The role of digital technologies in supporting and improving fishery and aquaculture across the supply chain – Quo Vadis?
Tài liệu tham khảo
Ab Rahman, 2017, Emerging technologies with disruptive effects: a review, Perintis eJournal, 7, 111
Alonso, 2020, An intelligent Edge-IoT platform for monitoring livestock and crops in a dairy farming scenario, Ad Hoc Networks, 98
Altoukhov, 2020, Industrial production platforms and production in aquaculture
Antononucci, 2020, Precision aquaculture: A short review on engineering innovations, Aquaculture Intnernational, 28, 41, 10.1007/s10499-019-00443-w
Arvanitis, 2020, Agriculture 4.0 – the role of innovative smart technologies towards sustainable farm management, The Open Agriculture Journal, 14, 130, 10.2174/1874331502014010130
Asche, 2018, Three pillars of sustainability in fisheries, Proceedings of the National Academy of Sciences, 115, 11221, 10.1073/pnas.1807677115
Banna, 2017, 3D printing based integrated water quality sensing systems, Sensors, 17, 1338, 10.3390/s17061336
Barry, 2021, Sustainable measurement indicators to assess impact of climate change. Implications for the New Green Deal Era, Current Opinion in Environmental Science and Health, 22, 10.1016/j.coesh.2021.100259
Bodkhe, 2020, Blockchain for industry 4.0: A comprehensive review, IEEE Access, 8, 79764, 10.1109/ACCESS.2020.2988579
Boutier, 2019, Current knowledge and future prospects of vaccines against herpesvirus 3 (CyHV-3), Fish & Shellfish Immunology, 93, 531, 10.1016/j.fsi.2019.07.079
Ceipek, 2021, A motivation and ability perspective on engagement in emerging digital technologies: The case of Internet of Things solutons, Long Range Plan, 54, 10.1016/j.lrp.2020.101991
Chen, 2017, Construction and implementation of 3D aquaculture virtual simulation experiment systems, Modern Computer, 16, 2017
Clark, 2012, Evolutionary design and experimental validation of the flexible caudal fin for robotic fish, 12, 325
Connolly
Cooney, 2021, The dilemma of opportunity in developing a life cycle assessment of emerging aquaculture systems – a case study of a Eurasian perch (Perca fluviatilis) hatchery recirculating aquaculture system, Aquaculture, 536, 10.1016/j.aquaculture.2021.736403
Dash, 2022, ICT for sustainability and socio-economic development in fishery: A bibliometric analysis and future research agenda, Environment, Development and Sustainability
Defraeye, 2021, Ditigal twins are coming; will we need them in supply chains of fresh horticulture produce?, Trends in Food Science & Technology, 109, 245, 10.1016/j.tifs.2021.01.025
Deloitte
Delrez, 2021, European eel restocking programs based on wild-caught glass eels: Feasibility of quarantine stage compatible with implementation of prophylactic measures prior to scheduled reintroduction to the wild, Journal for Nature Conservation, 59, 10.1016/j.jnc.2020.125933
Domegan, 2021, Social Marketing and behavioural change in a systems setting, Current Opinion in Environmental Science and Health, 10.1016/j.coesh.2021.100275
Ducket, 2018
Dupont, 2018, IoT for aquaculture 4.0 Smart and easy-to-deploy real-time water monitoring with Iot, 1
Evensen, 2020
2020
Farmery, 2022, Food for all: Designing sustainable and secure future seafood systems, Reviews in Fish Biology and Fisheries, 32, 101, 10.1007/s11160-021-09663-x
Farrell, 2010, Investigation of critical inter-related factors affecting the efficacy of pulsed light for inactivating clinically-relevant bacterial pathogens, Journal of Applied Microbiology, 108, 1494, 10.1111/j.1365-2672.2009.04545.x
Farrell, 2011, Studies on the relationship between pulsed UV light irradiation ad the simultaneous occurrence of molecular and cellular damage in clinically-relevant Candida albicans, Journal of Microbiological Methods, 84, 317, 10.1016/j.mimet.2010.12.021
Feng, 2020, Applying blockchain technology to improve agri-food traceability: A review of developing methods, benefits, and challenges, Journal of Cleaner Production, 10.1016/j.jclepro.2020.121031
