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Back to christoschristofidis/awesome-deep-learning

Projects sharing features with Awesome Deep Learning

30 open-source projects similar to christoschristofidis/awesome-deep-learning, 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.

  • josephmisiti/awesome-machine-learningjosephmisiti avatar

    josephmisiti/awesome-machine-learning

    72,867View on GitHub↗

    This project is a comprehensive, community-driven directory of machine learning resources, software libraries, and educational materials. It serves as a centralized knowledge base for developers and researchers, organizing tools and frameworks by their primary programming language and technical domain to simplify discovery across the artificial intelligence ecosystem. The collection distinguishes itself by providing a cross-language development index that spans diverse programming environments, including C, C++, Rust, Clojure, and Python. It covers a wide range of specialized capabilities, fr

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    View on GitHub↗72,867
  • jbhuang0604/awesome-computer-visionjbhuang0604 avatar

    jbhuang0604/awesome-computer-vision

    23,074View on GitHub↗

    This project is a comprehensive, community-driven repository that serves as a centralized catalog for computer vision research and development. It functions as a structured index of academic papers, open-source software libraries, public datasets, and educational tutorials, providing a navigation point for the complex landscape of modern vision technology. The repository distinguishes itself through a taxonomy-based indexing system that maps the relationships between foundational research, influential academic figures, and their corresponding software implementations. By utilizing a lightweig

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  • ujjwalkarn/machine-learning-tutorialsujjwalkarn avatar

    ujjwalkarn/Machine-Learning-Tutorials

    17,909View on GitHub↗

    This repository serves as a structured educational resource for machine learning and data science, providing a centralized collection of tutorials, lecture notes, and implementation guides. It is designed to support self-directed learning by organizing complex technical concepts into a clear, hierarchical path that spans from foundational statistical methods to advanced deep learning architectures. The project distinguishes itself through a comprehensive approach to skill development, bridging the gap between theoretical algorithmic foundations and functional software applications. It offers

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    View on GitHub↗17,909

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  • owainlewis/awesome-artificial-intelligenceowainlewis avatar

    owainlewis/awesome-artificial-intelligence

    12,960View on GitHub↗

    This project is a comprehensive repository and curated index of resources, research papers, and development frameworks designed to support the construction and deployment of intelligent systems. It serves as a centralized knowledge base for developers seeking to navigate the technical landscape of artificial intelligence, ranging from foundational educational materials to specialized implementation guides. The repository distinguishes itself by providing structured directories for comparing generative artificial intelligence providers, including aggregated performance metrics, pricing data, a

    aiartificial-intelligencedeep-learning
    View on GitHub↗12,960
  • academic/awesome-datascienceacademic avatar

    academic/awesome-datascience

    29,416View on GitHub↗

    This project is a comprehensive, community-driven knowledge repository that serves as a centralized hub for data science resources. It provides a structured index of educational materials, software packages, and professional development tools designed to support both students and practitioners in navigating the data science landscape. The repository distinguishes itself through a hierarchical taxonomy that organizes a vast collection of external links into a human-readable, markdown-based document. By relying on distributed contributions, the project maintains an up-to-date snapshot of the fi

    analyticsawesome-listdata-mining
    View on GitHub↗29,416
  • kjw0612/awesome-deep-visionkjw0612 avatar

    kjw0612/awesome-deep-vision

    11,167View on GitHub↗

    A curated list of deep learning resources for computer vision

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  • aikorea/awesome-rlaikorea avatar

    aikorea/awesome-rl

    9,812View on GitHub↗

    Reinforcement learning resources curated

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  • jtoy/awesome-tensorflowjtoy avatar

    jtoy/awesome-tensorflow

    17,539View on GitHub↗

    TensorFlow - A curated list of dedicated resources http://tensorflow.org

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  • sindresorhus/awesomesindresorhus avatar

    sindresorhus/awesome

    476,211View on GitHub↗

    This project is a community-maintained directory that serves as a comprehensive index of software tools, frameworks, and educational materials. It functions as an open-source knowledge base, organizing diverse engineering domains and technical resources into a structured taxonomy to assist developers in discovering high-quality content. The directory distinguishes itself through a decentralized peer-review model, where independent contributors curate, verify, and update entries to ensure accuracy and relevance. All information is stored in a version-controlled, flat-file markdown format, whic

