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Back to dbiir/uer-py

Projects sharing features with UER Py

30 open-source projects similar to dbiir/uer-py, ranked by shared indexed features. Tags may describe platforms or build tools rather than the same primary purpose. Check each project’s use case, license, and deployment requirements before treating it as a replacement.

  • codertimo/bert-pytorchcodertimo avatar

    codertimo/BERT-pytorch

    6,518View on GitHub↗
    Pythonbertlanguage-modelnlp
    View on GitHub↗6,518
  • morizeyao/gpt2-chineseMorizeyao avatar

    Morizeyao/GPT2-Chinese

    7,596View on GitHub↗

    GPT2-Chinese is a Chinese language model implementation based on the GPT-2 architecture. It provides a causal language model trainer and a natural language generation tool designed for training and generating human-like Chinese text sequences. The system integrates a BERT tokenizer to process Chinese corpora into manageable units for machine learning. It enables the development of predictive text models that can generate specific patterns, such as news or poetry, through prompt-based text completion. The project covers a full workflow including text tokenization, model training using a trans

    Python
    View on GitHub↗7,596
  • huggingface/transformershuggingface avatar

    huggingface/transformers

    161,630View on GitHub↗

    Transformers is a comprehensive library for machine learning that provides a unified interface for training, fine-tuning, and deploying transformer-based models. It supports a wide range of tasks, including text classification, language modeling, question answering, and sequence-to-sequence translation, while offering specialized architectures for both text and vision processing. The framework includes tools for managing the entire model lifecycle, from data preprocessing and tokenization to distributed training and inference. The library features extensive support for model optimization and

    Pythonaudiodeep-learningdeepseek
    View on GitHub↗161,630

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nielsrogge/transformers-tutorialsNielsRogge avatar

NielsRogge/Transformers-Tutorials

11,641View on GitHub↗

This is a collection of tutorials and practical demonstrations for implementing machine learning tasks using the HuggingFace Transformers library. It serves as a guide for applying transformer architectures across computer vision, natural language processing, and audio analysis. The repository provides implementation examples for multimodal model deployment, including the combination of text, image, and audio inputs. It includes resources for optimizing pre-trained models through fine-tuning on custom datasets and provides examples for preparing PyTorch datasets by converting raw files into t

Jupyter Notebookbertgpt-2layoutlm
View on GitHub↗11,641
  • huggingface/coursehuggingface avatar

    huggingface/course

    3,715View on GitHub↗

    This project is an educational course and learning curriculum for implementing and fine-tuning transformer models using the Hugging Face ecosystem. It serves as a structured guide and technical walkthrough for processing multimodal data, adapting pre-trained neural networks, and deploying models. The material includes a guide for managing, versioning, and distributing model weights and datasets through a centralized asset hub. It also provides a practical tutorial on adapting models to specific datasets using parameter-efficient methods and an implementation guide for solving natural language

    MDXdeep-learninghacktoberfestnlp
    View on GitHub↗3,715
  • openai/gpt-2openai avatar

    openai/gpt-2

    24,967View on GitHub↗

    This project is a transformer-based language model and autoregressive text generator designed to predict the next token in a sequence to produce human-like prose and synthetic text. It functions as a large language model that utilizes a transformer architecture to learn linguistic patterns from large datasets for unsupervised multitask learning. The repository provides a distribution of pre-trained weights, enabling natural language processing tasks without requiring additional training. This allows the model to perform zero-shot task generalization by applying learned patterns to new tasks.

    Python
    View on GitHub↗24,967
  • morvanzhou/tutorialsMorvanZhou avatar

    MorvanZhou/tutorials

    12,952View on GitHub↗

    This repository is a comprehensive collection of instructional guides and practical examples for Python development, focusing on machine learning, data science, and web scraping. It provides implementations for neural networks, reinforcement learning algorithms, and deep learning architectures using PyTorch, alongside detailed manuals for scientific computing and data visualization. The project distinguishes itself by offering specialized tutorials on concurrent programming to optimize CPU performance and guides for setting up Linux development environments. It covers the implementation of ad

    Pythonmachine-learningmultiprocessingneural-network
    View on GitHub↗12,952
  • cluebenchmark/electraCLUEbenchmark avatar

