• 제목/요약/키워드: personalized approach

검색결과 172건 처리시간 0.034초

Personalized Size Recommender System for Online Apparel Shopping: A Collaborative Filtering Approach

  • Dongwon Lee
    • 한국컴퓨터정보학회논문지
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    • 제28권8호
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    • pp.39-48
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    • 2023
  • 본 연구는 의류의 디자인 간 치수의 불일치와 비표준화로 인해 온라인 구매 시 발생하는 치수 선택의 오류 문제를 해결할 수 있는 방안을 제시하기 위해 수행되었다. 본 논문은 구매자에게 개인화된 치수를 제시할 수 있는 기계 학습 기반 추천 시스템의 구현 방안을 다루고 있다. 온라인 상거래로부터 발생된 구매 데이터를 사용하여 비음수 행렬 분해(NMF), 특이값 행렬 분해(SVD), k-최근접 이웃(KNN), 공동 클러스터링(Co-Clustering) 등 여러 검증된 협업 필터링 알고리즘을 훈련하였고, 이들 간에 성능을 비교하였다. 연구 결과, 비음수 행렬 분해 (NMF) 알고리즘이 다른 알고리즘들보다 뛰어난 성능을 보임을 확인할 수 있었다. 동일한 계정을 사용하는 여러 구매자가 포함되는 구매 데이터의 특성에도 불구하고, 제안 모형은 충분한 정확도를 보였다. 본 연구의 결과는 치수 선택의 오류로 인한 반품률을 감소하고 전자상거래 플랫폼에서의 고객 경험을 향상시키는 데 기여할 것으로 기대된다.

한국 보건의료 빅데이터 플랫폼에서 웹 기반 OLAP 서버 구현 (An Implementation of Web-Enabled OLAP Server in Korean HealthCare BigData Platform)

  • ;김진혁;정승현;이경희;조완섭
    • 한국콘텐츠학회:학술대회논문집
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    • 한국콘텐츠학회 2017년도 춘계 종합학술대회 논문집
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    • pp.33-34
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    • 2017
  • In 2015, Ministry of Health and Welfare of Korea announced a research and development plan of using Korean healthcare data to support decision making, reduce cost and enhance a better treatment. This project relies on the adoption of BigData technology such as Apache Hadoop, Apache Spark to store and process HealthCare Data from various institution. Here we present an approach a design and implementation of OLAP server in Korean HealthCare BigData platform. This approach is used to establish a basis for promoting personalized healthcare research for decision making, forecasting disease and developing customized diagnosis and treatment.

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개인화 된 추천시스템을 위한 사용자-상품 매트릭스 축약기법 (User-Item Matrix Reduction Technique for Personalized Recommender Systems)

  • 김경재;안현철
    • Journal of Information Technology Applications and Management
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    • 제16권1호
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    • pp.97-113
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    • 2009
  • Collaborative filtering(CF) has been a very successful approach for building recommender system, but its widespread use has exposed to some well-known problems including sparsity and scalability problems. In order to mitigate these problems, we propose two novel models for improving the typical CF algorithm, whose names are ISCF(Item-Selected CF) and USCF(User-Selected CF). The modified models of the conventional CF method that condense the original dataset by reducing a dimension of items or users in the user-item matrix may improve the prediction accuracy as well as the efficiency of the conventional CF algorithm. As a tool to optimize the reduction of a user-item matrix, our study proposes genetic algorithms. We believe that our approach may relieve the sparsity and scalability problems. To validate the applicability of ISCF and USCF, we applied them to the MovieLens dataset. Experimental results showed that both the efficiency and the accuracy were enhanced in our proposed models.

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Optimal Diversity of Recommendation List for Recommender Systems based on the Users' Desire Diversity

  • Mehrjoo, Saeed;Mehrjoo, Mehrdad;Hajipour, Farahnaz
    • Journal of Information Science Theory and Practice
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    • 제7권3호
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    • pp.31-39
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    • 2019
  • Nowadays, recommender systems suggest lists of items to users considering not only accuracy but also diversity and novelty. However, suggesting the most diverse list of items to all users is not always acceptable, since different users prefer and/or tolerate different degree of diversity. Hence suggesting a personalized list with a diversity degree considering each user preference would improve the efficiency of recommender systems. The main contribution and novelty of this study is to tune the diversity degree of the recommendation list based on the users' variety-seeking feature, which ultimately leads to users' satisfaction. The proposed approach considers the similarity of users' desire diversity as a new parameter in addition to the usual similarity of users in the state-of-the-art collaborative filtering algorithm. Experimental results show that the proposed approach improves the personal diversity criterion comparing to the closest method in the literature, without decreasing accuracy.

Resistance to Thyroid Hormone Syndrome Mutation in THRB and THRA: A Review

  • Jung Eun Moon
    • Journal of Interdisciplinary Genomics
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    • 제5권2호
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    • pp.32-34
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    • 2023
  • Resistance to thyroid hormone syndrome (RTH) is a genetic disease caused by the mutation of either the thyroid hormone receptor-β (THRB) gene or the thyroid hormone receptor-α (THRA) gene. RTH caused by THRB mutations (RTH-β) is characterized by the target tissue's response to thyroid hormone, high levels of triiodothyronine and/or thyroxine, and inappropriate secretion of thyroid-stimulating hormone (TSH). THRA mutation is characterized by hypothyroidism that affects gastrointestinal, neurological, skeletal, and myocardial functions. Most patients do not require treatment, and some patients may benefit from medication therapy. These syndromes are characterized by decreased tissue sensitivity to thyroid hormones, generating various clinical manifestations. Thus, clinical changes of resistance to thyroid hormones must be recognized and differentiated, and an approach to the practice of personalized medicine through an interdisciplinary approach is needed.

