resin as 30:70. Four combinations of composite materials viz., sisal-epoxy, jute-epoxy, sisal-glass-epoxy and sisal-jute-epoxy are manufactured to the ASTM (American Society for Testing and Materials) standards. The specimens are tested for their mechanical properties such as tensile and impact strength in Universal Testing machine. The results are compared with that of the individual properties of the glass fiber, sisal fiber, jute fiber composite and improvements in the strength-weight ratio and mechanical properties are studied.
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18

HEINRICH, MARK. "EXPERIMENTAL DESIGN: APPLICATIONS TO SYSTEM TESTING." Quality Engineering 1, no. 2 (January 1988): 199–216. http://dx.doi.org/10.1080/08982118808962652.

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19

Schmitt, Johanna. "Introduction: Experimental Approaches to Testing Adaptation." American Naturalist 154, S1 (July 1999): S1—S3. http://dx.doi.org/10.1086/303279.

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20

Zukowski, Miroslaw, and Grzegorz Woroniak. "Experimental testing of ceramic solar collectors." Solar Energy 146 (April 2017): 532–42. http://dx.doi.org/10.1016/j.solener.2017.03.022.

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21

Vik, Bjørnar, and José Marçal. "Experimental Testing of Vertical Reference Units." IFAC Proceedings Volumes 36, no. 21 (September 2003): 199–204. http://dx.doi.org/10.1016/s1474-6670(17)37807-2.

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22

Shing, Pui‐shum B., and Stephen A. Mahin. "Experimental Error Effects in Pseudodynamic Testing." Journal of Engineering Mechanics 116, no. 4 (April 1990): 805–21. http://dx.doi.org/10.1061/(asce)0733-9399(1990)116:4(805).

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23

Zamli, Kamal Z., and Hasneeza L. Zakaria. "Experimental Model for Teaching Software Testing." Advanced Science Letters 21, no. 7 (July 1, 2015): 2493–96. http://dx.doi.org/10.1166/asl.2015.6320.

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24

Kirk, R. Gordon, Alan A. Kornhauser, John Sterling, and Ali Alsaeed. "Turbocharger On-engine Experimental Vibration Testing." Journal of Vibration and Control 16, no. 3 (December 22, 2009): 343–55. http://dx.doi.org/10.1177/1077546309103564.

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25

Henderson, A. Ralph. "Testing experimental data for univariate normality." Clinica Chimica Acta 366, no. 1-2 (April 2006): 112–29. http://dx.doi.org/10.1016/j.cca.2005.11.007.

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26

Fares, Mohammed Amine, Lotfi Atik, Ghalem Bachir, and Michel Aillerie. "Photovoltaic panels characterization and experimental testing." Energy Procedia 119 (July 2017): 945–52. http://dx.doi.org/10.1016/j.egypro.2017.07.127.

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27

Piron, Robert, and L. Ray Smith. "Testing risklove in an experimental racetrack." Journal of Economic Behavior & Organization 27, no. 3 (August 1995): 465–74. http://dx.doi.org/10.1016/0167-2681(94)00076-q.

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28

Rydval, Milan, Jiří Kolísko, Petr Huňka, and Tomáš Mandlík. "Experimental Testing of Layered UHPFRC Beams." Advanced Materials Research 1000 (August 2014): 346–51. http://dx.doi.org/10.4028/www.scientific.net/amr.1000.346.

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Ultra-High Performance Fiber Reinforced Concrete (UHPFRC) is fine-grained cement-based material characterized by high compressive strength (exceeding 150 MPa) and high modulus of rupture (over 15 MPa). The results of strengths depend on the size of the tested element, the loading rate and the boundary conditions during a testing. This type of material is used in a lot of countries (e.g. Germany, France, the USA, Japan, Austria, and the Netherlands) but it is not commonly used in the Czech Republic. The bridge over R10 road from Prague to Mlada Boleslav near Benatky nad Jizerou was the first structure where UHPFRC materials were used for lost shuttering slabs. Due to inhomogeneity of the steel fiber distribution the maximum attained force ranged between 9.6 kN and 25.7 kN for different lost shuttering slabs. The amount of steel fibers was very low at a tension zone at slabs with the lower load-bearing capacity. Steel fibers in these slabs were at the bottom of the formwork. The inhomogeneity of the steel fiber distribution was the foundation for producing of functionally layered beams with controlled inhomogeneity due to the mixtures with different fibers volumes. The results and behaviors of the layered beams and the homogeneous beams are presented in this paper.
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29

Vesenjak, M., and L. Krstulovic-Opara. "Experimental Testing of Single APM Spheres." EPJ Web of Conferences 6 (2010): 02005. http://dx.doi.org/10.1051/epjconf/20100602005.