    CLUEbenchmark/ELECTRA

    141View on GitHub↗

    中文 预训练 ELECTRA 模型: 基于对抗学习 pretrain Chinese Model

    View on GitHub↗141
  • chineseglue/chineseglueChineseGLUE avatar

    ChineseGLUE/ChineseGLUE

    1,785View on GitHub↗

    Language Understanding Evaluation benchmark for Chinese: datasets, baselines, pre-trained models,corpus and leaderboard

    Pythonalbertbertchinese-corpus
    View on GitHub↗1,785
  • bojone/bert4kerasbojone avatar

    bojone/bert4keras

    5,419View on GitHub↗

    bert4keras is a lightweight reimplementation of the BERT transformer architecture for the Keras deep learning framework. It serves as a natural language processing toolkit and transformer model library used for text classification, sequence labeling, and semantic embedding extraction. The framework includes a sequence-to-sequence model system for question answering and text generation, as well as a model inference server to deploy trained transformers as web APIs for real-time predictions. Capabilities cover a broad range of natural language understanding tasks, including reading comprehensi

    Python
    View on GitHub↗5,419
  • deepset-ai/farmdeepset-ai avatar

    deepset-ai/FARM

    1,752View on GitHub↗

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

    Python
    View on GitHub↗1,752
  • dhlee347/pytorchic-bertdhlee347 avatar

    dhlee347/pytorchic-bert

    599View on GitHub↗

    Pytorch Implementation of Google BERT

    Python
    View on GitHub↗599
  • dongxiexidian/chineseD

    dongxiexidian/Chinese

    0View on GitHub↗
    View on GitHub↗0
  • dreamgonfly/bert-pytorchdreamgonfly avatar

    dreamgonfly/BERT-pytorch

    110View on GitHub↗

    PyTorch implementation of BERT in "BERT: Pre-training of Deep Bidirectional Transformers for Language Understanding" (https://arxiv.org/abs/1810.04805)

    Python
    View on GitHub↗110
  • cyberzhg/keras-bertCyberZHG avatar

    CyberZHG/keras-bert

    2,419View on GitHub↗

    \中文|English\

    Python
    View on GitHub↗2,419
  • crownpku/small-chinese-corpusC

    crownpku/Small-Chinese-Corpus

    0View on GitHub↗
    View on GitHub↗0
  • chinese-poetry/chinese-poetrychinese-poetry avatar

    chinese-poetry/chinese-poetry

    51,906View on GitHub↗

    This project is a comprehensive dataset and archive of classical Chinese poetry, prose, and Confucian classics. It serves as a digital humanities corpus, providing machine-readable access to hundreds of thousands of poems and detailed poet biographies, specifically spanning the Tang and Song dynasties. The collection is distinguished by its scholarly depth, incorporating textual variation annotations to track disputed characters across different source editions. It also includes tonal pattern mapping to describe the rhythmic and phonetic structures of the verse, alongside a popularity ranking

    JavaScriptchinesechinese-poetryci
    View on GitHub↗51,906
  • facebookresearch/lamafacebookresearch avatar

    facebookresearch/LAMA

    1,390View on GitHub↗

    LAnguage Model Analysis

    Python
    View on GitHub↗1,390
  • facebookresearch/mmbtfacebookresearch avatar

    facebookresearch/mmbt

    257View on GitHub↗

    MMBT is the accompanying code repository for the paper titled, "Supervised Multimodal Bitransformers for Classifying Images and Text" by Douwe Kiela, Suvrat Bhooshan, Hamed Firooz, Ethan Perez and Davide Testuggine.

    Python
    View on GitHub↗257
  • facebookresearch/xlmfacebookresearch avatar

    facebookresearch/XLM

    2,930View on GitHub↗

    PyTorch original implementation of Cross-lingual Language Model Pretraining.

    Python
    View on GitHub↗2,930
  • ggerganov/llama.cppggerganov avatar

    ggerganov/llama.cpp

    116,912View on GitHub↗

    llama.cpp is a high-performance C++ inference engine and runtime for executing large language models locally across various hardware architectures. It provides the core components for local model execution, including a dedicated model quantizer for compressing weights into the GGUF format and a system for generating text embeddings for semantic search. The project distinguishes itself through specialized memory and execution optimizations, such as block-wise weight quantization to reduce memory footprints and memory-mapped model loading. It supports structured text generation by using formal

