• 제목/요약/키워드: network theory

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한국사회의 문화적 특성에 관한 연구: 문화합의이론을 통한 범주의 발견 (A Study on the Cultural Characteristics of Korean Society: Discovering Its Categories Using the Cultural Consensus Model)

  • 유민봉;심형인
    • 한국심리학회지 : 문화 및 사회문제
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    • 제19권3호
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    • pp.457-485
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    • 2013
  • 본 연구는 기존의 Hofstede(1980, 1991), Schwartz(1992, 1994), Trompenaars & Hampden-Turner (1997), House et al.(2004) 등과 같은 국가 간 비교문화연구가 한국과 같은 비서구권 문화를 설명하는 데에는 한계가 있다는 인식 하에 한국사회의 문화적 특성을 발견하여 범주화 및 개념화를 시도하였다. 한국사회의 문화적 특성에 대한 기존의 국내연구들은 연구자의 경험과 직관에 의한 발견적인(heuristic) 접근방법이라는 한계가 있다. 이에 본 연구는 한국사회의 문화적 특성을 보다 타당하게 기술할 수 있는 범주를 찾기 위해 문화합의이론을 적용하였다. 구체적으로 자유목록에 대한 빈도분석, 파일분류, 다차원척도법 및 네트워크 분석을 실시하였다. 결과적으로 한국문화는 '공적자아인식, 집단중시, 온정적 인간관계, 위계성 중시, 결과중시' 라는 5개의 범주로 구분할 수 있었다. 한국문화의 특성에 대한 이러한 범주의 발견은 앞으로 한국사회현상을 설명하는데 중요한 변수로 응용되고 적용할 수 있을 것이다.

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Essential Competencies for Digital Workforce of Provincial Office in Thailand Using Delphi Technique

  • Rujira Rikharom;Wirapong, Chansanam
    • Journal of Information Science Theory and Practice
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    • 제11권4호
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    • pp.51-81
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    • 2023
  • This study aimed to study its required performance requirements and proposes a competency framework necessary for the digital workforce of the Provincial Offices in Thailand. The specific primary informants were determined as 17 people. The collecting process was performed using the Delphi technique and the electronic Delphi technique in two phases, totaling four rounds. In the first time, a structured interview was used to conduct online interviews for 15 people. Content validation was performed to determine issues of the competency framework essential for the digital workforce with 7-level scaled questionnaires, and then online reviews were collected between 10-15 people (2nd to 4th times). A consensus was found and confirmed four times with descriptive statistics, namely frequency, mean, standard deviation, mode, median, and the absolute value of the difference between mode and median, interquartile range, and application of the conceptual framework. The research findings revealed that the essential competency requirements for the digital workforce were covered in digital literacy (six aspects), digital skills (four aspects), and digital characteristics (four aspects). Consensus was confirmed for 84 issues. Therefore, it was concluded that 61 points for building an essential competency framework for the digital workforce made them effective in using digital technology as a labor-saving instrument, as well as for expanding the breadth of development of digital expertise to include members of the organization's digital practitioner network. This development will benefit government agencies and the private sector, both national and international, in the future.

Exploring Near-Future Potential Extreme Events(X-Events) in the Field of Science and Technology -With a Focus on Government Emergency Planning Officers FGI Results -

  • Sang-Keun Cho;Jong-Hoon Kim;Ki-Woon Kim;In-Chan Kim;Myung-Sook Hong;Jun-Chul Song;Sang-Hyuk Park
    • International Journal of Advanced Culture Technology
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    • 제11권4호
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    • pp.310-316
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    • 2023
  • This study aims to predict uncertain future scenarios that may unfold in South Korea in the near future, utilizing the theory of extreme events(X-events). A group of 32 experts, consisting of government emergency planning officers, was selected as the focus group to achieve this objective. Using the Focus Group Interview (FGI) technique, opinions were gathered from this focus group regarding potential X-events that may occur within the advanced science and technology domains over the next 10 years. The analysis of these opinions revealed that government emergency planning officers regarded the "Obsolescence of current technology and systems," particularly in the context of cyber network paralysis as the most plausible X-event within science and technology. They also put forth challenging and intricate opinions, including the emergence of new weapon systems and ethical concerns associated with artificial intelligence (AI). Given that X-events are more likely to emerge in unanticipated areas rather than those that are widely predicted, the results obtained from this study carry significant importance. However, it's important to note that this study is grounded in a limited group of experts, highlighting the necessity for subsequent research involving a more extensive group of experts. This research seeks to stimulate studies on extreme events at a national level and contribute to the preparation for future X-event predictions and strategies for addressing them.

