This is a summary version. The full (long) version is here: Case II First Contact
What Case II is
The five cases, from a 2023 taxonomy, are mutually exclusive at the moment of confirmed contact, though a story can later migrate from one case to another:
- Humanity detects alien transmissions or artifacts.
- Aliens detect humanity and reply with transmissions.
- Aliens detect humanity and visit.
- Humanity detects aliens and then visits them.
- Neither side knows the other exists until they meet in deep space or on a neutral world.
Case II is photons, not ships: they pick up our leakage, a METI beacon (Arecibo 1974, Luyten’s Star 2017), a spacecraft, or some other artifact, and they design a reply to be noticed. No probe or crew has arrived. Arecibo’s target is so distant a reply is unlikely; a reply from Luyten’s Star could not arrive before 2041.
Sagan’s Contact shows the migration: it starts as Case I (we hear them) and becomes Case II once it is clear they heard us and addressed us. The scientific premise is geometric: a radio sphere expands at light speed, so whoever detects the other first holds the initiative—silence, reply, visit, or terms of the encounter.
What they would actually hear
Earth’s space-escaping radio signature effectively begins in the mid-1930s (1936 Berlin Olympic TV around 40 MHz, then high-power radar). By the mid-2020s that bubble is about 90 light-years across (~10,000 stars, a few hundred Sun-like). A century from now ~190 ly; a millennium ~1,090 ly.
The bubble is not uniform. Mid-20th-century analog TV carriers and military/planetary radars were bright and narrow-band. Later digital, cellular, Wi-Fi, and fiber-era traffic produces weaker and more noise-like signals. So a distant listener may see a bright historical shell—a finite mid-century pulse—then a fainter interior, not a permanent lighthouse.
An Arecibo-class (or SKA-class) telescope could, in principle, pull analog carriers out of the noise at tens of light-years with long integrations; the strongest radars farther still if the observer is in the beam. Present-day digital murmur needs a much larger aperture, a closer vantage, or prior knowledge of when and where to look. Anyone already inside that ~90 ly sphere with radio astronomy at least as good as ours has had decades in which our analog/radar fingerprint was above the detection floor. Beyond that sphere, they have not had time to see us yet.
Why a reply is hard
- Light-time is geometry, not engineering. Round-trip delay is 2D years. Vega (~26 ly), as in Contact, means a ~52-year wait from detection. Hundreds of light-years means centuries. Institutions must outlast scientists; real-time dialogue is unrealistic; one-way monologues (beacons, archives, primers) fit better than conversation.
- Power and pointing. Detectability is flux at Earth. Inverse-square falloff makes a reply as faint as our leakage useless unless it is much more powerful or tightly beamed. A Kardashev Type I civilization with a large aperture and a narrow-band beam could be visible at interstellar range; Type II (stellar-scale energy) could do it trivially. An Arecibo/FAST-class transmitter aimed at Earth might work at tens of light-years; the same power, isotropic, would not. The beam must lead Earth’s future position. A beam narrower than the pointing error misses us; a wider beam costs flux. By the time they reply, Earth may already be radio-quieter than the mid-century wavefront they locked onto.
- Content must look artificial. Echoes of our own signal, primes, physical constants, and hydrogen-line / “water hole” carriers help. Layered design: a robust attention beacon, then a primer, then images or science data with redundancy—not compression or encryption. The receiver’s bandwidth and whether they are even looking SETI-style is unknown.
- Silence is data, not proof that we are alone. No reply within our radio sphere bounds the product of density × lifetime × communicative fraction (rarity, short-lived radio cultures, non-radio channels, zoo/quarantine silence, or our own incomplete searches). It does not pick which factor is small.
Fiction: Contact as the type specimen
The author treats Sagan’s Vega sequence as the cleanest Case II: an amplified, Doppler-shifted replay of the 1936 Olympics (old enough to have reached Vega, culturally damning as humanity’s first calling card), then a pedagogical primer from arithmetic and primes to a machine specification. That turns an under-determined SETI problem into a construction problem. Strengths: The author addresses light-time directly; the Olympic echo is a verifiable “nonce” no natural source or Earth hoaxer could fake; “they heard us first” is the psychological payload.
The novel leaves open problems: readers assert the energy budget of such a directed, information-rich reply more than it proves it, and they under-determine its motive (signature, existence test, moral mirror, brightest file they had; machine as gift, invitation, cohesion experiment, or filter).
Other variants
- Gunn’s The Listeners: Capellan rebroadcast of Earth’s leakage; senders later revealed extinct.
- Liu’s The Three-Body Problem: “Do not answer”—a reply that acknowledges detection and tries to enforce silence.
- Early pulp (Hamilton, Gallery): radio answer first, then the story slides toward visitation.
- Hypotheticals: purely mathematical reply; warning/demand; automated beacon of a dead civilization; coordinates or machine plans that open a path to Case III/IV; Clarke’s “The Sentinel”—an ancient artifact that, once triggered, transmits (border of Case I and II, still photons not ships).
Case II is a family of scenarios, not one plot: prior detection of us, deliberate EM reply, no physical presence.
World-building takeaways
Delay is the engine: characters must spend capital while the sky stays empty, and first contact becomes a conversation with the past—who we (and they) will be when the photons arrive. A verified reply constitutes a civilizational event: governments, intelligence services, religions, and science all scramble over who may speak, whether to answer, and whether they should share or weaponize technical content.
Authors still have to choose: do they reveal a location? Invite dialogue or send a one-way monument? Does signal power imply a modest Type I shout or casual Type II infrastructure—and if the latter, why isn’t the sky already full of artifacts? The essay insists Case II stay inside the Fermi–Drake–Kardashev frame: one delayed message is a data point, not a reset that makes the quiet sky irrelevant.
Close
Case II is the first moment the other side demonstrably knows we exist and says so. That is not friendship and not arrival; it is mutual awareness. Case III drops the distance buffer: interpretation becomes presence, epistemic risk becomes material risk, and power asymmetry is hard to hide.
The five cases form a ladder of increasing intimacy and decreasing control. Macalester plans an original short story for each, using the case as pressure on character, policy, and belief rather than as a label stuck on after the plot is done.
The full (long) version is here: Case II First Contact
Stories
The stories of Torn MacAlester are science fiction, where the science is well-grounded. I intentionally made any deviations for speculative purposes. To maintain maximum realism, I restrict the scope of these deviations.
Articles
I write articles of science fact and science fiction. The articles here span the knowledge of modern science and the speculations of fiction. I try to caveat everything that is an assumption. You will find articles about spaceflight, the possibilities of alien contact, and descriptions of technology used in my stories.