Artigos de revistas sobre o tema "Wave-based Methodology"
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Guan, X. "Supersonic wing-body wave drag co-ordinated optimisation based on FCE methodology". Aeronautical Journal 118, n.º 1209 (novembro de 2014): 1359–72. http://dx.doi.org/10.1017/s0001924000010010.
Texto completo da fonteZhang, Songhan, Ruili Shen, Kaoshan Dai, Lu Wang, Guido De Roeck e Geert Lombaert. "A methodology for cable damage identification based on wave decomposition". Journal of Sound and Vibration 442 (março de 2019): 527–51. http://dx.doi.org/10.1016/j.jsv.2018.11.018.
Texto completo da fonteLiu, Hongwei, Mustafa Naser Al-Ali e Yi Luo. "Converted-wave model building and imaging based on common-focus-point methodology". GEOPHYSICS 85, n.º 6 (13 de outubro de 2020): U139—U149. http://dx.doi.org/10.1190/geo2019-0549.1.
Texto completo da fonteAmlani, Faisal, e Niema M. Pahlevan. "A stable high-order FC-based methodology for hemodynamic wave propagation". Journal of Computational Physics 405 (março de 2020): 109130. http://dx.doi.org/10.1016/j.jcp.2019.109130.
Texto completo da fonteQuiroga, Jabid, John Quiroga, Luis Mujica, Rodolfo Villamizar e Magda Ruiz. "Temperature Robust PCA Based Stress Monitoring Approach". Key Engineering Materials 713 (setembro de 2016): 288–92. http://dx.doi.org/10.4028/www.scientific.net/kem.713.288.
Texto completo da fonteCilici, Florent, Manuel J. Barragan, Estelle Lauga-Larroze, Sylvain Bourdel, Gildas Leger, Loic Vincent e Salvador Mir. "A Nonintrusive Machine Learning-Based Test Methodology for Millimeter-Wave Integrated Circuits". IEEE Transactions on Microwave Theory and Techniques 68, n.º 8 (agosto de 2020): 3565–79. http://dx.doi.org/10.1109/tmtt.2020.2991412.
Texto completo da fonteNazarov, D. V., D. V. Antipov e O. V. Lomovskoy. "MANUFACTURING PROCESS OF FLEXIBLE WAVE GEAR WHEELS BASED ON THE PFMEA METHODOLOGY". Izvestiya of Samara Scientific Center of the Russian Academy of Sciences 25, n.º 3 (2023): 26–34. http://dx.doi.org/10.37313/1990-5378-2023-25-3-26-34.
Texto completo da fonteShi, Hongda, Chenyu Zhao, Martyn Hann, Deborah Greaves, Zhi Han e Feifei Cao. "WHTO: A methodology of calculating the energy extraction of wave energy convertors based on wave height reduction". Energy 185 (outubro de 2019): 299–315. http://dx.doi.org/10.1016/j.energy.2019.07.068.
Texto completo da fonteHegermiller, C. A., J. A. A. Antolinez, A. Rueda, P. Camus, J. Perez, L. H. Erikson, P. L. Barnard e F. J. Mendez. "A Multimodal Wave Spectrum–Based Approach for Statistical Downscaling of Local Wave Climate". Journal of Physical Oceanography 47, n.º 2 (fevereiro de 2017): 375–86. http://dx.doi.org/10.1175/jpo-d-16-0191.1.
Texto completo da fonteMorency, Christina. "Electromagnetic wave propagation based upon spectral-element methodology in dispersive and attenuating media". Geophysical Journal International 220, n.º 2 (13 de novembro de 2019): 951–66. http://dx.doi.org/10.1093/gji/ggz510.
Texto completo da fonteSolari, Sebastián, e Rodrigo Alonso. "A NEW METHODOLOGY FOR EXTREME WAVES ANALYSIS BASED ON WEATHER-PATTERNS CLASSIFICATION METHODS". Coastal Engineering Proceedings, n.º 35 (23 de junho de 2017): 23. http://dx.doi.org/10.9753/icce.v35.waves.23.
Texto completo da fonteInocencio, Ismael Aragorn, Eric Cruz e Edgardo Kasilag. "MULTI-CRITERIA RATINGS METHODOLOGY FOR SUITABILITY EVALUATION OF OPEN PIER SITES". Coastal Engineering Proceedings, n.º 36v (28 de dezembro de 2020): 26. http://dx.doi.org/10.9753/icce.v36v.management.26.
