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  1. Stackups
  2. AI
  3. Development & Training Tools
  4. Machine Learning Tools
  5. MLflow vs Xcessiv

MLflow vs Xcessiv

OverviewComparisonAlternatives

Overview

Xcessiv
Xcessiv
Stacks0
Followers7
Votes0
GitHub Stars1.3K
Forks105
MLflow
MLflow
Stacks227
Followers524
Votes9
GitHub Stars22.8K
Forks5.0K

MLflow vs Xcessiv: What are the differences?

MLflow: An open source machine learning platform. MLflow is an open source platform for managing the end-to-end machine learning lifecycle; Xcessiv: Fully managed web application for automated machine learning. A web-based application for quick, scalable, and automated hyperparameter tuning and stacked ensembling in Python.

MLflow and Xcessiv can be primarily classified as "Machine Learning" tools.

Some of the features offered by MLflow are:

  • Track experiments to record and compare parameters and results
  • Package ML code in a reusable, reproducible form in order to share with other data scientists or transfer to production
  • Manage and deploy models from a variety of ML libraries to a variety of model serving and inference platforms

On the other hand, Xcessiv provides the following key features:

  • Fully define your data source, cross-validation process, relevant metrics, and base learners with Python code
  • Any model following the Scikit-learn API can be used as a base learner
  • Task queue based architecture lets you take full advantage of multiple cores and embarrassingly parallel hyperparameter searches

MLflow and Xcessiv are both open source tools. It seems that Xcessiv with 1.19K GitHub stars and 95 forks on GitHub has more adoption than MLflow with 23 GitHub stars and 13 GitHub forks.

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Detailed Comparison

Xcessiv
Xcessiv
MLflow
MLflow

A web-based application for quick, scalable, and automated hyperparameter tuning and stacked ensembling in Python.

MLflow is an open source platform for managing the end-to-end machine learning lifecycle.

Fully define your data source, cross-validation process, relevant metrics, and base learners with Python code;Any model following the Scikit-learn API can be used as a base learner;Task queue based architecture lets you take full advantage of multiple cores and embarrassingly parallel hyperparameter searches;Direct integration with TPOT for automated pipeline construction;Automated hyperparameter search through Bayesian optimization;Easy management and comparison of hundreds of different model-hyperparameter combinations;Automatic saving of generated secondary meta-features;Stacked ensemble creation in a few clicks;Automated ensemble construction through greedy forward model selection;Export your stacked ensemble as a standalone Python file to support multiple levels of stacking
Track experiments to record and compare parameters and results; Package ML code in a reusable, reproducible form in order to share with other data scientists or transfer to production; Manage and deploy models from a variety of ML libraries to a variety of model serving and inference platforms
Statistics
GitHub Stars
1.3K
GitHub Stars
22.8K
GitHub Forks
105
GitHub Forks
5.0K
Stacks
0
Stacks
227
Followers
7
Followers
524
Votes
0
Votes
9
Pros & Cons
No community feedback yet
Pros
  • 5
    Code First
  • 4
    Simplified Logging
Integrations
scikit-learn
scikit-learn
No integrations available

What are some alternatives to Xcessiv, MLflow?

TensorFlow

TensorFlow

TensorFlow is an open source software library for numerical computation using data flow graphs. Nodes in the graph represent mathematical operations, while the graph edges represent the multidimensional data arrays (tensors) communicated between them. The flexible architecture allows you to deploy computation to one or more CPUs or GPUs in a desktop, server, or mobile device with a single API.

scikit-learn

scikit-learn

scikit-learn is a Python module for machine learning built on top of SciPy and distributed under the 3-Clause BSD license.

PyTorch

PyTorch

PyTorch is not a Python binding into a monolothic C++ framework. It is built to be deeply integrated into Python. You can use it naturally like you would use numpy / scipy / scikit-learn etc.

Keras

Keras

Deep Learning library for Python. Convnets, recurrent neural networks, and more. Runs on TensorFlow or Theano. https://keras.io/

Kubeflow

Kubeflow

The Kubeflow project is dedicated to making Machine Learning on Kubernetes easy, portable and scalable by providing a straightforward way for spinning up best of breed OSS solutions.

TensorFlow.js

TensorFlow.js

Use flexible and intuitive APIs to build and train models from scratch using the low-level JavaScript linear algebra library or the high-level layers API

Polyaxon

Polyaxon

An enterprise-grade open source platform for building, training, and monitoring large scale deep learning applications.

Streamlit

Streamlit

It is the app framework specifically for Machine Learning and Data Science teams. You can rapidly build the tools you need. Build apps in a dozen lines of Python with a simple API.

H2O

H2O

H2O.ai is the maker behind H2O, the leading open source machine learning platform for smarter applications and data products. H2O operationalizes data science by developing and deploying algorithms and models for R, Python and the Sparkling Water API for Spark.

PredictionIO

PredictionIO

PredictionIO is an open source machine learning server for software developers to create predictive features, such as personalization, recommendation and content discovery.

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