INTRODUCING A NEW MODEL FOR LOCATING THE LOCATION OF FIREFIGHTING FORCES BASED ON FUZZY REGION AND NONDOMINATED SORTING GENETIC ALGORITHM

Saeed Hassani, Mohammad Tahghighi Sharabyan, Zahra Tayyebi Qasabeh
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Abstract

The establishment of fire stations is considered an essential part of the security of any city. At the time of an accident, the location of fire stations is essential for timely and quick relief. The delay in providing aid causes irreparable damage to the life and property of the city's people, and the correct location of fire stations can prevent such incidents from happening, which is necessary to achieve this goal. It is systematic and integrated based on a suitable model. Therefore, in this research, a suitable model for locating the position of firefighting forces based on fuzzy logic and mutated genetic algorithm is proposed, which has two objective functions: one for optimizing the urban coverage and the other for optimizing Building the number of fires stations. The goal is to deploy stations in such a way as to create maximum urban coverage, and on the other hand, considering the cost of deploying each station, the method seeks to reduce the number of stations. The criteria needed for the stations' location have been examined, including the distance from the existing fire station. S the distance from the areas at risk of earthquakes, the high population density, the density of wooden buildings, the proximity to the roads—the main and density of hazardous materials facilities., the data set of fire stations in Istanbul city was used, to check the results and simulation in this research. This data set contains two parts, one of which contains information about the location of the stations, which has 124 data, and the other contains related information to the areas where the fire occurred and has 107 data. In this research, five scenarios were set, the first scenario of two parameters, the second scenario of three parameters, the third, fourth, and fifth scenarios of four parameters and their influence on the choice of the parent were investigated, and the results showed that the best solution is It is obtained that both goals have the same weight in the scenarios. It happens when the number of stations reaches the desired level. In fact, by increasing the number of stations to the appropriate size, the urban coverage amount reached the desired results.
提出了一种基于模糊区域和非支配排序遗传算法的消防力量定位新模型
消防站的建立被认为是任何城市安全的重要组成部分。在事故发生时,消防站的位置对于及时和快速救援至关重要。救援的延迟会对城市人民的生命财产造成无法弥补的损失,而消防站的正确位置可以防止此类事件的发生,这是实现这一目标所必需的。在一个合适的模型的基础上,它是系统的和集成的。因此,本研究提出了一种基于模糊逻辑和变异遗传算法的合适的消防力量位置定位模型,该模型具有两个目标函数,一个是优化城市覆盖,另一个是优化消防站数量。目标是以这样的方式部署站点以创造最大的城市覆盖,另一方面,考虑到部署每个站点的成本,该方法寻求减少站点的数量。已经审查了消防站位置所需的标准,包括与现有消防站的距离。距离地震危险地区的距离,人口密度高,木制建筑的密度,靠近道路-主要和危险物质设施的密度。,采用伊斯坦布尔市消防站数据集,对研究结果进行验证和仿真。该数据集包含两部分,其中一部分包含有关站点位置的信息,包含124个数据,另一部分包含与火灾发生区域相关的信息,包含107个数据。本研究设置了5个场景,分别考察了第1个场景2个参数、第2个场景3个参数、第3、4、5个场景4个参数及其对父母选择的影响,结果表明最优解为,得到两个目标在各场景中权重相同。当站点数量达到所需水平时,就会发生这种情况。事实上,通过将站点数量增加到适当的规模,城市覆盖量达到了预期的效果。
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