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asafschers avatar

asafschers/scoruby

0
View on GitHub↗
70 stars·11 forks·Ruby·MIT·9 views

Scoruby

Ruby Scoring API for PMML

Features

  • Machine Learning Frameworks - Provides a scoring API for predictive models using PMML.
  • Machine Learning Frameworks - Tool for creating random forest classifiers from PMML files.

Star history

Star history chart for asafschers/scorubyStar history chart for asafschers/scoruby

How this analysis was created: This summary and feature list are AI-generated from collected project material and can contain mistakes. Stars, license and language are imported from GitHub. Inclusion does not mean that we have tested or audited this project. Check the source documentation for any feature you depend on. Learn more on our About page.

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Frequently asked questions

What does asafschers/scoruby do?

Ruby Scoring API for PMML

What are the main features of asafschers/scoruby?

The main features of asafschers/scoruby are: Machine Learning Frameworks.

Which projects share features with asafschers/scoruby?

Projects with overlapping indexed features include: catboost/catboost — CatBoost is a gradient boosting machine learning library used to train decision tree ensembles for regression,… rust-ml/linfa — Linfa is a classical machine learning framework and statistical learning suite implemented in Rust. It provides a… apache/incubator-mxnet — Apache MXNet is a deep learning framework and distributed machine learning library designed for training and deploying… cardmagic/classifier — A general classifier module to allow Bayesian and LSI classifications. huggingface/candle — Candle is a minimalist machine learning framework and deep learning inference engine designed for the Rust programming… smartcorelib/smartcore — A comprehensive library for machine learning and numerical computing. Apply Machine Learning with Rust leveraging…

Projects sharing features with Scoruby

These projects share indexed features with Scoruby. Shared tags can include platform or build tooling; verify the primary use case before treating a result as a replacement.
  • cardmagic/classifiercardmagic avatar

    cardmagic/classifier

    721View on GitHub↗

    A general classifier module to allow Bayesian and LSI classifications.

    Ruby
    View on GitHub↗721
  • catboost/catboostcatboost avatar

    catboost/catboost

    8,808View on GitHub↗

    CatBoost is a gradient boosting machine learning library used to train decision tree ensembles for regression, classification, and ranking tasks. It functions as a high-performance framework that provides a categorical data processor for transforming non-numeric features, a distributed trainer for large-scale datasets, and GPU acceleration to speed up model construction. The library distinguishes itself through native handling of categorical data and text features, removing the need for manual encoding. It includes a specialized model interpretability tool that leverages SHAP values and featu

    C++big-datacatboostcategorical-features
    View on GitHub↗8,808
  • apache/incubator-mxnetapache avatar

    apache/incubator-mxnet

    20,812View on GitHub↗

    Apache MXNet is a deep learning framework and distributed machine learning library designed for training and deploying neural networks across distributed systems, mobile devices, and hardware accelerators. It functions as a cross-platform runtime and a dynamic dataflow scheduler that optimizes neural network execution. The framework provides a multi-language API, enabling the development of machine learning models using Python, R, Julia, Scala, Go, and JavaScript. It supports high-performance model training and the scaling of workloads across multiple GPUs and machines. The system covers cap

    C++
    View on GitHub↗20,812
  • huggingface/candlehuggingface avatar

    huggingface/candle

    19,422View on GitHub↗

    Candle is a minimalist machine learning framework and deep learning inference engine designed for the Rust programming language. It functions as a low-level tensor computation library, providing the necessary primitives for multi-dimensional array operations and mathematical transformations required to execute pre-trained neural network models. The framework distinguishes itself through a focus on memory efficiency and hardware utilization. It employs static-typed tensor operations to enforce shape validation and memory safety at compile time, while utilizing a lazy-loaded computational graph

    Rust
    View on GitHub↗19,422
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