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    View on GitHub↗476,211
  • iterative/dvciterative avatar

    iterative/dvc

    15,680View on GitHub↗

    DVC is a data versioning tool and pipeline orchestrator designed to track large datasets and machine learning models. It functions as a system for managing large data artifacts by storing lightweight metadata in version control while keeping the actual binaries in a separate cache. The project serves as an experiment tracker and remote storage synchronizer, enabling the execution and comparison of machine learning iterations based on hyperparameters and performance metrics. It provides a bridge for pushing and pulling these large data artifacts between local environments and cloud or on-premi

    Python
    View on GitHub↗15,680
  • benedekrozemberczki/awesome-decision-tree-papersbenedekrozemberczki avatar

    benedekrozemberczki/awesome-decision-tree-papers

    2,473View on GitHub↗

    A collection of research papers on decision, classification and regression trees with implementations.

    Python
    View on GitHub↗2,473
  • edobashira/speech-language-processingedobashira avatar

    edobashira/speech-language-processing

    2,229View on GitHub↗

    A curated list of speech and natural language processing resources

    View on GitHub↗2,229
  • terryum/awesome-deep-learning-papersterryum avatar

    terryum/awesome-deep-learning-papers

    26,151View on GitHub↗

    The most cited deep learning papers

    TeXdeep-learningdeep-neural-networksmachine-learning
    View on GitHub↗26,151
  • benedekrozemberczki/awesome-community-detectionbenedekrozemberczki avatar

    benedekrozemberczki/awesome-community-detection

    2,447View on GitHub↗

    A curated list of community detection research papers with implementations.

    Pythonbigclamclusteringcommunity-detection
    View on GitHub↗2,447
  • tensorflow/tensorflowtensorflow avatar

    tensorflow/tensorflow

    195,697View on GitHub↗

    TensorFlow is a comprehensive machine learning framework designed for the construction, training, and deployment of complex mathematical models. It utilizes a graph-based execution model that represents operations as directed acyclic graphs, enabling automatic differentiation and efficient parallel processing. The system provides high-level interfaces for defining neural network architectures, alongside a robust engine for managing multidimensional array structures and tensor mathematics. The framework distinguishes itself through a scalable distributed runtime that orchestrates workloads acr

    C++deep-learningdeep-neural-networksdistributed
    View on GitHub↗195,697
  • lasagne/lasagneLasagne avatar

    Lasagne/Lasagne

    3,863View on GitHub↗

    Lasagne is a modular neural network framework and symbolic computation engine used for building and training deep learning architectures. Built as a library on top of Theano, it utilizes symbolic expression graphs and lazy evaluation to automate gradient calculations for parameter optimization. The framework emphasizes modularity by allowing the construction of complex neural networks through the composition of independent and reusable layers. It is designed as a hardware-accelerated machine learning library that offloads intensive linear algebra operations to graphics processors to increase

    Python
    View on GitHub↗3,863
  • tracel-ai/burntracel-ai avatar

    tracel-ai/burn

    15,474View on GitHub↗

    Burn is a deep learning framework designed for building, training, and deploying neural networks using a modular architecture. As a machine learning library built in Rust, it provides a backend-agnostic computational engine that enables the execution of models across diverse hardware, including central processors, graphics processors, and web runtimes. The framework distinguishes itself through a highly portable design that allows developers to maintain a single workflow for both training and inference across heterogeneous environments. It incorporates advanced optimization techniques such as

    Rustautodiffcross-platformcuda
    View on GitHub↗15,474
  • karpathy/convnetjskarpathy avatar

    karpathy/convnetjs

    11,171View on GitHub↗

    ConvNetJS is a JavaScript deep learning library and neural network training engine designed for client-side machine learning. It functions as a framework for building, training, and running convolutional neural networks directly within a web browser without the need for a backend server. The library specializes in image recognition and pattern analysis using convolutional and pooling layers. It enables the creation of models for classification and regression tasks, as well as the development of reinforcement learning agents that optimize behavior through trial and error in simulated environme

    JavaScript
    View on GitHub↗11,171
  • benedekrozemberczki/awesome-monte-carlo-tree-search-papersbenedekrozemberczki avatar

    benedekrozemberczki/awesome-monte-carlo-tree-search-papers

    707View on GitHub↗

    A curated list of Monte Carlo tree search papers with implementations.

