Steere et al., 2000 - Google Patents
Research challenges in environmental observation and forecasting systemsSteere et al., 2000
View PDF- Document ID
- 10126791866802759400
- Author
- Steere D
- Baptista A
- McNamee D
- Pu C
- Walpole J
- Publication year
- Publication venue
- Proceedings of the 6th annual international conference on Mobile computing and networking
External Links
Snippet
We describe Environmental Observation and Forecasting Systems (EOFS), a new class of large-scale distributed system designed to monitor, model, and forecast wide-area physical processes such as river systems. EOFS have strong social relevance in areas such as …
- 238000011160 research 0 title description 18
Classifications
-
- G—PHYSICS
- G01—MEASURING; TESTING
- G01V—GEOPHYSICS; GRAVITATIONAL MEASUREMENTS; DETECTING MASSES OR OBJECTS
- G01V1/00—Seismology; Seismic or acoustic prospecting or detecting
- G01V1/38—Seismology; Seismic or acoustic prospecting or detecting specially adapted for water-covered areas
- G01V1/3817—Positioning of seismic devices
Similar Documents
Publication | Publication Date | Title |
---|---|---|
Steere et al. | Research challenges in environmental observation and forecasting systems | |
CN105607053B (en) | A kind of float type high-frequency ground wave radar system | |
Emery et al. | Evaluating radial current measurements from CODAR high-frequency radars with moored current meters | |
Kerkez et al. | Design and performance of a wireless sensor network for catchment‐scale snow and soil moisture measurements | |
Tinka et al. | Floating sensor networks for river studies | |
Kumar et al. | Underwater acoustic sensor network for early warning generation | |
Jindal et al. | A sustainable multi-parametric sensors network topology for river water quality monitoring | |
Coutinho et al. | Underwater sensor networks for smart disaster management | |
Gaitán et al. | Modeling LoRa communications in estuaries for IoT environmental monitoring systems | |
Chen et al. | Mapping of tidal current and associated nonlinear currents in the Xiangshan Bay by coastal acoustic tomography | |
Shankar | Efficient data interpretation and artificial intelligence enabled IoT based smart sensing system | |
Kodaira et al. | An affordable and customizable wave buoy for the study of wave-ice interactions: design concept and results from field deployments | |
Suciu et al. | Tele-monitoring system for water and underwater environments using cloud and big data systems | |
d’Orey et al. | Assessing Short-range Shore-to-Shore (S2S) and Shore-to-Vessel (S2V) WiFi Communications | |
Montuori et al. | Sea wave numerical simulation and verification in Tyrrhenian costal area with X-band cosmo-skymed SAR data | |
Yang | Distributed underwater sensing: A paradigm change for the future | |
Shih | Real-time current and wave measurements in ports and harbors using ADCP | |
Rajasegarar et al. | Sensor network implementation challenges in the great barrier reef marine environment | |
Shirokov et al. | Ocean Surface State Monitoring with Drifters Array | |
Sirvent | Realistic acoustic prediction models to efficiently design higher layer protocols in underwater wireless sensor networks | |
Agbuya et al. | Design of a real–time ocean data–logging drifter thru CLOUD technology for collecting tidal parameters | |
Najafi-Jilani et al. | Development of integrated marine monitoring network on southern coastline of Caspian sea | |
Gopalakrishnan | Surface current observations using high frequency radar and its assimilation into the New York harbor observing and prediction system | |
Gaitán et al. | Journal Paper | |
Kuznetsov | Technology for Marine Environment Dynamics Control in the Costal Area |