Spectral Diversity
22 calibrated bands spanning visible, shortwave infrared and thermal, so one pass answers questions about vegetation, moisture, minerals and heat.
EarthDaily Constellation
Nine satellites carrying 22 calibrated bands, imaging the same place at the same local time every day. Every instrument choice follows from one requirement: today’s measurement has to be comparable to yesterday’s.

The design requirement
22 calibrated bands spanning visible, shortwave infrared and thermal, so one pass answers questions about vegetation, moisture, minerals and heat.
A 5 m pixel with a full photon budget, collected pushbroom with time-delayed integration and binned where signal matters more than sampling.
Nadir imaging within 12 degrees across track, sun-synchronous crossing at 10:15 and 10:45 local, orbit control maintained across mission life.
A 240 km swath from nine satellites reaches 92% of Earth’s landmass every day. Nobody has to request a collection for it to exist.
Spectral Diversity
Bands cost mass, power and downlink, so a commercial imager usually carries four: red, green, blue and near infrared. That is enough to make a recognisable picture and not much else. EarthDaily carries 22, because moisture, chlorophyll stress, minerals, thin cirrus and surface temperature all sit at wavelengths those four bands cannot see. Select a band to read what it measures.
All 22 bands ordered by wavelength, grouped by detector
VNIR 5 m
SWIR 95 m
TIR 120 m
Centre published at full operations
Visible and near infrared
Short blue light scatters off fine particles and penetrates clear water, so this band reads aerosols, haze and shallow coastal water.
Visible and near infrared
The blue channel of a true-colour picture. It separates water from land and carries detail in shallow water and atmospheric haze.
Visible and near infrared
Between blue and green, this band follows chlorophyll and suspended sediment in water, where algal blooms and turbidity show first.
Visible and near infrared
Healthy leaves reflect green, so this band peaks over vigorous vegetation and supplies the green channel of a true-colour picture.
Visible and near infrared
Yellow sits where leaves begin to yellow as they senesce, so it helps date crop maturity and separate soil from sparse cover.
Visible and near infrared
Chlorophyll absorbs red light strongly, so healthy canopy reads dark here. It is the red half of every vegetation index.
Visible and near infrared
The first step of the red edge, where reflectance climbs out of the chlorophyll trough. Its slope moves with leaf chlorophyll content.
Visible and near infrared
Midway up the red edge, this band is sensitive to canopy nitrogen and early stress before it is visible to the eye.
Visible and near infrared
The top of the red edge, where leaf structure takes over from pigment. It tracks leaf area and canopy density.
Visible and near infrared
Vegetation scatters near infrared strongly while water absorbs it, so this band carries canopy structure and biomass, and draws a hard line at the water's edge.
Visible and near infrared
Atmospheric water vapour absorbs here, so this band measures the moisture column above each pixel and is used to correct the others.
Shortwave infrared
A second water vapour absorption feature. Read against Water Vapour 1, it sharpens the atmospheric correction.
Shortwave infrared
Liquid water in leaves absorbs at this wavelength, so this band tracks canopy moisture and drought stress before it shows in the visible, and helps separate snow and ice from cloud.
Shortwave infrared
Strong water vapour absorption hides the ground at this wavelength, so only high, thin cirrus reflects. The band flags cloud the other bands cannot see.
Shortwave infrared
Sensitive to soil and leaf moisture and to minerals, this band separates burned ground, bare soil and snow.
Shortwave infrared
Methane absorbs in narrow shortwave lines. Read against a neighbouring band, this channel separates a plume from the ground beneath it. It is carried on board now and publishes at full operations.
Shortwave infrared
The reference channel for methane: close enough in wavelength to share the ground signal, outside the absorption line. It publishes at full operations.
Thermal infrared
Hot targets radiate strongly in the mid-wave infrared, so this band picks out active fire fronts and their intensity. It publishes at full operations.
Thermal infrared
The first of four thermal channels measuring emitted heat, for land surface temperature and evapotranspiration. It publishes at full operations.
