Abstract

With the continuous progress of world economy and human society, people's life span is increasingly growing and as a result, the whole world is stepping into the aging society. In the aging society, the elder people generally call for specialized healthcare services that are often provisioned by their residential areas or houses or communities. In this situation, recommending appropriate houses or real estates to the elder people becomes a necessity to help create a healthy elderly care service community, which contribute much to the stability and health of the whole nation even all the world. However, the personalized preferences of the elder people are often hard to capture and profile as the requirements from the elder people are generally vague and undetermined. Moreover, the profiles of the elder people stored in different cloud platforms are often sensitive enough, which block the rational and full use of the valuable elder people profiles for better elder people preference prediction. Considering the above two challenging issues, in this research work, we propose a privacy-aware real estate recommendation method for elderly care based on the historical consumption behaviors of the elder people stored in cloud platforms. At last, the effectiveness and efficiency of the proposal are validated by a series of experiments based on a real-world dataset. Comparison results show the feasibility of the proposal in this research work.

Highlights

  • With the continuous progress of world economy and human society, people’s life span is increasingly growing and as a result, the whole world is stepping into the aging society

  • Considering the above two challenging issues, in this research work, we propose a privacy-aware real estate recommendation method for elderly care based on the historical consumption behaviors of the elder people and the Locality-Sensitive Hashing (LSH) technique

  • Comparison results show the feasibility of the proposal in this research work

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Summary

INTRODUCTION

With the continuous progress of world economy and human society, people’s life span is increasingly growing and as a result, the whole world is stepping into the aging society. When an older individual intends to buy a real estate for better healthcare service, too many candidate real estate companies are present as well as their developed various real estate products such as houses, kindergartens and hospitals In this situation, recommending appropriate houses or real estates to the elder people becomes a valuable and necessary thing to help create a healthy elderly care service community, which contributes much to the stability and health of the whole nation even all the world or society. Considering the above two challenging issues, in this research work, we propose a privacy-aware real estate recommendation method for elderly care based on the historical consumption behaviors (stored in cloud platforms) of the elder people and the Locality-Sensitive Hashing (LSH) technique.

RELATED WORK
Sensitive Information Securing for Recommender Systems
Motivation and Formalization
PRIVACY-PRESERVING REAL ESTATE PRODUCT RECOMMENDATION SOLUTION
End For
Configurations
Results
CONCLUSION
Full Text
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