Overcoming challenges of harvest quota allocation in spatially structured populations

被引:24
作者
Bosley, Katelyn M. [1 ]
Goethel, Daniel R. [2 ]
Berger, Aaron M. [1 ]
Deroba, Jonathan J. [3 ]
Fenske, Kari H. [4 ]
Hanselman, Dana H. [4 ]
Langseth, Brian J. [5 ]
Schueller, Amy M. [6 ]
机构
[1] NOAA, Fisheries Resource & Monitoring Div, Northwest Fisheries Sci Ctr, NMFS, 2032 SE OSU Dr, Newport, OR 97365 USA
[2] NOAA, Sustainable Fisheries Div, Southeast Fisheries Sci Ctr, NMFS, 75 Virginia Beach Dr, Miami, FL 33133 USA
[3] NOAA, North East Fisheries Sci Ctr, NMFS, 166 Water St, Woods Hole, MA 02543 USA
[4] NOAA, Auke Bay Labs, Alaska Fisheries Sci Ctr, NMFS, 17109 Point Lena Loop Rd, Juneau, AK 99801 USA
[5] NOAA, Pacific Isl Fisheries Sci Ctr, NMFS, 1845 Wasp Blvd,Bldg 176, Honolulu, HI 96818 USA
[6] NOAA, Beaufort Lab, Southeast Fisheries Sci Ctr, NMFS, 101 Pivers Isl Rd, Beaufort, NC 28516 USA
关键词
Stock assessment; Spatial management; Connectivity; Population structure; Catch allocation; Harvest rate; MANAGEMENT STRATEGY EVALUATION; STOCK ASSESSMENT; ATLANTIC COD; SPACE ODDITY; FISH; MODEL; RECRUITMENT; MORTALITY; HETEROGENEITY; CONSERVATION;
D O I
10.1016/j.fishres.2019.105344
中图分类号
S9 [水产、渔业];
学科分类号
0908 ;
摘要
Ignoring spatial population structure in the development of fisheries management advice can affect population resilience and yield. However, the resources required to develop spatial stock assessment models that match the spatial scale of management are often unavailable. As a result, quota recommendations from spatially aggregated assessment models are commonly divided among management areas based on empirical methods. We developed a spatially explicit simulation model to 1) explore how variation in population structure influences the spatial distribution of harvest that produces maximum system yield, and 2) contrast the performance of empirical quota allocation methods in approximating ideal spatial harvest strategies. Spatial scenarios that included post-recruitment movement resulted in a broader range of spatial management options (e.g., setting regional total allowable catch) that achieved near maximum system yield compared to scenarios without movement. Stochastic projections showed that using the proportion of total survey biomass in each management area to spatially allocate quota performed best for maximizing system yield when the true spatial structure was unknown, considerably outperforming equal allocation and allocation based on a recruitment index. However, with all methods, area-specific harvest rates sometimes led to unintended depletion within management units. Improved data and understanding of spatial stock dynamics can reduce the need for ad hoc approaches for spatial harvest allocation, allow for a greater range of management options, and increase the efficacy of spatial management procedures.
引用
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页数:12
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