Spinopelvic Motion: A Simplified Approach to a Complex Subject

  • Cale A. Pagan;Theofilos Karasavvidis;Jonathan M. Vigdorchik;Charles A. DeCook
    • Hip & pelvis
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    • 제36권2호
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    • pp.77-86
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    • 2024
  • Knowledge of the relationship between the hip and spine is essential in the effort to minimize instability and improve outcomes following total hip arthroplasty (THA). A detailed yet straightforward preoperative imaging workup can provide valuable information on pelvic positioning, which may be helpful for optimum placement of the acetabular cup. For a streamlined preoperative assessment of THA candidates, classification systems with a capacity for providing a more personalized approach to performance of THA have been introduced. Familiarity with these systems and their clinical application is important in the effort to optimize component placement and reduce the risk of instability. Looking ahead, the principles of the hip-spine relationship are being integrated using emerging innovative technologies, promising further streamlining of the evaluation process.

서비스 매쉬업 개발자를 위한 유사도 기반 서비스 추천 방법 (Similarity-based Service Recommendation for Service-Mashup Developers)

  • 김현승;고인영
    • 정보과학회 논문지
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    • 제44권9호
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    • pp.908-917
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    • 2017
  • 웹 서비스 기술이 각광받고 그 사용이 확대됨에 따라, 복잡하고 동적인 서비스 환경에서 사용자에게 적절한 서비스를 추천하는 방법에 대한 연구가 활발히 진행되고 있다. 또한 효과적인 서비스 매쉬업 개발을 위해 서비스를 추천하는 방법이 제안되었으나, 기존의 매쉬업 단위 서비스 추천 방식은 여러 매쉬업 개발자의 성향을 분석하여 그에 맞는 서비스를 추천하지는 못하였다. 이에 본 논문에서는 매쉬업 개발자들이 만든 서비스 매쉬업의 집합들과 추천 대상 개발자의 매쉬업 집합 사이의 유사도를 측정하고 유사한 매쉬업 집합들로부터 서비스를 추천하는 방법을 제안한다. 그리고 ProgrammableWeb에서 수집된 매쉬업 데이터로 실험한 결과를 비교 분석하여 본 연구의 방법이 사용자 기반 협업 필터링 알고리즘보다 높은 정확도와 재현율을 보임을 확인하였다.

만성질환 예방을 위한 맞춤형 건강관리 서비스의 접근전략과 발전방향 (Strategies to approach the customized health management service to prevent chronic diseases)

  • 김영복
    • 보건교육건강증진학회지
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    • 제33권4호
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    • pp.89-100
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    • 2016
  • Objectives: Life style modification leads to decrease health risk and change of health status for person at health risk. This study aimed to suggest essential components and effective strategies for customized health management service to provide individual and risk group in public and private health care organizations. Methods: To systematic review the essential component of health management service, I performed to collect political legislation, research papers, reports, publication and public release for heath management service from 2008 to 2016. Essential components of heath management service were service scope, service design, organizations and applied technology. Results: Service cope was composed of health risk factors, such as smoking, drinking, nutrition, physical activity and weight control. Main strategies were customized health management services, personalized behavior modification programs, evidence-based service protocol, utilization of information and communications technology (ICT), multi-dimension and multi-level approach, and public and private organizations partnership through health policies and health care system. Conclusions: To make the most of the limited resources, it should require a systematic approach that focuses on continuous monitoring and partnership of health management service.

차원 감소 기법을 이용한 전자 상거래 추천 시스템 (Development of a Recommender System for E-Commerce Sites Using a Dimensionality Reduction Technique)

  • 김용수;염봉진
    • 대한산업공학회지
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    • 제36권3호
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    • pp.193-202
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    • 2010
  • The recommender system is a typical software solution for personalized services which are now popular in e-commerce sites. Most of the existing recommender systems are based on customers' explicit rating data on items (e.g., ratings on movies), and it is only recently that recommender systems based on implicit ratings have been proposed as a better alternative. Implicit ratings of a customer on those items that are clicked but not purchased can be inferred from the customer's navigational and behavioral patterns. In this article, a dimensionality reduction (DR) technique is newly applied to the implicit rating-based recommender system, and its effectiveness is assessed using an experimental e-commerce site. The experimental results indicate that the performance of the proposed approach is superior or at least similar to the conventional collaborative filtering (CF)-based approach unless the number of recommended products is 'large.' In addition, the proposed approach requires less memory space and is computationally more efficient.

정규 분포 모델을 이용한 화물 적재 문제의 이론적 해법 도출 및 활용 (On the Theoretical Solution and Application to Container Loading Problem using Normal Distribution Based Model)

  • 정승환
    • 산업경영시스템학회지
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    • 제45권4호
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    • pp.240-246
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    • 2022
  • This paper introduces a container loading problem and proposes a theoretical approach that efficiently solves it. The problem is to determine a proper weight of products loaded on a container that is delivered by third party logistics (3PL) providers. When the company pre-loads products into a container, typically one or two days in advance of its delivery date, various truck weights of 3PL providers and unpredictability of the randomness make it difficult for the company to meet the total weight regulation. Such a randomness is mainly due to physical difference of trucks, fuel level, and personalized equipment/belongings, etc. This paper provides a theoretical methodology that uses historical shipping data to deal with the randomness. The problem is formulated as a stochastic optimization where the truck randomness is reflected by a theoretical distribution. The data analytics solution of the problem is derived, which can be easily applied in practice. Experiments using practical data reveal that the suggested approach results in a significant cost reduction, compared to a simple average heuristic method. This study provides new aspects of the container loading problem and the efficient solving approach, which can be widely applied in diverse industries using 3PL providers.