• Title/Summary/Keyword: Personal Profile

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A Study on Filtering Method for E-mail Documents Based on Personal Profile (Personal Profiles 기반의 E-mail 문서 필터링 방법에 관한 연구)

  • Choi, Kyu-Jung;Lee, Tae-Hun;Kim, Myoung-Ki;Park, Ki-Hong
    • Proceedings of the Korea Information Processing Society Conference
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    • 2002.04a
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    • pp.245-248
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    • 2002
  • 요즘 E-mail은 중요한 통신수단 중 하나로 사용되고 있다. 그러나 상당수의 E-mail 문서들이 상업성 광고 E-mail과 같은 불필요한 정보를 포함한 채 우리들의 컴퓨터에 분포되어 있다. 본 논문에서는 이러한 문제를 해결하기 위하여 각각의 E-mail 문서들의 내용을 판단함으로써 불필요한 문서들을 자동적으로 필터링 하는 방법을 제안하고자 한다. 전통적인 필터링 방법들은 단어의 빈도수와 같은 단일 속성만을 다루기 때문에 놀은 정확도를 얻을 수 없다. 따라서 본 논문에서는 각각의 사용자에 의해 이미 수신되어진 E-mail 문서들로부터 Personal Profile을 만들고, 이 Personal Profile를 사용함으로써 새로운 E-mail 문서가 사용자에게 중요한지의 여부를 구별하여 주는 방법에 관하여 제안하고자 한다. 이러한 Profile은 E-mail 문서의 송신자, 테마, 유형과 같은 다중 속성 값으로 구성되어 있다. 실험결과로부터 본 논문에서 제안하는 방법이 전통적인 방법보다 더 나은 정확성을 보이고 있음을 알 수 있다.

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Indifference Problems of Personal Information Protection of Social Media Users due to Privacy Paradox (소셜미디어 사용자의 프라이버시 패러독스 현상으로 인한 개인정보 무관심 형태에 대한 연구)

  • Kim, Yeonjong;Park, Sanghyeok
    • Journal of Korea Society of Digital Industry and Information Management
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    • v.15 no.4
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    • pp.213-225
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    • 2019
  • Privacy paradox is a paradoxical behavior that provides personal information even though you are concerned about privacy. Social media users are also often concerned about their personal information exposure. It is even reluctant to describe personal information in profile. However, some users describe their personal information in detail on their profile, provide it freely when others request it, or post their own personal information. The survey was conducted using Google Docs centered on Facebook users. Structural equation model analysis was used for hypothesis testing. As an independent variable, we use personal information infringement experiences. As a mediator, we use privacy indifference, privacy concern, and the relationship with the act of providing personal information. Social media users have become increasingly aware of the fact that they can not distinguish between the real world and online world by strengthening their image and enhancing their image in the process of strengthening ties, sharing lots of information and enjoying themselves through various relationships. Therefore, despite the high degree of privacy indifference and high degree of privacy concern, the phenomenon of privacy paradox is also present in social media.

Service Profile Replication Scheme with Local Anchor for Next Generation Personal Communication Networks

  • Jinkyung Hwang;Bae, Eun-Shil;Park, Myong-Soon
    • Journal of Communications and Networks
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    • v.5 no.3
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    • pp.215-221
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    • 2003
  • It is expected that per-user customized services are widely used in next generation Personal Communication Network. To provide personalized services for each call, per-user service profiles are frequently referenced and signaling traffic is considerably large. Since the service calls are requested from the places where user stays, we can expect that the traffic is localized. In this paper, we propose a new service profile replication scheme, named Follow-Me Replication with local Anchor (FMRA). By replicating user's service profile in a user-specific location area, local anchor of each region, the signaling traffic for call and mobility can be distributed to local network. We compared the performance of the FMRA with two typical schemes: Intelligent Network-based !Central scheme and IMT-2000 based full replication scheme, as we refer it to Follow-Me Replication Unconditional (FMRU). Performance results indicate that FMRA lies between Central and FMRU schemes according to call to mobility ratio, and we identified the efficient ranges of CMR for FMRA depending on the various network parameters.

