2 research outputs found

    Adaptive Scan-On-Receive Based on Spatial Spectral Estimation for High-Resolution, Wide-Swath Synthetic Aperture Radar”, to be published

    No full text
    ABSTRACT In this work we investigate the possibility of applying direction of arrival (DOA) estimation methods to highresolution, wide-swath Synthetic Aperture Radar (SAR) spaceborne systems, based on Scan-On-Receive (SCORE) technique. Spaceborne SAR for remote sensing applications is experiencing a golden age, as testified by the number of the recent and forthcoming missions, e.g. ALOS PALSAR, TerraSAR-X, COSMO-SkyMed, RADARSAT-2, TanDEM-X, Sentinel-1. Nevertheless, the current generation of spaceborne SAR sensors suffers a basic limitation: it does not allow for high resolution imaging and, simultaneously, wide coverage Main characteristics of SMART SAR systems are the use of multiple transmit/receive channels and the introduction of digital signal processing techniques in the conventional SAR processin

    Altimetry for the future: Building on 25 years of progress

    No full text
    In 2018 we celebrated 25 years of development of radar altimetry, and the progress achieved by this methodology in the fields of global and coastal oceanography, hydrology, geodesy and cryospheric sciences. Many symbolic major events have celebrated these developments, e.g., in Venice, Italy, the 15th (2006) and 20th (2012) years of progress and more recently, in 2018, in Ponta Delgada, Portugal, 25 Years of Progress in Radar Altimetry. On this latter occasion it was decided to collect contributions of scientists, engineers and managers involved in the worldwide altimetry community to depict the state of altimetry and propose recommendations for the altimetry of the future. This paper summarizes contributions and recommendations that were collected and provides guidance for future mission design, research activities, and sustainable operational radar altimetry data exploitation. Recommendations provided are fundamental for optimizing further scientific and operational advances of oceanographic observations by altimetry, including requirements for spatial and temporal resolution of altimetric measurements, their accuracy and continuity. There are also new challenges and new openings mentioned in the paper that are particularly crucial for observations at higher latitudes, for coastal oceanography, for cryospheric studies and for hydrology. The paper starts with a general introduction followed by a section on Earth System Science including Ocean Dynamics, Sea Level, the Coastal Ocean, Hydrology, the Cryosphere and Polar Oceans and the “Green” Ocean, extending the frontier from biogeochemistry to marine ecology. Applications are described in a subsequent section, which covers Operational Oceanography, Weather, Hurricane Wave and Wind Forecasting, Climate projection. Instruments’ development and satellite missions’ evolutions are described in a fourth section. A fifth section covers the key observations that altimeters provide and their potential complements, from other Earth observation measurements to in situ data. Section 6 identifies the data and methods and provides some accuracy and resolution requirements for the wet tropospheric correction, the orbit and other geodetic requirements, the Mean Sea Surface, Geoid and Mean Dynamic Topography, Calibration and Validation, data accuracy, data access and handling (including the DUACS system). Section 7 brings a transversal view on scales, integration, artificial intelligence, and capacity building (education and training). Section 8 reviews the programmatic issues followed by a conclusion
    corecore