基于愿望清单的购物路径发现和有利可图的路径推荐

S. Pradhan, P. R. Krishna, S. S. Rout, K. Jonna
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引用次数: 2

摘要

零售顾客发现,由于各种原因,比如找不到商品、拥挤的摊位和排长队,在大型零售商场购物很有压力。在本文中,我们提出了一个解决方案,以确定最优的购物路径,以定位商品的顾客的愿望清单。我们开发了一种基于图论的方法来发现基于货架物品布局和顾客购买模式的购物路径。我们还提出了一种有效的方法来推荐有利可图的购物路径,以交叉销售接近基本购物路径的潜在买入物品。我们的方法还有助于在购物时动态地更新商品列表和发现路径。提出的解决方案为顾客提供了丰富的购物体验。
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Wish-List Based Shopping Path Discovery and Profitable Path Recommendations
Retail customers find shopping in huge retail malls stressful due to various reasons such as being unable to locate the items, overcrowded stalls and long queues. In this paper, we present a solution to determine optimal shopping paths to locate the items based on the wish-list of a customer. We developed a graph theory based approach to discover shopping paths based on the shelf-item layout and customer's purchase patterns. We also propose an efficient approach to recommend profitable shopping paths to cross-sell potential buy-in items close to base shopping path. Our approach also facilitates updating the item list and discovering the paths dynamically while shopping. The proposed solution provides enriched shopping experience to customers.
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