Ferreira, 2012, Progressing aquaculture through virtual technology and decision-support tools for novel management
Fitzhenry, 2021, Bacterial inactivation, photoreactivation and dark repair post flow-through pulsed UV disinfection, Journal of Water Process Engineering, 41, 10.1016/j.jwpe.2021.102070
Franseen, 2019, Inactivation of parasite transmission stages: Efficacy of treatments on food of animal origin, Trends in Food Science & Technology, 83, 114, 10.1016/j.tifs.2018.11.009
Galanakis, 2021, Innovations and technology disruptions in the food sector within the COVID-19 pandemic and post-lockdown era, Trends in Food Science & Technology, 110, 193, 10.1016/j.tifs.2021.02.002
Galappaththi, 2022, Climate change adaptation in fisheries, Fish and Fisheries, 23, 4, 10.1111/faf.12595
Garcia-Soto, 2021, Marine citizen science: Current state in Europe and new technological developments, Frontiers in Marine Science, 8, 10.3389/fmars.2021.621472
Garvey, 2015, Ecotoxicological assessment of pulsed ultraviolet light-treated water containing microbial species and Cryptosporidium parvum using a microbiotest test battery, Water and Environment Journal, 29, 27, 10.1111/wej.12073
Giron-Nava, 2021, Sustainable fisheries are essential but not enough to ensure well-being for the world's Fishers, Fish and Fisheries, 22, 812, 10.1111/faf.12552
Hrustek, 2020, Sustainability driven by agriculture through digital transformation, Sustainability, 12, 10.3390/su12208596
2022
Josthiswaran, 2020, Application of artificial intelligence in fisheries and aquaculture, Biotica Research Today, 2, 499
Jung, 2019
Kamaruidzaman, 2020, Water monitoring systems embedded with internet of things (IoT) device: A review
Kelliher, 2022, Enablers of green innovation in the micro firm – perspectives from Ireland and Canada, Journal of Small Business and Entrepreneurship, 34, 74, 10.1080/08276331.2020.1789826
Kruusmaa, 2020, Salmon behavioural response to robots in an aquaculture sea cage, Royal Society for Flatfish., Aquaculture Engineering, 54, 78
Laso, 2021, Achieving sustainability of the Seafood sector in European Atlantic area by addressing eco-social challenges: the NEPTUNUS project, Sustainability
Lawrence, 2022, Blue light inhibits E. coli, but decisive parameters remain hidden in the dark: Systematic review and meta-analysis, Frontiers in Microbiology, 10.3389/fmicb.2022.867865
Lee, 2013, Development of a vision-based automatic vaccine injection system for flatfish, Aquaculture Engineering, 54, 78, 10.1016/j.aquaeng.2012.12.001
Lennox, 2020, Digital fisheries data in the internet age: Emerging tools for research and monitoring online data in recreational fisheries, Fish and Fisheries
Lucas, 2019
Maclean, 2009, Inactivation of bacterial pathogens following exposure to light from a 405-nm light emitting diode array, Applied and Environmental Microiology, 75, 1932, 10.1128/AEM.01892-08
Marvin, 2017, Big data in food safety: A review, Critical Reviews in Food Science and Nutrition, 57, 2286, 10.1080/10408398.2016.1257481
Masterson, 2021
Misra, 2020, IoT, big data and artificial intelligence in agriculture and food industy, IEEE Internet of Things Journal, 4662
Mondejar, 2021, Digitalization to achieve sustainable development goals: Steps towards a smarter green plant, Science of the Total Environment, 10.1016/j.scitotenv.2021.148539
Murray, 2017, Pulsed light reduces the toxicity of the algal toxin okadaic acid to freshwater crustacean Daphnia pulex, Environmenal Sciences and Pollution Research, 25, 607, 10.1007/s11356-017-0472-6
Nagarajarao, 2016, Recent advances in processing and packaging of fishery products: A review, Aquatic Procedia, 7, 201, 10.1016/j.aqpro.2016.07.028
Nahavandi, 2019, Industry 5.0 – a human-centric solution, Sustainability, 1, 4371, 10.3390/su11164371
Naughton, 2020, Aquaculture, 526, 10.1016/j.aquaculture.2020.735377
Ohrem, 2020, Analysis of a novel autonomous underwater robot for biofouling prevention and inspection in fish farms, 1002
