mixed-naive-bayes VS Pytorch

Compare mixed-naive-bayes vs Pytorch and see what are their differences.

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mixed-naive-bayes Pytorch
1 341
63 78,436
- 1.9%
2.5 10.0
about 1 year ago 2 days ago
Python Python
MIT License BSD 1-Clause License
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mixed-naive-bayes

Posts with mentions or reviews of mixed-naive-bayes. We have used some of these posts to build our list of alternatives and similar projects.
  • [Discussion] Unique uses of recommendation systems?
    1 project | /r/MachineLearning | 4 Feb 2022
    Some of the features are categorical, such as request type (is it about troubleshoot, price request, etc.), product, language, SLA, etc.; and some are continuous, namely an embedding vector generated from the ticket free form text. Then we use this library that allows the training of a Naive Bayes model using mixed type of features (categorical and continuous).

Pytorch

Posts with mentions or reviews of Pytorch. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2024-05-01.

What are some alternatives?

When comparing mixed-naive-bayes and Pytorch you can also consider the following projects:

twitter-stock-sentiment - Use twitter to get live and trending stock sentiment!

Flux.jl - Relax! Flux is the ML library that doesn't make you tensor

system-design-primer - Learn how to design large-scale systems. Prep for the system design interview. Includes Anki flashcards.

mediapipe - Cross-platform, customizable ML solutions for live and streaming media.

tabmat - Efficient matrix representations for working with tabular data

Apache Spark - Apache Spark - A unified analytics engine for large-scale data processing

flax - Flax is a neural network library for JAX that is designed for flexibility.

tinygrad - You like pytorch? You like micrograd? You love tinygrad! ❤️ [Moved to: https://github.com/tinygrad/tinygrad]

Pandas - Flexible and powerful data analysis / manipulation library for Python, providing labeled data structures similar to R data.frame objects, statistical functions, and much more

Deep Java Library (DJL) - An Engine-Agnostic Deep Learning Framework in Java

tensorflow - An Open Source Machine Learning Framework for Everyone

stable-baselines3 - PyTorch version of Stable Baselines, reliable implementations of reinforcement learning algorithms.