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McCRUM, D.: Development of dynamic structural testing to current state-of-the-art hybrid testing. Structural Engineer, vol. 92, no. 11, pp. 46–51, 2014.Search in Google Scholar
INDONESIAN MINISTER OF ENVIRONMENT DECREE No. 49: Vibration Level Standards. Indonesia, 1996.Search in Google Scholar
BSN: SNI 2847:2019, Structural Concrete Requirements for Building Construction. Jakarta, Indonesia: National Standardization Agency, 2019.Search in Google Scholar
INTERNATIONAL ORGANIZATION FOR STANDARDIZATION: ISO-2631-2:1989, Evaluation of human exposure to whole-body vibration, Part 2: Continuous and shock-induced vibration in buildings (1 Hz–80 Hz). 1989.Search in Google Scholar
HECHLER, O. – FELDMANN, M. – HEINEMEYER, C. – GALANTI, F.: Design guide for floor vibrations. Built Environ, no. September, pp. 3–5, 2008.Search in Google Scholar
FELDMANN, M. et al.: Design of floor structures for human-induced vibrations. vol. 3, 2009.Search in Google Scholar
COOLEY, J. W. – LEWIS, P. A. W. – WELCH, P. D.: The Fast Fourier Transform and its Applications. IEEE Transactions on Education, vol. 12, no. 1, pp. 27–34, 1969. doi: 10.1109/TE.1969.4320436.Search in Google Scholar
HECKBERT, P.: Fourier Transforms and the Fast Fourier Transform (FFT) Algorithm. Notes Computer Graphics, vol. 3, no. 2, pp. 15–463, 1995.Search in Google Scholar
KHOERI, H. – ALISJAHBANA, S. W.: Pemeriksaan Getaran Struktur dan Rekomendasi Perkuatan untuk Peningkatan Kapasitas Beban dan Pengurangan Getaran. Konstruksia, vol. 15, no. 1, p. 79, Dec. 2023. doi: 10.24853/jk.15.1.79-96.Search in Google Scholar
KHOERI, H. – ALISJAHBANA, S. W. – WIDJAJAKUSUMA, J. – NAJID, N.: Deflection Estimation of Slabs to Calculate Load Capacity with High Accuracy Using Vibration Testing. Konstruksia, vol. 14, no. 2, pp. 175–188, Jul. 2023. doi: 10.24853/jk.14.2.175-188.Search in Google Scholar
DIRECTORATE GENERAL OF HIGHWAYS: Guidelines for Construction and Buildings Pt T-05-2002-B, Assessment of Bridge Conditions for Superstructures by Vibration Testing. Jakarta, Indonesia: Directorate General of Highways, 2002.Search in Google Scholar
PURBOYO, A. H. – ZARKASI, I.: Vibration Data Acquisition of Bridge Dynamic Testing. Jurnal HPJI, vol. 7, no. 2, pp. 79–96, 2021. doi: 10.26593/jhpji.v7i2.5053.79-96.Search in Google Scholar
MIRCEA, S. – DELIA, D. – RALUCA, N.: Factors Concerning the Dynamics of Footbridges and Methods for Improving Pedestrians’ Comfort. Ovidius University Annals of Constanta - Series Civil Engineering, vol. 23, no. 1, pp. 16–24, Dec. 2021. doi: 10.2478/ouacsce-2021-0002.Search in Google Scholar
PAZ, M.: Structural Dynamics. Boston, MA: Springer US, 1990. doi: 10.1007/978-1-4615-7918-2.Search in Google Scholar
BAI, Y. – DONG XU, Z.: Dynamics of Structures. 1st ed. New York: Wiley, 2019. doi: 10.1002/9781119605775.Search in Google Scholar
BUWONO, H. K. et al.: Effects of Inclination Angle and Height of Blast Load on the Dynamic Behavior of Floor Slabs with Stiffening Beams. Civil and Environmental Engineering, vol. 20, no. 1, pp. 68–77, Jun. 2024. doi: 10.2478/cee-2024-0006.Search in Google Scholar
HO, S. – MOHTADI, A. – DAUD, K. – LEONARDS, U. – HANDY, T. C.: Using smartphone accelerometry to assess the relationship between cognitive load and gait dynamics during outdoor walking. Sci Rep, vol. 9, no. 1, Dec. 2019. doi: 10.1038/s41598-019-39718-w.Search in Google Scholar
WANG, L. – HE, H. – LI, S.: Structural vibration performance test based on smart phone and improved comfort evaluation method. Measurement, vol. 203, p. 111947, Nov. 2022. doi: 10.1016/j.measurement.2022.111947.Search in Google Scholar