Urban rainstorm disaster risk assessment method and system based on GA optimization BP neural network
A BP neural network and risk assessment technology, applied in the field of urban rainstorm disaster risk assessment based on GA-optimized BP neural network, can solve the problems of credibility, lack of impact assessment results, and unintuitive evaluation mechanism, etc., and achieve powerful nonlinear mapping Capability, weight and threshold optimization, effects of overcoming local minima
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Embodiment 1
[0056] The invention discloses a method for evaluating the risk of urban rainstorm disasters based on GA (Genetic Algorithm, Genetic Algorithm) optimized BP (backpropagation, backpropagation) neural network, referring to figure 1 , including the following steps:
[0057] S1. Establish a rainstorm disaster risk assessment system that includes the risk of disaster-causing factors, the sensitivity of disaster-forming environments, the vulnerability of disaster-affected bodies, and the ability to prevent and resist disasters.
[0058] Establishing a complete rainstorm disaster risk assessment index system is very important for predicting and assessing the occurrence of disaster risks. If the index construction is not comprehensive, it will lead to a large deviation between the assessment results and the actual situation. If the natural disaster risk is understood from the perspective of the system, its composition should first include the source of risk. The source of risk not on...
Embodiment 2
[0093] The invention discloses an urban rainstorm disaster risk assessment system based on GA optimized BP neural network, comprising:
[0094] The rainstorm disaster risk assessment system building module is used to establish a rainstorm disaster risk assessment system including the risk of hazards, the sensitivity of disaster-forming environments, the vulnerability of disaster-affected bodies, and the ability to prevent and resist disasters;
[0095]The risk level label generation module is used to generate risk level labels including four labels of extremely high risk, high risk, medium risk and low risk based on k-means clustering historical disaster loss data;
[0096] The rainstorm disaster risk assessment model building module is used to construct a GA optimized neural network rainstorm disaster risk assessment model according to the rainstorm disaster risk assessment system and risk level labels;
[0097] The result output module is used to input the real-time rainfall...
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