• Title/Summary/Keyword: behavior recognition

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Correlations Among Threshold and Assessment for Salty Taste and High-salt Dietary Behavior by Age (연령별 짠맛 역치, 짠맛 미각판정치와 짜게 먹는 식행동과의 상관성 분석)

  • Jiang, Lin;Jung, Yun-Young;Lee, Yeon-Kyung
    • Korean Journal of Community Nutrition
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    • v.21 no.1
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    • pp.75-83
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    • 2016
  • Objectives: The purpose of this study was to analyze correlation thresholds and assessment for salty taste and high-salt dietary behaviors by age. Methods: A total of 524 subjects including 100 each of elementary school students, middle school students, college students, and elderly as well as 124 adults were surveyed for detection and recognition thresholds, salty taste assessments, and high-salt dietary behaviors. Results: Elementary students had a lower detection threshold (p<0.05) and recognition threshold (p<0.01) than did the other groups. Salty taste assessments were lowest among elementary students, followed by middle school students, while college students, adults, and elderly had higher assessment score (p<0.001). Elementary students had significantly lower scores for high-salt dietary behavior than did middle school students, college students, adults and elderly (p<0.001). Middle school students had higher scores for high-salt dietary behavior than did elementary school students and elderly (p<0.001) but no meaningful difference was found in dietary behavior scores between college students, adults, and elderly. There were positive correlations between high-salt dietary behavior and detection thresholds (p<0.001), recognition thresholds (p<0.001), and salty taste assessment (p<0.001). High-salt dietary behavior was more positively correlated with salty taste assessment than detection and recognition thresholds for salty taste. Conclusions: This study suggested that salty taste assessments were positively associated with scores for the detection and recognition thresholds and high-salt dietary behavior.

Effects of Recognition of the Pregnancy necessity on Emotional Happiness -The mediation effect of health control behavior-

  • Kim, Jung-Ae
    • International Journal of Advanced Culture Technology
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    • v.6 no.3
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    • pp.12-21
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    • 2018
  • This study was a cross-sectional survey of the effects of pregnancy necessity recognition on emotional happiness and mediation effect of health control behavior on it. A total of 200 participants in the study were collected from structured questionnaire online and the data collection was from July $1^{st}$ to July $31^{st}$, 2018. Health control behavior questionnaire was developed by Wallston, K.A., Wallston, B.S. & Devellis, R (1978), Emotional happiness was analyzed by using PANAS (positive and negative affect schedule) developed by Watson, Clark and Tellegen (1988). The collected data were chai-square($X^2$), Pearson correlation, Dummy regression analysis, simple regression analysis, and the mediated effect analysis by SPSS 18.0. As a result, Under statistical significance, there were differences in the recognition of pregnancy necessity were depending on religion, participant's age, number of siblings, thought of optimal marriage age(p<0.05). More siblings, more religious, older age, and more recognized the pregnancy necessity. The analysis of Pearson correlation with the pregnancy necessity, health control behavior, and emotional happiness reveled that it was relevant (p<0.01). Dummy regression analysis showed that people who thought that pregnancy was necessary were 0.700 times more likely to felt emotional happiness that people who thought it was unnecessary (p<0.01). Analysis on the mediation of health control behavior, in which the effects of pregnancy recognition on emotional happiness, showed that it was effect (other people's health control behavior: B:.299, p<0.01, internal health control behavior : B:.217, p<0.05). Based on these results, this study suggested that to promote pregnancy recognition, families with brother and sister should be programmed with recommendations for exercise and alcohol abstinence, religious belief and health control programs.

Proactive Personality, Knowledge Sharing Behavior, Job Characteristics, and Organizational Recognition: An Application of Costly Signaling Theory (주도적 성격과 지식 공유행위, 직무 특성, 그리고 조직의 인정 간 관계에 관한 연구: 비싼 신호보내기 이론을 중심으로)

  • Park, Jisung;Chae, Heesun
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.19 no.12
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    • pp.128-137
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    • 2018
  • Drawing on costly signaling theory and self-enhancement motive, this study examines the relationships among proactive personality, knowledge sharing behavior, and organizational recognition. In addition to the individual characteristic, this study considers job characteristics as conditional factors, and especially proposes the moderated mediation model in which job complexity and variety moderate the relationships among proactive personality, knowledge sharing behavior, and organizational recognition. To prove these hypotheses, empirical analyses are conducted with 166 dyad samples collected from various industries. As predicted, individuals with high proactive personality are more likely to become involved in knowledge sharing behavior, and this behavior increases organizational recognition rated by their supervisors. Moreover, job complexity and variety moderate the positive relationship between proactive personality and organizational recognition is mediated by knowledge sharing behavior. These results reveal the motive in knowledge sharing and the boundary condition that is necessary to increase such behavior. The study findings will ultimately contribute theoretical and empirical implications to the knowledge management literature.

