Prey–Predator Mathematics Model for Fisheries Insurance Calculations in the Search of Optimal Strategies for Inland Fisheries Management: A Systematic Literature Review
Abstract
:1. Introduction
2. Materials and Methods
2.1. Scientific Article Data
2.2. Selection of Literature Database
- A.
- (“Predator–Prey Model” OR “Predator-Prey Model” OR “Prey–Predator Model” OR “Prey–Predator Model”);
- B.
- (“Fishery”) AND (“Maximum Sustainable Yield” OR “MSY”);
- C.
- (“Insurance”).
2.3. Bibliometric Analysis
3. Results
3.1. Article Data Visualization
3.2. Mathematics Model
4. Discussion
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Keywords | Type | Google Scholar | Dimensions | Science Direct | Scopus |
---|---|---|---|---|---|
Keywords 1 | A | 1000 | 16,608 | 2324 | 200 |
Keywords 2 | A AND B | 300 | 292 | 54 | 10 |
Keywords 3 | A AND B AND C | 12 | 53 | 1 | 0 |
Database | Data Keywords 3 | Semi-Automatic | Manual Selection | ||||
---|---|---|---|---|---|---|---|
Duplicate | Abstract | Full Text | |||||
Excluded | Included | Excluded | Included | Excluded | Included | ||
Google Scholar | 12 | 2 | 10 | 4 | 6 | 0 | 6 |
Dimensions | 53 | 14 | 39 | 15 | 24 | 17 | 7 |
Science Direct | 1 | 0 | 1 | 1 | 0 | 0 | 0 |
Scopus | 0 | 0 | 0 | 0 | 0 | 0 | 0 |
Total | 66 | 16 | 50 | 20 | 30 | 17 | 13 |
Cluster | Items |
---|---|
1 | ecotourism |
fishing | |
impact | |
predator-prey model | |
species interaction | |
2 | conventional fisheries management |
ecosystem | |
fisheries management | |
insight | |
reserves | |
3 | bioeconomic model |
derivative | |
fisheries management | |
maximum sustainable yield | |
MSY | |
4 | ecology |
economic | |
fisheries | |
growth |
No | Author | Title | Method | Object |
---|---|---|---|---|
1. | M.D Smith [28] | The new fisheries economics: incentives across many margins | Logistics Models and Lotka–Volterra | Fisheries |
2. | Peter Roopnarine [14] | Ecology and the tragedy of the commons | Logistics Model and Lotka––Volterra, Ricker’s basic model | General interactions between species |
3. | K. Chakraborty, T.K Kar [29] | The economic perspective of marine reserves in fisheries: a bioeconomic model | Logistics Models, and Lotka–Volterra | Fisheries |
4. | P. Jakubik [30] | How to anticipate recession via transport indices | Stochastic Dynamics, Lotka–Volterra | Transportation index in fisheries |
5. | P. Paul, T.K Kar [31] | Impacts of invasive species on the sustainable use of native exploited species | Logistics Model and Lotka–Volterra | Fisheries |
6. | D. Das, T.K Kar [32] | Marine reserve and its consequences in a predator–prey system for ecotourism and fishing | Single species model, Predator-Prey Model, Harvesting, MSY, EMSY, MEY | Fisheries |
7. | X. Chen, G. Li, Q. Ding [25] | A bioeconomic model of fishery resources under ecological and technological interdependencies | Logistics Model and Lotka–Volterra. | Fisheries |
8. | A. Gauteplass [33] | On the optimal control of an animal-vegetation ecological system | Logistics Model and Lotka–Volterra, Harvesting, Type II Holling Function Response, MSY | Plants and animals |
9. | L.A.K Barnett [34] | Effects of fishing, species interactions, and climate on populations and communities: insights for ecosystem-based fisheries management | Dynamic Models, Fisheries Management, Predator-Prey Model, Harvesting | Fisheries |
10. | Seijo, J.C, Defeo, O and Salas, S, FAO [35] | Fisheries bioeconomics. Theory, modeling, and management | Prey–Predator Model | Fisheries |
11. | H. Frost, L. Ravensbeck, A. Hoff and P. Andersen. [20] | The economics of ecosystem-based fisheries management | Fisheries Management, MSY, MEY, Ecosystem Dynamic Model, Prey–Predator Model | Fisheries |
12. | D. Poudel [36] | Stochastic analysis in fisheries management | Dynamic Growth, Stochastic, Fisheries Management | Fisheries |