A Study on a Construction of Control System for the Tracking of a Speed Profile in the Personal Rapid Transit System (소형궤도차량 시스템에서 속도 프로파일 추종을 위한 제어시스템 구축에 관한 연구)

  • Lee, Jun-Ho;Ryu, Sang-Hwan
    • Proceedings of the KIEE Conference
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    • 2006.07b
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    • pp.1069-1070
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    • 2006
  • This study is concerned with the control system design using Labview Simulation Interface Toolkit and Matlab/simulink combined system for an application to the personal rapid transit system which has very short headway, requiring accurate speed control to avoid the impact between the vehicles. A simple equation of motion for a vehicle which is activated on the linear motor is introduced. A speed profile that should be tracked by a rear vehicle is produced based on the state information of the two vehicles(the preceding vehicle and the rear vehicle). The speed profile tracking control system is designed by Matlab/simulink. The simulation results show that the proposed control system is effective to evaluate the speed tracking performance.

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A Multimodal Profile Ensemble Approach to Development of Recommender Systems Using Big Data (빅데이터 기반 추천시스템 구현을 위한 다중 프로파일 앙상블 기법)

  • Kim, Minjeong;Cho, Yoonho
    • Journal of Intelligence and Information Systems
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    • v.21 no.4
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    • pp.93-110
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    • 2015
  • The recommender system is a system which recommends products to the customers who are likely to be interested in. Based on automated information filtering technology, various recommender systems have been developed. Collaborative filtering (CF), one of the most successful recommendation algorithms, has been applied in a number of different domains such as recommending Web pages, books, movies, music and products. But, it has been known that CF has a critical shortcoming. CF finds neighbors whose preferences are like those of the target customer and recommends products those customers have most liked. Thus, CF works properly only when there's a sufficient number of ratings on common product from customers. When there's a shortage of customer ratings, CF makes the formation of a neighborhood inaccurate, thereby resulting in poor recommendations. To improve the performance of CF based recommender systems, most of the related studies have been focused on the development of novel algorithms under the assumption of using a single profile, which is created from user's rating information for items, purchase transactions, or Web access logs. With the advent of big data, companies got to collect more data and to use a variety of information with big size. So, many companies recognize it very importantly to utilize big data because it makes companies to improve their competitiveness and to create new value. In particular, on the rise is the issue of utilizing personal big data in the recommender system. It is why personal big data facilitate more accurate identification of the preferences or behaviors of users. The proposed recommendation methodology is as follows: First, multimodal user profiles are created from personal big data in order to grasp the preferences and behavior of users from various viewpoints. We derive five user profiles based on the personal information such as rating, site preference, demographic, Internet usage, and topic in text. Next, the similarity between users is calculated based on the profiles and then neighbors of users are found from the results. One of three ensemble approaches is applied to calculate the similarity. Each ensemble approach uses the similarity of combined profile, the average similarity of each profile, and the weighted average similarity of each profile, respectively. Finally, the products that people among the neighborhood prefer most to are recommended to the target users. For the experiments, we used the demographic data and a very large volume of Web log transaction for 5,000 panel users of a company that is specialized to analyzing ranks of Web sites. R and SAS E-miner was used to implement the proposed recommender system and to conduct the topic analysis using the keyword search, respectively. To evaluate the recommendation performance, we used 60% of data for training and 40% of data for test. The 5-fold cross validation was also conducted to enhance the reliability of our experiments. A widely used combination metric called F1 metric that gives equal weight to both recall and precision was employed for our evaluation. As the results of evaluation, the proposed methodology achieved the significant improvement over the single profile based CF algorithm. In particular, the ensemble approach using weighted average similarity shows the highest performance. That is, the rate of improvement in F1 is 16.9 percent for the ensemble approach using weighted average similarity and 8.1 percent for the ensemble approach using average similarity of each profile. From these results, we conclude that the multimodal profile ensemble approach is a viable solution to the problems encountered when there's a shortage of customer ratings. This study has significance in suggesting what kind of information could we use to create profile in the environment of big data and how could we combine and utilize them effectively. However, our methodology should be further studied to consider for its real-world application. We need to compare the differences in recommendation accuracy by applying the proposed method to different recommendation algorithms and then to identify which combination of them would show the best performance.

Personalized Search Technique using Users' Personal Profiles (사용자 개인 프로파일을 이용한 개인화 검색 기법)

  • Yoon, Sung-Hee
    • The Journal of the Korea institute of electronic communication sciences
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    • v.14 no.3
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    • pp.587-594
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    • 2019
  • This paper proposes a personalized web search technique that produces ranked results reflecting user's query intents and individual interests. The performance of personalized search relies on an effective users' profiling strategy to accurately capture their interests and preferences. User profile is a data set of words and customized weights based on recent user queries and the topic words of web documents from their click history. Personal profile is used to expand a user query to the personalized query before the web search. To determine the exact meaning of ambiguous queries and topic words, this strategy uses WordNet to calculate semantic similarities to words in the user personal profile. Experimental results with query expansion and re-ranking modules installed on general search systems shows enhanced performance with this personalized search technique in terms of precision and recall.

