Star Stuff
Stimpunks × More Realms · Zine No. 48

The Shadow Is Bigger Than the Thing

on the black hole nobody photographed, and what can only be known by its effect on everything else


L★S
Love You Down To Your Star Stuff
open edition · print freely
The honest problem

Nobody has photographed a black hole


Start with the thing everyone gets wrong, including most of the headlines in April 2019.

A camera works by catching light that left the subject. That is the whole mechanism — the apple sends photons at your eye, and you see an apple.

A black hole sends nothing. Not a little. Not faintly. The event horizon is the surface where the geometry has tipped so far that every path leading outward has stopped existing; there is no direction that is away. Light does not struggle out slowly. It does not get out.

So the ordinary way of knowing about a thing is simply unavailable, and no better camera will fix it. This is not a limit of our instruments. It is a fact about what the object is.

There is no picture of a black hole and there never will be. What exists is a picture of everything else, arranged by one.the situation, stated plainly

Which sounds like the end of the enquiry, and is instead the beginning of it. Because a thing that emits nothing still does a great deal — to gas, to stars, to the paths of passing light — and all of that is visible.

The rest of this zine is about what you can learn from the second-best option, and about the one number that makes it dangerous.

Why the ordinary method fails On the left, an apple sending light rays out to an eye, labelled this is how seeing works. On the right, a black disc with arrows that stop at its edge, labelled nothing leaves. light leaves · you see nothing leaves no outward direction exists a better camera does not help here the limit is the object, not the lens
Figure 1 · why there is no photograph
The second-best option

Only what bends around it


Gas falling toward a black hole does not go quietly. It compresses, shears against itself, and gets hot enough to shine — so the object that emits nothing is generally surrounded by something that emits a great deal.

Now put that glow behind a lens made of gravity. Light travelling near a massive body does not go straight; its path bends, and the closer it passes the harder it bends. At a particular radius the bending becomes exactly enough to curve a beam right around into a circle — the photon sphere, at three GM/c² from the centre. Light there is orbiting.

So what arrives at a telescope on Earth sorts itself into two kinds. Light that passed far enough out escaped and reached you. Light that came in closer than the critical approach spiralled in and never left.

The result is a bright ring around a dark middle — and the dark middle is not an object. It is the set of directions in which any light you might have received went into the hole instead.

You are not looking at a black hole. You are looking at the shape of a hole in everything else.what the image actually is

The astronomers' word for that dark middle is the shadow, and the word is well chosen — a shadow is defined entirely by what it happens to, never by itself.

Three light paths Three beams pass a black hole at different distances: the far one bends slightly and escapes, the middle one loops around and escapes, the near one spirals in and is captured. escapes bent right around captured · never arrives the dark patch is the directions that failed dashed circle · the photon sphere at 3 GM/c²
Figure 2 · what reaches you, and what doesn't
3√3 against 2

The shadow is bigger than the thing


Here is the fact this zine is built on, and it is a piece of exact geometry rather than an impression.

For a non-spinning black hole, all the relevant radii can be written in one unit — GM/c², which is just the object's mass expressed as a length:

radii, for a non-spinning black hole, in units of GM/c²
radiuswhat sits there
2the event horizon — the actual boundary of the actual object
3the photon sphere, where light can orbit
3√3 ≈ 5.196the edge of the shadow — what a distant observer sees

Divide the last by the first. 3√3 / 2 ≈ 2.598.

The dark circle in the picture is about two and a half times wider than the object casting it. Gravity does not merely hide the black hole; it magnifies the hiding, throwing the darkness outward well past the horizon's true edge.

The shadow overstates its cause by a factor of about 2.6 — and it does so consistently, which is the only reason anyone can work backwards from it.the number the whole piece turns on

One more thing makes this usable, and it is close to a fluke. Real black holes spin, and spin drags spacetime around with it — so you would expect the shadow's size to depend on how fast it turns and how it is tilted toward you.

It barely does. Across the whole range of spins and viewing angles, the shadow's angular radius stays at 5 ± 0.2 GM/Dc² — a spread of about four percent, with the non-spinning case (3√3 ≈ 5.196) sitting near the top of it.