Apply evolved grey-prediction scheme to structural building dynamic analysis

  • Z.Y. Chen;Yahui Meng;Ruei-Yuan Wang;Timothy Chen
    • Structural Engineering and Mechanics
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    • 제90권1호
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    • pp.19-26
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    • 2024
  • In recent years, an increasing number of experimental studies have shown that the practical application of mature active control systems requires consideration of robustness criteria in the design process, including the reduction of tracking errors, operational resistance to external disturbances, and measurement noise, as well as robustness and stability. Good uncertainty prediction is thus proposed to solve problems caused by poor parameter selection and to remove the effects of dynamic coupling between degrees of freedom (DOF) in nonlinear systems. To overcome the stability problem, this study develops an advanced adaptive predictive fuzzy controller, which not only solves the programming problem of determining system stability but also uses the law of linear matrix inequality (LMI) to modify the fuzzy problem. The following parameters are used to manipulate the fuzzy controller of the robotic system to improve its control performance. The simulations for system uncertainty in the controller design emphasized the use of acceleration feedback for practical reasons. The simulation results also show that the proposed H∞ controller has excellent performance and reliability, and the effectiveness of the LMI-based method is also recognized. Therefore, this dynamic control method is suitable for seismic protection of civil buildings. The objectives of this document are access to adequate, safe, and affordable housing and basic services, promotion of inclusive and sustainable urbanization, implementation of sustainable disaster-resilient construction, sustainable planning, and sustainable management of human settlements. Simulation results of linear and non-linear structures demonstrate the ability of this method to identify structures and their changes due to damage. Therefore, with the continuous development of artificial intelligence and fuzzy theory, it seems that this goal will be achieved in the near future.

The efficient data-driven solution to nonlinear continuum thermo-mechanics behavior of structural concrete panel reinforced by nanocomposites: Development of building construction in engineering

  • Hengbin Zheng;Wenjun Dai;Zeyu Wang;Adham E. Ragab
    • Advances in nano research
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    • 제16권3호
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    • pp.231-249
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    • 2024
  • When the amplitude of the vibrations is equivalent to that clearance, the vibrations for small amplitudes will really be significantly nonlinear. Nonlinearities will not be significant for amplitudes that are rather modest. Finally, nonlinearities will become crucial once again for big amplitudes. Therefore, the concrete panel system may experience a big amplitude in this work as a result of the high temperature. Based on the 3D modeling of the shell theory, the current work shows the influences of the von Kármán strain-displacement kinematic nonlinearity on the constitutive laws of the structure. The system's governing Equations in the nonlinear form are solved using Kronecker and Hadamard products, the discretization of Equations on the space domain, and Duffing-type Equations. Thermo-elasticity Equations. are used to represent the system's temperature. The harmonic solution technique for the displacement domain and the multiple-scale approach for the time domain are both covered in the section on solution procedures for solving nonlinear Equations. An effective data-driven solution is often utilized to predict how different systems would behave. The number of hidden layers and the learning rate are two hyperparameters for the network that are often chosen manually when required. Additionally, the data-driven method is offered for addressing the nonlinear vibration issue in order to reduce the computing cost of the current study. The conclusions of the present study may be validated by contrasting them with those of data-driven solutions and other published articles. The findings show that certain physical and geometrical characteristics have a significant effect on the existing concrete panel structure's susceptibility to temperature change and GPL weight fraction. For building construction industries, several useful recommendations for improving the thermo-mechanics' behavior of structural concrete panels are presented.

Integrating physics-based fragility for hierarchical spectral clustering for resilience assessment of power distribution systems under extreme winds

