Hyperspectral satellite imaging is a groundbreaking advancement in remote sensing technology. It enables the capture of vast amounts of detailed data across hundreds of narrow, contiguous spectral bands. Unlike traditional optical sensors, hyperspectral imaging reveals information beyond what is visible to the human eye, offering insights into the physical and chemical composition of Earth's surface that are unattainable with standard multispectral sensors.
Hyperspectral imaging (HSI) is a technique that divides the electromagnetic spectrum into many contiguous, narrow spectral bands. Unlike traditional optical imagers, which capture light in the red, green, and blue (RGB) bands, or even multispectral sensors that capture data in up to 36 broad spectral bands, hyperspectral sensors capture data in hundreds of narrow bands. This allows them to create a detailed spectral “fingerprint” for each pixel in an image, offering insights into the physical and chemical composition of surface materials.
These hyperspectral sensors, when deployed on satellites, scan the Earth from orbit and capture data across the visible, near-infrared (NIR), short-wave infrared (SWIR), and even thermal infrared (TIR) regions of the spectrum. The result is a three-dimensional data cube known as a "spectral cube," where the two spatial dimensions represent the image’s spatial resolution and the third dimension contains information about the spectral reflectance of each pixel. This high spectral resolution allows for the identification of unique spectral signatures that correspond to specific materials or substances on the Earth's surface.
Discover the power of satellite data with OnGeo Intelligence. Our Satellite Imagery Reports provide high-resolution images of any location, delivered quickly and hassle-free. No sign-ups or contracts—just precise, reliable data in a user-friendly PDF. Perfect for professionals in environmental monitoring, land use, and more. Explore our service today!
Hyperspectral imaging sensors onboard satellites work by capturing light reflected from the Earth’s surface across a wide range of spectral bands. As the satellite moves along its orbit, it scans across-track and collects light from a scene below. This data is split into hundreds of narrow spectral bands, creating a hyperspectral data cube, where each layer corresponds to a specific wavelength of light.
For each pixel in the image, a spectrum is recorded, detailing how that point on the Earth reflects light at different wavelengths. This reflectance data can then be analyzed and compared to known spectral libraries, such as the United States Geological Survey (USGS) Spectral Library or Digital Earth Australia’s National Spectral Database (NSD), to identify materials or features present at each location. This capability makes hyperspectral imaging a powerful tool for a wide range of applications from environmental monitoring to mineral exploration.
Several hyperspectral satellite missions have been launched by governmental agencies and private companies, contributing to the growing capacity for high-resolution spectral analysis from space. Notable missions include:
Hyperspectral imaging has proven invaluable across a wide array of industries and research fields. Key applications include:
Hyperspectral imaging is a revolutionary tool in satellite Earth Observation, offering unmatched precision in analyzing the chemical composition of Earth's surface. With missions like EO-1, PRISMA, and EnMAP leading the way, and private companies like Planet joining the race, hyperspectral satellite technology is poised to play a crucial role in tackling global challenges such as climate change, environmental conservation, and sustainable resource management.