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Gamut

physical science Maturity 7-9

Some things show many colors.

Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png
A screen shows colors to you. Some screens show more colors than others. This helps pictures look real. It is very fun to see. Can you see many colors?
CIExy1931 srgb gamut.png
CIExy1931 srgb gamut.png

44 words

Some things show many colors.

Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png
A screen shows colors to you. Some screens show more colors than others. This helps pictures look real.

A gamut is a set of colors. It is the range a tool can make. A printer has its own gamut. A camera has its own gamut too.

CIExy1931 srgb gamut.png
CIExy1931 srgb gamut.png

Some tools can show many colors. They have a large gamut. Other tools show fewer colors. They have a small gamut.

Adding more colors helps a lot. You can add new paints to see more. This makes the colors look very bright.

It is fun to see all the colors. Can you see many colors?

116 words

Have you ever wondered why some screens look better than others? It all comes down to a concept called a gamut. A gamut is the range of colors a device can make.

Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png

Devices like printers or cameras have their own gamuts. A device with a large gamut can show many colors. A device with a small gamut shows fewer colors.

CIExy1931 srgb gamut.png
CIExy1931 srgb gamut.png

Most devices cannot show every color a human can see. This is because they use a few primary colors. Primaries are the main colors used to mix others. For example, a screen might use red, green, and blue. You can increase a gamut by adding more primaries. Adding more colors helps make colors look more saturated. Saturated means the colors look very deep and rich.

Sometimes, a color in a photo is out of gamut. This means the printer cannot make that exact color. Computers use special ways to change those colors. They try to find the closest match. This helps keep the image looking good.

CIE1931xy gamut comparison.svg
CIE1931xy gamut comparison.svg

Scientists also study colorimetry. This is the way we measure color. It helps us make sure colors look the same on different tools.

200 words

Have you ever wondered why some screens look so much brighter and more colorful than others? It all comes down to a concept called a gamut. A gamut is the set of colors that a device can show or measure accurately. This could be a computer monitor, a digital camera, or even a printer.

Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png
Some devices have a large gamut, which means they can show many different colors. Other devices have a small gamut and can only show a few.
CIExy1931 srgb gamut.png
CIExy1931 srgb gamut.png
Because every device is different, scientists use color management to keep colors looking the same everywhere.

Most devices work by using a few primary colors to mix together. A screen often uses red, green, and blue light to create other colors. This is called the RGB model.

CIE1931xy gamut comparison.svg
CIE1931xy gamut comparison.svg
If you add more primary colors, like orange or green, the gamut gets bigger. A larger gamut allows for more saturated colors, which are colors that look very deep and rich. However, no device using a set number of primaries can show every color a human can see. This is why your screen might not look exactly like the real world.

Understanding the history of this word is quite interesting. The term gamut actually comes from the world of music. In medieval Latin, "gamma ut" meant the lowest note in a G scale. Over time, it came to mean the whole range of notes in a melody.

Munsell 5 PB 5Y.png
Munsell 5 PB 5Y.png
In the 1850s, people started using it to talk about colors. A writer named Thomas de Quincey used it to describe a wide range of hues. Now, we use it to talk about the limits of color in science.

Scientists use special tools to measure these colors, a field called colorimetry. This process tries to mimic how human eyes see the world.

Visible gamut within CIELUV color space D65 whitepoint mesh.webm
Visible gamut within CIELUV color space D65 whitepoint mesh.webm
Digital cameras use three sensors to act like the human visual system. Some very advanced tools, like spectrometers, can capture an even larger gamut of color. Most people see a range called the visible gamut. This is the total amount of color that a typical human eye can detect.
Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png

There is even a theoretical idea called the optimal color solid. This represents the most perfect colors a surface could possibly have.

Optimal-color-solid,FL4,XYZ.gif
Optimal-color-solid,FL4,XYZ.gif
These colors are so special that we cannot actually make them with current technology. They are based on how light reflects off of materials in perfect ways. We can imagine these colors using math and science, but they remain a mystery of the physical world. Even though we cannot reach them, studying them helps us understand light better.

457 words

In the study of color and light, a gamut is a fundamental concept. A color gamut is a convex set containing the colors that can be accurately represented by an output device. This could be a printer or a digital display. It can also refer to the colors measured by an input device, such as a camera or a human visual system.

Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png
Essentially, a gamut defines the boundaries of what a specific system can perceive or reproduce. Devices with a larger gamut can represent a wider variety of colors. When we talk about a gamut without linking it to a specific device, we are referring to the colors within a defined color space.

Most digital devices use specific primary colors to build their gamut. For example, computer monitors often use the RGB model, which relies on red, green, and blue light.

CIE1931xy gamut comparison.svg
CIE1931xy gamut comparison.svg
When these primaries are used, the gamut is often visualized as a color triangle. The corners of this triangle represent the primary colors available to that device. In a cathode-ray tube, these colors depend on the specific phosphors used.
CIExy1931 srgb gamut.png
CIExy1931 srgb gamut.png
To increase the size of a gamut, one can add more primaries. While red, yellow, and blue pigments are enough for basic color modeling, adding orange or green pigments allows for more saturated colors. However, no finite number of primaries can ever represent the entire human visible gamut.

Managing these differences between devices is a complex task known as color management. Because different devices have different gamuts, colors may not look the same on every screen or piece of paper. Color management ensures consistent and accurate colors by handling transformations between different gamuts and canonical color spaces.

Visible gamut within CIELUV color space D65 whitepoint mesh.webm
Visible gamut within CIELUV color space D65 whitepoint mesh.webm
A device's specific gamut is defined by a color profile, such as an ICC profile. This profile relates the device to a standardized color space for calibration. One major challenge is that transforming from a large gamut to a smaller one results in a loss of information. When out-of-gamut colors are projected onto a smaller space, that data cannot be regained by transforming back to the larger space.

This loss of information is especially important when converting digital images for printing. Digital images usually start in the RGB color model, but printers use the CMYK color model.

CIE1931xy gamut comparison.svg
CIE1931xy gamut comparison.svg
During this conversion, colors in the RGB model that fall outside the CMYK gamut must be converted to approximate values. If a system simply trims these colors to the nearest available value, it can "burn" the image. There are various algorithms used to approximate this transformation, but none are perfect because the target device simply lacks the physical capability to produce those specific colors. Identifying these out-of-gamut colors early in the process is critical for high-quality results.

The history of the word "gamut" is as colorful as the subject itself. The term was adopted from the field of music. In medieval Latin, the expression "gamma ut" referred to the lowest tone of the G scale. Over time, it came to imply the entire range of musical notes used in melodies.

Munsell 5 PB 5Y.png
Munsell 5 PB 5Y.png
In the 1850s, the term moved into the study of color. The writer Thomas de Quincey used it to describe a wide range of hues in marble. This transition from music to science helped establish the word as a way to describe a complete range of values.

Scientists use a field called colorimetry to measure color in ways that mimic human perception. Input devices like scanners and digital cameras are designed to mimic trichromatic human color perception. They use three sensor elements with different spectral sensitivities, ideally aligned with human photopsins.

Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png
While most devices are not perfectly colorimetric, specialized tools called tristimulus colorimeters are. Even more advanced devices, such as hyperspectral imagers or spectrometers, capture a much larger gamut than the human eye. To make these high-dimensional colors understandable to humans, they must be down-dimensionalized and treated with false color.

There is also a theoretical limit to color known as the optimal color solid. This represents the most chromatic colors that surfaces can possibly have.

Optimal-color-solid,FL4,XYZ.gif
Optimal-color-solid,FL4,XYZ.gif
These colors are based on perfect reflectance spectra, where light reflects in specific, mathematically ideal ways. For example, an optimal color might reflect 100% of light in one wavelength and 0% in all others. Currently, we cannot produce materials or pigments that achieve these properties. These theoretical colors help scientists understand the boundaries of the physical world and the limits of light and matter.

766 words
🖼️ Images & Media (7)
File:CIExy1931 srgb gamut.png
CIExy1931 srgb gamut.png
File:Cie Chart with sRGB gamut by spigget.png
Cie Chart with sRGB gamut by spigget.png
File:Rechteckspektrum_sRGB.svg
Rechteckspektrum_sRGB.svg
Visible gamut within CIELUV color space...
File:Munsell 5 PB 5Y.png
Munsell 5 PB 5Y.png
File:Optimal-color-solid,FL4,XYZ.gif
Optimal-color-solid,FL4,XYZ.gif
File:CIE1931xy_gamut_comparison.svg
CIE1931xy_gamut_comparison.svg
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