“The mantis shrimp has the best color vision on Earth”
It’s the internet’s favorite eye: sixteen types of color receptor, versus our three.
Surely it sees colors we can’t even dream of? Actually — no. When researchers tested how
well mantis shrimp tell colors apart, they did notably worse than humans at
distinguishing similar hues.[1] The current thinking is that their eyes don’t blend signals into
fine color comparisons the way ours do; instead each receptor gives a quick, coarse readout, likely
a trade for speed rather than richness. Remarkable eyes — just not the psychedelic super-vision
of the memes. That gap between the myth and the measurements is a big reason the mantis shrimp
isn’t a headline filter here.
“Insects see the world as a grid of tiny repeated images”
You’ve seen the movie shot: a fly’s-eye view chopped into hundreds of identical little
pictures. A compound eye doesn’t work that way. Each of its many facets contributes roughly
one point of the overall image — not a whole scene — so the result is a single,
low-resolution picture, not a tiled mosaic of duplicates.[2] Insect vision is genuinely different from
ours (often blurrier, frequently faster at detecting motion, sometimes sensitive to ultraviolet or
to the polarization of light), but the “grid of repeats” is a special-effect, not biology.
“Dogs see in black and white”
A classic, and wrong. Dogs see color — just a narrower range than we do. With two types of
color receptor rather than three, they experience a world of blues and yellows in which reds and
greens are hard to tell apart, much like a person with red–green color blindness.[3] Grayscale it
is not. (This one we do include — see the dog filter.)
“Color-blind people see in black and white”
Almost never. For the vast majority of color-blind people, the world is still full of color —
certain hues are just harder to tell apart. The common types (the red–green kinds, and the rarer
blue–yellow ones) come from one type of color receptor being shifted or missing, which
collapses some color distinctions rather than removing color altogether. A red apple in green
leaves might be tricky; a blue sky is still blue.[3]
Truly seeing in shades of gray does exist — it’s called complete achromatopsia, where none
of the color receptors work — but it’s rare, affecting roughly one in thirty thousand
people, and it usually comes bundled with strong light sensitivity and reduced sharpness, not just an
absence of color.[6] So “color-blind” and “sees in
grayscale” are two very different things. (We include several color-vision filters — and the
rare grayscale one — see the color-vision filters.)
“Owls can see in total darkness”
Owls have superb night vision, but there’s a limit: in total darkness, with no light
at all, an owl sees nothing, because there are no photons to gather. What owls do brilliantly is make
the most of very little light — starlight, moonlight — through large eyes, a
rod-packed retina, and a reflective layer that gives light a second pass. The often-repeated claim
that owls see “ten to a hundred times better than humans” is overstated: the only owl
with directly measured sensitivity is about two-and-a-half times more sensitive than a person, and
researchers judge the bigger figures inflated by roughly tenfold.[4] Add extraordinary hearing, and a
hunting owl on a dark night is formidable — but “sees in pitch black” is a step too
far, and it’s worth remembering when any app (including ours) shows you an “owl vision”
scene: we can brighten a dim room convincingly, but we can’t invent detail that no light ever
delivered.
“Humans only use a tiny fraction of their vision” (and other tidy numbers)
Vision is full of confident-sounding statistics that don’t survive a close look: exact
“X times sharper” multipliers for eagles, precise light-sensitivity ratios for cats,
neat percentages for this or that. Take the popular claim that eagles see “four to eight times
sharper” than us: careful behavioral studies put the sharpest measured raptor at roughly two to
two-and-a-half times human acuity, and one peer-reviewed source flatly calls the eightfold claim
unsupported.[5] Real measurements are messier than the memes, vary by species and study, and
often come with big error bars. We try to use figures that trace back to actual research, to say
when a number is a rough estimate, and to resist the temptation of a clean statistic that happens
to be made up.
Why isn’t [favorite animal] in the app? Sometimes because the
popular story is a myth (mantis shrimp). Sometimes because a faithful version needs hardware we
don’t have yet, or research that isn’t settled. We’d rather leave something out than
fake it — but if there’s an eye you’re dying to see, tell
us, and if you know the science, help us get it right.
Sources
We paraphrase and cite; we don’t reproduce source figures or text.
- Thoen HH, How MJ, Chiou T-H, Marshall J (2014). “A different form of color vision in mantis shrimp.” Science 343(6169):411–413 — behavioral tests show poorer fine hue discrimination than humans. Source
- Land MF, Nilsson D-E, Animal Eyes (Oxford) — each ommatidium of a compound eye samples roughly one point of the scene, yielding one low-resolution image, not a mosaic of whole images. Overview
- “Are dogs red–green color blind?” (PMC5717654) — dogs are dichromats (two cone types), resembling human red–green color blindness; not monochromatic. Source
- Potier S, Mitkus M, Kelber A (2020), “Visual adaptations of diurnal and nocturnal raptors” (Tawny owl ~2.5× human sensitivity); BTO / World of Owls — the “10–100×” claim is overstated (the 100× figure compares owl to pigeon). Source
- Reymond L (1985), “Spatial visual acuity of the eagle Aquila audax”; “An Eagle’s Eye: Quality of the Retinal Image” — sharpest measured raptor ~2–2.5× human acuity; the eightfold claim described as unsupported. Source
- MedlinePlus Genetics & GeneReviews — complete achromatopsia: non-functional cones, grayscale vision, photophobia and reduced acuity; prevalence roughly 1 in 30,000. Common color-vision deficiencies, by contrast, are shifts/losses of specific cone types, not absence of color. Source