[
Algie, T. B., Pender, M., Orense, R., & Wotherspoon, L. (2010). Dynamic field testing of shallow foundations subject to rocking. Proceedings of 2010 New Zealand Society for Earthquake Engineering Conference, 26-28.
]Search in Google Scholar
[
Anastasopoulos, I., Gazetas, G., Loli, M., Apostolou, M., & Gerolymos, N. (2010). Soil failure can be used for seismic protection of structures. Bulletin of Earthquake Engineering, 8(2), 309-326.
]Search in Google Scholar
[
Anastasopoulos, I., Kourkoulis, R., Gelagoti, F., & Papadopoulos, E. (2012). Metaplastic Rocking Response of SDOF Systems on Shallow Improved Sand: an Experimental Study. Soil Dynamics and Earthquake Engineering, 40, 15-33.
]Search in Google Scholar
[
Antonellis, G., & Panagiotou, M. (2014). Seismic Response of Bridges with Rocking Foundations Compared to Fixed-Base Bridges at a Near-Fault Site. Journal of Bridge Engineering, 19(5), 04014007.
]Search in Google Scholar
[
Bowles, J. E. (1977). Foundation Analysis and Design. McGraw-Hill.
]Search in Google Scholar
[
Chatzigogos, C. T., Figini, R., Pecker, A., & Salençon, J. (2011). A macroelement formulation for shallow foundations on cohesive and frictional soils. International Journal for Numerical and Analytical Methods in Geomechanics, 35(8), 902-931.
]Search in Google Scholar
[
Deng, L., Kutter Bruce, L., & Kunnath Sashi, K. (2012). Centrifuge Modeling of Bridge Systems Designed for Rocking Foundations. Journal of Geotechnical and Geoenvironmental Engineering, 138(3), 335-344.
]Search in Google Scholar
[
Gajan, S., & Kutter Bruce, L. (2008). Capacity, Settlement, and Energy Dissipation of Shallow Footings Subjected to Rocking. Journal of Geotechnical and Geoenvironmental Engineering, 134(8), 1129-1141.
]Search in Google Scholar
[
Gazetas, G. (2015). 4th Ishihara lecture: Soil–foundation–structure systems beyond conventional seismic failure thresholds. Soil Dynamics and Earthquake Engineering, 68, 23-39.
]Search in Google Scholar
[
Gelagoti, F., Kourkoulis, R., Anastasopoulos, I., & Gazetas, G. (2012). Rocking isolation of low-rise frame structures founded on isolated footings. Earthquake Engineering & Structural Dynamics, 41(7), 1177-1197.
]Search in Google Scholar
[
Housner, G. W. (1963). The behavior of inverted pendulum structures during earthquakes. Bulletin of the Seismological Society of America, 53(2), 403-417.
]Search in Google Scholar
[
Ko, K.-W., Ha, J.-G., Park, H.-J., & Kim, D.-S. (2018). Soil-Rounding Effect on Embedded Rocking Foundation via Horizontal Slow Cyclic Tests. Journal of Geotechnical and Geoenvironmental Engineering, 144(3), 04018004.
]Search in Google Scholar
[
Kourkoulis, R., Anastasopoulos, I., Gelagoti, F., & Kokkali, P. (2012). Dimensional Analysis of SDOF Systems Rocking on Inelastic Soil. Journal of Earthquake Engineering, 16(7), 995-1022.
]Search in Google Scholar
[
Panagiotidou, A. I., Gazetas, G., & Gerolymos, N. (2012). Pushover and Seismic Response of Foundations on Stiff Clay: Analysis with P-Delta Effects. Earthquake Spectra, 28(4), 1589-1618.
]Search in Google Scholar
[
Sharifzadeh Asli, M., Mir Mohammad Hosseini, S. M., & Jahanirad, A. (2018). Effect of soil reinforcement on rocking isolation potential of high-rise bridge foundations. Soil Dynamics and Earthquake Engineering, 115, 142-155.
]Search in Google Scholar
[
Sharifzadeh Asli, M. (2018). Experimental study of effective factors on bed soil improvement in rocking isolation. PhD. Dissertation. Amirkabir University of Technology, Tehran, Iran.
]Search in Google Scholar
[
Torabi, H., & Rayhani, M. (2014). Three dimensional Finite Element modeling of seismic soil–structure interaction in soft soil. Computers and Geotechnics, 60, 9–19.
]Search in Google Scholar
[
Tsatsis, A., & Anastasopoulos, I. (2015). Performance of Rocking Systems on Shallow Improved Sand: Shaking Table Testing [Original Research]. Frontiers in Built Environment, 1(9).
]Search in Google Scholar