pytea VS shapash

Compare pytea vs shapash and see what are their differences.

shapash

🔅 Shapash: User-friendly Explainability and Interpretability to Develop Reliable and Transparent Machine Learning Models (by MAIF)
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pytea shapash
3 8
310 2,645
0.3% 0.6%
1.8 8.6
about 2 years ago 9 days ago
TypeScript Jupyter Notebook
GNU General Public License v3.0 or later Apache License 2.0
The number of mentions indicates the total number of mentions that we've tracked plus the number of user suggested alternatives.
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.

pytea

Posts with mentions or reviews of pytea. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-10-28.

shapash

Posts with mentions or reviews of shapash. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2022-10-28.

What are some alternatives?

When comparing pytea and shapash you can also consider the following projects:

examples - A set of examples around pytorch in Vision, Text, Reinforcement Learning, etc.

shap - A game theoretic approach to explain the output of any machine learning model.

cleverhans - An adversarial example library for constructing attacks, building defenses, and benchmarking both

interpret - Fit interpretable models. Explain blackbox machine learning.

uncertainty-toolbox - Uncertainty Toolbox: a Python toolbox for predictive uncertainty quantification, calibration, metrics, and visualization

LIME - Tutorial notebooks on explainable Machine Learning with LIME (Original work: https://arxiv.org/abs/1602.04938)

WeightWatcher - The WeightWatcher tool for predicting the accuracy of Deep Neural Networks

GlassCode - This plugin allows you to make JetBrains IDEs to be fully transparent while keeping the code sharp and bright.

vivit - [TMLR 2022] Curvature access through the generalized Gauss-Newton's low-rank structure: Eigenvalues, eigenvectors, directional derivatives & Newton steps

trulens - Evaluation and Tracking for LLM Experiments

Transformer-MM-Explainability - [ICCV 2021- Oral] Official PyTorch implementation for Generic Attention-model Explainability for Interpreting Bi-Modal and Encoder-Decoder Transformers, a novel method to visualize any Transformer-based network. Including examples for DETR, VQA.

CARLA - CARLA: A Python Library to Benchmark Algorithmic Recourse and Counterfactual Explanation Algorithms