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资源型地区界定标准及其类型划分的定量研究 被引量:1
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作者 伏虎 《中国国土资源经济》 2015年第10期66-69,72,共5页
本着动态性、本地化、相对性的判定原则,引入资源经济活动"区位熵指数"概念,设置资源产业地区GDP区位熵、地区劳动力区位熵、当地资源余量区位熵等三个指标,共同组成资源型地区判定体系,按照三个指标均值的偏离幅度作为资源... 本着动态性、本地化、相对性的判定原则,引入资源经济活动"区位熵指数"概念,设置资源产业地区GDP区位熵、地区劳动力区位熵、当地资源余量区位熵等三个指标,共同组成资源型地区判定体系,按照三个指标均值的偏离幅度作为资源型地区划分标准,并利用相关统计数据进行验证和现实比对,在此基础上对我国资源型地区及其所处阶段进行划分。研究表明,据此界定标准与判定方法得出的结果与我国现状较为贴合,从方法论意义上具有客观、高效等优点,适宜作为资源型地区研究的基础性界定标准。 展开更多
关键词 资源型地区 界定标准 区位熵 地区GDP 地区劳动力 资源余量
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Fishery stock assessment of Kiddi shrimp (Parapenaeopsis stylifera) in the Northern Arabian Sea Coast of Pakistan by using surplus production models 被引量:1
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作者 MOHSIN Muhammad 慕永通 +2 位作者 MEMON Aamir Mahmood KALHORO Muhammad Talib SHAH Syed Baber Hussainin 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2017年第4期936-946,共11页
Pakistani marine waters are under an open access regime. Due to poor management and policy implications, blind fishing is continued which may result in ecological as well as economic losses. Thus, it is of utmost impo... Pakistani marine waters are under an open access regime. Due to poor management and policy implications, blind fishing is continued which may result in ecological as well as economic losses. Thus, it is of utmost importance to estimate fishery resources before harvesting. In this study, catch and effort data, 1996-2009, of Kiddi shrimp Parapenaeopsis stylifera fishery from Pakistani marine waters was analyzed by using specialized fishery software in order to know fishery stock status of this commercially important shrimp. Maximum, minimum and average capture production ofP. stylifera was observed as 15 912 metric tons (mr) (1997), 9 438 mt (2009) and 11 667 mt/a. Two stock assessment tools viz. CEDA (catch and effort data analysis) and ASPIC (a stock production model incorporating covariates) were used to compute MSY (maximum sustainable yield) of this organism. In CEDA, three surplus production models, Fox, Schaefer and Pella-Tomlinson, along with three error assumptions, log, log normal and gamma, were used. For initial proportion (IP) 0.8, the Fox model computed MSY as 6 858 nat (CV=0.204, R^2=0.709) and 7 384 mt (CV=0.149, R^2=0.72) for log and log normal error assumption respectively. Here, gamma error produced minimization failure. Estimated MSY by using Schaefer and Pella-Tomlinson models remained the same for log, log normal and gamma error assumptions i.e. 7 083 mt, 8 209 mt and 7 242 mt correspondingly. The Schafer results showed highest goodness of fit R2 (0.712) values. ASPIC computed MSY, CV, R2, FMsv and BMsv parameters for the Fox model as 7 219 nat, 0.142, 0.872, 0.111 and 65 280, while for the Logistic model the computed values remained 7 720 mt, 0.148, 0.868, 0.107 and 72 110 correspondingly. Results obtained have shown that P. stylifera has been overexploited. Immediate steps are needed to conserve this fishery resource for the future and research on other species of commercial importance is urgently needed. 展开更多
关键词 stock assessment fishery management Parapenaeopsis stylifera surplus production models Pakistan
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Impacts of distorted fishery statistical data on assessments of three surplus production models 被引量:3
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作者 王迎宾 郑基 王征 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2011年第2期270-276,共7页
We evaluated the effect of various error sources in fishery harvest/effort data on the maximum sustainable yield (MSY) and corresponding fishing effort (EMsv) using Monte Carlo simulation analyses. A high coeffici... We evaluated the effect of various error sources in fishery harvest/effort data on the maximum sustainable yield (MSY) and corresponding fishing effort (EMsv) using Monte Carlo simulation analyses. A high coefficient of variation (CV) of the catch and effort values biased the estimates of MSY and EMsv. Thus, the state of the fisheries resource and its exploitation was overestimated. We compared the effect using three surplus production models, Hilborn-Waters (H-W), Schnute, and Prager models. The estimates generated using the H-W model were significantly affected by the CV. The Schnute model was least affected by errors in the underlying data. The CVof the catch data had a greater impact on the assessment than the CV of the fishing effort. Similarly, the changes in CV had a greater impact on the estimated maximum sustainable yield (MSY) than on the corresponding estimate of fishing effort (EMsY). We discuss the likely effect of these biases on management efforts and provide suggestions for the improvement of fishery evaluations. 展开更多
关键词 distorted data Monte Carlo simulation ERROR stock assessment
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