18 research outputs found
Impact of the spatial resolution of satellite remote sensing sensors in the quantification of total suspended sediment concentration: A case study in turbid waters of Northern Western Australia
The impact of anthropogenic activities on coastal waters is a cause of concern because such activities add to the total suspended sediment (TSS) budget of the coastal waters, which have negative impacts on the coastal ecosystem. Satellite remote sensing provides a powerful tool in monitoring TSS concentration at high spatiotemporal resolution, but coastal managers should be mindful that the satellite-derived TSS concentrations are dependent on the satellite sensor's radiometric properties, atmospheric correction approaches, the spatial resolution and the limitations of specific TSS algorithms. In this study, we investigated the impact of different spatial resolutions of satellite sensor on the quantification of TSS concentration in coastal waters of northern Western Australia. We quantified the TSS product derived from MODerate resolution Imaging Spectroradiometer (MODIS)-Aqua, Landsat-8 Operational Land Image (OLI), and WorldView-2 (WV2) at native spatial resolutions of 250 m, 30 m and 2 m respectively and coarser spatial resolution (resampled up to 5 km) to quantify the impact of spatial resolution on the derived TSS product in different turbidity conditions. The results from the study show that in the waters of high turbidity and high spatial variability, the high spatial resolution WV2 sensor reported TSS concentration as high as 160 mg L-1 while the low spatial resolution MODIS-Aqua reported a maximum TSS concentration of 23.6 mg L-1. Degrading the spatial resolution of each satellite sensor for highly spatially variable turbid waters led to variability in the TSS concentrations of 114.46%, 304.68% and 38.2% for WV2, Landsat-8 OLI and MODIS-Aqua respectively. The implications of this work are particularly relevant in the situation of compliance monitoring where operations may be required to restrict TSS concentrations to a pre-defined limit
Ecological Specialization of Two Photobiont- Specific Maritime Cyanolichen Species of the Genus Lichina
22 páginas, 4 tablas, 4 figurasAll fungi in the class Lichinomycetes are lichen-forming and exclusively associate with cyanobacteria.
Two closely related maritime species of the genus Lichina (L. confinis and L.
pygmaea) show similar distribution ranges in the Northeast Atlantic, commonly co-occurring
at the same rocky shores but occupying different littoral zones. By means of 16S rRNA and
phycocyanin operon markers we studied a) the phylogenetic relationships of cyanobionts
associated with these species, b) the match of divergence times between both symbionts,
and c) whether Lichina species differ in photobiont association and in how geography and
ecology affect selectivity. The cyanobionts studied are closely related to both marine and
freshwater strains of the genus Rivularia.We found evidence of a high specificity to particular
cyanobiont lineages in both species: Lichina pygmaea and L. confinis incorporate specific
lineages of Rivularia that do not overlap at the haplotype nor the OTU levels. Dating
divergences of the fungal and cyanobacterial partners revealed an asynchronous origin of
both lineages. Within each fungal species, selectivity varied across the studied area, influenced
by environmental conditions (both atmospheric and marine), although patterns were
highly correlated between both lichen taxa. Ecological speciation due to the differential
association of photobionts to each littoral zone is suspected to have occurred in marine
Lichina.Both ROA (BES-2013-066105) and SPO
(CTM2012-38222-C02-02) were supported in the
form of salary by grants from the Spanish Ministry of
Economy and Competitiveness.Peer reviewe
Imaging Spectrometry of Inland and Coastal Waters: State of the Art, Achievements and Perspectives
Imaging spectrometry of non-oceanic aquatic ecosystems has been in development since the late 1980s when the first airborne hyperspectral sensors were deployed over lakes. Most water quality management applications were, however, developed using multispectral mid-spatial resolution satellites or coarse spatial resolution ocean colour satellites till now. This situation is about to change with a suite of upcoming imaging spectrometers being deployed from experimental satellites or from the International Space Station. We review the science of developing applications for inland and coastal aquatic ecosystems that often are a mixture of optically shallow and optically deep waters, with gradients of clear to turbid and oligotrophic to hypertrophic productive waters and with varying bottom visibility with and without macrophytes, macro-algae, benthic micro-algae or corals. As the spaceborne, airborne and in situ optical sensors become increasingly available and appropriate for aquatic ecosystem detection, monitoring and assessment, the science-based applications will need to be further developed to an operational level. The Earth Observation-derived information products will range from more accurate estimates of turbidity and transparency measures, chlorophyll, suspended matter and coloured dissolved organic matter concentration, to more sophisticated products such as particle size distributions, phytoplankton functional types or distinguishing sources of suspended and coloured dissolved matter, estimating water depth and mapping types of heterogeneous substrates. We provide an overview of past science, current state of the art and future directions so that early career scientists as well as aquatic ecosystem managers and associated industry groups may be prepared for the imminent deluge of imaging spectrometry data