    C++
    View on GitHub↗116,912
  • google-research/bertgoogle-research avatar

    google-research/bert

    39,869View on GitHub↗

    This project is a transformer-based language model and natural language processing toolkit designed to generate deep contextual representations of text. By utilizing a transformer-based encoder architecture, the system processes input sequences through stacked self-attention layers to capture the semantic meaning of tokens based on their surrounding sentence structure. The model distinguishes itself through bidirectional contextual processing, which analyzes text in both directions simultaneously, and masked language modeling, which trains the system by predicting hidden tokens within a seque

    Pythongooglenatural-language-processingnatural-language-understanding
    View on GitHub↗39,869
  • guotong1988/bert-tensorflowG

    guotong1988/BERT-tensorflow

    0View on GitHub↗
    View on GitHub↗0
  • hankcs/opencorpusH

    hankcs/OpenCorpus

    0View on GitHub↗
    View on GitHub↗0
  • hpcaitech/colossalaihpcaitech avatar

    hpcaitech/ColossalAI

    41,395View on GitHub↗

    ColossalAI is a distributed deep learning framework designed for training and deploying massive artificial intelligence models across clusters of hardware accelerators. It functions as a parallel computing engine that partitions model workloads and data across multiple processors to maximize memory efficiency and throughput. The platform distinguishes itself through a comprehensive suite of parallelization strategies, including multi-dimensional tensor parallelism and pipeline-based model parallelism, which segment neural network layers and stages across devices. To support large-scale genera

    Pythonaibig-modeldata-parallelism
    View on GitHub↗41,395
  • explosion/spacy-transformersexplosion avatar

    explosion/spacy-transformers

    1,406View on GitHub↗

    This package provides spaCy components and architectures to use transformer models via Hugging Face's transformers in spaCy. The result is convenient access to state-of-the-art transformer architectures, such as BERT, GPT-2, XLNet, etc.

    Python
    View on GitHub↗1,406
  • huggingface/pytorch-pretrained-berthuggingface avatar

    huggingface/pytorch-pretrained-BERT

    161,658View on GitHub↗

    This project is a PyTorch transformer model library and pre-trained model framework. It serves as a deep learning model hub and multimodal inference engine, providing a centralized system for loading, executing, and fine-tuning state-of-the-art model checkpoints. The library focuses on multimodal machine learning, enabling predictions across text, vision, and audio data. It provides specialized capabilities for model framework interoperability, allowing the conversion of weights and definitions between different deep learning libraries. The platform covers the full model lifecycle, including

    Python
    View on GitHub↗161,658
  • embedding/chinese-word-vectorsEmbedding avatar

    Embedding/Chinese-Word-Vectors

    12,227View on GitHub↗

    This project is a collection of pre-trained dense and sparse word vectors trained on diverse Chinese corpora. It serves as a library of linguistic representations and an NLP vector dataset designed to improve the accuracy of semantic and morphological analysis in text models. The collection provides corpus-specific representations and utilizes n-gram co-occurrence modeling to capture diverse linguistic patterns. It includes a hybrid of dense-sparse vectors to balance computational efficiency and semantic precision. The project covers semantic vector search and the development of Chinese natu

    Pythonchinesechinese-word-segmentationembedding
    View on GitHub↗12,227
  • huyingxi/synonymshuyingxi avatar

    huyingxi/Synonyms

    5,107View on GitHub↗

    Synonyms is a Chinese natural language processing tool focused on semantic analysis. It provides capabilities for Chinese word segmentation, part-of-speech tagging, and the retrieval of synonyms based on semantic proximity. The project converts words and sentences into numerical vector representations to calculate similarity scores. This allows for the determination of semantic proximity between different phrases and the identification of chatbot intent through sentence comparison. The system also includes tools for automated keyword extraction and importance ranking to identify significant

    Python
    View on GitHub↗5,107
  • eleutherai/gpt-neoxEleutherAI avatar

    EleutherAI/gpt-neox

    7,392View on GitHub↗

    gpt-neox is a distributed training system and framework for building large-scale autoregressive language models. It implements the transformer architecture and provides a toolkit for training models with billions of parameters by distributing weights across compute clusters. The framework distinguishes itself through extensive support for distributed model parallelism, including pipeline and sequence parallelism, to overcome single-device memory limits. It further supports sparse model architectures using a mixture of experts system with Sinkhorn-based routing. The project covers a broad ran

    Pythondeepspeed-librarygpt-3language-model
    View on GitHub↗7,392