• Title/Summary/Keyword: 물동량

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항만 물동량 시뮬레이터 개발을 위한 물동량 발생 요소들의 인과관계 연구

  • Lee, Sang-Bae;No, Chang-Gyun
    • 한국벤처창업학회:학술대회논문집
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    • 2007.04a
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    • pp.187-199
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    • 2007
  • 항만의 개발은 투자시점에서 10여년이 소요되는 대규모 자본과 시간이 소요되는 사업이므로 항만 물동량을 사전에 정확히 예측하지 못하면, 과잉투자, 중복투자 또는 기관시설이 부족하는 등 큰 문제에 봉착하여 진다. 항만 물동량 예측은 항만 개발에 앞서 매우 중요한 과제이다. 따라서 본 논문에서는 파워심 프로그램을 활용한 항만 물동량 예측 시뮬레이터 개발에 앞서 기초 연구단계로 항만 물동량 발생 요소들의 관계를 정립하고 인과관계를 시스템 다이내믹스 기법을 이용하여 밝혔다. 이 시뮬레이터는 항만 물동량 예측 등 관련 산업기술 발전에 기여하리라 전망된다.

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An Empirical Study on Causality among Trading Volume of Busan, Kawangyang and Incheon port (부산항, 광양항, 인천항의 물동량간 인과관계 분석)

  • Choi, Bong-Ho;Kim, Sang-Choon
    • Journal of Korea Port Economic Association
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    • v.26 no.1
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    • pp.61-82
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    • 2010
  • The purpose of this study is to examine the causuality among export and import trading volume of port of Busan, Kwangyang, Incheon and to induce policy implications. In order to test whether time series data is stationary and the model is fitness or not, we put in operation unit root test, cointegration test. And We apply Granger causality and impulse response and variance decomposition based on VECM. The results indicate that the trading volume of port of Busan is not largely influenced by that of port of Kawangyang and Incheon, but the trading volume of port of Kawangyang and Incheon is largely influenced by other ports including port of Busan. The result suggest that government has to focus on policy that the port of Kawangyang and Incheon can raise its own competitiveness in the world market.

A Study on Causality among Trading Volume of Pyeongtaek Port, Incheon Inner Harbor and Incheon North Harbor (인천내항, 인천북항, 평택항간 물동량의 인과관계 분석)

  • Yoo, Heonjong;Ahn, Seung-Bum
    • Journal of Korea Port Economic Association
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    • v.30 no.4
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    • pp.255-273
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    • 2014
  • The purpose of this paper is to examine the causal relationship among the trading volume of Pyeongtaek port, Incheon Inner Harbor, Incheon North Harbor. Methodologically, Granger causality, impulse response function, and variance decomposition based on VAR are used. The results indicate that Pyeongtaek port trading volume positive shock has positive effects on Incheon North Harbor. In addition, Incheon Inner Harbor trading volumes positive shock has negative effects on Pyeongtaek port. The results also suggest that the volume of Pyeongtaek port Granger-causes the volume of Incheon North Harbor, but not vice versa. The volume of Incheon Inner Harbor Granger-causes the volume of Pyeongtaek port. Based on these results, we suggest that port authorities have to focus on policies that would promote copetition between port of Pyeongtaek and Incheon in the world harbor industry.

The Forecast of the Cargo Transportation for the North Port in Busan, using Time Series Models (시계열 모형을 이용한 부산 북항의 물동량 예측)

  • Kim, Jung-Hoon
    • Journal of Korea Port Economic Association
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    • v.24 no.2
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    • pp.1-17
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    • 2008
  • In this paper the cargo transportation were forecasted for the North Port in Busan through time series models. The cargo transportation were classified into three large groups; container, oil, general cargo. The seasonal indexes of existing cargo transportation were firstly calculated, and optimum models were chosen among exponential smoothing models and ARIMA models. The monthly cargo transportation were forecasted with applying the seasonal index in annual cargo transportation expected from the models. Thus, the cargo transportation in 2011 and 2015 were forecasted about 22,900 myriad ton and 24,654 myriad ton respectively. It was estimated that container cargo volume would play the role of locomotive in the increase of the future cargo transportation. On the other hand, the oil and general cargo have little influence upon it.

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Forecasting of Container Cargo Volumes of China using System Dynamics (System dynamics를 이용한 중국 컨테이너 물동량 예측에 관한 연구)

  • Kim, Hyung-Ho;Jeon, Jun-woo;Yeo, Gi-Tae
    • Journal of Digital Convergence
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    • v.15 no.3
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    • pp.157-163
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    • 2017
  • Forecasting container cargo volumes is very important factor for port related organizations in inversting in the recent port management. Especially forcasting of domestic and foreign container volume is necessary because adjacent nations are competing each other to handle more container cargoes. Exact forecasting is essential elements for national port policy, however there is still some difficulty in developing the predictive model. In this respect, the purpose of this study is to develop and suggest the forecasting model of container cargo volumes of China using System Dynamics (SD). The monthly data collected from Clarkson's Shipping Intelligence Network from year 2004 to 2015 during 12 years are used in the model. The accuracy of the model was tested by comparisons between actual container cargo volumes and forecasted corgo volumes suggested by the research model. The MAPE values are calcualted as 6.21% for imported cargo volumes and 7.68% for exported cargo volumes respectively. Less than 10% of MAPE value means that the suggested model is very accurate.

