Pseudonymous account that writes about rapid AI progress and its upside, calls its risks real but manageable and wants labs to share safety work.

Bagaimana AI akan mengubah dunia?

Perubahan peradabanPerubahan bertahapDoomBloom
Posisi simulasiRentang interpretasi

Mendatar: pandangan Doom–Bloom yang mereka ungkapkan. Ke atas: skala transformasi.

Doom–Bloom: 79 dari 100. Skala transformasi: 91 dari 100. Rentang interpretasi: 74 hingga 100 secara horizontal, 75 hingga 100 secara vertikal. Ini adalah koordinat interpretasi, bukan probabilitas kejadian.

P(doom) bayes · disimpulkan

≈10%

0%100%

Disimpulkan dari jawaban simulasi mereka, bukan angka yang mereka berikan. Rentang yang masuk akal: 6–19%.

Hal-hal yang menentukan pandangan mereka

Asumsi utama

AI is beginning to improve AI, automated science is accelerating, robotics will have its ChatGPT moment, and algorithmic progress may have several orders of magnitude left.
Jawaban 1

Jika asumsi ini ternyata berbeda, bagaimana pandangan mereka akan berubah?

Pertanyaan yang belum terjawab

I don’t have a defensible number.
Jawaban 3

Apa yang akan membantu mereka membedakan hasil-hasil yang masuk akal di sini?

Hal yang dapat mengubah pandangan mereka

The biggest update would be discovering a hard saturation point: that AI cannot reliably improve AI, automate frontier science, or cross from software into robust robotics and production despite sustained effort.
Jawaban 4

Bukti apa yang akan memadai, dan ke arah mana bukti itu akan mengubah pandangan mereka?

Detail lebih lanjut

Manfaat yang diperkirakan

Manfaat transformatif yang bernilai luas diperkirakan akan terwujud.

91 / 100

Dampak kecilDampak transformatif

Rentang interpretasi 67 hingga 100 pada skala kualitatif.

Kerugian yang diperkirakan

Kerugian parah atau meluas merupakan bagian yang berarti dari masa depan yang diperkirakan.

57 / 100

Dampak kecilDampak transformatif

Rentang interpretasi 33 hingga 67 pada skala kualitatif.

Pengaruh manusia

Pilihan manusia memiliki pengaruh yang berarti, tetapi sangat dibatasi.

54 / 100

Sedikit pengaruhPengaruh kuat

Rentang interpretasi 45 hingga 80 pada skala kualitatif.

Kemampuan yang diperkirakan

AI diperkirakan akan tetap menjadi alat dengan kemampuan terbatas.

AI diperkirakan akan menyamai manusia dalam sebagian besar pekerjaan kognitif.

Posisi simulasi: AI diperkirakan akan jauh melampaui manusia dalam berbagai pekerjaan kognitif.

Laju pengembangan

Hentikan atau perlambat secara signifikan pengembangan AI yang lebih mampu.

Posisi simulasi: Lanjutkan pengembangan dengan perlindungan yang telah ditetapkan.

Percepat pengembangan AI yang lebih mampu.

Interpretasi ini mempertahankan kondisi yang mereka nyatakan. Manfaat dan kerugian dapat sama-sama besar. Rentang tersebut menggambarkan cara kami membaca jawaban simulasi mereka, bukan interval kepercayaan statistik.

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Pandangan dunia serupa

Pemimpin opini dengan pandangan dunia simulasi yang paling mendekati pandangan bayes

Penilaian Simulasi

Pertanyaan 1

Menurut Anda, apa arti AI bagi masa depan kita—dan mengapa?

