About

​JAX is a Python library designed for high-performance numerical computing and machine learning research. It offers a NumPy-like API, facilitating seamless adoption for those familiar with NumPy. Key features of JAX include automatic differentiation, just-in-time compilation, vectorization, and parallelization, all optimized for execution on CPUs, GPUs, and TPUs. These capabilities enable efficient computation for complex mathematical functions and large-scale machine-learning models. JAX also integrates with various libraries within its ecosystem, such as Flax for neural networks and Optax for optimization tasks. Comprehensive documentation, including tutorials and user guides, is available to assist users in leveraging JAX's full potential. ​

About

Fast and versatile, the NumPy vectorization, indexing, and broadcasting concepts are the de-facto standards of array computing today. NumPy offers comprehensive mathematical functions, random number generators, linear algebra routines, Fourier transforms, and more. NumPy supports a wide range of hardware and computing platforms, and plays well with distributed, GPU, and sparse array libraries. The core of NumPy is well-optimized C code. Enjoy the flexibility of Python with the speed of compiled code. NumPy’s high level syntax makes it accessible and productive for programmers from any background or experience level. NumPy brings the computational power of languages like C and Fortran to Python, a language much easier to learn and use. With this power comes simplicity: a solution in NumPy is often clear and elegant.

About

Cloverage uses clojure.test by default. If you prefer use midje, pass the --runner :midje flag. (In older versions of Cloverage, you had to wrap your midje tests in clojure.test's deftest. This is no longer necessary.) For using eftest, pass the --runner :eftest flag. Optionally you could configure a runner passing :runner-opts with a map in project settings. Other test libraries may ship with their own support for Cloverage external to this library; see their documentation for details.

About

Scikit-learn provides simple and efficient tools for predictive data analysis. Scikit-learn is a robust, open source machine learning library for the Python programming language, designed to provide simple and efficient tools for data analysis and modeling. Built on the foundations of popular scientific libraries like NumPy, SciPy, and Matplotlib, scikit-learn offers a wide range of supervised and unsupervised learning algorithms, making it an essential toolkit for data scientists, machine learning engineers, and researchers. The library is organized into a consistent and flexible framework, where various components can be combined and customized to suit specific needs. This modularity makes it easy for users to build complex pipelines, automate repetitive tasks, and integrate scikit-learn into larger machine-learning workflows. Additionally, the library’s emphasis on interoperability ensures that it works seamlessly with other Python libraries, facilitating smooth data processing.

Platforms Supported

Windows
Mac
Linux
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On-Premises
iPhone
iPad
Android
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Platforms Supported

Windows
Mac
Linux
Cloud
On-Premises
iPhone
iPad
Android
Chromebook

Platforms Supported

Windows
Mac
Linux
Cloud
On-Premises
iPhone
iPad
Android
Chromebook

Platforms Supported

Windows
Mac
Linux
Cloud
On-Premises
iPhone
iPad
Android
Chromebook

Audience

Professional researchers and developers searching for a solution to manage their numerical computing and machine learning operations in Python

Audience

Component Library solution for DevOps teams

Audience

Developers searching for an advanced Code Coverage solution

Audience

Engineers and data scientists requiring a solution to manage and improve their machine learning research

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Overall 5.0 / 5
ease 5.0 / 5
features 5.0 / 5
design 5.0 / 5
support 5.0 / 5

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Overall 0.0 / 5
ease 0.0 / 5
features 0.0 / 5
design 0.0 / 5
support 0.0 / 5

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Review this Software

Reviews/Ratings

Overall 0.0 / 5
ease 0.0 / 5
features 0.0 / 5
design 0.0 / 5
support 0.0 / 5

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Live Online
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Company Information

JAX
United States
docs.jax.dev/en/latest/

Company Information

NumPy
numpy.org

Company Information

cloverage
github.com/cloverage/cloverage

Company Information

scikit-learn
United States
scikit-learn.org/stable/

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Integrations

Avanzai
Clojure
DagsHub
Flower
Gemma 3n
IREN Cloud
Intel Tiber AI Studio
JAX
Keepsake
Keras
Matplotlib
ModelOp
NumPy
PyCharm
Travis CI
Unify AI
Yamak.ai
h5py
imageio
scikit-learn

Integrations

Avanzai
Clojure
DagsHub
Flower
Gemma 3n
IREN Cloud
Intel Tiber AI Studio
JAX
Keepsake
Keras
Matplotlib
ModelOp
NumPy
PyCharm
Travis CI
Unify AI
Yamak.ai
h5py
imageio
scikit-learn

Integrations

Avanzai
Clojure
DagsHub
Flower
Gemma 3n
IREN Cloud
Intel Tiber AI Studio
JAX
Keepsake
Keras
Matplotlib
ModelOp
NumPy
PyCharm
Travis CI
Unify AI
Yamak.ai
h5py
imageio
scikit-learn

Integrations

Avanzai
Clojure
DagsHub
Flower
Gemma 3n
IREN Cloud
Intel Tiber AI Studio
JAX
Keepsake
Keras
Matplotlib
ModelOp
NumPy
PyCharm
Travis CI
Unify AI
Yamak.ai
h5py
imageio
scikit-learn
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