    Python
    View on GitHub↗707
  • benedekrozemberczki/awesome-fraud-detection-papersbenedekrozemberczki avatar

    benedekrozemberczki/awesome-fraud-detection-papers

    1,807View on GitHub↗

    A curated list of data mining papers about fraud detection.

    Python
    View on GitHub↗1,807
  • awesomedata/awesome-public-datasetsawesomedata avatar

    awesomedata/awesome-public-datasets

    75,979View on GitHub↗

    This project is a community-maintained, open-access directory of high-quality public datasets. It serves as a centralized reference point for researchers, developers, and data scientists to locate reliable information sources across a wide spectrum of industries and scientific fields. By providing a structured index, the repository facilitates the discovery of data necessary for exploratory analysis, machine learning model training, and the development of data-intensive applications. The directory distinguishes itself through a lightweight, platform-agnostic approach to resource indexing that

    aaron-swartzawesome-public-datasetsdatasets
    View on GitHub↗75,979
  • georgezouq/awesome-ai-in-financegeorgezouq avatar

    georgezouq/awesome-ai-in-finance

    6,103View on GitHub↗

    🔬 A curated list of awesome LLMs & deep learning strategies & tools in financial market.

    analysisawesomeawesome-list
    View on GitHub↗6,103
  • seriousran/awesome-qaseriousran avatar

    seriousran/awesome-qa

    769View on GitHub↗

    😎 A curated list of the Question Answering (QA)

    awesomeawesome-listbert
    View on GitHub↗769
  • arbox/machine-learning-with-rubyarbox avatar

    arbox/machine-learning-with-ruby

    2,215View on GitHub↗

    Curated list: Resources for machine learning in Ruby

    Rubyawesomeawesome-listlist
    View on GitHub↗2,215
  • benedekrozemberczki/awesome-gradient-boosting-papersbenedekrozemberczki avatar

    benedekrozemberczki/awesome-gradient-boosting-papers

    1,051View on GitHub↗

    A curated list of gradient boosting research papers with implementations.

    Pythonadaboostboostingcatboost
    View on GitHub↗1,051
  • benedekrozemberczki/awesome-graph-classificationbenedekrozemberczki avatar

    benedekrozemberczki/awesome-graph-classification

    4,805View on GitHub↗

    A collection of important graph embedding, classification and representation learning papers with implementations.

    Pythonattention-mechanismclassification-algorithmdeep-graph-kernels
    View on GitHub↗4,805
  • bharathgs/awesome-pytorch-listbharathgs avatar

    bharathgs/Awesome-pytorch-list

    16,547View on GitHub↗

    Awesome-Pytorch-list

    View on GitHub↗16,547
  • kiloreux/awesome-roboticskiloreux avatar

    kiloreux/awesome-robotics

    6,152View on GitHub↗
    robotics
    View on GitHub↗6,152
  • hannibal046/awesome-llmHannibal046 avatar

    Hannibal046/Awesome-LLM

    26,933View on GitHub↗

    This project serves as a comprehensive, static directory of external resources dedicated to the study and application of large language models. It functions as a centralized discovery point for developers and researchers, aggregating foundational academic papers, technical documentation, and specialized tools within a structured, version-controlled knowledge base. The repository distinguishes itself through a multi-level classification system that organizes diverse technical domains, ranging from model training frameworks and inference optimization to AI safety and hallucination detection. By

    View on GitHub↗26,933
  • scikit-learn/scikit-learnscikit-learn avatar

    scikit-learn/scikit-learn

    66,344View on GitHub↗

    Scikit-learn is a machine learning library for predictive data analysis that provides a collection of algorithms for supervised and unsupervised learning. It functions as a comprehensive toolkit for data preprocessing, dimensionality reduction, and model selection, allowing users to classify data objects, predict continuous values, and cluster similar items based on historical patterns. The project is defined by a unified interface design where objects either learn from data, transform data, or chain these operations into sequential workflows. To ensure performance on large or high-dimensiona

    Pythondata-analysisdata-sciencemachine-learning
    View on GitHub↗66,344