As a follow up to a question I asked Dave during last week's meeting, can we get a general sense about what data the AI models are trained on? Is it a fair assumption that they were fed all of the 3000+ factors from HSH during training? Similarly, were they then evaluated against out-of-sample test data? — Atakante
I ask b/c it feels right to look deeper into how AI predictions fare in real life with an eye towards their performance based on factors/variables the models were NOT trained on. Given tens of thousands of pace lines the models are using to make inference, it seems to me an uphill battle trying to prove them right/wrong with even couple hundred manually tracked races for those variables they already considered during training. — Atakante
If memory serves, the chaos race variable/factor was NOT an input to the models so that's one candidate factor worthwhile manually diving into. Is it a safe assumption that race-level factors were excluded from training data? If not, is there a short list of other candidates or a shorthand logic to find others to manually "study"? — Atakante
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