mljar-supervised
OpenBBTerminal
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mljar-supervised | OpenBBTerminal | |
---|---|---|
51 | 211 | |
2,929 | 26,055 | |
1.2% | 1.4% | |
8.5 | 9.8 | |
15 days ago | 5 days ago | |
Python | Python | |
MIT License | MIT License |
Stars - the number of stars that a project has on GitHub. Growth - month over month growth in stars.
Activity is a relative number indicating how actively a project is being developed. Recent commits have higher weight than older ones.
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.
mljar-supervised
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Show HN: Web App with GUI for AutoML on Tabular Data
Web App is using two open-source packages that I've created:
- MLJAR AutoML - Python package for AutoML on tabular data https://github.com/mljar/mljar-supervised
- Mercury - framework for converting Jupyter Notebooks into Web App https://github.com/mljar/mercury
You can run Web App locally. What is more, you can adjust notebook's code for your needs. For example, you can set different validation strategies or evalutaion metrics or longer training times. The notebooks in the repo are good starting point for you to develop more advanced apps.
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Fairness in machine learning
It's an Automated Machine Learning python package. It's open-source, you can see how it works on GitHub: https://github.com/mljar/mljar-supervised
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[P] Build data web apps in Jupyter Notebook with Python only
Sure, at the bottom of our website you can subscribe for newsletter.
- Show HN: AutoML Python Package for Tabular Data with Automatic Documentation
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library / framework to test multiple sklearn regression models at once
If you need a simple and fast solution, go with auto-sklearn Maybe a bit more complex, but very powerful was mljar-supervised
- Python AutoML on Tabular Data with FeatureEng, HP Tuning, Explanations, AutoDoc
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Data Science and full-stack-web development
In my case, I had experience in DS and software engineering. It gives me ability to start a company that works on Data Science tools.
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Learning Python tricks by reading other people's code. But who?
MLJAR AutoML is a Python package for Automated Machine Learning on tabular data with feature engineering, explanations, and automatic documentation.
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'start with a simple model'
I recommend trying my AutoML package. You can easily check many different algorithms. Waht is more, the baseline algorithms are checked (major class predictor for classification and mean predictor for regression). The advance of AutoML is that it is really quick. You dont need to write preprocessing code, just call fit method.
OpenBBTerminal
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Open-Sourcing High-Frequency Trading and Market-Making Backtesting Tool
You might want to suggest this as an extension to the OpenBB project - I imagine that could be of interest to them if there isn’t something like it built in already :-)
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Want to get started using the OpenBB SDK? Explore an example notebooks!
Load Historical Prices
- I can't do anything thing with text appearing like this. I can't even understand what am I typing
- Download error
- Ya ok, shove that butterfly up your fat ass. Don't at me, just stop your bullshit.
- CNBC no longer showing CDS data for certain institutions (03/26/2023) - JPMCD5, BACCD5, WFCCD5
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Trouble installing OpenBB, beed help?
git clone https://github.com/OpenBB-finance/OpenBBTerminal.git
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What is the funnest project you worked on?
I think I am a little bit of an odd one out but since I have a strong background in Finance and a passion for programming in Python being able to combine that in projects like [OpenBB Terminal](https://github.com/OpenBB-finance/OpenBBTerminal) and my own [FinanceDatabase](https://github.com/JerBouma/FinanceDatabase) is just amazing.
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I made a Finance Database with over 300.000 tickers to make Investment Decisions easier
That's where you have APIs FundamentalAnalysis, yfinance and OpenBB for that connect very well with my database.
- Free Open Source Bloomberg terminal based in Python
What are some alternatives?
optuna - A hyperparameter optimization framework
Alpaca-API - The Alpaca API is a developer interface for trading operations and market data reception through the Alpaca platform.
autokeras - AutoML library for deep learning
fear-greed-index - Python CNN Fear and Greed Index wrapper
LightGBM - A fast, distributed, high performance gradient boosting (GBT, GBDT, GBRT, GBM or MART) framework based on decision tree algorithms, used for ranking, classification and many other machine learning tasks.
PySR - High-Performance Symbolic Regression in Python and Julia
jupyterlab_templates - Support for jupyter notebook templates in jupyterlab
AutoViz - Automatically Visualize any dataset, any size with a single line of code. Created by Ram Seshadri. Collaborators Welcome. Permission Granted upon Request.
gme-terminal - GME and other stocks investor holdings
mljar-examples - Examples how MLJAR can be used
IMPORTJSONAPI - Use JSONPath to selectively extract data from any JSON or GraphQL API directly into Google Sheets.