That near-constancy is a quirk of the equations rather than a principle, and it is what turns a dark smudge into a measurement: if the shadow's size is fixed by mass over distance and almost nothing else, then measuring it tests the geometry itself.

Horizon, photon sphere, shadow — to scale Three concentric circles drawn to scale in units of GM over c squared: the event horizon at radius two, the photon sphere at three, and the shadow edge at three root three, about five point two. The shadow is about two point six times the width of the horizon. 3√3 shadow · 5.196 photon sphere · 3 horizon · 2 3√3 / 2 = 2.598 drawn to scale · the gap is the whole point the violet circle is the real object
Figure 3 · the object, and the darkness it throws
10 April 2019 · M87*

Forty-two microarcseconds


The first one they got was not the nearest. It was the one whose shadow happened to be biggest in our sky.

M87* sits at the heart of a giant elliptical galaxy about 55 million light years away, and it is enormous — the ring measurement implies a mass of 6.5 ± 0.7 billion suns. Distance shrinks it; size restores it. The two nearly cancel, and what is left is a ring 42 ± 3 microarcseconds across.

A microarcsecond is a millionth of a second of arc, and a second of arc is already a 3,600th of a degree. Put it in terms of a thing:

Forty-two microarcseconds is roughly the angle subtended by an orange, sitting on the Moon.our own arithmetic — see the sources note

Nothing on Earth resolves that. A telescope's sharpness is set by the wavelength it works at divided by the width of the dish, and to see 42 µas at the 1.3 mm the hot gas shines at, the dish would have to be about as wide as the planet.

So they used the planet. That is spread seven.

The image released on 10 April 2019 came from data taken two years earlier, over six nights in April 2017 — the gap is not delay, it is the checking. And what the checking looked like is the next spread, because it is the most quietly admirable thing in the whole story.

How small forty-two microarcseconds is The Earth and the Moon with a small fruit drawn on the lunar surface, indicating that an object roughly eight centimetres across at the Moon's distance subtends the same angle as the M87 ring. Earth Moon ~8 cm 42 µas an orange, on the Moon not to scale · the angle is the point
Figure 4 · the size of the problem
The discipline

Four teams who weren't allowed to talk


Here is the awkward part of the method, and the reason the result is trustworthy.

An array of separate telescopes does not record a picture. It records how much the incoming waves agree between each pair of dishes — a scatter of measurements across a plane, with enormous gaps where no pair happens to sit. Getting from that to an image means filling in what was never measured, and there are infinitely many images consistent with the data.

So the choice of method is doing real work. And every person involved knew exactly what general relativity predicted they should find.

That is the classic way to fool yourself, and they took it seriously. The collaboration split into four imaging teams, each kept blind to the other three, working with two quite different families of algorithm — the long-established CLEAN and the newer regularized maximum likelihood.

Four groups, forbidden to compare notes, using different mathematics, all produced a ring of about the same size in about the same place.First M87 EHT Results IV, 2019

The blinding is not bureaucracy. It is the only available answer to a question nobody can answer about themselves: did I find this, or did I draw it?

This is the same instinct as the five-sigma rule in No. 39 and the whole of Too Good to Check. Wanting a result is not a disqualification. Failing to build a guard against wanting it is.

Four blind reconstructions One set of sparse data feeds four separated imaging teams with no lines between them, and each returns a ring of similar size and position. the same data team 1team 2team 3team 4 no comparing notes agreement only counts if it was not arranged
Figure 5 · a guard against yourself
April 2017 · six sites

A telescope the size of a planet


You cannot build a dish the width of the Earth. You can, it turns out, use the Earth.

Eight radio telescopes at six sites — Arizona, Mexico, Hawai'i, Chile's Atacama, the Sierra Nevada in Spain, and the South Pole — pointed at the same patch of sky on the same nights and recorded what arrived, each stamped against an atomic clock.

Nothing was combined at the time. There is no network that could carry it: the array wrote roughly 350 terabytes per telescope per day, about 3.5 petabytes in all, onto racks of helium-filled hard drives. The drives were then flown to two correlator supercomputers and played back against each other, and only there did the separate recordings become one instrument.

