Alonso, R. J., Noori, M., Saadat, S., Masuda, A., & Hou, Z. (2004). Effects of excitation frequency on detection accuracy of orthogonal wavelet decomposition for structural health monitoring. Earthquake Engineering and Engineering Vibration, 3(1), 101-106.
Bitaraf, M., Hurlebaus, S., & Barroso, L.R. (2012). Active and semi-active adaptive control for undamaged and damaged building structures under seismic load. Computer-Aided Civil and Infrastructure Engineering, 27(1), 48-64. https://doi.org/10.1111/j.1467-8667.2011.00719.x
Chopra, A.K. (2012). Dynamics of Structures, 4th. New Jersey: Prentice Hall. [Record #40 is using a reference type undefined in this output style.]
Council, B.S.S. (2000). Prestandard and Commentary for the Seismic Rehabilitation of Buildings. Report FEMA-356, Washington, DC.
Dadkhah, M., Kamgar, R., & Heidarzadeh, H. (2020). Reducing the cost of calculations for incremental dynamic analysis of building structures using the discrete wavelet transform. Journal of Earthquake Engineering, 1-26. https://doi.org/10.1080/13632469. 2020.1798830
Daubechies, I. (1992). Ten Lectures on Wavelets. SIAM.
Ghaffary, A., & Moustafa, M.A. (2021). Performance-based assessment and structural response of 20-story SAC building under wind hazards through collapse. Journal of Structural Engineering, 147(3), 04020346.
Gupta, A., & Krawinkler, H. (1998). Seismic Demands for the Performance Evaluation of Steel Moment Resisting Frame Structures. Stanford University.
Heidari, A., & Majidi, N. (2021). Earthquake acceleration analysis using wavelet method. Earthquake Engineering and Engineering Vibration, 20(1), 113-126. https://doi.org/10.1007/s11803-021-2009-8
Heidari, A., Pahlavan sadegh, S., & Raeisi, J. (2019). Investigating the effect of soil type on non-linear response spectrum using wavelet theory. International Journal of Civil Engineering, 17(12), 1909-1918. https://doi.org/10.1007/s40999-019-00394-6
Hémon, P., & Santi, F. (2007). Simulation of a spatially correlated turbulent velocity field using biorthogonal decomposition. Journal of Wind Engineering and Industrial Aerodynamics, 95(1), 21-29. https://doi.org/10.1016/j.jweia.2006.04.003
Hilber, H.M. (1976). Analysis and Design of Numerical Integration Methods in Structural Dynamics. University of California, Berkeley.
Hossain, M.R., Ashraf, M., & Padgett, J.E. (2013). Risk-based seismic performance assessment of yielding shear panel device. Engineering Structures, 56, 1570-1579. https://doi.org/10.1016/j.engstruct.2013.07.032
Hosseini, M., Moghaddam, S.A., & Emami, S.M.M. (2013). A method for simplification of earthquake accelerograms for rapid time history analysis based on time-frequency representations conference. Proceedings of the 11th International Conference on Vibration Problems (ICoVP).
Javdanian, H., Heidari, A., & Raeisi, J. (2021). Seismic ground response under wavelet-based decomposed earthquake records. Soil Dyn. Earthq. Eng., 149, 106865. https://doi.org/10.1016/j.soildyn. 2021.106865
Jena, S.K., Chakraverty, S., & Malikan, M. (2021). Implementation of haar wavelet, higher order Haar wavelet, and differential quadrature methods on buckling response of strain gradient nonlocal beam embedded in an elastic medium. Engineering with Computers, 37(2), 1251-1264. https://doi.org/10.1007/s00366-019-00883-1
Jia, L.-J., Xiang, P., Wu, M., & Nishitani, A. (2018). Swing story-lateral force resisting system connected with dampers: Novel seismic vibration control system for building structures. Journal of Engineering Mechanics, 144(2), 04017159.
Kamgar, R., Dadkhah, M., & Naderpour, H. (2021). Seismic response evaluation of structures using discrete wavelet transform through linear analysis. Structures, 29, 863-882. https://doi.org/10.1016/j.istruc.2020.11.012
Kamgar, R., Dadkhah, M., & Naderpour, H. (2022). Earthquake-induced nonlinear dynamic response assessment of structures in terms of discrete wavelet transform. Structures, 39, 821-847. https://doi.org/10.1016/j.istruc.2022.03.060
Kamgar, R., Majidi, N., & Heidari, A. (2020). Wavelet-Based Decomposition of Ground Acceleration for Efficient Calculation of Seismic Response in Elastoplastic Structures. Periodica Polytechnica Civil Engineering. https://doi.org/10.3311/PPci.14475
Kamgar, R., Tavakoli, R., Rahgozar, P., & Jankowski, R. (2021). Application of discrete wavelet transform in seismic nonlinear analysis of soil-structure interaction problems. Earthquake Spectra. https://doi.org/10.1177/8755293020988027
Kankanamge, Y., Hu, Y., & Shao, X. (2020). Application of wavelet transform in structural health monitoring. Earthquake Engineering and Engineering Vibration, 19(2), 515-532.
Majidi, N., Heidari, A., Alireza, F., & Heidarzadeh, H. (2022). Estimation of earthquake frequency content and its effect on dynamic analysis using continuous and discrete wavelet transform. Scientia Iranica. https://doi.org/10.24200/SCI.2022.54226. 3662
Majidi, N., Riahi, H.T., & Zandi, S.M. (2023). Evaluating the performance of different mother wavelet functions for down-sampling of earthquake records. Structures, 51, 846-879.
