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microprediction
GitHub-Creator-Profil

microprediction

Repository-Ansicht von 7 gesammelten Skills in 2 GitHub-Repositories.

gesammelte Skills
7
Repositories
2
aktualisiert
18. Aug. 2026
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Top-Repositories nach gesammelter Skill-Anzahl, mit ihrem Anteil an diesem Creator-Katalog und ihrer Berufsverteilung.

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Repositories und repräsentative Skills

precise
Datenwissenschaftler

Online (incremental) covariance, correlation, and precision estimation in Python — the streaming complement to sklearn.covariance. Use when code needs a covariance/correlation matrix updated per observation, recomputes np.cov/np.corrcoef in a rolling loop,…

24. Juni 2026
assess-covariance-method
Datenwissenschaftler

Rigorously and honestly assess a NEW or proposed covariance / correlation / precision estimator, or a new covariance scoring rule, using precise. Use when someone proposes, asks to evaluate, or wants to compare a covariance methodology. Covers implementing it…

5. Juni 2026
choose-covariance-estimator
Datenwissenschaftler

Pick which precise covariance estimator to use for a given dataset. Use when you have data X and are unsure which estimator fits its dimension, conditioning, or tail behavior. Wraps precise.suggest() and covariance_features().

5. Juni 2026
estimate-online-covariance
Softwareentwickler

Estimate a covariance / correlation / precision matrix incrementally with precise. Use when data arrives as a stream and you want the matrix updated per observation, or when you want an online (partial_fit) drop-in for sklearn.covariance, which is batch-only.

5. Juni 2026
keyed-dynamic-universe
Softwareentwickler

Maintain an online covariance over named series whose set changes over time (e.g. assets entering and leaving). Use when observations arrive as dicts keyed by name rather than fixed-length vectors. Wraps precise's keyed / FixedUniverse / DynamicUniverse…

5. Juni 2026
score-covariance-estimate
Softwareentwickler

Score and compare covariance estimates with precise's assessor panel. Use when you need to judge an estimate out-of-sample or rank competing estimators — and especially in high dimensions, where the plain held-out likelihood is misleading.

5. Juni 2026
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