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Projects sharing features with Gonum

30 open-source projects similar to gonum/gonum, 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.

  • joelgrus/data-science-from-scratchjoelgrus avatar

    joelgrus/data-science-from-scratch

    9,636View on GitHub↗

    This project is a collection of foundational machine learning algorithms and data science tools implemented in Python. It focuses on building the logic of these tools using basic programming primitives rather than relying on specialized libraries. The implementation covers several core domains, including a linear algebra library for matrix and vector operations, a statistical analysis toolkit for probability and hypothesis testing, and a framework for map-reduce distributed processing. It also includes implementations for natural language processing, graph theory for network analysis, and var

    Python
    View on GitHub↗9,636
  • aalhour/c-sharp-algorithmsaalhour avatar

    aalhour/c-sharp-algorithms

    6,159View on GitHub↗

    This project is a C# algorithms library and collection of data structures. It serves as a computer science reference providing practical implementations of classic sorting, searching, and graph traversal patterns. The library includes a dedicated string processing toolkit for analyzing text similarity, computing edit distances, and managing prefix-based searches. It also features a graph theory implementation for modeling network relationships and calculating shortest paths. The codebase covers a broad range of capabilities, including the management of linear and hierarchical collections, tr

    C#
    View on GitHub↗6,159
  • xianyi/openblasxianyi avatar

    xianyi/OpenBLAS

    7,475View on GitHub↗

    OpenBLAS is a high-performance library for basic linear algebra subprograms that provides optimized matrix and vector operations. It serves as a multi-architecture math backend and numerical computing framework designed to execute complex mathematical calculations and high-speed numerical analysis. The library functions as an optimized CPU math library that detects hardware at runtime to apply the most efficient operation kernels for the specific processor. It supports multiple CPU targets through a combination of optimized assembly and C implementations. The project covers high-performance

    C
    View on GitHub↗7,475

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  • thealgorithms/c-sharpTheAlgorithms avatar

    TheAlgorithms/C-Sharp

    8,049View on GitHub↗

    This project is a collection of reference implementations for algorithms, mathematics, cryptography, compression, and machine learning written in C#. It serves as an educational library providing standard implementations of sorting, searching, and graph theory algorithms. The repository covers a wide range of computational domains, including combinatorial optimization for constraint satisfaction and scheduling, as well as symmetric and classical cryptographic ciphers. It also provides reference code for lossless data compression techniques and fundamental machine learning primitives such as r

    C#algorithmalgorithmsalgorithms-and-data-structures
    View on GitHub↗8,049
  • rocketlaunchr/dataframe-gorocketlaunchr avatar

    rocketlaunchr/dataframe-go

    1,287View on GitHub↗

    DataFrames for Go: For statistics, machine-learning, and data manipulation/exploration

    Godata-sciencedataframedataframes
    View on GitHub↗1,287
  • reference-lapack/lapackReference-LAPACK avatar

    Reference-LAPACK/lapack

    1,808View on GitHub↗

    LAPACK is a comprehensive library of Fortran routines designed for high-performance numerical analysis and linear algebra. It serves as a foundational scientific computing framework, providing standardized procedures for solving systems of linear equations, eigenvalue problems, and least squares approximations. The library distinguishes itself through a hierarchical routine abstraction that organizes mathematical operations into distinct levels of complexity. It utilizes block-partitioned matrix algorithms and a column-major memory layout to optimize data locality and hardware efficiency. By

    Fortranblaseigenvalueseigenvectors
    View on GitHub↗1,808
  • rust-ndarray/ndarrayrust-ndarray avatar

    rust-ndarray/ndarray

    4,290View on GitHub↗

    ndarray is a multidimensional array library for Rust that serves as a linear algebra framework and scientific computing tool. It provides the core infrastructure for creating and manipulating n-dimensional arrays, functioning as both a parallel array processor and a toolkit for numerical data analysis. The library distinguishes itself by providing efficient slicing and memory views, allowing for data sharing without copying. It leverages optimized backend math libraries for high-speed matrix multiplication and distributes heavy mathematical iterations across multiple CPU threads to accelerate

    Rust
    View on GitHub↗4,290
  • josdejong/mathjsjosdejong avatar

    josdejong/mathjs

    15,036View on GitHub↗

    Math.js is a comprehensive JavaScript library for scientific, complex, and arbitrary precision calculations. It functions as a symbolic computation engine, a linear algebra toolkit, a statistical analysis library, and a unit conversion system. The project distinguishes itself by providing a symbolic engine capable of parsing, simplifying, and manipulating mathematical expressions algebraically without requiring immediate numerical evaluation. It includes a framework for defining and converting physical quantities with units of measure and automatic prefix support. The library covers a broad

    JavaScript
    View on GitHub↗15,036
  • kevin-wayne/algs4kevin-wayne avatar

    kevin-wayne/algs4

    7,519View on GitHub↗

    algs4 is a Java data structures library and algorithm reference collection designed as the source code for a standard computer science textbook curriculum. It provides a comprehensive suite of fundamental implementations for sorting, searching, and core data organization. The project serves as a graph theory framework, offering tools for representing directed and undirected graphs and performing complex traversals and pathfinding. It also includes a broad sorting algorithm suite and a specialized library of Java data structures, including stacks, queues, priority queues, and symbol tables. I

