• Title/Summary/Keyword: 양식장 환경 데이터

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Statistical Analysis of Water Quality in a Land-based Fish Farm (육상 수조식 양식장 수질 환경의 통계적 분석)

  • Kim, Hae-Ran;Ceong, Hee-Taek
    • The Journal of the Korea institute of electronic communication sciences
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    • v.5 no.6
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    • pp.637-644
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    • 2010
  • The purpose of this study is to analyze characteristics of water quality factor scientifically and develop the multiple regression model predicting dissolved oxygen to save periodic replacement costs for dissolved oxygen sensor. Correlation analysis using the environmental data obtained from 2 different land-based fish farms of the Geogeum-do, Geheung-gun coastal area during the periods from November 2008 to January 2009 shows that water temperature was negatively correlated with dissolved oxygen and pH butpH was positively correlated with salinity and dissolved oxygen. The information of Keumho fish farm in 2009 is presented by the tables which are monthly statistics of water quality factors and seasonable difference by the Duncan's post-test. Also we developed multiple regression model predicting dissolved oxygen, the usefulness of which was verified by the comparison graph between estimates and actual observations. The developed regression model shows that seawater temperature and salinity give negative affect to dissolved oxygen while pH gives positive affect to it. Lastly the seawater temperature has much higher explanatory power than pH factor.

Design of the Smart Feeding System based on the LPWA network for Inland Fish Farms (내수면 양식장을 위한 LPWA망 기반 스마트 급이 시스템 설계)

  • Dokko, Sehjoon
    • Journal of Internet of Things and Convergence
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    • v.2 no.3
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    • pp.31-35
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    • 2016
  • IoT technologies have been rapidly developed in recent years, and applied to many industries. In the field of fisheries, the water quality management system have been developed, helping in improving productivity and working environment. In this paper, we have designed the smart feeding system, interoperable with the water quality system, using LPWA network. LPWA network is an IoT network, which is appropriate to fish farms because of its wide area coverages and low power consumption. We expect this work to contribute to developing the aquaculture technology through the big data analysis with the accumulated data.

Development of an Unmanned Land-Based Shrimp Farm Integrated Monitoring System (무인 육상 새우 양식장 통합 모니터링 시스템 개발)

  • Hyeong-Bin Park;Kyoung-Wook Park;Sung-Keun Lee
    • The Journal of the Korea institute of electronic communication sciences
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    • v.19 no.1
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    • pp.209-216
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    • 2024
  • Land shrimp farms can control the growth environment more stably than coastal ones, making them advantageous for high-quality, large-scale production. In order to maintain an optimal shrimp growth environment, various factors such as water circulation, maintaining appropriate water temperature, oxygen supply, and feed supply must be managed. In particular, failure to properly manage water quality can lead to the death of shrimp, making it difficult to have people stationed at the farm 24 hours a day to continuously manage them. In this paper, to solve this problem, we design an integrated monitoring system for land farms that can be operated with minimal manpower. The proposed design plan uses IoT technology to collect real-time images of land farms, pump status, water quality data, and energy usage and transmit them to the server. Through web interfaces and smartphone apps, administrators can check the status of the farm stored on the server anytime, anywhere in real time and take necessary measures. Therefore, it is possible to significantly reduce field work hours without the need for managers to reside in the farm.

TGC-based Fish Growth Estimation Model using Gaussian Process Regression Approach (가우시안 프로세스 회귀를 통한 열 성장 계수 기반의 어류 성장 예측 모델)

