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The Great Filter - Are We Almost Past It?
Sept. 15, 1998
by Robin Hanson
Humanity seems to have a bright future, i.e., a non-trivial chance of expanding to fill the universe with lasting life. But the fact that space near us seems dead now tells us that any given piece of dead matter faces an astronomically low chance of begating such a future. There thus exists a great filter between death and expanding lasting life, and humanity faces the ominous question: how far along this filter are we?
Combining standard stories of biologists, astronomers, physicists, and social scientists would lead us to expect a much smaller filter than we observe. Thus one of these stories must be wrong. To find out who is wrong, and to inform our choices, we should study and reconsider all these areas. For example, we should seek evidence of extraterrestrials, such as via signals, fossils, or astronomy. But contrary to common expectations, evidence of extraterrestrials is likely bad (though valuable) news. The easier it was for life to evolve to our stage, the bleaker our future chances probably are.
Introduction
Fermi, Dyson, Hart, Tipler, and others [Finney & Jones, Dyson 66, Hart 75, Tipler 80] have highlighted the relevance to SETI (the search for extraterrestrial intelligence) of the "The Great Silence" [Brin 83] (also known as the Fermi paradox), the fact that extraterrestrials haven't substantially colonized Earth yet. What has not yet been sufficiently highlighted or adequately analyzed, however, is the relevance of this fact for much bigger choices we now make.
The Great Silence must force us to revise a standard view in one or more area of biology, astronomy, physics, or the social sciences. And some of these revisions strongly suggest that humanity be much more wary of possible disasters. To clarify these points, this paper will first review how our standard understandings in these areas would lead us not to expect a Great Silence, and will then consider a variety of possible revisions we might consider.
Life Will Colonize
So far, life on earth seems to have adapted its technology to fill every ecological niche it could. Previously stable populations and species have consistently expanded into newly-opened frontiers. All known life seems to have a "dispersal phase" to encourage colonization, with non-trivial mutations and sexual mixing to encourage exploration of new technologies [Tipler 80].
Similarly, humanity has continued to advance technologically, and to fill new geographic and economic niches as they become technologically feasible. For example, while imperial China closed itself to exploration for a time, other competing peoples, such as in Europe, eventually filled the gap.
This phenomena is easily understood from an evolutionary perspective. In general, it only takes a few individuals of one species to try to fill an ecological niche, even if all other life is uninterested. And mutations that encourage such trials can be richly rewarded. Similarly, we expect internally-competitive populations of our surviving descendants to continue to advance technologically, and to fill new niches as they become technologically and economically feasible.
Colonization has been a consistent experience with life on Earth over the long run, and our best understanding of human social systems suggests this will continue. While humans evolve within complex co-evolving organizational, cultural, memetic, and genetic systems, all of these systems show long-term tendencies to make use of reproductively-useful resources.
Thus we should expect that, when such space travel is possible, some of our descendants will try to colonize first the planets, then the stars, and then other galaxies. And we should expect such expansion even when most our descendants are content to navel-gaze, fear competition from colonists [Benford 81], fear contact with aliens, or want to preserve the universe in its natural state. At least we should expect this as long as a society is internally-competitive enough to allow many members to have and act on alternative views. After all, even navel-gazing virtual reality addicts will likely want more and more mass and energy (really negentroy) to build and run better computers, and should want to spread out to mitigate local disasters [Zuckerman 85]. A million years is a cosmologically short period, yet it is much more than enough for historic population growth rates (> .001%/yr.) to overwhelm fundamental physical limits on the amount of computation possible within the observable universe [Zaslavskii 96]. This remains true even using black holes for negentropy and quantum computers for computation, each of which squares the available resources relative to standard approaches. Thus we have good reasons to expect unused resources to be colonized on cosmological time scales, even if we find other civilizations to communicate with or to "teleport to" [Scheffer 94].
Evolutionary theory even suggests [Hansson & Stuart 90] that competitive pressures among colonists should encourage a maximum feasible economic growth rate, as those who travel too slow, linger too long, or choose not to replicate [Stephenson 79] become outnumbered by others. Increasingly fast and high risk colonization probes may be sent on increasingly long journeys, all for a chance at being the first to colonize vast virgin territory.
Technically, such space colonization seems feasible, even if it is well beyond our current abilities, since even now we can envision the enabling technologies. Slow self-sufficient interstellar boats would be nearly feasible now, if we were rich enough to construct them. And fast less-than-kilogram-sized [Forward 85,87] self-reproducing [Tipler 80] nanotech-based [Drexler 92b] space-traveling machine intelligences (artificial or uploaded [Hanson 94]) seem possible within a few centuries.