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30

List, John A., Azeem M. Shaikh, and Yang Xu. "Multiple hypothesis testing in experimental economics." Experimental Economics 22, no. 4 (January 29, 2019): 773–93. http://dx.doi.org/10.1007/s10683-018-09597-5.

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31

Folayan, Morenike Oluwatoyin, Bridget Haire, and Kristin Peterson. "Ethical Testing of Experimental Ebola Treatments." JAMA 313, no. 4 (January 27, 2015): 421. http://dx.doi.org/10.1001/jama.2014.17256.

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32

Kanters, Steve, Kristian Thorlund, and Edward J. Mills. "Ethical Testing of Experimental Ebola Treatments." JAMA 313, no. 4 (January 27, 2015): 421. http://dx.doi.org/10.1001/jama.2014.17259.

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33

Inaba, Tadashi, Mariko Mogi, Takuya Masaoka, Takaya Katoh, Yuichi Kasai, Takanori Masuda, Motoyoshi Fujiwara, and Masataka Tokuda. "OS7-2-4 Experimental study on spinal deformation using 6-axis material testing machine." Abstracts of ATEM : International Conference on Advanced Technology in Experimental Mechanics : Asian Conference on Experimental Mechanics 2007.6 (2007): _OS7–2–4–1—_OS7–2–4–4. http://dx.doi.org/10.1299/jsmeatem.2007.6._os7-2-4-1.

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34

Rybak, Roman. "EXPERIMENTAL TESTING METHODOLOGY OF STRESS-STRAIN STATE OF THE REINFORCED CONCRETE PIPE WITH STRENGTHENING." Theory and Building Practice 2022, no. 2 (December 20, 2022): 36–43. http://dx.doi.org/10.23939/jtbp2022.02.036.

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Reinforced concrete pipes are exposed to environmental influences during the entire period of their operation. As a result, defects and damage appear and reduce durability and bearing capacity. In this regard, there is a need to repair and strengthen them. In order to assess the effectiveness of strengthening reinforced concrete pipes, it is necessary to get data about deformations that appeared as a result of the loads on the reinforced concrete pipe. The method for conducting experimental studies of the deformed state of reinforced concrete pipes has been developed, and the main devices and means necessary for conducting experimental research in laboratory conditions have been selected. The obtained data of deformations appearance can be used to compare the effectiveness of various methods of strengthening reinforced concrete pipes and their improvement as well as to monitor technical condition and to predict the formation of defects.
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35

Belov, Igor, Maksim Vabischevich, Oleg Dedov, and Olga Krivenko. "TESTING OF EXPERIMENTAL SAMPLES OF PROFILED DECKING BY AN EXPERIMENTAL STAND." Management of Development of Complex Systems, no. 49 (April 11, 2022): 52–58. http://dx.doi.org/10.32347/2412-9933.2022.49.52-58.

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Testing building structures and their elements is a mandatory step in their development. This will prevent possible dangers to people during its operation and provide a positive image of the manufacturing company. Each design parameter is subject to testing. The test results are conclusions and recommendations, confirmed by the state certificate of Ukraine on the compliance of each of the studied parameters and the whole design with it. Experimental methods for studying the operation of any structure play an important role not only for assessing the stability and strength of a structure, but also for analyzing the developed working hypotheses and used theories. The role of experimental methods is constantly increasing due to the need to improve the quality of building structures, their reliability and durability. The test is a means to obtain information about the compliance of the real design with its theoretical model and, if necessary, confirm or refine its design parameters. The work is devoted to the analysis of testing of experimental prototypes of profiled flooring. A test of bent sheet profiles with trapezoidal corrugations has been carried out to determine the stability and bearing capacity of a steel profiled sheet T153-119L-840 according to a three-span scheme.
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36

JANKURA, Richard, and Lucia FIGULI. "Experimental Testing of Burglar Resistance of Fenestration." TRANSACTIONS of the VŠB – Technical University of Ostrava Safety Engineering Series 14, no. 2 (December 2019): 1–6. http://dx.doi.org/10.35182/tses-2019-0006.

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37

Krejsa, Martin, Jiri Brozovsky, David Mikolasek, Premysl Parenica, Libor Zidek, and Jaroslav Kozak. "An Experimental Testing of Fillet Welded Specimens." Applied Mechanics and Materials 752-753 (April 2015): 412–17. http://dx.doi.org/10.4028/www.scientific.net/amm.752-753.412.

