Examining the accuracy and validity of loss estimations using the PBEE methodology for wood residential buildings through integrated experimental findings and expert panel solicitation

[2]  John W. van de Lindt,et al.  Performance Assessment of Tilt-Up Big-Box Buildings Subjected to Extreme Hazards: Tornadoes and Earthquakes , 2017 .

[3]  Terje Haukaas,et al.  Unified reliability and design optimization for earthquake engineering , 2008 .

[4]  O. A. Vanli,et al.  Preventive maintenance of wood-framed buildings for hurricane preparedness , 2019, Structural Safety.

[5]  Bruce R. Ellingwood,et al.  Hurricane damage to residential construction in the US: Importance of uncertainty modeling in risk assessment , 2006 .

[6]  Kenneth J. Elwood,et al.  Seismic loss estimation of non-ductile reinforced concrete buildings , 2013 .

[7]  Dhiman Basu,et al.  Revisiting probabilistic seismic hazard analysis of Gujarat: an assessment of Indian design spectra , 2018, Natural Hazards.

[8]  Raffaele Landolfo,et al.  Evaluation of seismic dynamic behaviour of drywall partitions, façades and ceilings through shake table testing , 2019, Engineering Structures.

[9]  Andre Filiatrault,et al.  Experimental Seismic Fragility of Steel Studded Gypsum Partition Walls and Fire Sprinkler Piping Subsystems , 2010 .

[10]  Therese P. McAllister,et al.  Risk-Based Decision Making for Sustainable and Resilient Infrastructure Systems , 2016 .

[11]  Billie F. Spencer,et al.  Direct performance-based design with 200kN MR dampers using multi-objective cost effective optimization for steel MRFs , 2014 .

[12]  Rachel A. Davidson,et al.  Empirical loss analysis to support definition of seismic performance objectives for woodframe buildings , 2010 .

[13]  James L. Beck,et al.  Cost-Effectiveness of Stronger Woodframe Buildings , 2006 .

[14]  A. Sextos,et al.  A critical review on the vulnerability assessment of natural gas pipelines subjected to seismic wave propagation. Part 2: Pipe analysis aspects , 2019, Tunnelling and Underground Space Technology.

[15]  Dimitrios G. Lignos,et al.  Design Decision Support for Steel Frame Buildings through an Earthquake-Induced Loss Assessment , 2015 .

[16]  A. Sextos,et al.  Seismic fragility of buried steel natural gas pipelines due to axial compression at geotechnical discontinuities , 2019, Bulletin of Earthquake Engineering.

[17]  Andre Filiatrault,et al.  Analytical Seismic Fragility Analyses of Fire Sprinkler Piping Systems with Threaded Joints , 2015 .

[18]  Abdollah Shafieezadeh,et al.  A Markovian approach to infrastructure life‐cycle analysis: Modeling the interplay of hazard effects and recovery , 2020, Earthquake Engineering & Structural Dynamics.

[19]  Fumio Yamazaki,et al.  Effect of earthquake ground motions on fragility curves of highway bridge piers based on numerical simulation , 2001 .

[20]  Mojtaba Mahsuli,et al.  Component damage models for detailed seismic risk analysis using structural reliability methods , 2019, Structural Safety.

[21]  L. Lowes,et al.  Fragility Functions for Older Reinforced Concrete Beam-Column Joints , 2006 .

[22]  Terje Haukaas,et al.  Seismic risk analysis with reliability methods, part I: Models , 2013 .

[23]  Jack P. Moehle,et al.  Seismic Performance Evaluation of Facilities: Methodology and Implementation , 2009 .

[24]  Curt B. Haselton,et al.  Expected earthquake damage and repair costs in reinforced concrete frame buildings , 2012 .

[25]  Jean-Paul Pinelli,et al.  Damage Characterization: Application to Florida Public Hurricane Loss Model , 2011 .

[26]  H. Shakib,et al.  Seismic risk assessment of buried steel gas pipelines under seismic wave propagation based on fragility analysis , 2018, Bulletin of Earthquake Engineering.

[27]  Ali Mostafavi,et al.  An integrated physical-social analysis of disrupted access to critical facilities and community service-loss tolerance in urban flooding , 2020, Comput. Environ. Urban Syst..

[28]  James L. Beck,et al.  Investigation of Sensitivity of Building Loss Estimates to Major Uncertain Variables for the Van Nuys Testbed , 2002 .

[29]  Rajesh P. Dhakal,et al.  Development of cladding contribution functions for seismic loss estimation , 2019 .

[30]  Gaetano Manfredi,et al.  Seismic fragility of plasterboard partitions via in‐plane quasi‐static tests , 2015 .

[31]  Mojtaba Mahsuli,et al.  Detailed seismic risk analysis of buildings using structural reliability methods , 2018 .

[32]  Abdollah Shafieezadeh,et al.  Probabilistic Lifecycle Cost Analysis of Levees against Backward Erosion , 2019 .

[33]  Shiling Pei,et al.  Methodology for earthquake-induced loss estimation: An application to woodframe buildings , 2009 .

[34]  Mohammad Reza Yazdi-Samadi,et al.  Time-Variant Seismic Risk Analysis of Transportation Networks Considering Economic and Socioeconomic Impacts , 2020 .

[35]  Ali Nejat,et al.  RecovUS: An Agent-Based Model of Post-Disaster Household Recovery , 2020, J. Artif. Soc. Soc. Simul..

[36]  William A. Wallace,et al.  CRISIS: Modeling the Restoration of Interdependent Civil and Social Infrastructure Systems Following an Extreme Event , 2019, Natural Hazards Review.

[37]  Terje Haukaas,et al.  Seismic risk analysis with reliability methods, part II: Analysis , 2013 .

[38]  Giuseppe T. Aronica,et al.  Probabilistic Flood Hazard Mapping Using Bivariate Analysis Based on Copulas , 2017 .

[39]  Hussam Mahmoud,et al.  Validation of Time-Dependent Repair Recovery of the Building Stock Following the 2011 Joplin Tornado , 2020 .

[40]  Sungmoon Jung,et al.  Hurricane risk analysis of the residential structures located in Florida , 2020, Sustainable and Resilient Infrastructure.

[41]  Mohammad Alembagheri,et al.  Evaluation of seismic reliability of gravity dam-reservoirinhomogeneous foundation coupled system , 2018, Frontiers of Structural and Civil Engineering.

[42]  A. Sextos,et al.  A critical review on the vulnerability assessment of natural gas pipelines subjected to seismic wave propagation. Part 1: Fragility relations and implemented seismic intensity measures , 2019, Tunnelling and Underground Space Technology.