Thermal infrared
A second thermal channel. Several thermal bands together separate surface temperature from emissivity. It publishes at full operations.
Thermal infrared
A third thermal channel, used with the others to correct for atmospheric water vapour in temperature retrievals. It publishes at full operations.
Thermal infrared
The longest-wave thermal channel, which completes the split-window set for surface temperature. It publishes at full operations.
Tile colour follows wavelength; the marker sits at the selected band's position on a logarithmic wavelength axis
reserved, publishes at full operations
| Band | Name | Detector | Centre | Bandwidth | Ground sample distance | What it measures |
|---|---|---|---|---|---|---|
| 1 Cst | Coastal | VNIR | 442.5 nm | to confirm | 5 m | Short blue light scatters off fine particles and penetrates clear water, so this band reads aerosols, haze and shallow coastal water. |
| 2 B | Blue | VNIR | 492 nm | to confirm | 5 m | The blue channel of a true-colour picture. It separates water from land and carries detail in shallow water and atmospheric haze. |
| 3 Aq | Aqua | VNIR | 530 nm | to confirm | 5 m | Between blue and green, this band follows chlorophyll and suspended sediment in water, where algal blooms and turbidity show first. |
| 4 G | Green | VNIR | 559.5 nm | to confirm | 5 m | Healthy leaves reflect green, so this band peaks over vigorous vegetation and supplies the green channel of a true-colour picture. |
| 5 Y | Yellow | VNIR | 605 nm | to confirm | 5 m | Yellow sits where leaves begin to yellow as they senesce, so it helps date crop maturity and separate soil from sparse cover. |
| 6 R | Red | VNIR | 664.5 nm | to confirm | 5 m | Chlorophyll absorbs red light strongly, so healthy canopy reads dark here. It is the red half of every vegetation index. |
| 7 Re1 | Red Edge 1 | VNIR | 703.8 nm | to confirm | 5 m | The first step of the red edge, where reflectance climbs out of the chlorophyll trough. Its slope moves with leaf chlorophyll content. |
| 8 Re2 | Red Edge 2 | VNIR | 740 nm | to confirm | 5 m | Midway up the red edge, this band is sensitive to canopy nitrogen and early stress before it is visible to the eye. |
| 9 Re3 | Red Edge 3 | VNIR | 781.5 nm | to confirm | 5 m | The top of the red edge, where leaf structure takes over from pigment. It tracks leaf area and canopy density. |
| 10 Nir | Near Infrared | VNIR | 864 nm | 36 nm | 5 m | Vegetation scatters near infrared strongly while water absorbs it, so this band carries canopy structure and biomass, and draws a hard line at the water's edge. |
| 11 Wv1 | Water Vapour 1 | VNIR | 912 nm | to confirm | 5 m | Atmospheric water vapour absorbs here, so this band measures the moisture column above each pixel and is used to correct the others. |
| 12 Wv2 | Water Vapour 2 | SWIR | 945 nm | to confirm | 95 m | A second water vapour absorption feature. Read against Water Vapour 1, it sharpens the atmospheric correction. |
| 13 Sw1 | SWIR 1 | SWIR | 1245 nm | to confirm | 95 m | Liquid water in leaves absorbs at this wavelength, so this band tracks canopy moisture and drought stress before it shows in the visible, and helps separate snow and ice from cloud. |
| 14 Cir | Cirrus | SWIR | 1375 nm | to confirm | 95 m | Strong water vapour absorption hides the ground at this wavelength, so only high, thin cirrus reflects. The band flags cloud the other bands cannot see. |
| 15 Sw2 | SWIR 2 | SWIR | 1610 nm | to confirm | 95 m | Sensitive to soil and leaf moisture and to minerals, this band separates burned ground, bare soil and snow. |
| 16 Ch1 | Methane 1 | SWIR | reserved | reserved | 95 m | Methane absorbs in narrow shortwave lines. Read against a neighbouring band, this channel separates a plume from the ground beneath it. It is carried on board now and publishes at full operations. |
| 17 Ch2 | Methane 2 | SWIR | reserved | reserved | 95 m | The reference channel for methane: close enough in wavelength to share the ground signal, outside the absorption line. It publishes at full operations. |
| 18 Fir | Wildfire | TIR | reserved | reserved | 120 m | Hot targets radiate strongly in the mid-wave infrared, so this band picks out active fire fronts and their intensity. It publishes at full operations. |