Majidi, N., Riahi, H.T., Zandi, S.M., & Hajirasouliha, I. (2023). Development of practical downsampling methods for nonlinear time history analysis of complex structures. Soil Dynamics and Earthquake Engineering, 175, 108247.
Majidi, N., Tajmir Riahi, H., & Zandi, M. (2022). Reducing computational efforts in linear and nonlinear analysis of peridynamic models under impact loads. Amirkabir Journal of Civil & Environmental Engineering. https://doi.org/10.22060/CEEJ.2022.20075.7337
Mallat, S. (1999). A Wavelet Tour of Signal Processing. Elsevier.
Mazzoni, S., McKenna, F., Scott, M.H., & Fenves, G.L. (2006). Open System for Earthquake Engineering Simulation User Command-Language Manual. Report NEES grid-TR 2004, 21.
Mehr Motlagh, M., Bahar, A., & Bahar, O. (2021). Investigation of soil-structure interaction effects on damage detection of wind turbine tower with biorthogonal wavelets. Amirkabir Journal of Civil Engineering, 53(6), 19-19. https://doi.org/10.22060/CEEJ.2021.17394.6566
Misiti, M., Misiti, Y., Oppenheim, G., & Poggi, J.-M. (1996). Wavelet Toolbox User's Guide. The Math Works Inc.
Nagarajaiah, S., & Basu, B. (2009). Output only modal identification and structural damage detection using time frequency & wavelet techniques. Earthquake Engineering and Engineering Vibration, 8(4), 583-605.
Nasab, M.S.E., & Kim, J. (2020). Seismic retrofit of structures using hybrid steel slit-viscoelastic dampers. Journal of Structural Engineering, 146(11), 04020238.
Nateghi, F. (2011). On Less Computational Costs for Analysis of Silos Seismic Behavior by Time Integration Computational Methods in Structural Dynamics and Earthquake Engineering, ???.
Nigam, N.C., & Jennings, P. C. (1968). Digital Calculation of Response Spectra from Strong-Motion Earthquake Records. California Institute of Technology, Earthquake Engineering Research.
Nigam, N.C., & Jennings, P.C. (1969). Calculation of response spectra from strong-motion earthquake records. Bulletin of the Seismological Society of America, 59(2), 909-922.
Pandit, S., & Sharma, S. (2020). Wavelet strategy for flow and heat transfer in CNT-water based fluid with asymmetric variable rectangular porous channel. Engineering with Computers, 1-11. https://doi.org/10.1007/s00366-020-01139-z
Pnevmatikos, N.G., & Hatzigeorgiou, G.D. (2017). Damage detection of framed structures subjected to earthquake excitation using discrete wavelet analysis. Bulletin of Earthquake Engineering, 15(1), 227-248.
Qiu, C., Zhao, X., & Zhu, S. (2020). Seismic upgrading of multistory steel moment-resisting frames by installing shape memory alloy braces: design method and performance evaluation. Structural Control and Health Monitoring, 27(9). https://doi.org/10.1002/stc.2596
Salajegheh, E., & Heidari, A. (2002). Dynamic analysis of structures against earthquake by combined wavelet transform and fast Fourier transform. Asian Journal of Civil Engineering.
Salajegheh, E., & Heidari, A. (2004). Optimum design of structures against earthquake by adaptive genetic algorithm using wavelet networks. Structural and Multidisciplinary Optimization, 28(4), 277-285. https://doi.org/10.1007/s00158-004-0422-z
Salajegheh, E., & Heidari, A. (2005). Optimum design of structures against earthquake by wavelet neural network and filter banks. Earthquake Engineering & Structural Dynamics, 34(1), 67-82. https://doi.org/10.1002/eqe.417
Sepasdar, R., Banan, M.R., & Banan, M.R. (2019). A numerical investigation on the effect of panel zones on cyclic lateral capacity of steel moment frames. Iranian Journal of Science and Technology, Transactions of Civil Engineering, 1-10. https://doi.org/10.1007/s40996-019-00274-y
Shayanfar, M., Rakhshanimehr, M., & Bidoki, R.Z. (2016). An energy based adaptive pushover analysis for nonlinear static procedures. Civil Engineering Infrastructures Journal, 49(2), 289-310. https://doi.org/10.7508/CEIJ.2016.02.007
Soroushian, A. (2008). A technique for time integration analysis with steps larger than the excitation steps. Communications in Numerical Methods in Engineering, 24(12), 2087-2111.
Soroushian, A., Saaed, A., Arghavani, M., Rajabi, M., & Sharifpour, M. (2011). Less computational costs in the analysis of reservoirs seismic behaviors by time integration. Vibration Problems ICOVP 2011: the 10th International Conference on Vibration Problems.
Spanos, P., & Rao, V.R.S. (2001). Random field representation in a biorthogonal wavelet basis. Journal of Engineering Mechanics, 127(2), 194-205. https://doi.org/10.1061/(ASCE)0733-9399(2001)127:2(194)
Teng, Y.-T., Wang, X.-Z., Wang, X.-M., Ma, J.-M., & Xu, J.-H. (2006). P wave onset time picking with the B-spline biorthogonal wavelet. Acta Seismological Sinica, 19(3), 350-355. https://doi.org/10.1007/s11589-003-0350-9
Venture, S.J. (2000). State of the Art Report on Systems Performance of Steel Moment Frames Subject to Earthquake Ground Shaking. FEMA 355C.
Wang, X., Teng, Y., Qu, B., & Zhang, M. (2011). Seismic data lossy compression and distortion analysis. Journal of Earthquake Engineering and Engineering Vibration, 4.