1. Akbar, R. A., & Bhaskara, A. (2020). Analisis Debit Banjir Rancangan Pada Daerah Aliran Sungai Celeng Dengan Metode Hidrograf Satuan Sintetik ( Hss ) Nakayasu Dan Soil Conservation Service Analysis of Design Flood Discharge in Celeng River Flow Area Using Synthetic Unit Hydographic Method (. Reviews in Civil Engineering, 4(2), 54–61.
2. Azouagh, A., El Bardai, R., Hilal, I., & Stitou el Messari, J. (2018). Integration of GIS and HEC-RAS in Floods Modeling of Martil River (Northern Morocco). European Scientific Journal, ESJ, 14(12), 130. https://doi.org/10.19044/esj.2018.v14n12p130
3. Biantoro, A. W., Wahyudi, S. I., Niam, M. F., & Mahardika, A. G. (2022). Analysis of Ciliwung river flood debit and city flood anticipation using floods early detection system (FEDS). IOP Conference Series: Earth and Environmental Science, 955(1). https://doi.org/10.1088/1755-1315/955/1/012011
4. Danacova, M., Szolgay, J., & Vyleta, R. (2015). Estimation of The Relationship Between The Travel Time of Flood Peaks and Peak Discharge on The Poprad River by Multilinear Flood Routing. International Journal of New Technology and Research, 1(6), 263656.
5. Fang, X., Thompson, D. B., Cleveland, T. G., Pradhan, P., & Malla, R. (2008). Time of Concentration Estimated Using Watershed Paramaters Determined by Automated and Manual Methods. Journal of Irrigation and Drainage Engineering, 134(2). https://doi.org/https://doi.org/10.1061/(ASCE)0733-9437(2008)134:2(202)
6. Ishadi, N. K., Hadiani, R. R. R., & Suryandari, E. S. (2018). Penelusuran Banjir Berdasarkan Analisis Metode Kinematik Berbasis Sistem Informasi Geografis (Sig) Di Kelurahan Sangkrah, Surakarta. Matriks Teknik Sipil, 6(3), 530–541. https://doi.org/10.20961/mateksi.v6i3.36562
7. Prihartanto, & Ganesha, D. (2019). Flood Time Arrival Estimation based on Empirical Analysis of Recorded Data of Flood EWS in Bekasi City. Jurnal Sains Dan Teknologi Mitigasi Bencana, 14(1), 8–15.
8. Putera, A. P., & Toruan, K. L. (2016). Rancang Bangun Alat Pengukur Suhu, Kelembaban Dan Tekanan Udara Portable Berbasis Mikrokontroler Atmega16. Jurnal Meteorologi Klimatologi Dan Geofisika, 3(2), 42–50.
9. Rustinsyah, R., Prasetyo, R. A., & Adib, M. (2021). Social capital for flood disaster management: Case study of flooding in a village of Bengawan Solo Riverbank, Tuban, East Java Province. International Journal of Disaster Risk Reduction, 52(November 2020), 101963. https://doi.org/10.1016/j.ijdrr.2020.101963
10. Serinaldi, F., & Kilsby, C. G. (2017). A Blueprint for Full Collective Flood Risk Estimation: Demonstration for European River Flooding. Risk Analysis, 37(10), 1958–1976. https://doi.org/10.1111/risa.12747
11. Seyam, et al. (2017). Analysis of rainfall intensity impact on the lag time estimation in tropical humid rivers. International Journal of ADVANCED AND APPLIED SCIENCES, 4(10), 15–19. https://doi.org/10.21833/ijaas.2017.010.003
12. Singh, R. K., Soni, A., Kumar, S., Pasupuleti, S., & Govind, V. (2021). Zonation of flood prone areas by an integrated framework of a hydrodynamic model and ANN. Water Science and Technology: Water Supply, 21(1), 80–97. https://doi.org/10.2166/ws.2020.252
13. Siregar, R. I., Nursyamsi, N., Indrawan, I., Sembiring, R. A., Karolina, R., & Dewi, R. A. (2020). An Approach of Travel Time of Flood Peaks and Runoff Model towards Low Impact Development. Simetrikal: Journal of Engineering and Technology, 2(1), 1–12. https://doi.org/10.32734/jet.v2i1.2631