Texto completo da fonteChen, Cheng-Tsung, Jaw-Fang Lee, Kuei-Ting Lin e Pi-Sheng Hu. "An Analytical Solution of Transient Wave Generation in the Wave Channel". Journal of Marine Science and Engineering 10, n.º 9 (26 de agosto de 2022): 1198. http://dx.doi.org/10.3390/jmse10091198.
Texto completo da fonteTorregrosa, A. J., A. Broatch, X. Margot e J. García-Tíscar. "Experimental methodology for turbocompressor in-duct noise evaluation based on beamforming wave decomposition". Journal of Sound and Vibration 376 (agosto de 2016): 60–71. http://dx.doi.org/10.1016/j.jsv.2016.04.035.
Texto completo da fonteDo, Trung Q., John W. van de Lindt e Daniel T. Cox. "Performance-based design methodology for inundated elevated coastal structures subjected to wave load". Engineering Structures 117 (junho de 2016): 250–62. http://dx.doi.org/10.1016/j.engstruct.2016.02.046.
Texto completo da fonteDegrande, Geert, e Guido De Roeck. "FFT-based spectral analysis methodology for one-dimensional wave propagation in poroelastic media". Transport in Porous Media 9, n.º 1-2 (outubro de 1992): 85–97. http://dx.doi.org/10.1007/bf01039628.
Texto completo da fonteThiene, Marco, Z. Sharif-Khodaei e M. H. Aliabadi. "Optimal Sensor Placement for Damage Detection Based on Ultrasonic Guided Wave". Key Engineering Materials 665 (setembro de 2015): 269–72. http://dx.doi.org/10.4028/www.scientific.net/kem.665.269.
Texto completo da fonteJin, J., X. Wang, Y. Han, Y. Cai, Y. Cai, H. Wang, L. Zhu, L. Xu, L. Zhao e Z. Li. "Combined beef thawing using response surface methodology". Czech Journal of Food Sciences 34, No. 6 (21 de dezembro de 2016): 547–53. http://dx.doi.org/10.17221/138/2016-cjfs.
Texto completo da fonteVerdejo, Humberto, Almendra Awerkin, Wolfgang Kliemann, Cristhian Becker, Héctor Chávez, Karina Barbosa e José Delpiano. "A Dynamic Stochastic Hybrid Model to Represent Significant Wave Height and Wave Period for Marine Energy Representation". Energies 12, n.º 5 (7 de março de 2019): 887. http://dx.doi.org/10.3390/en12050887.
Texto completo da fonteCUI, Dongze, Mohamed ICHCHOU, Noureddine ATALLA e Abdel-Malek ZINE. "Computation of the sound transmission loss of heterogeneous periodic structure using the wave finite element-based methodology". INTER-NOISE and NOISE-CON Congress and Conference Proceedings 270, n.º 4 (4 de outubro de 2024): 7021–30. http://dx.doi.org/10.3397/in_2024_3900.
Texto completo da fonteRamasubramanian, M., TKS Rathish Babu e VRS Rajesh Kumar. "An Conventional Methodology for Brain Finger Printing". International Journal of Advanced Research in Computer Science and Software Engineering 7, n.º 8 (30 de agosto de 2017): 301. http://dx.doi.org/10.23956/ijarcsse.v7i8.77.
Texto completo da fonteBennett, S. H. "Modeling methodology for vascular input impedance determination and interpretation". Journal of Applied Physiology 76, n.º 1 (1 de janeiro de 1994): 455–84. http://dx.doi.org/10.1152/jappl.1994.76.1.455.
Texto completo da fonteAzizi, Sadegh, Majid Sanaye-Pasand, Moein Abedini e Abbas Hassani. "A Traveling-Wave-Based Methodology for Wide-Area Fault Location in Multiterminal DC Systems". IEEE Transactions on Power Delivery 29, n.º 6 (dezembro de 2014): 2552–60. http://dx.doi.org/10.1109/tpwrd.2014.2323356.
Texto completo da fonteThompson, Michael, Ivan Zelich, Evan Watterson e Tom E. Baldock. "Wave Peel Tracking: A New Approach for Assessing Surf Amenity and Analysis of Breaking Waves". Remote Sensing 13, n.º 17 (25 de agosto de 2021): 3372. http://dx.doi.org/10.3390/rs13173372.
