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The simulation results from DISPATCH and CA are more similar than those from the percolation algorithm; however, the latter appeared to be a better representative of observed fire spread processes due to its underlying assumption of fire spread mechanisms.
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Current design codes and consequently most of the understanding of behaviour of structures in fire are based on the often unrealistic assumption of uniform fire within the enclosure.
The entropy of the system, if constrained only by firing rates (S1), is computed by using the expected P, which is determined on the basis of observed firing rates under the assumption of independent firing.
However, fire engineering solutions make different assumptions on fire services intervention and are based on a number of engineering and management assumptions.
Based on the analysis of the results presented, it is shown that the worst case in terms of maximum vertical defection or maximum residual deflection, at a given point in the floorplate, could occur either under the assumption of a uniform fire or a travelling fire.
Furthermore, in our calculations we have found that the key assumption of a Heaviside firing rate H ( u − h ) can be relaxed to a degree without fundamentally changing the results.
In this case, the simulation shows that the firing order between the neurons is not preserved which violates the 1 : 1 firing assumption of the map.
The study highlights that some of the assumptions about the existing paradigm of fire safety in buildings are not consistent with the knowledge set out in the literature.
This assumption is more realistic in the case of fire before earthquake, assuming closed openings.
In contrast, the FIREnoNPP models predict what the future distribution of fire might be under the assumption that the climate variables in the regression models jointly describe vegetation patterns (productivity and structural form) as well as fire weather conditions.
The subsequent feasibility study however indicates that the assumption of a lognormal distribution is problematic in case of fire.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com