O'Neill, 2022, Effects of climate and environmental variance on the performance of a novel peatland-based integrated multi-trophic aquaculture (IMTA) system – implications and opportunities for advanced research and disruptive innovation post COVID-19 era, Science of the Total Environment, 819, 10.1016/j.scitotenv.2022.153073
O'Neill, 2022, Microalgae as a natural ecological bioindicator for the simple real-time monitoring of aquaculture wastewater quality including provision for assessing impact of extremes in climate variance – a comparative study from the Republic of Ireland, Science of the Total Environment, 10.1016/j.scitotenv.2021.149800
O'Neill, 2019, Novel use of the alga Pseudookirchneriella subcapitata, as an early-warning indicator to identify climate change ambituity in aquatic environments using freshwater finfish farming as a case study, Science of the Total Environment, 692, 10.1016/j.scitotenv.2019.07.243
O'Neill, 2020, Novel use of peatlands as future locations for the sustainable intensification of freshwater aquaculture production – a case study from the Republic of Ireland, Science of the Total Environment, Vol. 706, 10.1016/j.scitotenv.2019.136044
Oreopoulou, 2022, Plant antioxidants and antimicrobials in edible and non-edible active packaging films, Plant Antioxidants and Health, 91, 837, 10.1007/978-3-030-78160-6_29
O'Sullivan
Paspalakisk, 2020, Automated fish cage net inspection using image processing techniques, IET image Procecssing, 14, 2
Perez – Pons, 2021, Increasing profitability and monitoring environmental performance: A case study in the agri-food industry through an edge-IoT platform, Sustainability, 13, 283, 10.3390/su13010283
Pogue, 2021, Exploiting immunomodulatory properties of β-glucans derived from natural products for improving health and sustainability in aquaculture-farmed organisms: Concise review of existing knowledge, innovation and future opportunities, Current Opinion in Environmental Science and Health, 10.1016/j.coesh.2021.100248
Prasolova-Førland, 2019, Empowering young job seekers with virtual reality, 295
Psotka, 1995, Immersive training systems. Virtual reality and education and training, Instructional Science, 23, 405, 10.1007/BF00896880
Razman, 2020
Rejeb, 2020, Blockchain technology in the food industry: A review of potentials, challenges and future research directions, Logistics, 4, 27, 10.3390/logistics4040027
Rowan, 2019, Pulsed light as an emerging technology to cause disruption for food and adjacent industries – Quo Vadis, Trends in Food Science & Technology, 88, 316, 10.1016/j.tifs.2019.03.027
Rowan, 2021, Current Opinion in Environmental Science and Health
Rowan, 2020, Unlocking challenges and opportunities presented by COVID-19 pandemic for cross-cutting disruption in agri-food and green deal innovations – Quo Vadis?, Science of the Total Environment, 748, 10.1016/j.scitotenv.2020.141362
Rowan, 2020, Challenges and solutions for addressing critical shortage of supply chain for personal and protective equipment (PPE) arising from Coronavirus disease (COVID-19) pandemic –Case Study from the Republic of Ireland, Science of the Total Environment, 725, 10.1016/j.scitotenv.2020.138532
Rowan
Rowan, 2021
Rowan, 2022, Digital transformation of peatland eco-innovations (‘Paludiculture’): Enabling a paradigm shift towards the real-time sustainable production of ‘green-friendly’ products and services, Science of the Total Environment, 838, 10.1016/j.scitotenv.2022.156328
Rowan, 2021, Editorial overview: Green new deal era – current challenges and emerging opportunities for developing sustaining and disruptive innovation, Current Opinion in Environmental Science and Health, 10.1016/j.coesh.2021.100294
Rozenzweig, 2020, Climate change responses benefit from a global food system approach, Nature Food, 1, 94, 10.1038/s43016-020-0031-z
Ruiz-Salmon, 2021, Achieving sustainability of the seafood sector in the European Atlantic area by addressing eco-social challenges: The NEPTUNUS project, Sustainability, 14