  • Juhyoung Sung;Sungyoon Cho;Da-Eun Jung;Jongwon Kim;Jeonghwan Park;Kiwon Kwon;Young Myoung Ko
    • Journal of Internet Computing and Services
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    • v.24 no.1
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    • pp.61-69
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    • 2023
  • Recently, as the fishery resources are depleted, expectations for productivity improvement by 'rearing fishery' in land farms are greatly rising. In the case of land farms, unlike ocean environments, it is easy to control and manage environmental and breeding factors, and has the advantage of being able to adjust production according to the production plan. On the other hand, unlike in the natural environment, there is a disadvantage in that operation costs may significantly increase due to the artificial management for fish growth. Therefore, profit maximization can be pursued by efficiently operating the farm in accordance with the planned target shipment. In order to operate such an efficient farm and nurture fish, an accurate growth prediction model according to the target fish species is absolutely required. Most of the growth prediction models are mainly numerical results based on statistical analysis using farm data. In this paper, we present a growth prediction model from a stochastic point of view to overcome the difficulties in securing data and the difficulty in providing quantitative expected values for inaccuracies that existing growth prediction models from a statistical point of view may have. For a stochastic approach, modeling is performed by introducing a Gaussian process regression method based on water temperature, which is the most important factor in positive growth. From the corresponding results, it is expected that it will be able to provide reference values for more efficient farm operation by simultaneously providing the average value of the predicted growth value at a specific point in time and the confidence interval for that value.

Data Analysis and Mining for Fish Growth Data in Fish-Farms (양식장 어류 생육 데이터 분석 및 마이닝)

  • Seoung-Bin Ye;Jeong-Seon Park;Soon-Hee Han;Hyi-Thaek Ceong
    • The Journal of the Korea institute of electronic communication sciences
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    • v.18 no.1
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    • pp.127-142
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    • 2023
  • The management of size and weight, which are the growth information of aquaculture fish in fish-farms, is the most basic goal. In this study, the epoch is defined in fish-farms from the time of stocking or dividing to the time of shipment, and the growth data for a total of three epoch is analyzed from a time series perspective. Growth information such as the size and weight of aquaculture fish that occur over time in fish-farms is compared and analyzed with water quality environmental information and feeding information, and a model is presented using the analysis results. In this study, linear, exponential, and logarithmic regression models are presented using the Box-Jenkins method for size and weight by epoch using data obtained in the field.

Sensor Network System for Littoral Sea Cage Culture Monitoring (연근해 가두리 양식장 모니터링을 위한 센서네트워크 시스템)

  • Shin, DongHyun;Kim, Changhwa
    • KIPS Transactions on Computer and Communication Systems
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    • v.5 no.9
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    • pp.247-260
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    • 2016
  • Sensor networks have been used in many applications such as smart home, smart factory, etc. based on sensor data. Sensor networks can change system requirements and architectures depending on their application areas. Currently, sensor network application cases in ocean environments are very rare because the ocean environments have much difficult accessibility more poor conditions, higher wave heights, more frogs, much heavier salinity, etc., compared with ground environments. In this paper, we propose the requirements, architecture and design of a sensor network system for the littoral sea cage culture monitoring and we also introduce its operation results through the development. The developed system based on our research provides users with functionalities to extract, monitor, and manage underwater environmental conditions suitable to littoral sea cage culturing of fishes.

Monitoring system for prevention of red tide damage in marine aquaculture farm (해양양식장 적조피해 예방 모니터링 시스템 설계)

  • Jeong, Hee-Ja;Jang, Il-Tae;Kim, Nam-Ho
    • Proceedings of the Korea Information Processing Society Conference
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    • 2018.10a
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    • pp.1020-1022
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    • 2018
  • 본 연구에서는 여름철이면 찾아오는 우리나라 연근해 양식장의 이상기후 현상인 이상고온과 적조현상으로 인한 피해를 예방하고자 사전 탐색을 위한 모니터링 기술을 제안한다. 이에 필요한 환경정보 수집요소로는 수온, 산소포화도, 조도에 관한 정보수집이 있으며, 이를 위한 센서모듈을 설계하고, 측정된 센서 정보를 수집 전송하기 위한 데이터 통신과 수집된 정보의 저장 및 분석을 위한 서버측의 데이터관리 기술이 필요하다. 이러한 일련의 과정 절차를 통한 해양 이상조류 모니터링 시스템을 제안하였으며, 사업화 가능성을 타진하였다.