  • Jintao Zhang;Wei Zhang;William Hughes;Amvrossios C. Bagtzoglou
    • Wind and Structures
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    • 제39권1호
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    • pp.1-14
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    • 2024
  • Widespread damages from extreme winds have attracted lots of attentions of the resilience assessment of power distribution systems. With many related environmental parameters as well as numerous power infrastructure components, such as poles and wires, the increased challenge of power asset management before, during and after extreme events have to be addressed to prevent possible cascading failures in the power distribution system. Many extreme winds from weather events, such as hurricanes, generate widespread damages in multiple areas such as the economy, social security, and infrastructure management. The livelihoods of residents in the impaired areas are devastated largely due to the paucity of vital utilities, such as electricity. To address the challenge of power grid asset management, power system clustering is needed to partition a complex power system into several stable clusters to prevent the cascading failure from happening. Traditionally, system clustering uses the Binary Decision Diagram (BDD) to derive the clustering result, which is time-consuming and inefficient. Meanwhile, the previous studies considering the weather hazards did not include any detailed weather-related meteorologic parameters which is not appropriate as the heterogeneity of the parameters could largely affect the system performance. Therefore, a fragility-based network hierarchical spectral clustering method is proposed. In the present paper, the fragility curve and surfaces for a power distribution subsystem are obtained first. The fragility of the subsystem under typical failure mechanisms is calculated as a function of wind speed and pole characteristic dimension (diameter or span length). Secondly, the proposed fragility-based hierarchical spectral clustering method (F-HSC) integrates the physics-based fragility analysis into Hierarchical Spectral Clustering (HSC) technique from graph theory to achieve the clustering result for the power distribution system under extreme weather events. From the results of vulnerability analysis, it could be seen that the system performance after clustering is better than before clustering. With the F-HSC method, the impact of the extreme weather events could be considered with topology to cluster different power distribution systems to prevent the system from experiencing power blackouts.

B2B 마켓플레이스에서 신뢰의 선행요인과 몰입에 미치는 영향 (Antecedents of Trust and Effects on Committment in B2B e-Marketplace)

  • 오상현;김상현
    • 한국유통학회지:유통연구
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    • 제13권1호
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    • pp.1-33
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    • 2008
  • 초창기에 기업과 소비자간(B2C) 부분에 집중되었던 전자상거래에 대한 관심이 최근 기업과 기업간(B2B) 부문으로 이동하고 있으며 그 성장잠재력 측면에서 크게 주목을 받고 있다. B2B 전자상거래 부문에서도 가장 두드리진 움직임을 보이고 있는 거래유형이 바로 B2B e-마켓플레이스이다. e-마켓플레이스란 인터넷상에서 다수의 공급자와 수요자들이 대면하고 거래를 이를 수 있도록 해주는 가상의 시장의 의미한다. 인터넷을 기반으로 하는 마켓플레이스가 구매, 판매, 고객지원, 제품, 서비스 등을 위한 새로운 비즈니스의 장이 되고 있어 현재 다수의 기업들이 참여하고 있다. 기존의 기업 간 전자상거래가 중개자 없이 개별기업 차원에서 이용되었다면, 마켓플레이스는 다수의 공급자와 수요자들이 인터넷상에서 정보를 교환하고 거래를 수행함으로써 기업 간 거래방식에 상당한 영향을 미치고 있어 학계나 업계의 주요 관심사로 떠오르고 있다. 본 연구의 목적은 B2B e-마켓플레이스 운영기업의 관점에서 e-마켓플레이스 참여기업의 신뢰 형성요인과 신뢰가 몰입에 미치는 영향에 대해 실증적으로 검증해 보고자 한다. 신뢰의 선행요인을 파악하기 위해 기존의 기업간 거래 관계 형성 요인 및 전자상거래 환경에서 신뢰의 중요성에 대한 연구 결과를 폭넓게 수용하여 인터넷을 기반으로 하는 B2B e-마켓플레이스 상황에 적합한 신뢰형성 요인으로 네트워크 외부성, 상호작용성, 공정성, 공유정보의 질 및 제도적 보장을 제시하였으며, 신뢰가 몰입의 두 차원 즉 태도적 몰입과 행동적 몰입에 미치는 영향에 대해 검토하였다. MRO e-마켓플레이스를 이용하고 있는 187개 참여기업을 대상으로 한 실증분석 결과, e-마켓플레이스 신뢰에 영향을 미치는 요인으로 네트워크 외부성, 상호작용성, 공정성 및 제도적 보장으로 나타났으나 공유정보의 질이 신뢰에 긍정적인 영향을 미칠 것이라는 가설은 채택되지 못하였다. 신뢰와 몰입간 관계에서 신뢰는 태도적 몰입과 행동적 몰입에 정(+)의 영향을 미치는 것으로 나타났으며, 태도적 몰입은 행동적 몰입에 긍정적인 영향을 미치는 것으로 실증분석 결과 나타났다. 이러한 결과를 토대로 e-마켓플레이스 운영기업이 감안해야 할 몇 가지 주요 관리적 시사점에 대해 논의하였다.

