Transformer-MM-Explainability VS bertviz

Compare Transformer-MM-Explainability vs bertviz and see what are their differences.

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. (by hila-chefer)
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Transformer-MM-Explainability bertviz
3 15
709 6,398
- -
0.0 3.9
8 months ago 8 months ago
Jupyter Notebook Python
MIT License 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.
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Transformer-MM-Explainability

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

bertviz

Posts with mentions or reviews of bertviz. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2023-05-17.

What are some alternatives?

When comparing Transformer-MM-Explainability and bertviz you can also consider the following projects:

pytorch-grad-cam - Advanced AI Explainability for computer vision. Support for CNNs, Vision Transformers, Classification, Object detection, Segmentation, Image similarity and more.

ecco - Explain, analyze, and visualize NLP language models. Ecco creates interactive visualizations directly in Jupyter notebooks explaining the behavior of Transformer-based language models (like GPT2, BERT, RoBERTA, T5, and T0).

TorchDrift - Drift Detection for your PyTorch Models

FARM - :house_with_garden: Fast & easy transfer learning for NLP. Harvesting language models for the industry. Focus on Question Answering.

explainerdashboard - Quickly build Explainable AI dashboards that show the inner workings of so-called "blackbox" machine learning models.

BERT-pytorch - Google AI 2018 BERT pytorch implementation

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

transformers - 🤗 Transformers: State-of-the-art Machine Learning for Pytorch, TensorFlow, and JAX.

clip-italian - CLIP (Contrastive Language–Image Pre-training) for Italian

transformer-pytorch - Transformer: PyTorch Implementation of "Attention Is All You Need"

pytea - PyTea: PyTorch Tensor shape error analyzer

DeBERTa - The implementation of DeBERTa