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The paper describes the experimental tests of steel bearing elements, which were aimed at obtaining material, geometric and strength characteristics of the fillet welds. Preparation of experiment consisted in defining of numerical models of tested samples using FEM analysis and the commercial software ANSYS. Data obtained from described experimental tests are necessary for further numerical modelling of stress analysis of steel structural supporting elements.
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38

Kubelka, Martin, Tomáš Pačák, and František Tatíček. "The Methodic of Testing Using Experimental Equipment." Key Engineering Materials 635 (December 2014): 94–99. http://dx.doi.org/10.4028/www.scientific.net/kem.635.94.

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During pressing using high speed, the material is stressed to the limit of its mechanical properties. And this generates problems during production. For this reason, opens debate on the factors previously neglected, such as the strain rate. For determining the effect of strain rate on the pressing process has been designed to CTU, Faculty of Mechanical Engineering, Institute of Manufacturing Technology, equipment for monitoring the behaviour of the material at different strain rates. The article describes the creation of testing methodologies material behaviour using this device.
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39

Xu, Jia-Min, Qing Zhou, Yu-Xiang Yang, Zi-Mo Cheng, Xin-Yu Xu, Zhi-Cheng Ren, Xi-Lin Wang, and Hui-Tian Wang. "Experimental self-testing for photonic graph states." Optics Express 30, no. 1 (December 20, 2021): 101. http://dx.doi.org/10.1364/oe.446154.

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40

Kalekeyeva, M. E., and Y. G. Litvinov. "Experimental testing new high performance led driver." Vestnik KazNRTU 143, no. 3 (2021): 247–58. http://dx.doi.org/10.51301/vest.su.2021.i3.32.

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41

Gatlin, Gregory M., and Robert J. McGhee. "Experimental Investigation of Semispan Model Testing Techniques." Journal of Aircraft 34, no. 4 (July 1997): 500–505. http://dx.doi.org/10.2514/2.2219.

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42

Collins, Michael D., Ralph N. Baer, and Harry J. Simpson. "Experimental testing of the noise-canceling processor." Journal of the Acoustical Society of America 130, no. 3 (September 2011): 1217–21. http://dx.doi.org/10.1121/1.3621059.

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43

YOSHIDA, Nobuyoshi, Takeshi BABA, Yoshihiro WATANABE, and Tokihiko TAKI. "Experimental Research of Micropitting by Roller Testing." Transactions of the Japan Society of Mechanical Engineers Series C 73, no. 728 (2007): 1215–21. http://dx.doi.org/10.1299/kikaic.73.1215.

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44

Ekimov, K. A., S. F. Podryadchikov, V. V. Putrolaynen, M. A. Belyaev, and E. I. Maslennikov. "Testing experimental samples of solid state drives." IOP Conference Series: Materials Science and Engineering 537 (June 17, 2019): 032042. http://dx.doi.org/10.1088/1757-899x/537/3/032042.

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Brida, Giorgio, Marco Genovese, and Fabrizio Piacentini. "Recent experimental progresses in testing Quantum Mechanics." Journal of Physics: Conference Series 306 (July 8, 2011): 012011. http://dx.doi.org/10.1088/1742-6596/306/1/012011.

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46

Noonburg, E. G., R. M. Nisbet, E. Mccauley, W. S. C. Gurney, W. W. Murdoch, and A. M. DE Roos. "Experimental testing of dynamic energy budget models." Functional Ecology 12, no. 2 (April 1998): 211–22. http://dx.doi.org/10.1046/j.1365-2435.1998.00174.x.

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47

Pei, Hanyu, Kai-Yuan Cai, Beibei Yin, Aditya P. Mathur, and Min Xie. "Dynamic Random Testing: Technique and Experimental Evaluation." IEEE Transactions on Reliability 68, no. 3 (September 2019): 872–92. http://dx.doi.org/10.1109/tr.2019.2911593.

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48

Bregnbak, David, Jacob P. Thyssen, Morten S. Jellesen, Claus Zachariae, and Jeanne D. Johansen. "Experimental patch testing with chromium-coated materials." Contact Dermatitis 76, no. 6 (January 25, 2017): 333–41. http://dx.doi.org/10.1111/cod.12747.

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49

Hassler, Uwe, and Mehdi Hosseinkouchack. "Testing the Newcomb-Benford Law: experimental evidence." Applied Economics Letters 26, no. 21 (April 8, 2019): 1762–69. http://dx.doi.org/10.1080/13504851.2019.1597248.

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50

Bizic, M., D. Petrovic, Z. Djinovic, and M. Tomic. "Experimental Testing of Impact of Railway Wagons." Experimental Techniques 39, no. 3 (July 16, 2012): 69–78. http://dx.doi.org/10.1111/j.1747-1567.2012.00850.x.

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