[1] Krawinkler, H., Seneviratna, G.D.P.K., “Pros and cons of a pushover analysis of seismic performance evaluation”, Engineering Structures, 20(4-6), pp. 452-464, 1998.
[2] Bracci, J.M., Kunnath, S.K., and Reinhorn, A.M., “Seismic performance and retrofit evaluation for reinforced concrete structures”. Journal of Structural Engineering, ASCE; 123(1), pp. 3–10, 1997.
[3] Gupta, B., Kunnath, S.K., “Adaptive spectra-based pushover procedure for seismic evaluation of structures”, Earthquake Spectra; 16(2), pp. 367–392, 2000.
[4] Sasaki, K.K., Freeman, S.A., and Paret, T.F., “Multimode pushover procedure (MMP) A method to identify the effect of higher modes in a pushover analysis”, Proceeding of the 6th U.S. National Conference on Earthquake Engineering, Seattle, Washington, 1998.
[5] Kunnath, S.K., Gupta, B., “Validity of deformation demand estimates using nonlinear static procedures”, Proceeding of the U.S. Japan Workshop on Performance- Based Engineering for Reinforced Concrete Building Structures, Sapporo, Hokkaido, Japan, 2000.
[6] Shakeri, K., Shayanfar, M.A., and Kabeyasawa, T., “A story shear-based adaptive pushover procedure for estimating seismic demands of buildings”, Engineering Structures, 32, pp. 174–83, 2010.
[7] Chopra, A.K., Goel, R.K., “A modal pushover analysis procedure to estimating seismic demands for buildings: Theory and preliminary evaluation”, PEER Report 2001/03, Pacific Earthquake Engineering Research Center, University of California, Berkeley, California, 2001.
[8] Bertero, V.V., “Strength and deformation capacities of buildings under extreme environments”, Structural Engineering and Structural Mechanics, Pister KS (ed), Prentice Hall, New Jersey, pp. 211-215, 1977.
[9] Bazzurro, P., Cornell, C.A., “Seismic hazard analysis for nonlinear structures. I: Methodology”, ASCE Journal of Structural Engineering, 120 (11), 1994.
[10] Bazzurro, P., Cornell, C.A., “Seismic hazard analysis for nonlinear structures. II: Applications”, ASCE Journal of Structural Engineering, 120 (11), 1994.
[11] Luco, N., Cornell, C.A., “Effects of connection fractures on SMRF seismic drift demands”, ASCE Journal of Structural Engineering, 126, pp. 127-136, 2000.
[12] Yun, S.Y., Hamburger, R.O, Cornell, C.A., and Foutch, D.A., “Seismic performance for steel moment frames”, ASCE Journal of Structural Engineering, 128 (4), pp. 534-545, 2002.
[13] Mofid, S., Zarfam, P., and Raeisi Fard, B., “On the modal incremental dynamic analysis”, The Structural Design of Tall and Special Buildings, 14 (4), pp. 315–329, 2005.
[14] Code No. 360, “Instruction for seismic rehabilitation of existing buildings”, Vice presidency for strategic planning and supervision, Islamic Republic of Iran, First Revision, 2014 (In Persian).
[15] Vamvatsikos, D., Cornell, C.A., “Seismic performance, capacity and rellability of structures as seen through incremental dynamic analysis”, Department of civil and environmental engineering, Stanford University, Report No. 151, August 2005.
[16] Tameh, M.R., “The result investigation of modal pushover analysis and incremental dynamic analysis in isolated steel buildings”, MSc thesis, University of Kashan, Kashan, Iran (2014), (in Persian).
[17] PEER, “Pacific Earthquake Engineering Research center strong motion database”,
http://peer.berkeley.edu, 2015.
[18] CSI (Computers and Structures Inc.), “ETABS V 2015 Analysis Reference Manual”, CSI, Berkeley, 2015.
[19] Iranian National Building Code (part 10), “Steel structure design”, Ministry of Road, Housing and Urban Development, Tehran (2013) (In Persian).
[20] Iranian National Building Code (part 6), “Design load for buildings”, Ministry of Road, Housing and Urban Development, Tehran (2013) (In Persian).
[21] Standard No. 2800, “Iranian code of practice for seismic resistance design of buildings”, 4th Edn., Ministry of Road, Housing and Urban Development, Tehran (2014) (In Persian).
[22] CSI. SAP2000V-17.3. “Integrated finite element analysis and design of structures basic analysis reference manual. Berkeley (CA, USA)": Computers and Structures Inc, 2010.
[23] Mazzoni, S., McKenna, F., Scott, M.H., and Fenves, G.L., “OpenSees Version 2.4.5 User Manual”, Pacific Earthquake Engineering Research Center (PEER), University of California, Berkeley, 2009. (Available from: http://opensees.berkeley.edu, last accessed March 2014).
[24] Uriz, P., Filippou, F.C., and Mahin, S.A., “Model for cycle inelastic buckling of steel braces”, Journal of Structural Engineering, 134 (4), pp. 619–628, 2008.
[25] FEMA 350, “Recommended seismic design criteria for new steel moment-frame buildings”, Prepared for SAC joint venture partnership by guidelines development committee, 2000.
[26] Barakati, S.I., and Daneshjoo, F., “Seismic demand and capacity of steel moment resisting frames under near-fault earthquakes using incremental dynamic analysis”, Modares Civil Engineering Journal, 14(1), pp. 1-14, 2014 (In Persian)