Monitoring the Health of Our Oceans: From the Sea Surface to the Seafloor †
Abstract
1. Introduction
2. Methodology
- (i)
- To assess the relevance and possible combination of different monitoring technologies to monitor the fishing effort;
- (ii)
- To understand individual technologies’ specific limitations and possible ways to overcome them;
- (iii)
- To determine the proper technological mix to address the research goal.
- (i)
- The presence and abundance of endemic species (fishing stocks and other species);
- (ii)
- The state and conditions of the marine habitat (e.g., degradation, damage, recovery stage, richness and diversity, etc.);
- (iii)
- The behaviors of non-fishing stocks (e.g., possible changes to ecological functions, such as feeding, breeding, and nursing).
3. Expedition Simulation
3.1. Pre-Expedition: Comparing Ocean Monitoring Technologies (RO1)
3.2. Expedition (RO2)
3.3. Post-Expedition: Data Analysis and Management
4. Conclusions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Technology | Sensor | Revisit Time | Resolution | Data Collected | Output | Outcome |
---|---|---|---|---|---|---|
Landsat 8-9 satellite (USGS) | OLI/TIRS (Operational Land Imager/Thermal Infrared Sensor) | 8 days | 30 m | Multispectral data | Map of land/ocean use | Monitoring the use of fisheries’ resources |
Sentinel-2 satellite (ESA) | MSI (Multispectral Instrument) | 10 days | 10 m | Multispectral data | Time series of state of and changes in coastal waters | Monitoring land use changes in proximity of fisheries |
Sentinel-3 satellite (ESA) | OLCI (Ocean and Land Color Instrument) | 27 days | 300 m | Optical images | Time series of dynamic changes in maritime uses | Monitoring long-term, large-scale dynamics of fishing processes |
GOES satellite (NOAA CoastWatch) | Imager | 4 days | 30 m | Optical images | Real-time map collection of oceans | Monitoring real-time vessel movement |
ID | Work Package | Description | Objective | Team Members | Notes |
---|---|---|---|---|---|
1 | Debriefing | Overview of the activities (before/after expedition), objectives, and duties | Ensure team alignment and activity coordination | All members | This activity must be completed before starting the haul; it is necessary that all members know their duties and responsibilities at all times to ensure effective data collection |
2 | Equipment preparation | Mobilization, preparation, and final check of all equipment, including functioning of sensors/cameras | Ensure gear performance | Members trained in equipment mobilization and operation | Only trained personnel should operate gears; every malfunctioning should be properly reported |
3 | Preliminary analysis of the site | Preliminary visual and acoustic analysis of the sampling site using vessels’ sensors and logging of results | Supplement initial satellite investigation; provide useful information to guide the haul | Members operating gears | Every anomaly and/or mismatch between satellite observations and preliminary analysis should be reported; if necessary, data collection activities should be adapted to the new information at the site |
4 | Equipment deployment | Gears are lowered in the water | Ensure safe operation of all gears | Members operating gears | Control the descent and ensure that gears are operating at all times |
5 | ROV hauls | Data collection using ROV | Collect and log useful data consistently with the research objectives | Members operating gears; members logging data | Each haul should be properly planned and data reported accordingly |
6 | Deep BRUV hauls | Data collection using deep BRUV | Collect and log useful data consistently with the research objectives | Members operating gears; members logging data | Each haul should be properly planned and data reported accordingly |
7 | Equipment retrieval | Hoisting gears back to the vessel | Ensure safe operation of all gears | Members operating gears | Control ascent |
8 | Sample processing | Download and storage of all collected frames, images, and videos | Data management | Data handling members | Ensure proper handling and storage of data; depending on the capacity of storing devices, down-sampling and data encoding might be required at this stage |
9 | Debriefing | Summary of conducted activities | Ensure team alignment and activity coordination | All members | Check that all activities have been performed and collected data are sufficient for the analysis |
Expedition Objectives | Data | Gear | Location | Depth | Output | Outcome |
---|---|---|---|---|---|---|
Presence and abundance of endemic species |
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| Inventory of deep-sea species | Monitoring the richness and diversity of deep-sea species |
State and conditions of the marine habitat |
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| Definition of a degradation/recovery index | Monitoring degradation and/or recovery stage in fishing hotspots |
Behaviors of non-fishing stocks |
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| Identification of patterns of change | Monitoring changes in ecological functions |
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Maione, C. Monitoring the Health of Our Oceans: From the Sea Surface to the Seafloor. Med. Sci. Forum 2025, 33, 5. https://doi.org/10.3390/msf2025033005
Maione C. Monitoring the Health of Our Oceans: From the Sea Surface to the Seafloor. Medical Sciences Forum. 2025; 33(1):5. https://doi.org/10.3390/msf2025033005
Chicago/Turabian StyleMaione, Carol. 2025. "Monitoring the Health of Our Oceans: From the Sea Surface to the Seafloor" Medical Sciences Forum 33, no. 1: 5. https://doi.org/10.3390/msf2025033005
APA StyleMaione, C. (2025). Monitoring the Health of Our Oceans: From the Sea Surface to the Seafloor. Medical Sciences Forum, 33(1), 5. https://doi.org/10.3390/msf2025033005