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Projects sharing features with Siddhi

30 open-source projects similar to siddhi-io/siddhi, 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.

  • arroyosystems/arroyoArroyoSystems avatar

    ArroyoSystems/arroyo

    4,819View on GitHub↗

    Arroyo is a high-performance stream processing platform built in Rust. It executes continuous SQL queries on streaming data with event-time semantics, enabling accurate windowed aggregations, joins, and stateful computations on unbounded event streams. The platform uses native Rust execution for high throughput and low latency, with periodic checkpointing for exactly-once fault tolerance and horizontal scaling across distributed workers. The system integrates deeply with Kafka for reading and writing topics with exactly-once delivery and supports change data capture (CDC) from MySQL and Postg

    Rustdatadata-stream-processingdev-tools
    View on GitHub↗4,819
  • pkmital/tensorflow_tutorialspkmital avatar

    pkmital/tensorflow_tutorials

    5,668View on GitHub↗

    This project is a collection of educational Jupyter Notebooks providing tutorials on neural network construction and tensor operations using the TensorFlow framework. It serves as a machine learning educational repository and implementation guide for deep learning students. The suite focuses on specific advanced architectures, including convolutional networks for image classification, residual networks with skip connections for training stability, and variational autoencoders for generative modeling and data synthesis. It also includes guides for building denoising and deep autoencoders to pe

    Jupyter Notebook
    View on GitHub↗5,668
  • apache/flinkapache avatar

    apache/flink

    26,086View on GitHub↗

    Apache Flink is a distributed processing engine designed for both high-throughput, low-latency data streams and finite batch workloads. It functions as a stateful stream processor and a SQL stream processing engine, providing a unified runtime to execute relational queries and event-based transformations. The system is distinguished by its ability to manage persistent operator state to ensure exactly-once processing guarantees and consistency during failures. It features specialized capabilities for complex event processing to detect temporal patterns and handles out-of-order events using eve

    Java
    View on GitHub↗26,086

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  • donnemartin/data-science-ipython-notebooksdonnemartin avatar

    donnemartin/data-science-ipython-notebooks

    29,166View on GitHub↗

    This project is a collection of interactive Python notebooks and educational resources designed for mastering data science, machine learning, and numerical computing. It provides a series of practical guides and tutorials covering deep learning, big data processing, and statistical analysis. The repository features specialized instructional suites for implementing classical machine learning algorithms, building deep learning model architectures, and managing AWS cloud infrastructure. It includes dedicated notebooks for data visualization and numerical computing exercises. The project covers

    Pythonawsbig-datacaffe
    View on GitHub↗29,166
  • albertsuarez/searchlyAlbertSuarez avatar

    AlbertSuarez/searchly

    27View on GitHub↗

    🎶 Song similarity search API based on lyrics

    Python
    View on GitHub↗27
  • alexrudall/ruby-openaialexrudall avatar

    alexrudall/ruby-openai

    3,224View on GitHub↗

    OpenAI API Ruby! 🤖❤️ GPT-5 & Realtime WebRTC compatible!

    Ruby
    View on GitHub↗3,224
  • aimhubio/aimaimhubio avatar

    aimhubio/aim

    6,159View on GitHub↗

    Aim is an open-source platform for logging, visualizing, and comparing machine learning training runs and LLM traces. It provides a remote tracking server and a comparison UI, functioning as an ML experiment tracker, AI workflow logger, and LLM trace recorder that captures prompts, generations, and tool calls from AI applications. The platform distinguishes itself through a run-based data model with local SQLite storage, real-time metric streaming, and a plugin-based explorer system that supports specialized visual analysis of metrics, images, audio, and text. It offers a Python SDK with cont

    Python
    View on GitHub↗6,159
  • all-umass/metric-learnall-umass avatar

    all-umass/metric-learn

    1,436View on GitHub↗

    Metric learning algorithms in Python

    Python
    View on GitHub↗1,436
  • aksnzhy/xlearnaksnzhy avatar

    aksnzhy/xlearn

    3,095View on GitHub↗

    High performance, easy-to-use, and scalable machine learning (ML) package, including linear model (LR), factorization machines (FM), and field-aware factorization machines (FFM) for Python and CLI interface.

    C++
    View on GitHub↗3,095
  • allenai/allenactallenai avatar

    allenai/allenact

    382View on GitHub↗

    An open source framework for research in Embodied-AI from AI2.

