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天津市北辰区线下零售门店选址分析数据

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浙江省数据知识产权登记平台2024-10-25 更新2024-10-26 收录
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选址模型通过天津市北辰区宏观数据、友商数据、商业氛围等20+维度,使用机器学习算法和H3算法将指定区域切割为若干六边形,在每个六边形中选出最佳开店位置。同时还可以对已开设的老店进行评估,判断门店位置是否合理,科学的辅助线下零售门店选址,有助于拥有实体店的企业实现智能门店选址。1、数据采集:整理并清洗天津市北辰区门店特征数据集(经纬度和对应的特征(宏观经济、商业氛围等)) 2、建立模型: (1)将清洗的数据进行EDA(电子设计自动化)、特征工程; (2)选取候选点,通过h3(Uber)算法将区域细分为越来越小的六边形,形成候选点,并生成特征数据输入到机器学习模型; (3)选择LightGBM算法并训练开店选址评分的机器学习模型; 3、数据应用:输出候选点的对应的评分,选取Top_N候选点作为推荐点,搜索Top_N推荐点周边的POI信息,输出推荐位置。

The site selection model utilizes over 20 dimensions of data including macro-level data of Beichen District, Tianjin, competitor data, and commercial atmosphere. It divides the target area into multiple hexagonal grids using machine learning algorithms and the H3 algorithm, and selects the optimal store opening location within each hexagon. Additionally, it can also evaluate existing brick-and-mortar stores to verify the rationality of their locations, scientifically assist offline retail store site selection, and help enterprises with physical stores achieve intelligent store site selection. 1. Data Collection: Organize and clean the store feature dataset of Beichen District, Tianjin (including longitude, latitude and corresponding features such as macroeconomic indicators, commercial atmosphere, etc.) 2. Model Establishment: (1) Conduct EDA (Exploratory Data Analysis) and feature engineering on the cleaned data; (2) Select candidate locations: subdivide the target area into increasingly smaller hexagonal grids via the H3 (Uber) algorithm to generate candidate points, and generate feature data for input into the machine learning model; (3) Adopt the LightGBM algorithm and train a machine learning model for store opening location scoring; 3. Data Application: Output the corresponding scores of the candidate points, select the Top-N candidate points as recommended locations, search for POI (Point of Interest) information around the Top-N recommended locations, and output the recommended positions.
提供机构:
宁波方太营销有限公司
创建时间:
2024-09-23
搜集汇总
数据集介绍
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特点
该数据集提供了天津市北辰区的详细地理位置和经济数据,用于支持线下零售门店的选址决策。通过机器学习和H3算法,数据集能够帮助分析并推荐最佳开店位置,同时评估现有门店的位置合理性。
以上内容由遇见数据集搜集并总结生成
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