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Figure 6: Hindcast Biomass Trajectory for the Myctophids Species Functional Group With Different Recruitment Steepness (H) and No Cap on Recruitment (A) and With Recruitment Capped at R0 (B).
doi 10.7717/peerj.7308/fig-6
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Figure 10: Biomass of Pelagic Fishes Over Biomass of All Age-Structured Species Groups From Chatham Rise Atlantis Model Simulations With Recruitment Steepness Set at 0.5 for Myctophids, No Cap on Recruitment (A), Recruitment Capped at R0 (B), and Three Catch Scenarios: (1) Zero Catch; (2) Status Quo Catch; (3) Half Catch, for the 2010–2016 Hindcast Period and 2016–2046 Projection Period.
Figure 7: Kempton’s Q Calculated From Chatham Rise Atlantis Model Simulations With Recruitment Steepness Set at 0.5 for Myctophids, No Cap on Recruitment (A), Recruitment Capped at R0 (B), and Three Catch Scenarios: (1) Zero Catch; (2) Status Quo Catch; (3) Half Catch, for the 2010–2016 Hindcast Period and 2016–2046 Projection Period.
Figure 11: Biomass Ratio of Trophic Level 4 and Higher Over Trophic Level 3 From Chatham Rise Atlantis Model Simulations With Recruitment Steepness Set at 0.5 for Myctophids, No Cap on Recruitment (A), Recruitment Capped at R0 (B), and Three Catch Scenarios: (1) Zero Catch; (2) Status Quo Catch; (3) Half Catch, for the 2010–2016 Hindcast Period and 2016–2046 Projection Period.
Figure 4: Beverton–Holt Spawning Stock Recruitment Curves With Recruitment Capped at R0 (A) and Resulting Biomass Trajectories (B) From a Simple Population Model Using Different Steepness, H, Ranging From 0.35 to 0.95 and Time-Varying Mortality as in Fig. 2.
Table 2: Sensitivity (Indicated by ✓) of Ecological Indicators to Steepness and Recruitment Cap in the Hindcast and/or Catch Scenario Projections.
Figure 3: Beverton–Holt Spawning Stock Recruitment Curves (A) and Resulting Biomass Trajectories (B) From a Simple Population Model Using Different Steepness, H, Ranging From 0.35 to 0.95 and Time-Varying Mortality as in Fig. 2.
Recruitment and Selection
Recruitment and Selection
Recruitment and Selection