The South Pole's drives could not leave. No aircraft flies out of Amundsen–Scott through the Antarctic winter. That station's share of the observation sat on a shelf at the bottom of the world until the season turned — the picture was waiting on the weather, which is a very old condition for astronomy to be in.

Consider what this instrument is. Its aperture is a planet. Its resolution comes not from any one dish being good but from the dishes being far apart, and knowing precisely how far. No site saw the ring. No site could have. The image exists only in the relationship between them.

Nobody saw it alone, and no part of the instrument was capable of seeing it alone. The seeing happened between them.what an interferometer is
The Earth as one aperture A globe with six marked observing sites, and lines joining every pair of sites, labelled the aperture is the distance between them. South Pole the aperture is the distance between them
Figure 6 · eight dishes, one instrument
12 May 2022 · Sagittarius A*

The subject that won't hold still


Three years after M87*, the same array released the one at home: Sagittarius A*, about four million solar masses, roughly 27,000 light years away, at the centre of our own galaxy.

Its ring came out at 51.8 ± 2.3 microarcseconds — slightly larger in our sky than M87*'s, because although it is around 1,600 times less massive it is also vastly closer.

It should have been the easy one. It was much the harder one, for a reason that is worth sitting with.

Everything near a black hole orbits on a clock set by its mass, and a small black hole runs fast. The innermost stable orbit around M87* takes something like thirty days to go round. The same orbit around Sagittarius A* takes about thirty minutes.

M87* holds a pose for a month. Sagittarius A* rearranges itself several times over a single night's observing.why the near one was the hard one

An interferometer builds its image out of the Earth's own rotation, sweeping the pairs of telescopes across the sky over hours. That method assumes the subject is the same subject from the first hour to the last. For Sagittarius A* it plainly wasn't, and the methods had to be rebuilt to cope with a source that changes while you are still looking.

Being nearer did not make it easier to see. It made it faster, and fast is its own kind of invisible.

Two clocks M87 star with an inner orbit period of about thirty days beside Sagittarius A star with an inner orbit period of about thirty minutes, against a bar marking one night of observing. M87* inner orbit ~30 days Sgr A* inner orbit ~30 min one night of observing one of these sits still for the exposure the near one is the fast one
Figure 7 · why closer was harder
The turn

Known by the orbit it puts things into


Everything anyone knows about a black hole is a fact about something else.

The heat of the gas. The bending of the light. The orbits of stars whipping around the galactic centre. The width of the dark patch. Not one of those is a measurement of the object; every one is a measurement of what the object does to its neighbourhood — and together they pin it down to within a few percent.

This is not an exotic epistemic situation. It is an extremely ordinary one, and most of us live inside it.

Monotropism is not visible. What is visible is where the attention went, and what it cost to pull it away. Pain is not visible. A sensory environment is not visible — only what someone does to survive it. You cannot point a camera at an access need.the same shape, at human scale

And the response this usually gets is the one the EHT refused: if it can't be seen, treat it as absent. Every unphotographable thing in a person's life gets met with that sentence in some form — you don't look Autistic, you seem fine, you managed last week.

The astronomers had a far stronger version of the problem — a thing that emits literally nothing, not merely something inconvenient to observe — and they did not conclude it was absent. They built an instrument out of a planet and measured what bends around it.

The absence of a photograph was never evidence of an absent thing. It was a fact about cameras.the turn, in one line
Inferring the unseen centre An empty dashed circle at the centre with several orbits and bent paths curving around it, each labelled as something measurable, showing that the centre is known only from what surrounds it. never seen orbits stellar motion bent light bent light every arrow is a measurement of something else and together they locate the centre
Figure 8 · knowing by the surroundings
The uncomfortable half

And the shadow overstates it


Most versions of this argument stop at the previous spread, on the warm note. This one doesn't, because the physics has a second half and the second half is the useful one.

Go back to the number. The dark circle is not the same size as the object. It is about 2.6 times wider. Measure the black hole by its shadow and forget the factor, and you will conclude it is two and a half times the thing it is.

