interesting tech tho
enough studies and randomized control trials have been conducted, it is conclusively shown that blue light emitted from household devices does not interact meaningfully with sleep. metareview CRD420251034611 "non-significant reduction in sleep onset latency" means blue light has been conclusively observed to not delay sleep - it doesn't mean that blue light has not yet been observed to delay sleep, we instead know conclusively that it does not. even better, a registered trial one: https://clinicaltrials.gov/study/NCT01855126 - RCT where shining a bunch of blue light on old people's eyeballs didn't help them stay awake longer (going to bed too early is actually a more common clinical issue than staying up too late). well if it can't keep people awake, it doesn't keep them awake.
it's a great interview question though. "does blue light from screens cause sleep delay?" it doesn't. why do so many people think it does? why suffer with a piss colored screen?
And to a certain extent, she was right, but it was not "the blue light" per se that was damaging my psyche. Rather, it was the stuff within the light that was getting me agitated and angry. It was the disputes on Wikipedia, the social media arguments, the ragebait I found everywhere, the F.U.D. leading to my paranoia and rebellion and loss of trust.
It's like people who say "5G is harmful to our brains" -- well, yes, because whatever is being transmitted over that 5G is harmful, like porn or social media -- not the mere frequencies themselves!
Samsung and LG which both demoed ultra-wide color gamut/volume displays at SID 2026, but also CSOT/TCL. This allows even greater than BT.2020 coverage (APEX pixel is 131%!) or trade off for lifetime with higher brightness/efficiency.
The original 4 color LCDs (like RGBY/RGBW) was driven by a long ago need for brightness and resolution with fewer subpixels (see Samsung's Pentile RGBG arrangement). This both solves a different problem and the technology is being driven by a different development (and marketing).
https://en.ubiresearchnet.com/sid-2026-bt2020-oled-display-t...
Update: thanks for all the great explanations!
The reason the visible colors form a horseshoe rather than a triangle is due to how the cones’ sensitivity ranges overlap [1]. They cannot be excited independently by the primaries of a display.
[0] https://upload.wikimedia.org/wikipedia/commons/1/1e/CIE1931x...
[1] https://upload.wikimedia.org/wikipedia/commons/thumb/0/04/Co...
I'd like to add that no light source can lie outside the horseshoe of the CIE xyz diagram: pure wavelengths are points on the curved line, everything that mixes them moves towards the inside of the space. So you're stuck with triangles that fit within it.
Uh…Claude…
I believe the leading theory is that red light is given off by a variety of fruits when ripe so arboreal ancestors with that mutation could much more easily locate food. To most mammals red ripe apples and green unripe ones are all just shades of yellow so the mutation would have been like a superpower: the equivalent of eagle-eyed vision.
*edit: found the link I was after on this: https://moultano.wordpress.com/2026/06/19/where-to-find-the-...
If we had primary color wavelengths that could stimulate each cone independently, then it would work just like you say, and we'd only need 3 of them. But because the cone spectra overlap, we don't have "orthogonal basis vectors" to work with. Our primary colors each excite a mix of cone responses.
But no problem right? As long as each primary color has a different response, we at least have linearly independent vectors, and any student of linear algebra knows you can mix those together to act as an orthogonal basis and get any desired excitation of the cones. Right?
And that would be true, except that linear algebra assumes you can freely add or subtract vector amplitudes, but with LEDs we can only generate light, we can't send a beam of "negative green". So we're constrained to the subset of colors where the basis vectors all have positive amplitudes. And that's the smaller color space that results.
Cone cell activation is complicated. Displays with three well chosen primaries are economical and effective, but they aren't intended to produce every perceivable color. And our chromaticity diagrams, that pointy splotch that's often used to compare display gamuts, is based on a "standard observer" that is a simplified model for human perception.
An ideal pixel would be able to emit any kind of electromagnetic radiation of any intensity, kind of fun to think about but unrealistic and impractical.
What additional primaries mathematically do is expand a gamut from a triangle to a convex polygon. While ten or a hundred primaries would be bonkers, I bet we could fit a quadrilateral or a pentagon to the perceivable gamut in ways that'd see some gains.
Anyway, things like the green (or blue -can't remember) receptor have a strong curve in the green spectrum, but also a "bump," over in red (I think).
We're an organic mess.
Looking at RGB curves for LEDs, they are three perfect little mountains. No "bumps," anywhere.
I guess that the goal is to try to mimic the "messy" human visual perception.
Also, expect these monitors to be non-cheap. Companies like Eizo are having a difficult time, justifying their prices, these days.
The green-sensitive cones overlap with the red-sensitive cones, and to a smaller extent also with the blue-sensitive.
Full saturation red and blue are possible by emitting light on the edges of the visible spectrum.
Full saturation green, however, also activates the red and blue cones.
To cover the whole gamut is impossible, but you can approximate it with ~three green tones: a 490nm deep cyan that hits blue and green but not red, ~510nm that hits red and blue equally, and ~540nm the peak of the green cone.
The RGB setup we have strikes a balance between cost and visual quality. If the cost of adding primaries goes down you can add more to increase the quality. One issue is that the signals often assume RGB (channels), so the hardware manufacturer would have to adapt the RGB signal to their multi-primary hardware.
"TV Displays Explained at the Fundamental Level" https://www.youtube.com/watch?v=WhFwPAfwdLo
The dimensionality of color vision in carriers of anomalous trichromacy (2010)
https://jov.arvojournals.org/article.aspx?articleid=2191517
So I suppose we could look forward to genetic enhancement in order to perceive better display technologies
Or -using same # of subpixels per cm^2- would perceived display quality be similar due to better color representation?
However, there are tasks that benefit from better color reproduction. There are also screens where the pixel size is well below the human discernable limit.
C is Cyan (~+½G+½B)