Implementation of App System for Personalized Health Information Recommendation (사용자 맞춤형 건강정보 추천 앱 구현)

  • Park, Seong-min;Park, Jeong-soo;Lee, Yoon-kyu;Chae, Woo-Joon;Shin, Moon-sun
    • Proceedings of the Korean Institute of Information and Commucation Sciences Conference
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    • 2019.05a
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    • pp.316-318
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    • 2019
  • Recently, healthy life has become an issue in an aging society, and the number of people who have been interested in continuous health care for better life is increasing. In this paper, we implemented a personalized recommendation systm to provide convenient healthcare management for user. The PHR (Personal Health Record) of user could be stored in the server along with health related information such as lifestyle, disease, and physical condition. The users could be classified into similar clusters according to the PHR profile in order to provide healthcare contents to the users who had similar PHR profile. K-Means clustering was applied to generate clusters based on PHR profile and ACDT(Ant Colony Decision Tree) algorithm was used to provide personalised recommendation of health information stored in knowledge base. The app system developed in this paper is useful for users to perform healthcare themselves by providing information on serious diseases and lifestyle habits to be improved according to the clusters classified by PHR profile.

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A Multi-Agent MicroBlog Behavior based User Preference Profile Construction Approach

  • Kim, Jee-Hyun;Cho, Young-Im
    • Journal of the Korea Society of Computer and Information
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    • v.20 no.1
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    • pp.29-37
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    • 2015
  • Nowadays, the user-centric application based web 2.0 has replaced the web 1.0. The users gain and provide information by interactive network applications. As a result, traditional approaches that only extract and analyze users' local document operating behavior and network browsing behavior to build the users' preference profile cannot fully reflect their interests. Therefore this paper proposed a preference analysis and indicating approach based on the users' communication information from MicroBlog, such as reading, forwarding and @ behavior, and using the improved PersonalRank method to analyze the importance of a user to other users in the network and based on the users' communication behavior to update the weight of the items in the user preference. Simulation result shows that our proposed method outperforms the ontology model, TREC model, and the category model in terms of 11SPR value.

$\divideontimes$ Bluetooth 특집 - 블루투스를 이용한 이동통신서비스

  • 이인홍
    • TTA Journal
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    • s.75
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    • pp.36-42
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    • 2001
  • ''Cable Replacement'' 개념으로 시작된 Bluetooth 기술은 많은 장점을 가지고 있으며, 이를 이용한 다양한 Business model이 개발 중에 있다. 이런 Bluetooth 기술은 이동통신 사업자에게는 기회와 위협요인을 모두 지니고 있다. 본고에서는 실제 SK텔레콤에서 개발한 Bluetooth 서비스 기능을 중심으로 설명하고 이동통신 서비스에 적합한 Bluetooth 사업 모델에 대해 언급한다. 현재 개발된 Bluetooth 응용 profile들은 셀룰라폰을 중심으로PAn(Personal Area Network)을 구성하고 다양한 종류의 디바이스기기에서 접속하는 것을 시험하였다. 개발된 응용profile로는 셀룰라폰-노트북간의 Dialup Networking 기능, 셀룰라폰-키보드간의 무선입력 기능 등이다. 이런 기능들을 바탕으로 무선데이터 시장은 더욱 활성화될 것으로 전망되며 기타 유용한 응용분야도 가능하다.

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Personal Environment Service and Technology Based on Smart Phone (스마트폰 기반의 개인 환경 서비스 및 기술)

  • Oh, Jong-Taek
    • The Journal of Korean Institute of Communications and Information Sciences
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    • v.38C no.5
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    • pp.454-463
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    • 2013
  • The smart phone has already proliferated, and the smart devices of the living appliances and vehicles embedded with communication device, sensors and connected with the smart phone have been developed. Currently it can provide simple remote controller and user interfaces, it could be envisaged that intelligent technology is converged with the smart phone, and Personal Environment Service in which the smart devices are configured automatically as reflecting personal preference, device attribute, and living environment condition would be activated in the future. In this paper PES services, system architecture, and core technology are described.