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      Spectral Remote Sensing
      Applications
        • Remote Sensing
          • Field Spectroscopy
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          • Spectral Remote Sensing
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      Spectral Remote Sensing for Hyperspectral and Multispectral Imagery Analysis

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      FieldSpec 4 Standard-Res Spectroradiometer

      The New Standard in Field Spectroscopy

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      FieldSpec 4 Hi-Res Spectroradiometer

      The highest-quality spectral data with a new, faster field spectrometer system

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      FieldSpec 4 Wide-Res Spectroradiometer

      Accomplish remote sensing tasks faster, more accurately and with more mobility

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      FieldSpec 3 Portable Spectroradiometer

      The leader in spectroradiometers with a rugged design tailored to challenging remote sensing and other field research applications.

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      FieldSpec 3 Hi-Res Portable Spectroradiometer

      The truly field portable spectroradiometer ideally suited for mineral and soil analysis, and other applications requiring higher resolution spectra.

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      FieldSpec 3 Max Portable Spectroradiometer

      The benchmark FieldSpec® 3, now with optimized grating set and Select Test Option for the maximum signal to noise levels.

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      HandHeld 2 Portable Spectroradiometer

      NEW! The advanced near-infrared field spectroradiometer for collecting spectral measurements in the field.

      • Earth Observing Satellites
      • EnMAP – An Advanced Optical Payload for Earth Observation
      • High Performance Fore Optic Accessories and Tools for Reflectance and Radiometric Measurements with the ASD FieldSpec 3 Spectroradiometer
      • Hyperspectral and Multispectral Imaging Systems
      • Our New Moon
      • Scaling Spectroscopic Approaches – From Leaf Albedo to Ecosystems Mapping
      • Spectral Signatures of Nighttime Lights
      • The Hyperspectral Characteristics of Cotton Leaf Infected with Verticillium Wilt and Aphid
      • The NEON Imaging Spectrometer: Airborne Measurements of Vegetation Cover and Biochemistry for the Continental-scale NEON Observatory
      • The Use of a Portable Spectrometer in Support of the Calibration of AVIRIS, the Moon Mineralogy Mapper and other High Uniformity Imaging Spectrometers
      • Using vegetation reflectance variability for species level classification of hyperspectral data
      Spectral Remote Sensing for Hyperspectral and Multispectral Imagery Analysis

      • Overview
      • Instrumentation
      • Application Notes

      “Hyperspectral remote sensing is the definitive optical tool for increasing knowledge and understanding of the Earth's surface. Contiguous high-resolution spectrometry provides a new dimension in mapping capability because of the potential for quantitative measurement of surface biogeochemistry.”  (John S. MacDonald, Susan L. Ustin, and Michael E. Schaepman. “The Contributions of Dr. Alexander F. H. Goetz to Imaging Spectroscopy.” Remote Sensing of Environment.  September 2009: S2-S4.)

      Multispectral remote sensing involves the acquisition of visible, near infrared, and short-wave infrared images in several broad wavelength bands. Different materials reflect and absorb differently at different wavelengths. As such, it is possible to differentiate among materials by their spectral reflectance signatures as observed in these remotely sensed images, whereas direct identification is usually not possible. NASA’s Landsat, one of the more common multispectral imagers, is widely used for monitoring a wide range of landscape scale properties.

      AVIRIS satellite imagery (RGB composite)Hyperspectral imaging systems acquire images in over one hundred contiguous spectral bands. While multispectral imagery is useful to discriminate land surface features and landscape patterns, hyperspectral imagery allows for identification and characterization of materials. In addition to mapping distribution of materials, assessment of individual pixels is often useful for detecting unique objects in the scene.

      Well developed scientific application areas include geology and mineral exploration; forestry; marine, coastal zone, inland waters and wetlands; agriculture; ecology; urban; snow and ice; and atmosphere. There are also numerous military applications in camouflage, littoral zone mapping, and landmine detection. Hyperspectral sensors pose an advantage over multispectral sensors in their ability to identify and quantify molecular absorption. The high spectral resolution of a hyperspectral imager allows for detection, identification and quantification of surface materials, as well as inferring biological and chemical processes.

      For all of these applications, ground truth signatures collected in the field and indexed in spectral libraries are critical for many methods of analysis. While image processing packages often include basic spectral libraries, application distinct libraries containing spectra of the specific materials occurring in the target field area greatly improves the accuracy of generated interpretations. In particular, spectra of vegetation are influenced by such a wide range of environmental conditions that it makes it difficult to adequately represent this variability without the collection of site specific field spectra. 

      The ASD FieldSpec® line of spectroradiometers offers multiple configuration options and the industry’s fastest sampling speeds. The use of a flexible fiber optic cable and a wide range of foreoptics, along with several direct sampling accessories, give you a number of options for acquiring the best data possible. Bringing a level of device portability that only ASD can provide and combined with GPS compatibility, the FieldSpec instruments help make it possible for you to work in some of the most remote geographic regions of the planet.

      Examples of research utilizing ASD instrumentation can be found in the links below.

      Coupling Hyperspectral Remote Sensing With Field Spectrometry to Monitor Inland Water Quality Parameters

      Imaging Spectroscopy

      Lake Tahoe Experiment Summary Report

      Kilauea Volcano, Hawaii

      OV-10 Radiative Flux Measurements, W. L. Smith Jr., NASA LaRC, Hampton, VA.

      Surface Bidirectional Reflectance Functions Derived from CERES Helicopter Data Over the Arm Southern Great Plains Site

      CLAMS - Cheasapeake Lighthouse & Aircraft Measurements for Satellites July 10 - August 2/2001

      Chesapeake Lighthouse and Aircraft Measurements for Satellites “CLAMS” July 10 – Aug 2, 2001

      Chesapeake Lighthouse and Aircraft Measurements for Satellites “CLAMS” July 12 – Aug 1, 2001

      In-flight Radiometric and Spatial Calibration of EO-1 Optical Sensors

      Global Products of Vegetation Leaf Area and Fraction Absorbed PAR From Year One of MODIS Data

      Hyperspectral Vegetation Indices for Determining Agricultural Crop Characteristics

      Hyperspectral Field Spectrometry for Estimating Greenbug (Homoptera: Aphididae) Damage in Wheat

      Geological and Geobotanical Studies of Long Valley Caldera, CA, USA Utilizing New 5m Hyperspectral Imagery

      Changes in Biogeochemical Cycles NASA-Earth Observing System NAG5-6137

      Use of Scanning Infrared Surface Temperature Radiometer (SISTeR)

      Instrumentation Workshop

       

      Spectral Remote Sensing

      FieldSpec 4 spectroradiometers

      NIR Community Blog

      • SummitCAL Solutions Group Lead Kicks Off SpectroscopyNOW Series: Multivariate Modeling Solutions for Mineral Analysis in Mining

        May 22, 2012

      • ASD Chemometrics and Instrumentation Training

        May 15, 2012

      • Register Today for Our Remote Sensing Applications Training

        May 07, 2012

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