    Java
    View on GitHub↗7,519
  • xtaci/algorithmsxtaci avatar

    xtaci/algorithms

    5,454View on GitHub↗

    This is a collection of classical algorithms and data structures implemented as a header-only C++ library. It provides a suite of tools for general algorithm implementation, including data structure management, graph theory analysis, and string processing. The library is distinguished by its specialized toolkits for cryptographic hashing and encoding, featuring implementations of MD5, SHA-1, and Base64. It also includes advanced capabilities for high-performance string processing via suffix trees and arrays, as well as computational number theory for primality testing and arbitrary-precision

    C++
    View on GitHub↗5,454
  • memgraph/memgraphmemgraph avatar

    memgraph/memgraph

    4,163View on GitHub↗

    Memgraph is an in-memory, distributed graph database designed for high-performance labeled property graph management. It utilizes a Cypher query engine for declarative data retrieval and manipulation, providing a scalable knowledge graph backend that integrates vector search and graph traversals. The system distinguishes itself as a real-time graph analytics platform, employing native C++ and CUDA implementations to execute complex network analysis and dynamic community detection on streaming data. It provides specialized support for AI integration, including GraphRAG capabilities, the constr

    C++cyphergraphgraph-algorithms
    View on GitHub↗4,163
  • numpy/numpynumpy avatar

    numpy/numpy

    32,207View on GitHub↗

    NumPy is a foundational library for scientific computing in Python, providing a comprehensive framework for managing and manipulating large-scale numerical information. It centers on high-performance multidimensional array objects that serve as the primary data structure for complex mathematical operations and data analysis workflows. The library distinguishes itself through specialized mechanisms for handling multidimensional data, including advanced indexing, slicing, and broadcasting techniques that allow for efficient operations across arrays of varying shapes. It utilizes strided metadat

    Pythonnumpypython
    View on GitHub↗32,207
  • kodecocodes/swift-algorithm-clubkodecocodes avatar

    kodecocodes/swift-algorithm-club

    29,099View on GitHub↗

    This project is a comprehensive collection of common computer science algorithms and data structures implemented in Swift. It serves as an educational reference and library for studying computational complexity, algorithmic logic, and data structure engineering through practical code examples. The repository provides a wide suite of data structure implementations, including various types of linked lists, heaps, hash tables, and an extensive range of hierarchical trees such as Red-Black, B-Tree, and Splay trees. It also covers diverse sorting and searching techniques, from basic bubble sort to

    Swiftalgorithmsdata-structuresswift
    View on GitHub↗29,099
  • accord-net/frameworkaccord-net avatar

    accord-net/framework

    4,540View on GitHub↗

    This project is a scientific computing framework for the .NET ecosystem, providing a comprehensive suite of libraries for numerical analysis, statistics, and mathematical optimization. It serves as a foundational toolkit for developing applications in machine learning, digital signal processing, and computer vision. The framework provides specialized toolkits for training and deploying predictive models, including neural networks, support vector machines, and decision trees. It further distinguishes itself with deep integrations for real-time visual analysis, such as object tracking and facia

    C#
    View on GitHub↗4,540
  • jounce/surgeJounce avatar

    Jounce/Surge

    5,321View on GitHub↗

    Surge is a Swift library for high-performance numerical analysis, linear algebra, digital signal processing, and accelerated image manipulation. It utilizes the Accelerate framework to provide hardware-accelerated tools for matrix mathematics and signal processing. The library provides specialized capabilities for digital signal processing, including convolution, signal similarity analysis through cross-correlation, and domain transformations using fast Fourier transforms. It also includes a suite of tools for the rapid transformation and analysis of pixel buffers and image data. Beyond sign

    Swiftacceleratearithmeticconvolution
    View on GitHub↗5,321
  • prodesire/python-guide-cnProdesire avatar

    Prodesire/Python-Guide-CN

    4,432View on GitHub↗

    Python-Guide-CN is a Chinese translation of a comprehensive guide to idiomatic Python programming and software development. It serves as a curated programming tutorial and ecosystem reference, providing a structured path for learning Python syntax, standard libraries, and professional coding patterns. The project distinguishes itself by offering detailed instructions for setting up development environments across Windows, macOS, and Linux. It specifically focuses on the selection of interpreters and the management of virtual environments to ensure a consistent workspace. The guide covers a b

    Batchfile
    View on GitHub↗4,432
  • mathnet/mathnet-numericsmathnet avatar

    mathnet/mathnet-numerics

    3,717View on GitHub↗

    This project is a numerical computing library designed for scientific and engineering mathematical operations. It functions as a comprehensive linear algebra framework, a statistical analysis library, and a toolkit for mathematical optimization and numerical integration. The library is distinguished by its provider-based native acceleration, which allows managed code to be swapped for platform-native binary libraries to increase the performance of computationally intensive routines. It also supports a hybrid approach to matrix storage, implementing separate strategies for dense and sparse mat