Texto completo da fonteBilbao, Stefan. "Complex Source Distributions in Wave-based Virtual Acoustics". INTER-NOISE and NOISE-CON Congress and Conference Proceedings 268, n.º 4 (30 de novembro de 2023): 4706–16. http://dx.doi.org/10.3397/in_2023_0669.
Texto completo da fonteRamos, Victor, Gianmaria Giannini, Tomás Calheiros-Cabral, Paulo Rosa-Santos e Francisco Taveira-Pinto. "An Integrated Approach to Assessing the Wave Potential for the Energy Supply of Ports: A Case Study". Journal of Marine Science and Engineering 10, n.º 12 (14 de dezembro de 2022): 1989. http://dx.doi.org/10.3390/jmse10121989.
Texto completo da fonteGolovin, Yu, I. Nesterenko e S. Vasylenko. "METHODOLOGY FOR CALCULATING THE COVERAGE AREAS OF DIGITAL TELEVISION BROADCASTING". Information and communication technologies, electronic engineering 4, n.º 1 (12 de maio de 2024): 81–92. http://dx.doi.org/10.23939/ictee2024.01.081.
Texto completo da fonteSantos, Diogo, Tiago Abreu, Paulo A. Silva, Fábio Santos e Paulo Baptista. "Nearshore Bathymetry Retrieval from Wave-Based Inversion for Video Imagery". Remote Sensing 14, n.º 9 (30 de abril de 2022): 2155. http://dx.doi.org/10.3390/rs14092155.
Texto completo da fonteSardon, J. P. "The 2003 heat wave". Eurosurveillance 12, n.º 3 (1 de março de 2007): 11–12. http://dx.doi.org/10.2807/esm.12.03.00694-en.
Texto completo da fonteCiortan, Sorin, e Eugen Rusu. "Analysis of Wave Energy Conversion with Dynamic Systems Theory". E3S Web of Conferences 103 (2019): 02003. http://dx.doi.org/10.1051/e3sconf/201910302003.
Texto completo da fonteSakhare, Rahul Suryakant, Howell Li e Darcy M. Bullock. "Methodology for the Identification of Shock Wave Type and Speed in a Traffic Stream Using Connected Vehicle Data". Future Transportation 3, n.º 4 (1 de outubro de 2023): 1147–74. http://dx.doi.org/10.3390/futuretransp3040063.
Texto completo da fonteQuan, Yu Sheng, Dai Juan Wang, Guang Chen e Zong Cheng Zhang. "Study on the Methodology of Detection for Power Cable Insulation Defects Based on Oscillatory Wave". Advanced Materials Research 805-806 (setembro de 2013): 880–83. http://dx.doi.org/10.4028/www.scientific.net/amr.805-806.880.
Texto completo da fonteWang, Junfang, Cheuk Ming Mak e Yi Yun. "A methodology for direct identification of characteristic wave-types in a finite periodic dual-layer structure with transverse connection". Journal of Vibration and Control 18, n.º 9 (5 de outubro de 2011): 1406–14. http://dx.doi.org/10.1177/1077546311419699.
Texto completo da fontePipberger, H. A., H. V. Pipberger e C. D. McManus. "Methodology of ECG Interpretation in the AVA Program". Methods of Information in Medicine 29, n.º 04 (1990): 337–40. http://dx.doi.org/10.1055/s-0038-1634797.
Texto completo da fonteStarodub, Yu, e V. Bagnyuk. "MODELING AND METHODOLOGY OF EVALUATION OF ENGINEERING SITUATION IN RIVER BREAKDOWN OF SEREDNYODNIPROVSKA HES". Bulletin of Lviv State University of Life Safety 20 (24 de janeiro de 2020): 96–100. http://dx.doi.org/10.32447/20784643.20.2019.14.
Texto completo da fonteYan, Binpeng, Yongzhen Ji e Peidong Shi. "Frequency-dependent inversion based on spherical-wave reflection coefficient in elastic medium: Theory and methodology". Journal of Applied Geophysics 209 (fevereiro de 2023): 104908. http://dx.doi.org/10.1016/j.jappgeo.2022.104908.
Texto completo da fonteDavydov, Roman, Anna Zaitceva, Vadim Davydov, Daria Isakova e Maria Mazing. "New Methodology of Human Health Express Diagnostics Based on Pulse Wave Measurements and Occlusion Test". Journal of Personalized Medicine 13, n.º 3 (28 de fevereiro de 2023): 443. http://dx.doi.org/10.3390/jpm13030443.