| 19 Th1 | Thermal 1 | TIR | reserved | reserved | 120 m | The first of four thermal channels measuring emitted heat, for land surface temperature and evapotranspiration. It publishes at full operations. |
| 20 Th2 | Thermal 2 | TIR | reserved | reserved | 120 m | A second thermal channel. Several thermal bands together separate surface temperature from emissivity. It publishes at full operations. |
| 21 Th3 | Thermal 3 | TIR | reserved | reserved | 120 m | A third thermal channel, used with the others to correct for atmospheric water vapour in temperature retrievals. It publishes at full operations. |
| 22 Th4 | Thermal 4 | TIR | reserved | reserved | 120 m | The longest-wave thermal channel, which completes the split-window set for surface temperature. It publishes at full operations. |
Signal before pixel size
Resolution is the number most imaging fleets compete on, and it is the wrong number for measurement. Light arriving at a detector is finite: halve the pixel and it collects roughly a quarter of the photons, so the noise floor rises. Once noise exceeds the difference between two dates, the change you are looking for is no longer measurable at any resolution. The imagers were sized for a 5 m pixel that still carries clean signal. Drag the slider to see the trade.
Signal scales with collecting area, so it falls with the square of pixel size
EarthDaily imagery: Cananea, Mexico. Near-infrared false colour.
Relative light collected per pixel 100%
Noise floor Low
5 m is where EarthDaily's visible and near-infrared bands sit: fine enough to resolve a field, a vessel or a construction site, with a full photon budget behind every pixel.
A line of detectors sweeps the ground track continuously instead of snapping frames, so every pixel in a scene is built the same way.
Charge is shifted along the detector in step with the ground motion, adding exposures of the same ground point to raise signal-to-noise without a longer dwell.
Several bands combine neighbouring pixels into one aggregate pixel. Sampling is coarser and the measurement is cleaner, which is the correct trade for those bands.
Geometry held still
A tasked satellite points sideways to reach a target sooner. That is useful once and destructive over time: off-nadir viewing stretches pixels, leans vertical structures away from the sensor, and changes which surfaces the sensor can see. EarthDaily images at nadir, within 12 degrees across track, from a sun-synchronous orbit at 608 km that crosses the equator at 10:15 and 10:45 local. Shadows fall the same way in January and July.
Nadir. Ground point holds its pixel.
EarthDaily imagery: Berlin, Germany.
Straight down. The footprint is square, buildings sit on their own footprint, and pixels register to the same ground position on every pass.
Footprint 240 km, undistorted
Tilted. The footprint stretches, tall features lean away from the sensor, and the same ground point lands on different pixels from pass to pass.
Footprint stretched, features leaning
Coverage without tasking
A high-resolution imager sees a narrow strip, so it has to be pointed, which means somebody decides in advance what is worth looking at. Anything not requested is not collected, and cannot be recovered later. EarthDaily’s imagers were specified for a 240 km swath so the whole landmass fits into a systematic daily plan. When a question arrives next year, the imagery from last year already exists.
Both strips drawn to the same ground scale
EarthDaily imagery: centre pivot cropland, North America.
Ground width per pass, drawn to scale on a 0 to 360 km ruler: EarthDaily, 240 km; Tasked strip, 20 km.
240 km
Swath width
Identical for the VNIR, SWIR and TIR bands.
92%
Landmass daily
Average systematic coverage with nine satellites, excluding Antarctica.
9 + 1
Satellites
Nine operational, one in-orbit spare.
0
Tasking requests
Landmass and coastal waters to 100 km offshore are collected by plan.
Read the specification
Calibration, the comparison against other mission classes and what the constellation adds over time are set out on the technical specification page.