    C#csharpdifferentiationfft
    View on GitHub↗3,717
  • numbers/numbers.jsnumbers avatar

    numbers/numbers.js

    1,757View on GitHub↗

    numbers.js is a comprehensive mathematics library for JavaScript that provides a collection of advanced functions for scientific computing and data analysis. It is designed to handle complex mathematical operations through a modular architecture, offering tools for calculus, statistics, linear algebra, and prime number analysis. The library distinguishes itself by providing explicit control over numerical precision, allowing users to define error thresholds and manage decimal accuracy to mitigate rounding discrepancies. This focus on precision is paired with a suite of computational tools tha

    JavaScript
    View on GitHub↗1,757
  • cp-algorithms/cp-algorithmscp-algorithms avatar

    cp-algorithms/cp-algorithms

    10,805View on GitHub↗

    This project is a comprehensive reference for algorithms and data structures used to solve complex computational problems in competitive programming. It serves as a technical resource for implementing advanced mathematical programming, computational geometry, and graph theory. The repository provides detailed implementation guides for diversifying algorithmic techniques, including top-down and bottom-up dynamic programming optimization, number theory, and linear algebra. It features specific guides for complex tasks such as constructing planar graphs, solving linear Diophantine equations, and

    C++algorithm-competitionsalgorithmsalgorithms-and-data-structures
    View on GitHub↗10,805
  • devamoghs/machine-learning-with-pythondevAmoghS avatar

    devAmoghS/Machine-Learning-with-Python

    1,333View on GitHub↗

    This repository serves as an educational collection of practical examples and tutorials designed to facilitate the study of machine learning and data science concepts using Python. It provides a structured environment for learning core algorithms and data analysis techniques through hands-on implementation and iterative exploration. The project covers a broad range of analytical capabilities, including predictive modeling for regression, classification, and clustering tasks, as well as network topology analysis for identifying influence patterns in interconnected data. It also incorporates na

    Pythonbeginner-friendlydata-sciencedeep-learning
    View on GitHub↗1,333
  • fastai/numerical-linear-algebrafastai avatar

    fastai/numerical-linear-algebra

    10,703View on GitHub↗

    This project is a comprehensive library for numerical linear algebra and scientific computing, designed to provide optimized routines for matrix decomposition, statistical modeling, and high-performance data analysis. It serves as both a toolkit for solving complex linear systems and an educational resource for understanding the fundamental algorithms behind matrix factorizations and numerical solvers. The library distinguishes itself through a focus on randomized numerical linear algebra, utilizing probabilistic algorithms and approximate methods to perform dimensionality reduction and matri

    Jupyter Notebookalgorithmsdata-sciencedeep-learning
    View on GitHub↗10,703
  • coells/100dayscoells avatar

    coells/100days

    7,488View on GitHub↗

    This project is a comprehensive collection of computer science implementations and an algorithm tutorial repository. It serves as a study guide and reference for competitive programming, providing executable code examples that demonstrate fundamental algorithmic problem solving and mathematical computation. The library covers a wide range of specialized domains, including cryptography and security primitives, lossless data compression techniques, and computational geometry for spatial analysis. It also features implementations of machine learning models, linear algebra operations, and formal

    Jupyter Notebook
    View on GitHub↗7,488
  • arrayfire/arrayfirearrayfire avatar

    arrayfire/arrayfire

    4,888View on GitHub↗

    ArrayFire is a hardware-agnostic compute framework and JIT-compiled tensor engine designed for high-performance numerical computing. It serves as a GPU numerical computing library and parallel signal processing toolkit that abstracts hardware backends, allowing the same codebase to execute across various GPU architectures and CPUs. The project distinguishes itself through a JIT engine that uses expression compilation to fuse operations and minimize memory overhead. It employs a deferred execution graph to optimize computation chains and provides interoperability primitives to share data and e

    C++arrayfirecc-plus-plus
    View on GitHub↗4,888
  • ndabap/assocentityN

    ndabAP/assocentity

    0View on GitHub↗
    View on GitHub↗0
  • cpmech/goslcpmech avatar

    cpmech/gosl

    1,876View on GitHub↗

    Linear algebra, eigenvalues, FFT, Bessel, elliptic, orthogonal polys, geometry, NURBS, numerical quadrature, 3D transfinite interpolation, random numbers, Mersenne twister, probability distributions, optimisation, differential equations.

    Gocomputational-geometrydifferential-equationseigenvalues
    View on GitHub↗1,876
  • kzahedi/goentK

    kzahedi/goent

    0View on GitHub↗
    View on GitHub↗0
  • nytlabs/streamtoolsnytlabs avatar

    nytlabs/streamtools

    1,311View on GitHub↗

    tools for working with streams of data

    Go
    View on GitHub↗1,311
  • davidbelicza/textrankD

    DavidBelicza/TextRank

    0View on GitHub↗
    View on GitHub↗0
  • khezen/rootfindingK

    khezen/rootfinding

    0View on GitHub↗
    View on GitHub↗0
  • mjibson/go-dspM

    mjibson/go-dsp

    0View on GitHub↗
    View on GitHub↗0