Texto completo da fonteDe Leo, Francesco, Sebastián Solari e Giovanni Besio. "Extreme wave analysis based on atmospheric pattern classification: an application along the Italian coast". Natural Hazards and Earth System Sciences 20, n.º 5 (11 de maio de 2020): 1233–46. http://dx.doi.org/10.5194/nhess-20-1233-2020.
Texto completo da fonteRickett, James E. "Illumination‐based normalization for wave‐equation depth migration". GEOPHYSICS 68, n.º 4 (julho de 2003): 1371–79. http://dx.doi.org/10.1190/1.1598130.
Texto completo da fonteXiang, Ning, Jack Taylor e Max Miller. "Laser Doppler vibrometry-based measurements on viscoelastic panels for flexural damping properties". Journal of the Acoustical Society of America 153, n.º 3_supplement (1 de março de 2023): A239. http://dx.doi.org/10.1121/10.0018766.
Texto completo da fonteTien, Nguyen Anh. "To study impact level of dominat parameters and propose estimate methodology for wave transmission efficiency of unconventional complex pile submerged breakwater". Tạp chí Khoa học và Công nghệ Biển 19, n.º 4 (27 de março de 2020): 611–25. http://dx.doi.org/10.15625/1859-3097/19/4/13080.
Texto completo da fonteCiortan, Sorin, e Eugen Rusu. "Prediction of the wave power in the Black Sea based on wind speed using artificial neural networks". E3S Web of Conferences 51 (2018): 01006. http://dx.doi.org/10.1051/e3scconf/20185101006.
Texto completo da fonteCiortan, Sorin, e Eugen Rusu. "Prediction of the wave power in the Black Sea based on wind speed using artificial neural networks". E3S Web of Conferences 51 (2018): 01006. http://dx.doi.org/10.1051/e3sconf/20185101006.
Texto completo da fonteSHABADI, PRASAD, SANKARA NARAYANAN RAJAPANDIAN, SANTOSH KHASANVIS e CSABA ANDRAS MORITZ. "DESIGN OF SPIN WAVE FUNCTIONS-BASED LOGIC CIRCUITS". SPIN 02, n.º 03 (setembro de 2012): 1240006. http://dx.doi.org/10.1142/s2010324712400061.
Texto completo da fonteJanquart, Justin, Otto A. Hannuksela, K. Haris e Chris Van Den Broeck. "A fast and precise methodology to search for and analyse strongly lensed gravitational-wave events". Monthly Notices of the Royal Astronomical Society 506, n.º 4 (15 de julho de 2021): 5430–38. http://dx.doi.org/10.1093/mnras/stab1991.
Texto completo da fonteLee, Jae-Hoon, Yoon-Seo Nam, Jaehak Lee, Yuming Liu e Yonghwan Kim. "Estimation of Significant Wave Height Using Wave-Radar Images". Journal of Marine Science and Engineering 12, n.º 7 (5 de julho de 2024): 1134. http://dx.doi.org/10.3390/jmse12071134.
Texto completo da fonteShrivastava, Ruchi, e Dr Krishna Teerth Chaturvedi. "Correlation Enhanced Machine Learning Approach based Wave Height Prediction". SMART MOVES JOURNAL IJOSCIENCE 4, n.º 5 (26 de maio de 2018): 10. http://dx.doi.org/10.24113/ijoscience.v4i5.136.
Texto completo da fonteWu, Dazhi, Junyi Wang, Tong Miao, Keyu Chen e Zilong Zhang. "Performance Optimization of FA-GGBS Geopolymer Based on Response Surface Methodology". Polymers 15, n.º 8 (14 de abril de 2023): 1881. http://dx.doi.org/10.3390/polym15081881.
Texto completo da fonteArcos, Robert, Paulo J. Soares, Kenny F. Conto, Pedro Alves Costa e Luís Godinho. "A numerical validation of a 3D hybrid meshless methodology for dynamic soil-structure interaction problems". Journal of Physics: Conference Series 2647, n.º 20 (1 de junho de 2024): 202009. http://dx.doi.org/10.1088/1742-6596/2647/20/202009.
Texto completo da fonteINAFUNE, K. "W-Band Active Integrated Antenna Oscillator Based on Full-Wave Design Methodology and 0.1- m Gate InP-Based HEMTs". IEICE Transactions on Electronics E89-C, n.º 7 (1 de julho de 2006): 954–58. http://dx.doi.org/10.1093/ietele/e89-c.7.954.
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