Enhancing Chub Mackerel Catch Per Unit Effort (CPUE) Standardization through High-Resolution Analysis of Korean Large Purse Seine Catch and Effort Using AIS Data

被引:2
|
作者
Owiredu, Solomon Amoah [1 ,2 ]
Onyango, Shem Otoi [1 ,3 ]
Song, Eun-A [1 ]
Kim, Kwang-Il [1 ]
Kim, Byung-Yeob [1 ]
Lee, Kyoung-Hoon [4 ]
机构
[1] Jeju Natl Univ, Coll Ocean Sci, Dept Marine Ind & Maritime Police, Jeju 63243, South Korea
[2] CSIR, Water Res Inst, 018-9651, Accra GA-0189651, Ghana
[3] Jomo Kenyatta Univ Agr & Technol, Dept Marine Engn & Maritime Operat, Nairobi 6200000200, Kenya
[4] Pukyong Natl Univ, Div Marine Prod Syst Management, Busan 48513, South Korea
基金
新加坡国家研究基金会;
关键词
chub mackerel; CPUE standardization; generalized linear model; generalized additive model; automatic identification system; total allowable catch; South Korea; EAST CHINA SEA; VESSEL MONITORING SYSTEMS; SCOMBER-JAPONICUS; VERTICAL MIGRATION; SUITABILITY INDEX; SPOTTED MACKEREL; REGIME SHIFTS; CLIMATE; FISHERIES; HABITAT;
D O I
10.3390/su16031307
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Accurate determination of fishing effort from Automatic Identification System (AIS) data improves catch per unit effort (CPUE) estimation and precise spatial management. By combining AIS data with catch information, a weighted distribution method is applied to allocate catches across various fishing trajectories, accounting for temporal dynamics. A Generalized Linear Model (GLM) and Generalized Additive Model (GAM) were used to examine the influence of spatial-temporal and environmental variables (year, month, Sea Surface Temperature (SST), Sea Surface Salinity (SSS), current velocity, depth, longitude, and latitude) and assess the quality of model fit for these effects on chub mackerel CPUE. Month, SST, and year exhibited the strongest relationship with CPUE in the GLM model, while the GAM model emphasizes the importance of month and year. CPUE peaked within specific temperature and salinity ranges and increased with longitude and specific latitudinal bands. Month emerged as the most influential variable, explaining 38% of the CPUE variance, emphasizing the impact of regulatory measures on fishery performance. The GAM model performed better, explaining 69.9% of the nominal CPUE variance. The time series of nominal and standardized indices indicated strong seasonal cycles, and the application of fine-scale fishing effort improved nominal and standardized CPUE estimates and model performance.
引用
收藏
页数:19
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