Employees' Environment, Social, and Governance Activity Recognition as Job Resource Enhancing Job Performance via Job Satisfaction and Prosocial Behavior among Call Center Employees (직무자원으로서 ESG 활동 인식이 직무만족과 친사회적 행동을 통해 직무수행능력 향상에 미치는 영향, 콜센터 직원들을 대상으로)

  • Joonhyeong Joseph Kim;So Ra Park
    • Industry Promotion Research
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    • v.9 no.2
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    • pp.1-12
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    • 2024
  • This study examines the role of Environment, Social, and Governance (ESG) activity recognition on job satisfaction, prosocial activities, and job performance among customer representatives working in call center environments. After gathering data from 264 call center workers in major South Korean insurance companies, the analysis w as performed using SmartPLS 4.0. This study's findings reveal that employee recognition of ESG activities significantly enhanced job satisfaction. The impact of ESG activity recognition on prosocial behavior was positive but relatively weak. Job satisfaction influences both prosocial behavior and the job performance of employees. Finally, prosocial behavior positively influences job performance. The most significant finding is that employees' recognition of companies' ESG management practices serves as a job resource. This recognition enhances employees' attitudes, behavior, and performance, signaling the potential benefits of informing employees about corporations' ethical behaviors.

Effects of Symptom Recognition and Health Behavior Compliance on Hospital Arrival Time in Patients with Acute Myocardial Infarction (급성심근경색증 환자의 증상 인지와 건강행위 이행이 내원시간에 미치는 영향)

  • Han, Eun Ju;Kim, Jeong Sun
    • Korean Journal of Adult Nursing
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    • v.27 no.1
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    • pp.83-93
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    • 2015
  • Purpose: This study was to investigate the relationship among the symptom recognition, health behavior compliance, and the hospital arrival time to identify factors influencing the hospital arrival time in patient with acute myocardial infarction (AMI). Methods: The subjects of this study were 200 patients with AMI in C hospital in D city. Data were analyzed using descriptive statistics, independent t-test, One way ANOVA, Pearson's correlation coefficients, and stepwise multiple liner regression tests. Results: Level of symptom recognition and health behavior compliance was low. The median value of hospital arrival time was 4.48 hours (ST-segment Elevation Ml was 2.43 hours and Non ST-segment Elevation MI was 7.83 hours). Among the studied factors, only symptom recognition had a statistically significant positive correlation with health behavior compliance (r=0.38, p<.001). Factors influencing the hospital arrival time were MI classification, diabetes mellitus (DM) and transport vehicle to the 1st hospital, and they accounted for 13% of the variance for hospital arrival time in AMI patients. Conclusion: To prevent the delay of hospital arrival time in MI patients, a more robust nursing strategic intervention according to MI classification and DM is necessary; further education on the importance of transportation utilization is also mandated.

Emergency Alarm Service for the old and the weak by Human Behavior Recognition in Intelligent Space (지능공간에서의 인간행동 인식을 통한 노약자 및 환자의 위급상황 알람 서비스)

  • Lee, Jeong-Eom;Kim, Joo-Hyung;Lee, Hyun-Gu;Kim, Sang-Jun;Kim, Dae-Hwan;Park, Gwi-Ta
    • The Journal of Korea Robotics Society
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    • v.2 no.4
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    • pp.297-303
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    • 2007
  • In this paper, we discuss a service to give alarm in the case of emergency for the old and the weak by human behavior recognition in Intelligent Space. Our Intelligent Space consists of mobile robots, sensors and agents. And these components are connected to network framework. Agent analyzes data acquired from networked sensors and determines task of robots and a space to provide a service for humans. In our emergency alarm service, human behavior recognition service module analyzes accelerometer data obtained from body-attached human behavior sensing platform, and classifies into four basic human behavior such as walking, running, sitting and falling-down. For the old and the weak, falling-down behavior may bring about dangerous situations. On such an occasion, agent executes emergency alarm service immediately. And then a selected mobile robot approaches fallen person and sends images of the person to guardians. In this paper, we set up a scenario to verify the emergency alarm service in Intelligent Space, and show feasibility of the service from our simulation experiments.

