论文标题

使用家庭展示活动的住房市场预测

Housing Market Forecasting using Home Showing Events

论文作者

Zha, Yuanyuan, Parker, Susan T., Foster, James J., Sokolov, Vadim

论文摘要

买卖双方都面临房地产交易的不确定性,大约是什么时候进行交易以及以什么费用。买卖双方都在不了解大型房地产市场的当前和未来状态下做出决定。当前的方法取决于对历史交易的分析来定价财产。但是,正如我们在本文中所显示的那样,仅交易数据不能用于预测需求。我们根据微观家庭展览事件数据开发了住房需求指数,该数据可以在非常精细的时间和空间规模上为买卖双方提供决策支持。我们使用统计建模来开发住房市场需求预测长达二十周,使用大量的,高速数据的家庭展示,上市事件和历史性销售数据。我们使用来自独特的专有数据集中的700万个单独记录的数据证明了我们的分析,该数据集以前尚未在房地产市场应用中探讨。然后,我们采用一系列预测模型来估计当前和预测未来的住房需求。住房需求指数可深入了解市场上房屋的需求水平以及当前需求在多大程度上代表未来的期望。结果,这些指数为有关何时出售或购买的重要问题提供了决策支持,或者是住房需求市场中存在的弹性,这会影响价格谈判,价格提高和价格定价期望。此预测特别有价值,因为它可以根据我们的预测住房需求指数来帮助买卖双方在当前和未来的州内进行房屋交易或调整其房价,以帮助买卖双方及时了解房屋交易。

Both buyers and sellers face uncertainty in real estate transactions in about when to time a transaction and at what cost. Both buyers and sellers make decisions without knowing the present and future state of the large and dynamic real estate market. Current approaches rely on analysis of historic transactions to price a property. However, as we show in this paper, the transaction data alone cannot be used to forecast demand. We develop a housing demand index based on microscopic home showings events data that can provide decision-making support for buyers and sellers on a very granular time and spatial scale. We use statistical modeling to develop a housing market demand forecast up to twenty weeks using high-volume, high-velocity data on home showings, listing events, and historic sales data. We demonstrate our analysis using data from seven million individual records sourced from a unique, proprietary dataset that has not previously been explored in application to the real estate market. We then employ a series of predictive models to estimate current and forecast future housing demand. A housing demand index provides insight into the level of demand for a home on the market and to what extent current demand represents future expectation. As a result, these indices provide decision-making support into important questions about when to sell or buy, or the elasticity present in the housing demand market, which impact price negotiations, price-taking and price-setting expectations. This forecast is especially valuable because it helps buyers and sellers to know on a granular and timely basis if they should engage in a home transaction or adjust their home price both in current and future states based on our forecasted housing demand index.

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