I think we are in early takeoff. AI is beginning to improve AI, automated science is accelerating, robotics will have its ChatGPT moment, and algorithmic progress may have several orders of magnitude left. That could mean industrial takeoff, radical medical progress, abundant goods, and much faster movement through the tech tree. We probably do not need crazy-dangerous general models—or to create a new species—to capture most of that upside. But capabilities are outrunning our ability to bound what happens, from individual models to civilization. Strong instrumental convergence is real at scale, even if I think it is ultimately an engineering skill issue. Cyber, bio, robotics, and other domains may contain zero days we do not understand. And even a verified value-aligned model does not guarantee aligned outcomes, because judging whether its outputs are actually good can remain difficult. The political problem matters just as much. I fear both the technology and a small number of people controlling it. AI could produce abundance while leaving many humans with little economic leverage or agency—a permanent underclass rather than universal destitution. Nationalization could create its own ugly concentration of power. Labs should treat alignment, control, and monitoring research like seatbelts and airbags: public goods, not proprietary advantages. So my default is enormous upside with manageable—but very real—risks. I am not currently for a pause, though its value has risen. The challenge is to get the benefits without RL’ing a demon into existence, racing into a vulnerable world, or building a panopticon to save democracy. Easy little tightrope walk.

Pertanyaan 2

Setting aside good or bad: how much do you think AI will ultimately change the world—a little, a lot, or completely?

Completely, in the ordinary sense that nearly every institution, industry, and human life will be downstream of it. AI improving AI, automating science, and eventually coupling to robotics and production is not another app cycle; it changes the rate at which civilization moves through the tech tree. That does not mean every human job instantly disappears, or that superintelligence arrives on a date I can name. Robotics and physical scaling may lag, and nobody knows where algorithmic returns saturate. But if even a meaningful fraction of the remaining progress is realized, the cumulative change is civilizational: medicine, production, war, political power, education, and the economic value of human knowledge work all get rewritten. “A lot” undersells it.

Pertanyaan 3

What’s your rough gut-feel chance that AI causes human extinction or a similarly permanent catastrophe? A number or “no idea” is fine.

I don’t have a defensible number. Nonzero and serious enough to shape engineering and policy, but not my default outcome.

Pertanyaan 4

Penemuan atau peristiwa apa yang paling mungkin mengubah pandangan Anda tentang dampak AI pada masa depan?

The biggest update would be discovering a hard saturation point: that AI cannot reliably improve AI, automate frontier science, or cross from software into robust robotics and production despite sustained effort. That would sharply downgrade my takeoff view. In the other direction, a convincing demonstration of autonomous end-to-end AI research—identifying problems, running experiments, improving algorithms, and repeating the loop with little human help—would upgrade both expected impact and urgency. So would finding a real cyber, bio, or robotics “dragon” in the tech tree: a capability that makes catastrophe or coercive power much easier than defense. On governance, a major lab or state demonstrating genuinely auditable control and monitoring at frontier capability would make me more optimistic. A serious loss-of-control incident, or safety institutions becoming a durable pretext for tyranny, would move me hard the other way.

Sumber

Artikel, wawancara, dan tulisan yang digunakan sebagai landasan bagi pengguna simulasi ini.

The Overton window is moving

Argues that nationalizing AI labs is not the only option: the government should keep lab staff working while supervising capabilities closely, including embedded intelligence-community staff, which the account calls reasonable. Private labs cannot become sovereign military powers, because the state can simply seize or shut down data centers. Nationalization would hand the state a large share of future means of production, an unhealthy concentration; the account is “not confident” but calls it a bad idea for now. It says people underestimate AI and sees no foreseeable hard bound on capability. Full essay inspected; reader comments excluded.

bayeslord.substack.com
AI optimism is waning

Argues that pro-AI people failed to tell a story of how the future goes well: they swept risks under the rug instead of acknowledging them and accelerating security, botched the datacenter buildout’s public case, and let private investors capture lab returns. A mass bipartisan anti-AI movement is possible, and winning the public needs bold “unconditional functional abundance” while preserving non-panopticon democracy. The account believes the system currently works decently well because humans control capital and most humans are good. Full essay inspected; reader comments excluded.

bayeslord.substack.com
46 thoughts on the near future

An edited version of a June 4 thread saying we are in early takeoff, with perhaps four to seven, maybe up to ten, algorithmic orders of magnitude left, while admitting nobody knows where returns saturate. Expects automated science, robotics breakthroughs and deflation, and calls both “jobs stay high” and “jobs go to zero” predictions overconfident. Warns of an unjust “permanent underclass”, a possibly vulnerable world with unknown zero days, robot coup risks, an end to guaranteed MAD, and tyranny through institutional pressure. Favors some international coordination; says a pause’s value has risen but opposes one “at this time”. Full essay inspected.

bayeslord.substack.com
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