Now carry that across, carefully.

What an observer sees of an unmet need is almost never the need. It is the disruption — the shutdown, the meltdown, the missed deadline, the sudden absence, the job that ended badly, the reply that came out wrong. Those are real, and they are genuinely caused by the thing. They are also systematically bigger than it.

They are bigger because they include everything that had to bend. Years of compensating, the effort of masking, the accumulated cost of a hundred small accommodations made privately and never counted. All of that is bent light. None of it is the horizon.

What people see of an unmet need is the disruption, not the need — and the disruption is the larger object.the second half of the geometry

Two things follow, and they cut in opposite directions, which is how you know it isn't a slogan.

For anyone doing the observing: do not size the need by the disruption. You are looking at magnified darkness. The person is not as large a problem as the wreckage suggests, and treating the wreckage as the measurement is how support plans get built for a person who does not exist.

And for anyone being observed: the disruption is not the measure of you either. It was inflated on the way out — by the bending, by the years, by an environment that made a small thing throw a long shadow.

In physics the magnification is exactly 3√3/2 and you can divide it out. In a life there is no such factor, which is precisely why you ask the person rather than measuring their shadow.

The magnification, applied A small circle labelled the need beside the much wider dark circle it casts, labelled what is observed, with the intervening space labelled years of bending and accumulated cost. the need what is observed what is there between them: years of bending the darkness is magnified · the object is not in physics the factor is 3√3 / 2 in a life there is no factor · so ask
Figure 9 · magnified darkness
The guardrail

Unseeable is not a blank cheque


There is a comfortable misreading of everything above, and it needs closing off on the page rather than in a footnote.

The misreading is: since it can't be photographed, no claim about it can be checked, so any claim will do. That is not what happened here, and the EHT is its refutation.

They could not see the thing. They measured it anyway — Sagittarius A*'s ring at 51.8 ± 2.3 microarcseconds, matching what general relativity predicts for an object of about four million solar masses at that distance, to within a few percent. Not being able to see something is not the same as not being able to know anything about it. It only means the evidence arrives sideways.

So the claim this zine actually makes is narrow, and it is worth saying in one sentence: an unphotographable thing can still be measured, argued about, constrained, and got wrong.

Which is also the honest version of the human half. Self-report is not magic and it is not beyond question; it is the instrument available, and like every instrument it is checked against consequences, against other people's accounts, against what happens next. Asking is not a lowering of standards. It is the measurement.

Not:that anyone is a black hole. That reading is right there — devouring, dark, pulling everything in — and we refuse it flatly. Nothing in this zine is a description of a person. The black hole is the observation problem, not the human being.
Not:that being invisible is romantic. It is a measurement failure, and it costs people diagnoses, benefits, jobs and belief. There is nothing beautiful about going unseen; the beautiful thing is the eight telescopes.
Not:that "you can't see it" settles anything. Three and a half petabytes on hard drives, flown off a continent, exist because a collaboration declined that sentence.
Not:a proof about people. Spreads nine and ten are a rhyme. The geometry is exact and checkable; the analogy is neither, and it licenses nothing on its own. A rhyme, not a proof.
Unmeasured is not unconstrained A wide band labelled anything goes is crossed out, beside a narrow band labelled fifty one point eight plus or minus two point three microarcseconds, showing that an unseen thing was still tightly constrained. the misreading anything goes not what happened what happened 51.8 ± 2.3 µas never seen · tightly pinned the evidence arrived sideways it still arrived asking is not a lower standard
Figure 10 · constrained without a photograph
L★S

The absence of a photograph was never evidence of an absent thing.

No. 10 The Dead Stars Still Reach Us — what arrives late, and still arrives
No. 25 Shared Signal — one continuous field, carrying connection across distance
No. 39 Five Sigma — the bar a discipline sets against wanting the answer
No. 44 You Cannot Flatten a Sphere — what a summary must throw away
No. 48 The Shadow Is Bigger Than the Thing — known only by its effect ← you are here
Reflection

What do people see of you that is really the bending — the accumulated cost — rather than the thing itself?

