Research and Development Strategy for Fishery Technology Innovation for Sustainable Fishery Resource Management in North-East Asia
Abstract
:1. Introduction
2. Materials and Methods
3. Data
4. Results and Discussion
4.1. Trend in Fishery Technology Patents Granted
4.2. Results of Decomposition Analysis
4.2.1. Harvesting Technology
4.2.2. Aquaculture Technology
4.2.3. New Products Technology
4.3. Investigation of Research Hypotheses
5. Conclusions
Supplementary Materials
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Patent Group | Description of Patent Group |
---|---|
Harvesting technology | Harvesting technologies, such as more effective ways to find or harvest fish; these are typically associated with improvements in catch per unit of effort. The main categories of this patent group are IPC = A01K69 (Stationary catching devices), IPC = A01K77 (Landing-nets; Landing-spoons), and IPC = B63B35/14 (Fishing vessels). |
Aquaculture technology | Aquaculture technologies, such as methods to more effectively grow fish in captivity (innovation in feeds, ingredients that improve the health of aquaculture animals, etc.). The main categories of this patent group are IPC = A01K61 (Culture of fish, mussels, crayfish, lobsters, sponges, pearls and the like) and IPC = A01K63 (Receptacles for live fish, e.g., aquaria). |
New products technology | New products technologies, such as the development of new fish products (food technologies/processing, such as the development of surimi as a crabmeat substitute) and improvement in processing lines. The main categories of this patent group are IPC = A22C25 (Processing fish; curing of fish; stunning of fish by electric current; investigating fish by optical means) and IPC = A22C29 (Processing shellfish or bivalves and devices therefor; processing lines). |
Country and Region | Fisheries Technology Patents | Breakdown by Technology Type (%) | |||
---|---|---|---|---|---|
Number of Patent Granted (Item) | Share (%) | Harvesting | Aquaculture | Products | |
China | 50,914 | 42.06% | 22% | 74% | 3% |
Korea, Republic of | 15,879 | 13.12% | 56% | 40% | 4% |
Japan | 15,212 | 12.57% | 50% | 46% | 4% |
World 1 | 121,059 | 100.00% | 35% | 61% | 4% |
Technology | Country | 1993–1997 | 1998–2002 | 2003–2007 | 2008–2012 | 2013–2015 |
---|---|---|---|---|---|---|
Harvest | China | 184 | 929 | 1801 | 3363 | 5293 |
Korea | 759 | 2977 | 2317 | 1786 | 1463 | |
Japan | 845 | 1056 | 2690 | 2166 | 1156 | |
World | 3427 | 6207 | 8552 | 8167 | 10,336 | |
Aquaculture | China | 525 | 1180 | 3149 | 10,635 | 22,690 |
Korea | 376 | 1485 | 1648 | 1713 | 1353 | |
Japan | 1083 | 1214 | 2522 | 1396 | 1124 | |
World | 3472 | 5942 | 11,735 | 14,945 | 28,321 | |
Product | China | 27 | 37 | 105 | 552 | 912 |
Korea | 38 | 140 | 183 | 124 | 123 | |
Japan | 247 | 134 | 129 | 81 | 87 | |
World | 536 | 519 | 611 | 774 | 1384 |
Change in Harvesting Tech. | Decomposed Factors | Most Increased Patent Technology (IPC) | |||
---|---|---|---|---|---|
Priority of Harvesting Tech. | Priority of Fisheries Tech. | Scale | |||
China | 1841 | −1201 | 1125 | 1917 | Accessories for angling (A01K97) |
Korea | 115 | −214 | −102 | 431 | Accessories for angling (A01K97) |
Japan | 97 | 128 | 163 | −194 | Reels (A01K89) |
World | 2327 | −2477 | 2516 | 2287 | Systems using the reflection of acoustic waves (G01S15) |
Change in Aquaculture Tech. | Decomposed Factors | Most Increased Patent Technology (IPC) | |||
---|---|---|---|---|---|
Priority of Aquaculture Tech. | Priority of Fisheries Tech. | Scale | |||
China | 11,736 | 1441 | 4949 | 5346 | Animal feeding stuffs for aquatic animals (A23K1) |
Korea | 231 | 192 | −164 | 202 | Culture of fish, mussels, crayfish, lobsters, sponges, pearls or the like (A01K61) |
Japan | 82 | −46 | 278 | −149 | Rearing or breeding animals not otherwise provided for (A01K67) |
World | 12,769 | 2884 | 6262 | 3623 | Animal feeding stuffs for aquatic animals (A23K1) |
Change in Products Technology | Decomposed Factors | Most Increased Patent Technology (IPC) | |||
---|---|---|---|---|---|
Priority of Products Technology | Priority of Fisheries Technology | Scale | |||
China | 345 | −116 | 213 | 248 | Processing fish (A22C25) |
Korea | 26 | 16 | −10 | 20 | Processing fish (A22C25) |
Japan | −57 | −77 | 33 | −12 | Both technology groups decreased |
World | 318 | −247 | 332 | 232 | Processing shellfish or bivalves (A22C29) |
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Fujii, H.; Sakakura, Y.; Hagiwara, A.; Bostock, J.; Soyano, K.; Matsushita, Y. Research and Development Strategy for Fishery Technology Innovation for Sustainable Fishery Resource Management in North-East Asia. Sustainability 2018, 10, 59. https://doi.org/10.3390/su10010059
Fujii H, Sakakura Y, Hagiwara A, Bostock J, Soyano K, Matsushita Y. Research and Development Strategy for Fishery Technology Innovation for Sustainable Fishery Resource Management in North-East Asia. Sustainability. 2018; 10(1):59. https://doi.org/10.3390/su10010059
Chicago/Turabian StyleFujii, Hidemichi, Yoshitaka Sakakura, Atsushi Hagiwara, John Bostock, Kiyoshi Soyano, and Yoshiki Matsushita. 2018. "Research and Development Strategy for Fishery Technology Innovation for Sustainable Fishery Resource Management in North-East Asia" Sustainability 10, no. 1: 59. https://doi.org/10.3390/su10010059
APA StyleFujii, H., Sakakura, Y., Hagiwara, A., Bostock, J., Soyano, K., & Matsushita, Y. (2018). Research and Development Strategy for Fishery Technology Innovation for Sustainable Fishery Resource Management in North-East Asia. Sustainability, 10(1), 59. https://doi.org/10.3390/su10010059