TelegramChatStats
statsmodels
TelegramChatStats | statsmodels | |
---|---|---|
1 | 8 | |
48 | 9,567 | |
- | 1.1% | |
0.0 | 9.4 | |
over 1 year ago | 4 days ago | |
Python | Python | |
MIT License | BSD 3-clause "New" or "Revised" License |
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For example, an activity of 9.0 indicates that a project is amongst the top 10% of the most actively developed projects that we are tracking.
TelegramChatStats
statsmodels
- statsmodels Release Candidate 0.14.0rc0 tagged
- How to generate Errors using Scipy Minimize with Powell Method
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[P] statsmodels.tsa.holtwinters.ExponentialSmoothing results in NaN forecasts and parameters when fitting on entire dataset using known parameters from training model.
I reckon you're more likely to get a good response on their Github page than here. Unless a dev happens to see this post.
- Statsmodels 0.13.3 released with Python 3.11 support
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First Year UG here, can someone offer any coding advice?
The method they use for computing the parameter covariance (in the code here, around line 330) involves some linear algebra, as they use the Moore-Penrose pseudo-inverse of the outputs.
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How do you usually build your models?
Since you are using python, pandas, scikit-learn, scipy, and statsmodels are what you are looking for
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Advice required to choose appropriate software for an assignment
Can't you get a student discount for Stata? R would definitely be able to handle everything. For Python, have a look through the statsmodel package https://github.com/statsmodels/statsmodels
- [C] I have an MS in Statistics - how can I get better at coding?
What are some alternatives?
threeXYZgraphing - 3d xyz graphing using threejs
SciPy - SciPy library main repository
scikit-learn - scikit-learn: machine learning in Python
Numba - NumPy aware dynamic Python compiler using LLVM
ydata-profiling - 1 Line of code data quality profiling & exploratory data analysis for Pandas and Spark DataFrames.
PyMC - Bayesian Modeling and Probabilistic Programming in Python
ipyvizzu - Build animated charts in Jupyter Notebook and similar environments with a simple Python syntax.
Dask - Parallel computing with task scheduling
pandas-profiling - Create HTML profiling reports from pandas DataFrame objects [Moved to: https://github.com/ydataai/pandas-profiling]
Pandas - Flexible and powerful data analysis / manipulation library for Python, providing labeled data structures similar to R data.frame objects, statistical functions, and much more
orange - 🍊 :bar_chart: :bulb: Orange: Interactive data analysis
SymPy - A computer algebra system written in pure Python