Whose size have you estimated from the disruption, without dividing out the years?

Where in your life has "I can't see it" been treated as "it isn't there"?

What would it take to build the instrument instead — to measure what bends, rather than waiting for a photograph that cannot exist?

Sources

The images. Event Horizon Telescope Collaboration, "First M87 Event Horizon Telescope Results. I. The Shadow of the Supermassive Black Hole," The Astrophysical Journal Letters 875, L1 (2019) — an asymmetric bright emission ring of diameter 42 ± 3 µas around a central brightness depression, and a central mass of (6.5 ± 0.7) × 10⁹ M☉, observed at 1.3 mm. The blind-imaging procedure is in Paper IV of the same series (ApJL 875, L4): four teams, each blind to the others, using both CLEAN and regularized maximum likelihood, "to avoid shared human bias." Sagittarius A* figures — ring 51.8 ± 2.3 µas, roughly four million solar masses at about 27,000 light years — are from EHT Collaboration, "First Sagittarius A* Event Horizon Telescope Results. I.," ApJL 930, L12 (2022), released 12 May 2022.

The geometry. For a Schwarzschild (non-spinning) black hole the event horizon lies at r = 2GM/c², the photon sphere at 3GM/c², and the shadow's apparent radius to a distant observer at 3√3 GM/c² ≈ 5.196 GM/c². The ratio quoted throughout, 3√3/2 ≈ 2.598, is that arithmetic. The weak dependence of shadow size on spin and inclination is from Dimitrios Psaltis, Feryal Özel, Chi-Kwan Chan & Daniel P. Marrone, "A General Relativistic Null Hypothesis Test with Event Horizon Telescope Observations of the Black-Hole Shadow in Sgr A*," The Astrophysical Journal 814, 115 (2015), whose abstract states that the half opening angle of a Kerr black-hole shadow "is always equal to (5 ± 0.2) GM/Dc²" — the ~4% figure used on spread 4. Corrected during the check: an earlier draft attributed this to Physical Review Letters 116, 031101 (2016), which is a different paper, by Johannsen et al. The mechanism usually given for the near-constancy — a cancellation between frame-dragging and the quadrupole structure of the Kerr metric — was not confirmed in a primary source and is therefore not asserted on the page; the zine states the measured constancy and calls it a quirk of the equations, which is what we can stand behind.

The instrument. The April 2017 campaign observed on four days between 5 and 11 April with eight radio telescopes at six geographic sites — Arizona, Chile, Hawai'i, Mexico, Spain and the South Pole — recording roughly 350 TB per telescope per day, about 3.5 PB in total, to helium-filled hard drives shipped to two correlators. The Antarctic drives could not be flown out until the austral winter ended. Figures from the EHT collaboration's own data-processing paper (ApJL 875, L3) and ESO's release eso1907, which also gives the collaboration size as more than 200 researchers across 13 stakeholder institutes.

The orbital clocks. The innermost stable circular orbit takes roughly thirty minutes around Sagittarius A* and roughly thirty days around M87*, which is why the nearer source was the harder one to image and why static-source imaging assumptions had to be reformulated for it. Given as approximate; the dynamical timescales quoted in the EHT literature span about 4–56 minutes for Sgr A* and about 5–61 days for M87*.

Our own arithmetic, flagged as such. The "orange on the Moon" comparison is ours, not the collaboration's: 42 µas is 2.04 × 10⁻¹⁰ radians, which at the Moon's mean distance of about 384,400 km subtends roughly 7.8 cm. We have used our own figure rather than repeating any of the widely-circulated comparisons, none of which we could trace to a primary statement.

What this zine deliberately does not do. It does not use Hawking radiation, the no-hair theorem, the information paradox, or the singularity — each is a real and interesting subject, and none of them is the observation problem this piece is about. It does not use tidal forces, which No. 10 already spends, or the relativity of simultaneity, which belongs to No. 11. No claim is made that the geometry proves anything about people: spreads 9 and 10 are an analogy and the zine says so on its own face. A rhyme, not a proof.

Origin. Written at the request of a community member, through the open call at We Are All Star Stuff.