Ruiz-Salmon, 2021, Life cycle assessment of fish and seafood processed products – a review of methodologies and new challenges, Science of the Total Environment, 10.1016/j.scitotenv.2020.144094
Sakamoto, 2021, Harmful algal blooms and associated fisheries damage in East Asia: Current status and trends in China, Japan, Korea and Russia, Harmful Algae, 102, 10.1016/j.hal.2020.101787
Schuelke-Leech, 2018, A model for understanding the orders of magnitude of disruptive technologies, Technological Forecasting and Social Change, 129, 261, 10.1016/j.techfore.2017.09.033
Schuelke-Leech, 2021, Disruptive technologies for a green new deal, Current Opinion in Environmental Science and Health, 10.1016/j.coesh.2021.100245
Sousa, 2019, Self-adaptive team of aquatic drones with a communication network for aquaculture, 569
Sun, 2020, Deep learning in aquaculture: A review, Journal of Computers, 31, 294
Svendsen, 2020, Heart rate and swimming activity as stress indicators for Atlantic salmon, Aquaculture, 531
Tahar, 2018, Longitudinal evaluation of the impact of traditional rainbow trout farming on receiving water quality in Ireland, PeerJ, 10.7717/peerj.5281
Tahar, 2018, Occurrence and geodatabase mapping of three contaminants of emerging concern in receiving water and at effluent from waste water treatment plants – a first overview of the situation in the Republic of Ireland, Science of the Total Environment, 616–617, 187, 10.1016/j.scitotenv.2017.11.021
Taylor
Terrain
Tsironi, 2021, Current and new Green Deal solutions for sustainable food processing, Current Opinion in Environmental Science and Health, 10.1016/j.coesh.2021.100244
Tsolakis, 2019, Sensor applications in agrifood systems: Current trends and opportunities for water stewardship, Climate, 7, 44, 10.3390/cli7030044
United Nations
Usuldin, 2021, In vivo toxicity of bioreactor-grown biomass and exopolysaccharides from Malaysian tiger milk mushroom mycelium for potential future health applications, Scientific Reports, 11, 10.1038/s41598-021-02486-7
Wan-Mohtar, 2021, Use of Zebrafish embryo assay to evaluate toxicity and safety of bioreactor-grown exopolysaccharides and endopolysaccharides from European ganoderma applanatum Mycelium for future aquaculture applications, International Journal of Molecular Sciences, 22, 10.3390/ijms22041675
Wang, 2021, Intelligent fish farm—the future of aquaculture, Aquaculture International, 29, 2681, 10.1007/s10499-021-00773-8
Weiskopt, 2020, Climate change effects on biodiversity, ecosystems, ecosystem services, and natural resource management in the United States, Science of the Total Environment
Weiss, 2020, Remote sensing for agricultural applications: A meta-review, Remote Sensing of Environment, 236, 10.1016/j.rse.2019.111402
Xi, 2019, An end-to-end augmented reality solution to support aquaculture farmers with data collection, storage and analysis, 1
Xia, 2022, Editorial – emerging and disruptive technologies in aquaculture, Aquaculture and Fisheries, 7, 109, 10.1016/j.aaf.2021.12.001
Xing, 2019, Monitoring seaweed aquaculture in the Yellow Sea with multiple sensors for managing the disease of macroalgae blooms, Remote Sensing of Environment, 231, 10.1016/j.rse.2019.111279
Yang, 2021, Deep learning for smart fish farming: Applications, opportunities and challenges, Reviews in Aquaculture, 13, 66, 10.1111/raq.12464
Yoo, 2020, Design and development of underwater drone for fish farm growth environment managment, The Journal of the Korea Institute of Electronic Communicaiton Sciences, 15, 959
Yue, 2022, An overview of disruptive technologies for aquaculture, Aquaculture and Fisheries, 7, 111, 10.1016/j.aaf.2021.04.009
Yu, 2017, A survey on the edge computing for the internet of things, IEEE Access, 6, 6900, 10.1109/ACCESS.2017.2778504
Yue, 2022, An overview of disruptive technologies for aquaculture, Aquaculture and Fisheries, 7, 10.1016/j.aaf.2021.04.009
Zhou, 2019, Evaluation of fish feeding intensity in aquaculture using a convolutional neural network and machine vision, Aquaculture, 507, 10.1016/j.aquaculture.2019.04.056