There are no obvious limits to spacecraft speed (other than lightspeed), given sufficient resources. And with full (nanotech-based) control over the atomic structure of matter [Drexler 92a], colonists should mainly be interested in the atoms and negentroy they can extract from a colonization site [Dyson 66,79], and the convenience of its location.
The Data Point
Within the next million years (at most) therefore, our descendants seem to have a foreseeable (greater than one in a thousand) chance of reaching an "explosive" point, where they expand outward at near the speed of light to colonize our galaxy, and then the universe, easily overpowering any less developed life in the way. FTL (faster than light) travel would imply even faster expansion.
We expect such an explosion to fill most every available niche containing usable mass or negentroy resources. And even if the most valuable resources are between the stars or at galactic centers, we expect some of our descendants to make use of most all the matter and energy resources they can economically reach, including those in "backwater" solar systems like ours and those near us.
Once an explosion goes beyond the scale where a single disaster, such as a supernovae, could destroy it, to become a "lasting" explosion of advanced life, it should only be stopped by meeting another explosion of similarly-advanced life. After that, if disaster befalls some long-established colony, others should soon return to try again.
Without FTL travel to mediate conformity, we would also not be surprised by a great diversity among the different parts of an explosion, and especially among different explosions [Hoerner 78]. We would expect, for example, different cultures, languages, and body form details. We expect much less diversity, however, regarding choices which would put a civilization or entity at a strong competitive reproductive disadvantage.
For example, while one can imagine predatory probes sent to search and destroy other life [Brin 83], it is harder to understand why such probes would not also aggressively colonize the systems they visited, if such colonization were cheap. Aggressive colonization would give them all the more probes to work with, and deny resources to competitors. If this colonization effort could hide its origins from those who might retaliate, what would they have to lose?
Similarly, while some groups might plausibly leave some places "fallow" as information-generating "nature preserves" [Fogg 87], it is much harder to imagine that most places would be so preserved. There should be diminishing returns to such information, and groups that use more of their resources should be at a competitive advantage. And given the vastness of space, substantial resources should be required to keep "poachers" from slipping in to colonize such a preserve.
Finally, we expect advanced life to substantially disturb the places it colonizes. Whenever natural systems are not ideally structured to support colonists, we expect changes to be made. And unless ideal structures always either closely mimic natural appearances or are effectively invisible, we expect advanced life to make visible changes.
For example, it only takes a small amount of nuclear waste dropped into to visibly change its spectra [Whitmire & Wright 80.] And a civilization might convert enough of a star's asteroids into orbiting solar-energy collectors to collect a substantial fraction of this star's output, thereby substantially changing the star's spectral, temporal, and spatial appearances. Even more advanced colonists may disassemble stars [Criswell 85] or enclose them in Dyson spheres well within a million years of arrival. Galaxies may even be restructured wholesale [Dyson 66].
If such advanced life had substantially colonized our planet, we would know it by now. We would also know it if they had restructured most of our solar system's asteroid belt (though much smaller colonies could be hard to detect [Papagiannis 78]). And they certainly haven't disassembled Jupiter or our sun. We should even know it if they had aggressively colonized most of the nearby stars, but left us as a "nature preserve".
Our planet and solar system, however, don't look substantially colonized by advanced competitive life from the stars, and neither does anything else we see. To the contrary, we have had great success at explaining the behavior of our planet and solar system, nearby stars, our galaxy, and even other galaxies, via simple "dead" physical processes, rather than the complex purposeful processes of advanced life. Given how similar our galaxy looks to nearby galaxies, it would even be hard to see how our whole galaxy could be a "nature preserve" among substantially-restructured galaxies.
These considerations strongly suggest that no civilization in our past universe has reached such an "explosive" point, to become the source of a light speed expansion of thorough colonization. (That is, no civilization within the past light cone of a million years ago for us; see Technical Appendix below). Much follows from this one important data point [Hart 75, Tipler 80].
