gmuslera
27 minutes ago
Where is the replicator? Evolution doesn’t happen just because. Copies are made, not all identical, some get to the next iteration, and if what makes them different gives them better chances to get to the next stage, then that difference may remain.
Where that plays with universes?
I get that if they are infinite amounts of universes, the ones with conditions of evolving intelligence hace more chances to be observed from within, but more or less that’s it.
JulianPGough
16 minutes ago
The universe is the replicator. This comes directly from John Wheeler's old idea, which he came up with back in the 1970s to solve the two mysteries in our universe that involve singularities: black holes, and the Big Bang. I've written about this a lot, so I'm happy to go into more detail:
As an elegant way to solve the two problems, Wheeler proposed that mass/energy in a parent universe collapsed to form a black hole (thus leaving the bubble of space-time that was the parent universe). It then “bounced” at the singularity, and expanded in a Big Bang, to form a new universe – budding off a new bubble of space-time, outside of, and separate from, its parent universe.
That is, parent universes reproduced through black holes, which “bounced” to form Big Bangs. Each Big Bang was therefore the birth of a new child universe, which grew up to produce more black holes; more child universes.
In the 1990s, another brilliant American theoretical physicist, Lee Smolin, saw a marvellous implication of Wheeler’s idea that had been completely missed by everybody (because theoretical physicists don’t usually read much evolutionary biology; Smolin had been reading some, for fun). Smolin realised that if there was slight variation in the basic parameters of matter in the child universe (rather than the large and random variation assumed by Wheeler), you would automatically get Darwinian evolution of universes. That’s because slight variation allows for inheritance; and some of those slight variations would lead to more black hole production; more reproductive success; more offspring. Those successful variations would therefore be inherited more widely than less successful variations. The successful variations would vary again (slightly) in the next generation, with some variants being even more reproductively successful (and some less); and off we go – Darwinian evolution of universes, with the evolutionary ratchet optimizing for reproductive success. Over time, the majority of universes will come to be fine-tuned for very high levels of black hole production (compared to the evolutionary starting point, where the numbers could be as low as one or two). This seems plausible: our universe has already produced over forty quintillion black holes, just from stellar collapse. (That’s 4×10¹⁹; a four and 19 zeros! For how they worked that out, see Sicilia, Lapi, et al, 2022.) Smolin’s simple and straightforward evolutionary theory of universes became known as Cosmological Natural Selection (CNS), laid out in his paper Did the Universe Evolve?, and his book The Life of the Cosmos.
So, Smolin had uncovered a powerful evolutionary implication, hidden inside Wheeler’s simple model of the reproduction of universes.
JulianPGough
7 minutes ago
Again, I've written about the reproduction of universes at length here...
The key implication of cosmological natural selection: https://theeggandtherock.com/p/the-key-implication-of-cosmol...
And here...
A history of cosmological natural selection: https://theeggandtherock.com/i/158515951/background-lee-smol...
And if you prefer Youtube, I've talked about it here on the Infinite Loops podcast: https://www.youtube.com/watch?v=rZ5inYnDWWA&t=2341s (the link skips the biographical stuff and goes straight to the theory)
And if you prefer Substack, I've talked about it on The Weekly Anthropocene: https://sammatey.substack.com/p/interview-julian-gough-on-co...
Explore! Enjoy!
qsera
12 minutes ago
So where did the original universe come from?