13. | Tarik C. Gouhier, F. Guichard and Bruce A. Menge. [37] | Designing effective reserve networks for nonequilibrium metacommunities | Logistik Model, Prey–Predator Model, Lotka–Volterra, | Fisheries |
No | Author | Title | Discussion Material | ||||||
---|---|---|---|---|---|---|---|---|---|
Prey–Predator | Lotka–Volterra | Holling Type II | Harvesting | MSY | MEY | Insurance | |||
1. | M.D Smith [28] | The new fisheries economics: incentives across many margins | √ | √ | |||||
2. | Peter Roopnarine [14] | Ecology and the tragedy of the commons | √ | √ | |||||
3. | K. Chakraborty, T.K Kar [29] | The economic perspective of marine reserves in fisheries: a bioeconomic model | √ | √ | |||||
4. | P. Jakubik [30] | How to anticipate recession via transport indices | √ | √ | |||||
5. | P. Paul, T.K Kar [31] | Impacts of invasive species on the sustainable use of native exploited species | √ | √ | |||||
6. | D. Das, T.K Kar [32] | Marine reserve and its consequences in a predator-prey system for ecotourism and fishing | √ | √ | √ | √ | √ | ||
7. | X. Chen, G. Li, Q. Ding [25] | A bioeconomic model of fishery resources under ecological and technological interdependencies | √ | √ | |||||
8. | A. Gauteplass [33] | On the optimal control of an animal-vegetation ecological system | √ | √ | √ | ||||
9. | L.A.K Barnett [34] | Effects of fishing, species interactions, and climate on populations and communities: insights for ecosystem-based fisheries management | √ | √ | |||||
10. | Seijo, J.C, Defeo, O and Salas, S, FAO [35] | Fisheries bioeconomics: Theory, modeling, and management | √ | √ | |||||
11. | H. Frost, L. Ravensbeck, A. Hoff and P. Andersen. [20] | The economics of ecosystem-based fisheries management | √ | √ | √ | √ | |||
12. | D. Poudel [36] | Stochastic analysis in fisheries management | √ | ||||||
13. | Tarik C. Gouhier, F. Guichard and Bruce A. Menge. [37] | Designing effective reserve networks for nonequilibrium metacommunities | √ | √ |
Symbol | Description |
---|---|
Prey population | |
Predator population | |
Constant per capita growth rate | |
Constant carrying capacity for the prey species | |
The predation rate | |
The conversion coefficient due to predation | |
The natural mortality rate of the predator species | |
The catchability coefficients of prey species, respectively | |
The catchability coefficients of predator species, respectively | |
The independent harvesting effort on prey species, respectively | |
The independent harvesting effort on predator species, respectively |
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Basir, C.; Supriatna, A.K.; Sukono; Saputra, J. Prey–Predator Mathematics Model for Fisheries Insurance Calculations in the Search of Optimal Strategies for Inland Fisheries Management: A Systematic Literature Review. Sustainability 2023, 15, 12376. https://doi.org/10.3390/su151612376
Basir C, Supriatna AK, Sukono, Saputra J. Prey–Predator Mathematics Model for Fisheries Insurance Calculations in the Search of Optimal Strategies for Inland Fisheries Management: A Systematic Literature Review. Sustainability. 2023; 15(16):12376. https://doi.org/10.3390/su151612376
Chicago/Turabian StyleBasir, Choirul, Asep Kuswandi Supriatna, Sukono, and Jumadil Saputra. 2023. "Prey–Predator Mathematics Model for Fisheries Insurance Calculations in the Search of Optimal Strategies for Inland Fisheries Management: A Systematic Literature Review" Sustainability 15, no. 16: 12376. https://doi.org/10.3390/su151612376
APA StyleBasir, C., Supriatna, A. K., Sukono, & Saputra, J. (2023). Prey–Predator Mathematics Model for Fisheries Insurance Calculations in the Search of Optimal Strategies for Inland Fisheries Management: A Systematic Literature Review. Sustainability, 15(16), 12376. https://doi.org/10.3390/su151612376