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Quantifying Data Drift Using Coefficient of Variation and Numba
Quantifying Data Drift Using Coefficient of Variation and Numba
I realized that 'data quality' is often vague, so I wanted to build a deterministic score (0-100) for how stable a dataset is.
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Launch Intel predictions
Analyze your own launch →77%77% predicted probability of success on Product Hunt, based on ML models trained on real launch data.
best fitHighest predicted score across all platforms for this description.
42%42% predicted probability of success on AppSumo, based on ML models trained on real launch data.
39%39% predicted probability of success on Hacker News, based on ML models trained on real launch data.
nativeThis product was originally launched on this platform.
37%37% predicted probability of success on TrustMRR, based on ML models trained on real launch data.
28%28% predicted probability of success on BetaList, based on ML models trained on real launch data.
24%24% predicted probability of success on Indie Hackers, based on ML models trained on real launch data.
20%20% predicted probability of success on Acquire.com, based on ML models trained on real launch data.
Correct prediction on native model
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