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A hybrid algorithm for the synthesis of computer-generated holograms

  • Nguyen The Anh;An Jun Won;Choe Jae Gwang;Kim Nam
    • 한국광학회:학술대회논문집
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    • 한국광학회 2003년도 하계학술발표회
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    • pp.60-61
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    • 2003
  • A new approach to reduce the computation time of genetic algorithm (GA) for making binary phase holograms is described. Synthesized holograms having diffraction efficiency of 75.8% and uniformity of 5.8% are proven in computer simulation and experimentally demonstrated. Recently, computer-generated holograms (CGHs) having high diffraction efficiency and flexibility of design have been widely developed in many applications such as optical information processing, optical computing, optical interconnection, etc. Among proposed optimization methods, GA has become popular due to its capability of reaching nearly global. However, there exits a drawback to consider when we use the genetic algorithm. It is the large amount of computation time to construct desired holograms. One of the major reasons that the GA' s operation may be time intensive results from the expense of computing the cost function that must Fourier transform the parameters encoded on the hologram into the fitness value. In trying to remedy this drawback, Artificial Neural Network (ANN) has been put forward, allowing CGHs to be created easily and quickly (1), but the quality of reconstructed images is not high enough to use in applications of high preciseness. For that, we are in attempt to find a new approach of combiningthe good properties and performance of both the GA and ANN to make CGHs of high diffraction efficiency in a short time. The optimization of CGH using the genetic algorithm is merely a process of iteration, including selection, crossover, and mutation operators [2]. It is worth noting that the evaluation of the cost function with the aim of selecting better holograms plays an important role in the implementation of the GA. However, this evaluation process wastes much time for Fourier transforming the encoded parameters on the hologram into the value to be solved. Depending on the speed of computer, this process can even last up to ten minutes. It will be more effective if instead of merely generating random holograms in the initial process, a set of approximately desired holograms is employed. By doing so, the initial population will contain less trial holograms equivalent to the reduction of the computation time of GA's. Accordingly, a hybrid algorithm that utilizes a trained neural network to initiate the GA's procedure is proposed. Consequently, the initial population contains less random holograms and is compensated by approximately desired holograms. Figure 1 is the flowchart of the hybrid algorithm in comparison with the classical GA. The procedure of synthesizing a hologram on computer is divided into two steps. First the simulation of holograms based on ANN method [1] to acquire approximately desired holograms is carried. With a teaching data set of 9 characters obtained from the classical GA, the number of layer is 3, the number of hidden node is 100, learning rate is 0.3, and momentum is 0.5, the artificial neural network trained enables us to attain the approximately desired holograms, which are fairly good agreement with what we suggested in the theory. The second step, effect of several parameters on the operation of the hybrid algorithm is investigated. In principle, the operation of the hybrid algorithm and GA are the same except the modification of the initial step. Hence, the verified results in Ref [2] of the parameters such as the probability of crossover and mutation, the tournament size, and the crossover block size are remained unchanged, beside of the reduced population size. The reconstructed image of 76.4% diffraction efficiency and 5.4% uniformity is achieved when the population size is 30, the iteration number is 2000, the probability of crossover is 0.75, and the probability of mutation is 0.001. A comparison between the hybrid algorithm and GA in term of diffraction efficiency and computation time is also evaluated as shown in Fig. 2. With a 66.7% reduction in computation time and a 2% increase in diffraction efficiency compared to the GA method, the hybrid algorithm demonstrates its efficient performance. In the optical experiment, the phase holograms were displayed on a programmable phase modulator (model XGA). Figures 3 are pictures of diffracted patterns of the letter "0" from the holograms generated using the hybrid algorithm. Diffraction efficiency of 75.8% and uniformity of 5.8% are measured. We see that the simulation and experiment results are fairly good agreement with each other. In this paper, Genetic Algorithm and Neural Network have been successfully combined in designing CGHs. This method gives a significant reduction in computation time compared to the GA method while still allowing holograms of high diffraction efficiency and uniformity to be achieved. This work was supported by No.mOl-2001-000-00324-0 (2002)) from the Korea Science & Engineering Foundation.

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네트노그라피를 이용한 공개 소프트웨어의 개발 및 확산 패턴 분석에 관한 연구 - 자바스크립트 프레임워크 사례를 중심으로 - (Tracing the Development and Spread Patterns of OSS using the Method of Netnography - The Case of JavaScript Frameworks -)