Forecasting the Korea's Port Container Volumes With SARIMA Model (SARIMA 모형을 이용한 우리나라 항만 컨테이너 물동량 예측)

  • Min, Kyung-Chang;Ha, Hun-Koo
    • Journal of Korean Society of Transportation
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    • v.32 no.6
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    • pp.600-614
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    • 2014
  • This paper develops a model to forecast container volumes of all Korean seaports using a Seasonal ARIMA (Autoregressive Integrated Moving Average) technique with the quarterly data from the year of 1994 to 2010. In order to verify forecasting accuracy of the SARIMA model, this paper compares the predicted volumes resulted from the SARIMA model with the actual volumes. Also, the forecasted volumes of the SARIMA model is compared to those of an ARIMA model to demonstrate the superiority as a forecasting model. The results showed the SARIMA Model has a high level of forecasting accuracy and is superior to the ARIMA model in terms of estimation accuracy. Most of the previous research regarding the container-volume forecasting of seaports have been focussed on long-term forecasting with mainly monthly and yearly volume data. Therefore, this paper suggests a new methodology that forecasts shot-term demand with quarterly container volumes and demonstrates the superiority of the SARIMA model as a forecasting methodology.

A Study on the Revitalization of Railway freight transportation Through forecasting of container volumes on Busan New & North port (신항과 북항의 철도물동량 예측에 따른 철도운송 활성화 방안에 관한 연구)

  • Cho, Sam-Hyun
    • Journal of Korea Port Economic Association
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    • v.25 no.4
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    • pp.131-146
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    • 2009
  • The purpose of this study is to predict the railway cargo volume on Busan new-port and north-port, in order to revitalize railway transport. This paper is organized as follows. Section 1 presents the description of the objective and methods on this study. Section 2 presents the status of Railway Cargo volumes and Construction plan of railway facilities in Busan New port. Section 3 presents the Forecast Railway Cargo volume using a volume ratio, actual volume records and another predicted datas. Section 4 summarizes our conclusions and further research topics. Especially, korea faces enforcement of green Logistics policy. Modal shift to trail freight transportation is one of ways, but there are no more detail plans. so it need that a cooperation system in government department, a indirect subside policy shift to rail freight transportation from trucking for revitalization of Railway Freight transportation.

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A Study on the Forecasting of Container Freight Volume for Donghae Port and Sokcho Port (동해항 및 속초항의 컨테이너물동량 예측에 관한 연구)

  • Jo, Jin-Haeng;Kim, Jae-Jin
    • Journal of Korea Port Economic Association
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    • v.26 no.1
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    • pp.83-104
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    • 2010
  • The purpose of this paper is to prepare container port policy and to contribute to the regional economy by forecasting of the container freight volume for the Donghae Port and Sokcho Port. As a methodology a survey and O/D technique were adopted. O/D technique was applied to the container freight data of Korea Maritime Institute. The main results of this paper are as follows: First, it is adviserable that Gangwondo Province should adopt incentive program of 100,000 won Per TEU rather than 50,000 won per TEU. Secondly, container freight volume for Donghae Port and Sokcho Port is forecast to be 22,388 TEU in 2010, 152,367 TEU in 2015 and 354,217 TEU from 6,653 TEU in 2008. Thirdly, joint port marketing is required for the Donghae Port and Sokcho Port in terms of same region in one hour drive.

Forecasting the Container Throughput of the Busan Port using a Seasonal Multiplicative ARIMA Model (승법계절 ARIMA 모형에 의한 부산항 컨테이너 물동량 추정과 예측)

  • Yi, Ghae-Deug
    • Journal of Korea Port Economic Association
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    • v.29 no.3
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    • pp.1-23
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    • 2013
  • This paper estimates and forecasts the container throughput of Busan port using the monthly data for years 1992-2011. To do this, this paper uses the several seasonal multiplicative ARIMA models. Among several ARIMA models, the seasonal multiplicative ARIMA model $(1,0,1){\times}(1,0,1)_{12}$ is selected as the best model by AIC, SC and Hannan-Quin information criteria. According to the forecasting values of the selected seasonal multiplicative ARIMA model $(1,0,1){\times}(1,0,1)_{12}$, the container throughput of Busan port for 2013-2020 will increase steadily annually, but there will be some volatile variations monthly due to the seasonality and other factors. Thus, to forecast the future container throughput of Busan port and to develop the Busan port efficiently, we need to use and analyze the seasonal multiplicative ARIMA model $(1,0,1){\times}(1,0,1)_{12}$.

A Study on the Forecasting of Seaborne Trade of Mineral Resources : Cases of Iron Ore and Coal (광물자원의 해상물동량 전망에 관한 연구 : 철광석 및 석탄을 중심으로)

  • Jang, Won-Ik
    • Environmental and Resource Economics Review
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    • v.19 no.2
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    • pp.341-360
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    • 2010
  • The goal of this study is to forecast the scales of seaborne trade of iron ore and coal. It is assumed that the seaborne trade of iron ore is the function of two independent variables(crude steel production, world GDP) and the seaborne trade of coal is the function of two independent variables(crude steel production, world electricity generation). The result shows that the regressions of two functions are statistically significant respectively. As the results of forecasting, the seaborne trade of iron ore in 2010 may be 892 million tons which is increased 5.1% compare to the level of 2009. Also the seaborne trade of coal in 2010 may be 827 million tons which is increased 6.1% compare to the level of 2009. In terms of the compound annual growth rate, it is forecasted that the iron ore may show 4.7% of increasing rate from 2009 to 2015 and the seaborne trade of coal may be increased 6.1% annually for the same period.

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