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Using Skeleton Vector Information and RNN Learning Behavior Recognition Algorithm (스켈레톤 벡터 정보와 RNN 학습을 이용한 행동인식 알고리즘)

  • Kim, Mi-Kyung;Cha, Eui-Young
    • Journal of Broadcast Engineering
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    • v.23 no.5
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    • pp.598-605
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    • 2018
  • Behavior awareness is a technology that recognizes human behavior through data and can be used in applications such as risk behavior through video surveillance systems. Conventional behavior recognition algorithms have been performed using the 2D camera image device or multi-mode sensor or multi-view or 3D equipment. When two-dimensional data was used, the recognition rate was low in the behavior recognition of the three-dimensional space, and other methods were difficult due to the complicated equipment configuration and the expensive additional equipment. In this paper, we propose a method of recognizing human behavior using only CCTV images without additional equipment using only RGB and depth information. First, the skeleton extraction algorithm is applied to extract points of joints and body parts. We apply the equations to transform the vector including the displacement vector and the relational vector, and study the continuous vector data through the RNN model. As a result of applying the learned model to various data sets and confirming the accuracy of the behavior recognition, the performance similar to that of the existing algorithm using the 3D information can be verified only by the 2D information.

The Effect of Health Behavior, Resilience, and Recognition of Well-dying on the Depression of Elderly with Chronic Disease (건강행위, 회복탄력성, 웰다잉 인식이 노인 만성질환자의 우울에 미치는 영향)

  • Kong, Jeong-Hyeon;Hong, Hyeon-Hwa;Jung, Eun-Young
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.16 no.10
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    • pp.7146-7156
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    • 2015
  • The purpose of this study was to investigate the effect of health behavior, resilience an recognition of well-dying on the depression of elderly with chronic disease. It was the survey period was from February 13 to March 20, 2015 with 185 people. For data analysis, SPSS 20.0 program was used. As a result, the mean level of health behavior was 2.60, the mean level of resilience was 3.14, recognition of well-dying was 3.41, the mean level of depression was 3.29. Depression was showed a negative corelation with health behavior and recognition of well-dying. Factors that affect depression was health behavior, subjective health status, recognition of well-dying, live with and sex. Also, strange cause of these was 44.8% of depression. Results suggest that, to mediate melancholy elderly, it is necessary to develop a program in consideration of various factors.

The types of complaining behavior and the consumer attitudes of the high school students, Chunlabuk - do (청소년 소비자들의 불평행동 유형과 소비자태도 유형)

  • 동환숙;김정훈
    • Korean Journal of Rural Living Science
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    • v.6 no.1
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    • pp.65-72
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    • 1995
  • This article explores : 1) There were significant differences in the behavioral aggressiveness and the recognition about economical and psychological benefits related to complaining behavior. 2) The significant differences were found in the trust, distrust and behavioral aggressiveness related to types of consumer attitudes. 3) The satisfaction with the purchasing behavior was significantly explained by the distrusted relationship, the recognition of economic and psychological benefits, private complaining behavior types and aggressive types of consumer attitudes.

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3D Res-Inception Network Transfer Learning for Multiple Label Crowd Behavior Recognition

  • Nan, Hao;Li, Min;Fan, Lvyuan;Tong, Minglei
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • v.13 no.3
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    • pp.1450-1463
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    • 2019
  • The problem towards crowd behavior recognition in a serious clustered scene is extremely challenged on account of variable scales with non-uniformity. This paper aims to propose a crowed behavior classification framework based on a transferring hybrid network blending 3D res-net with inception-v3. First, the 3D res-inception network is presented so as to learn the augmented visual feature of UCF 101. Then the target dataset is applied to fine-tune the network parameters in an attempt to classify the behavior of densely crowded scenes. Finally, a transferred entropy function is used to calculate the probability of multiple labels in accordance with these features. Experimental results show that the proposed method could greatly improve the accuracy of crowd behavior recognition and enhance the accuracy of multiple label classification.