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    Home»Economy»Modeling errors in AI doom circles
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    Modeling errors in AI doom circles

    Press RoomBy Press RoomJune 20, 2025No Comments2 Mins Read
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    There is a new and excellent post by titotal, here is one excerpt:

    The AI 2027 have picked one very narrow slice of the possibility space, and have built up their model based on that. There’s nothing wrong with doing that, as long as you’re very clear that’s what you’re doing. But if you want other people to take you seriously, you need to have the evidence to back up that your narrow slice is the right one. And while they do try and argue for it, I think they have failed, and not managed to prove anything at all.

    And:

    So, to summarise a few of the problems:

    For method 1:

    •  The AI2027 authors assigned a ~40% probability to a specific “superexponential” curve which is guaranteed to shoot to infinity in a couple of years,even if your current time horizon is in the nanoseconds.
    • The report provides very few conceptual arguments in favour of the superexponential curve, one of which they don’t endorse and another of which actually argues against their hypothesis.
    • The other ~40% or so probability is given to an “exponential” curve, but this is actually superexponential as well due to the additional “intermediate speedups”.
    • Their model for “intermediate speedups”, if backcasted, does not match with their own estimates for current day AI speedups.
    • Their median exponential curve parameters do not match with the curve in the METR report and match only loosely with historical data. Their median superexponential curve, once speedups are factored in, has an even worse match with historical data.
    • A simple curve with three parameters matches just as well with the historical data, but gives drastically different predictions for future time horizons.
    • The AI2027 authors have been presenting a “superexponential” curve to the public that appears to be different to the curve they actually use in their modelling.

    There is much more detail (and additional scenarios) at the link.  For years now, I have been pushing the line of “AI doom talk needs traditional peer review and formal modeling,” and I view this episode as vindication of that view.

    Addendum: Here is a not very good non-response from (some of) the authors.

    The post Modeling errors in AI doom circles appeared first on Marginal REVOLUTION.



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