A Study on Disease Prediction of Paralichthys Olivaceus using Deep Learning Technique (딥러닝 기술을 이용한 넙치의 질병 예측 연구)

  • Son, Hyun Seung;Lim, Han Kyu;Choi, Han Suk
    • Smart Media Journal
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    • v.11 no.4
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    • pp.62-68
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    • 2022
  • To prevent the spread of disease in aquaculture, it is a need for a system to predict fish diseases while monitoring the water quality environment and the status of growing fish in real time. The existing research in predicting fish disease were image processing techniques. Recently, there have been more studies on disease prediction methods through deep learning techniques. This paper introduces the research results on how to predict diseases of Paralichthys Olivaceus with deep learning technology in aquaculture. The method enhances the performance of disease detection rates by including data augmentation and pre-processing in camera images collected from aquaculture. In this method, it is expected that early detection of disease fish will prevent fishery disasters such as mass closure of fish in aquaculture and reduce the damage of the spread of diseases to local aquaculture to prevent the decline in sales.

3D Visualization System for Realtime Environmental Data (실시간 환경데이터를 이용한 3차원 시각화 시스템)

  • Kim, Jong-Chan;Kim, Kyeong-Ok;Kim, Eung-Kon;Kim, Chee-Yong
    • Journal of Digital Contents Society
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    • v.9 no.4
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    • pp.707-715
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    • 2008
  • The ocean ecosystem and the marine farms were damaged after latest oil spill in Taean. They suffered heavily due to the expansion of the red tide on the coast and the sudden changes in water temperature. We should develop the way to deal with various factors to reduce the damage. In this paper, real time data with which are supplied us through many kinds of sensors on measure equipments will be processed to the visualized shape. Simple numeric data and 2D graph will be changed 2D or 3D graphic objects and animations using WPF, a new effect method in user interface area. This visualization system for environmental data shows us various pictures and offers multimedia data communication.

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Long-term monitoring study in Lake Soyang, Chuncheon (소양호 수질 장기모니터링 연구)

  • Kwon, Hyeok Joon;Kim, Eui Suk;Kim, Beom-Cheol;Hong, Eun Mi
    • Proceedings of the Korea Water Resources Association Conference
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    • 2021.06a
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    • pp.436-436
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    • 2021
  • 강원도 춘천시에 위치한 소양호는 북한강 상류수계로서 1973년에 준공된 우리나라 최대의 인공호이다. 소양호는 준공 이후 주변 유역의 인구밀집도가 낮고 오염물질 유입원이 적어 빈영양호의 수질을 보였다. 준공 후 소양호 수질에 영향을 미친 주요 환경요인으로는 1980-90년대 가두리 양식, 1990년대 후반부터 현재까지 지속되는 문제는 상류에서 강우시 발생된 탁수유입이 있다. 이러한 환경 문제로, 소양호에서는 식물플랑크톤 일차생산력, 동물플랑크톤 및 식물플랑크톤 장기변동, 용존산소 일주기 변동, 호수 내 유기물 분포 등의 연구가 이루어져 왔다. 그러나 가두리 양식장의 철거로 한 가지 요인은 해결되었으나 상류 탁수 유입 문제는 현재까지 진행 중이다. 소양호에서는 매해 여름철 탁수 유입이 지속적으로 발생하고 있으며 부영양화를 초래할 수 있는 주요한 문제이다. 이에 본 연구는 소양호에서의 장기적인 생태계 변동성 연구를 위해 1982년부터 현재까지 월 1-4회 수질 모니터링을 실시 중이며, 수질항목은 SS(Suspended Solids), TN(Total Nitrogen), TP(Total Phosphorus), BOD(Biochemical Oxygen Demands), TOC(Total Organic Carbon), Chl-a(Chlorophyll-a)에 대해 분석을 진행하고 있다. 기존 연구에서는 주-월 단위로 모니터링을 실시하여 강우에 의한 탁수 유입, 타 오염원에 의한 오염물질 및 유기물 유입으로 인한 실시간 수질 변동을 파악할 수 없었으며, 이벤트 발생 이후의 경과만 관찰할 수 있는 한계점이 있었다. 그러나 앞으로의 진행될 연구는 고빈도 센서를 이용하여 실시간 짧은 간격으로 모니터링하여 소양호 수질의 일주기 변동 분석과 오염원 유입과 같은 이벤트 발생 전·후 비교 및 실시간 수질변동에 대해 연구하는 것이며, 기존 데이터와 함께 진행될 연구의 데이터를 활용하게 된다면 소양호에서의 장기적인 수질 변화를 분석하는 데 효과적일 것으로 예상된다.

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