  • 강희숙;윤인환;이희상
    • 경영과정보연구
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    • 제36권3호
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    • pp.131-150
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    • 2017
  • 본 연구의 목적은 공개 소프트웨어(Open Source Software, 이하 OSS)가 운영 기간 내 주변의 행위자들과 관계를 수립하는 동안 OSS의 개발 및 확산 패턴을 확인하는 것으로, OSS 참여자들의 변화 패턴을 조사하기 위해 OSS 통과시간을 기반으로 그 변화 양상을 추적할 수 있는 온라인 데이터와 네트노그라피 방법을 이용하였다. 이를 위해 대표적인 OSS 자바스크립트 프레임워크인 jQuery, MooTools, YUI 등 이상 세 가지 사례에 대하여 블로그, 웹 서치와 함께 GitHub 공개 API(Application Programming Interface)로 수집된 데이터를 활용하였다. 본 연구에서는 OSS 변형 과정의 변화 패턴을 분류하기 위하여 행위자-네트워크 이론의 전환(translation) 과정을 적용하였으며, 관찰된 OSS 변형 과정을 살펴보면 다음과 같다. 먼저, '프로젝트 개시' 단계에서 소스 코드, 프로젝트 책임자 및 관계자, 내부 참여자 등과 같은 세 가지 유형의 OSS 관련 행위자들을 확인하였고, 그들 사이의 관계성을 개념화 하였다. 이후 프로젝트 책임자가 최초로 프로젝트를 착수하는 '프로젝트 성장' 단계는 관계자들에 의해 소스 코드가 유지 보수되는 과정을 통해 개선된다. 마지막으로 OSS는 홍보 활동을 통해 참여자들의 관찰기를 갖고, 소스 코드 사용을 통해 학습기를 거친 사용자가 본격적으로 등장함으로써 '참여자의 도약' 단계로 진입한다. 이 시기에는 기업과 외부 관계자들도 출현하는 모습도 살펴볼 수 있다. 본 연구결과는 OSS 참여자들이 OSS를 선택하는데 있어 홍보 과정의 중요성을 강조하고, OSS의 급속한 개발속도가 오히려 참여자의 출현을 지연시키는 구축 효과(crowding-out effec)가 발생하는 것을 확인하였다. 본 연구는 행위자-네트워크 이론을 토대로 주요 OSS 사례를 네트노그라피를 활용하여 종단적인 관점에서 분석함으로써 OSS의 발전 과정을 일반화시키기 위한 노력을 시도했다는 점에서 학술적인 의의가 있으며, OSS가 지배적인 위치에 오르기 위한 단계별 영향 요인, 세부적인 변화 양상 등을 확인함으로써 OSS 개발자와 관리자들에게 다양한 시사점을 제공할 것으로 기대된다.

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SNS 이용동기와 SNS 중독이 주관적 웰빙에 미치는 영향: 사회적 유대감의 조절효과 (The Effect of the Subjective Wellbeing on the Addiction and Usage Motivation of Social Networking Services: Moderating Effect of Social Tie)

  • 노미진;장성희
    • 경영과정보연구
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    • 제35권4호
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    • pp.99-122
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    • 2016
  • 특정한 관심이나 활동을 공유하는 사람들 사이의 관계망을 기반으로 서비스를 제공하는 페이스북이나 트위터와 같은 SNS의 활성화로 정보공유나 의사소통이 활발해지면서 SNS에 대한 관심이 증가하였다. 본 연구는 관심의 대상이 되고 있는 SNS에 대한 연구를 수행할 것이며, 새로운 매체의 이용 동기를 설명하기 위한 이론인 이용과 충족이론을 기반으로 SNS 이용 동기를 살펴본다. SNS 이용 동기를 감정적 동기와 인지적 동기로 구분하고, 이용 동기와 SNS 중독 간의 관계를 알아보았다. 감정적 동기는 SNS에 대한 오락성과 환상으로 구분하고 인지적 동기는 SNS에서의 정보 부담과 시스템 사용 부담으로 살펴한다. SNS 중독은 시간적 내성, 금단 불안, 중단 실패, 생활 장애로 구분하였으며 SNS 중독과 주관적 웰빙과의 관계를 살펴본다. 마지막으로 사회적 자본 이론을 기반으로 SNS 특성인 사회적 유대감의 조절효과를 분석한다. SNS 사용자들을 대상으로 설문을 수행하였고, 가설을 검증하기 위하여 286부의 설문지를 분석에 활용하였다. 가설검증결과를 보면, 감정적 동기인 오락성과 환상은 SNS 중독에 정(+)의 영향을 미쳤고, 인지적 동기인 정보 부담과 시스템 사용 부담도 SNS 중독에 정(+)의 영향을 미쳤다. 또한 SNS 중독은 주관적 웰빙에 통계적으로 유의한 영향을 미쳤으며, 마지막으로 사회적 유대감에 따라 SNS 중독이 주관적 웰빙에 다른 영향을 미치고 있음을 알 수 있었다. 본 연구의 결과는 SNS 사용자와 SNS 관련 종사자들에게 유용한 정보를 제공할 수 있을 것이다.

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