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What is Ludwig?

Ludwig is a specialized low-code platform tailored for crafting personalized AI models, encompassing large language models (LLMs) and a range of deep neural networks. The process of developing custom models is made remarkably simple, requiring merely a declarative YAML configuration file to train sophisticated LLMs with user-specific data. It provides extensive support for various learning tasks and modalities, ensuring versatility in application. The framework is equipped with robust configuration validation to detect incorrect parameter combinations, thereby preventing potential runtime issues. Designed for both scalability and high performance, Ludwig incorporates features like automatic batch size adjustments, distributed training options (including DDP and DeepSpeed), and parameter-efficient fine-tuning (PEFT), alongside 4-bit quantization (QLoRA) and the capacity to process datasets larger than the available memory. Users benefit from a high degree of control, enabling them to fine-tune every element of their models, including the selection of activation functions. Furthermore, Ludwig enhances the modeling experience by facilitating hyperparameter optimization, offering valuable insights into model explainability, and providing comprehensive metric visualizations for performance analysis. With its modular and adaptable architecture, users can easily explore various model configurations, tasks, features, and modalities, making it feel like a versatile toolkit for deep learning experimentation. Ultimately, Ludwig empowers developers not only to innovate in AI model creation but also to do so with an impressive level of accessibility and user-friendliness. This combination of power and simplicity positions Ludwig as a valuable asset for those looking to advance their AI projects.

What is Deci?

Easily design, enhance, and launch high-performing and accurate models with Deci’s deep learning development platform, which leverages Neural Architecture Search technology. Achieve exceptional accuracy and runtime efficiency that outshine top-tier models for any application and inference hardware in a matter of moments. Speed up your transition to production with automated tools that remove the necessity for countless iterations and a wide range of libraries. This platform enables the development of new applications on devices with limited capabilities or helps cut cloud computing costs by as much as 80%. Utilizing Deci’s NAS-driven AutoNAC engine, you can automatically identify architectures that are both precise and efficient, specifically optimized for your application, hardware, and performance objectives. Furthermore, enhance your model compilation and quantization processes with advanced compilers while swiftly evaluating different production configurations. This groundbreaking method not only boosts efficiency but also guarantees that your models are fine-tuned for any deployment context, ensuring versatility and adaptability across diverse environments. Ultimately, it redefines the way developers approach deep learning, making advanced model development accessible to a broader audience.

Media

Media

Integrations Supported

Aim
Alpaca
Comet
Discord
Docker
Hugging Face
Kubernetes
Llama 2
MLflow
Python
RAY
TensorBoard
Triton
Weights & Biases

Integrations Supported

API Availability

Has API

API Availability

Has API

Pricing Information

Pricing not provided

Pricing Information

Pricing not provided

Supported Platforms

Linux

Supported Platforms

SaaS

Customer Service / Support

Not specified

Customer Service / Support

Standard Support
Web-Based Support

Training Options

Documentation Hub

Training Options

Documentation Hub
Online Training

Company Facts

Organization Name

Uber AI

Date Founded

2016

Company Location

United States

Company Website

ludwig.ai/latest/

Company Facts

Organization Name

Deci AI

Date Founded

2019

Company Location

Israel

Company Website

deci.ai/platform/

Categories and Features

Machine Learning

Not specified

Categories and Features

Deep Learning

Not specified

Neural Network

Not specified

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