The Great Filter
Consider our best-guess evolutionary path to an explosion which leads to visible colonization of most of the visible universe:
The right star system (including organics)
Reproductive something (e.g. RNA)
Simple (prokaryotic) single-cell life
Complex (archaeatic & eukaryotic) single-cell life
Sexual reproduction
Multi-cell life
Tool-using animals with big brains
Where we are now
Colonization explosion
(This list of steps is not intended to be complete.) The Great Silence implies that one or more of these steps are very improbable; there is a "Great Filter" along the path between simple dead stuff and explosive life. The vast vast majority of stuff that starts along this path never makes it. In fact, so far nothing among the billion trillion stars in our whole past universe has made it all the way along this path. (There may of course be such explosions outside our past light cone [Wesson 90].)
The fact that our universe seems basically dead suggests that it is very very hard for advanced explosive lasting life to arise. And if there are other radically different paths to expanding lasting life [Shapiro & Feinberg 82], that only makes the problem worse, by implying that the filter along our path must be even larger.
Someone's Story is Wrong
Biologists and others have been working hard for a long time to come up with plausible explanations for each of the evolutionary steps listed above, explanations which make each step seem not especially improbable. Plausible models have been offered of how RNA evolved to reproduce, how simple (prokaryotic) cells grew around it, how cells became more complex (eukaryotes), how cells came together into organisms, how brains and hands evolved from simple control mechanisms, and how our brains and hands lead to tool use and scenario generation, which led us to where we are today.
Together these plausible explanations have persuaded countless teams to construct relatively high estimates of the probability that any one planet will eventually produce intelligent life such as ourselves, by estimating relatively low values for each filter term in the famous "Drake Equation" [].
Similarly, technological "optimists" have taken standard economic trends and our standard understanding of evolutionary processes to argue the plausibility of the story I gave above, that our descendants have a decent chance of colonizing our solar system and then, with increasingly fast and reliable technologies of space travel, colonizing other stars and galaxies. If so, our descendants have a foreseeable chance of reaching such an explosive point within a cosmologically short time (say a million years).
Of course many other folks don't consider this scenario particularly "optimistic" - they prefer that our descendants choose a more stable path, less likely to "disturb the universe". But I will continue to use the word "optimistic" to describe this scenario, because even fans of stability should be concerned about the implications of humanity not living long enough or free enough to have even a one in a million chance, for example, that any descendant of ours will escape to colonize space. It would seem that any reasonably non-pessimistic scenario would include a non-trivial chance that at least some of our descendants will choose the explosive path over the next million years.
While all of these stories are at least minimally plausible, our main data point implies that at least one of these plausible stories is wrong -- one or more of these steps is much more improbable than it otherwise looks. If it is one of our past steps, such as the development of single-cell life, then we shouldn't expect to see such independently evolved life anywhere within billions of light years from us. But if it is a step between here and a choice to explode that is very improbable, we should fear for our future. At the very least, our potential would have to be much less than it seems. Optimism (as defined here) regarding our future is directly pitted against optimism regarding the ease of previous evolutionary steps. To the extent those successes were easy, our future failure to explode is almost certain.
Note that this cause for concern has a different basis than the simple statistical arguments of Gott [Gott 93] and Leslie [Leslie 96] that all else equal we shouldn't expect many more future humans than there have been past humans. While those arguments shouldn't be ignored, their strength depends much more on the auxiliary assumptions one makes about other relevant information. In contrast, the conclusion that the Great Filter is very large is relatively insensitive to other assumptions.
It Matters Who's Wrong
Rational optimism regarding our future, then, is only possible to the extent we can find prior evolutionary steps which are plausibly more improbable than they look. Conversely, without such findings we must consider the possibility that we have yet to pass through a substantial part of the Great Filter. If so, then our prospects are bleak, but knowing this fact may at least help us improve our chances.
For example, if our prospects are likely bleak we should search out and take especially seriously any plausible scenarios, such as nuclear war or ecological collapse, which might lead to our future inability to explode across the universe. A long list of such scenarios for concern can be found in [Leslie 96]. Our main data point, the Great Silence, would be telling us that at least one of these scenarios is much more probable than it otherwise looks.
With such a warning in hand, we might, for example, take extra care to protect our ecosystems, perhaps even at substantial expense to our economic growth rate. We might be even especially cautious regarding the possibility of world-destroying physics experiments. And we might place a much higher priority on projects like Biosphere 2, which may allow some part of humanity to survive a great disaster.
To find out whether such sacrifice is called for, humanity would do well to study this whole area much more carefully, considering all plausible explanations of the Great Filter. To encourage such study, the rest of this paper will attempt to review the current status of our understanding, considering in turn various possibilities regarding who might be wrong, and the various types of evidence which might clarify the matter.
Reconsidering Biology |
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