    Python
    View on GitHub↗382
  • amplab/velox-modelserveramplab avatar

    amplab/velox-modelserver

    110View on GitHub↗

    velox-modelserver

    Scala
    View on GitHub↗110
  • andresnowak/micro-mojogradA

    andresnowak/Micro-Mojograd

    0View on GitHub↗
    View on GitHub↗0
  • ankane/tensorflowankane avatar

    ankane/tensorflow

    383View on GitHub↗

    Deep learning for Ruby

    Ruby
    View on GitHub↗383
  • ankane/torch.rbankane avatar

    ankane/torch.rb

    835View on GitHub↗

    Deep learning for Ruby, powered by LibTorch

    Ruby
    View on GitHub↗835
  • apache/sparkapache avatar

    apache/spark

    43,467View on GitHub↗

    Apache Spark is a unified distributed data processing engine designed for large-scale data analysis and computation graphs. It functions as a distributed machine learning framework, a graph processing system, a real-time stream processor, and a SQL analytics engine. The system enables the execution of distributed SQL querying, large-scale graph analysis, and real-time stream analytics across clusters of machines. It also provides a scalable environment for implementing machine learning algorithms and predictive model development on massive datasets. The engine incorporates relational query e

    Scalabig-datajavajdbc
    View on GitHub↗43,467
  • alichherawalla/off-grid-mobilealichherawalla avatar

    alichherawalla/off-grid-mobile

    2,484View on GitHub↗

    The Swiss Army Knife of Offline AI. Chat, Speak, and Generate Images - Privacy First, Zero Internet. Download an LLM and use it on your mobile device. No data ever leaves your phone. Supports text-to-text, vision, text-to-image

    TypeScript
    View on GitHub↗2,484
  • antoniogarrote/clj-mlantoniogarrote avatar

    antoniogarrote/clj-ml

    146View on GitHub↗

    A machine learning library for Clojure built on top of Weka and friends

    Clojure
    View on GitHub↗146
  • 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
  • aria42/flarearia42 avatar

    aria42/flare

    287View on GitHub↗

    Dynamic Tensor Graph library in Clojure (think PyTorch, DynNet, etc.)

    Clojure
    View on GitHub↗287
  • aria42/inferaria42 avatar

    aria42/infer

    176View on GitHub↗

    inference and machine learning in clojure

    Clojure
    View on GitHub↗176
  • ariaghora/noeariaghora avatar

    ariaghora/noe

    87View on GitHub↗

    Noe is a framework for an easier scientific computation in object pascal, especially to build neural networks, and hence the name — noe (Korean:뇌) means brain (🧠). It supports the creation of arbitrary rank tensor and its arithmetical operations. Some of the key features: - Automatic gradient…

    Pascal
    View on GitHub↗87
  • arise-initiative/robosuiteARISE-Initiative avatar

    ARISE-Initiative/robosuite

    2,464View on GitHub↗

    robosuite: A Modular Simulation Framework and Benchmark for Robot Learning

    Pythonphysics-simulationreinforcement-learningrobot-learning
    View on GitHub↗2,464
  • armankhondker/awesome-ai-ml-resourcesarmankhondker avatar

    armankhondker/awesome-ai-ml-resources

    4,166View on GitHub↗
    artifical-intelligensemachine-learningroadmap
    View on GitHub↗4,166
  • alibaba/pipcookalibaba avatar

    alibaba/pipcook

    2,593View on GitHub↗

    Machine learning platform for Web developers

    TypeScript
    View on GitHub↗2,593
  • asafschers/goscoreasafschers avatar

    asafschers/goscore

    101View on GitHub↗

    Go Scoring API for PMML

    Go
    View on GitHub↗101
  • attractivechaos/kannattractivechaos avatar

    attractivechaos/kann

    755View on GitHub↗

    A lightweight C library for artificial neural networks

    C
    View on GitHub↗755
  • automata/mojogradA

    automata/mojograd

    0View on GitHub↗
    View on GitHub↗0
  • avik-jain/100-days-of-ml-codeAvik-Jain avatar

    Avik-Jain/100-Days-Of-ML-Code

    51,254View on GitHub↗

    This project is a structured educational curriculum designed to guide developers through the fundamentals of machine learning. It functions as a technical skill builder, offering a curated roadmap of progressive coding challenges that cover core algorithms, statistical concepts, and essential data science libraries. The repository distinguishes itself through an iterative sequencing of content, organizing complex technical topics into a daily progression that facilitates incremental mastery. It integrates third-party academic lectures and educational resources to provide necessary theoretical

    100-days-of-code-log100daysofcodedeep-learning
    View on GitHub↗51,254
  • awslabs/machine-learning-samplesawslabs avatar

    awslabs/machine-learning-samples

    881View on GitHub↗

    Sample applications built using AWS' Amazon Machine Learning.

    Python
    View on GitHub↗881
  • aishwaryanr/awesome-generative-ai-guideaishwaryanr avatar

    aishwaryanr/awesome-generative-ai-guide

    24,755View on GitHub↗

    This project is a community-driven knowledge repository and technical learning resource focused on the field of generative artificial intelligence. It serves as a centralized hub for developers and practitioners to access curated research, tutorials, and foundational concepts necessary for building and deploying modern artificial intelligence applications. The platform distinguishes itself through a collaborative, distributed contribution model that aggregates diverse learning materials into a structured, searchable knowledge base. It covers a wide range of specialized topics, including retri

    HTMLawesomeawesome-listgenerative-ai
    View on GitHub↗24,755