PulmoLens VS BentoML

Compare PulmoLens vs BentoML and see what are their differences.

PulmoLens

aws-powered deep-learning pneumonia detection model deployed as a serverless rest-api 🤖🫁 (by akkik04)

BentoML

The most flexible way to serve AI/ML models in production - Build Model Inference Service, LLM APIs, Inference Graph/Pipelines, Compound AI systems, Multi-Modal, RAG as a Service, and more! (by bentoml)
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PulmoLens BentoML
3 16
10 6,586
- 2.2%
5.3 9.8
almost 1 year ago 3 days ago
Jupyter Notebook Python
Apache License 2.0 Apache License 2.0
The number of mentions indicates the total number of mentions that we've tracked plus the number of user suggested alternatives.
Stars - the number of stars that a project has on GitHub. Growth - month over month growth in stars.
Activity is a relative number indicating how actively a project is being developed. Recent commits have higher weight than older ones.
For example, an activity of 9.0 indicates that a project is amongst the top 10% of the most actively developed projects that we are tracking.

PulmoLens

Posts with mentions or reviews of PulmoLens. We have used some of these posts to build our list of alternatives and similar projects.

BentoML

Posts with mentions or reviews of BentoML. We have used some of these posts to build our list of alternatives and similar projects. The last one was on 2023-12-04.

What are some alternatives?

When comparing PulmoLens and BentoML you can also consider the following projects:

video-super-resolution-youtube

fastapi - FastAPI framework, high performance, easy to learn, fast to code, ready for production

amazon-sagemaker-examples - Example 📓 Jupyter notebooks that demonstrate how to build, train, and deploy machine learning models using 🧠 Amazon SageMaker.

seldon-core - An MLOps framework to package, deploy, monitor and manage thousands of production machine learning models

hugging-face-workshop - A 90-minute hands on workshop about Hugging Face on SageMaker.

haystack - :mag: LLM orchestration framework to build customizable, production-ready LLM applications. Connect components (models, vector DBs, file converters) to pipelines or agents that can interact with your data. With advanced retrieval methods, it's best suited for building RAG, question answering, semantic search or conversational agent chatbots.

fraud-detection-using-machine-learning - Setup end to end demo architecture for predicting fraud events with Machine Learning using Amazon SageMaker

clearml - ClearML - Auto-Magical CI/CD to streamline your AI workload. Experiment Management, Data Management, Pipeline, Orchestration, Scheduling & Serving in one MLOps/LLMOps solution

SagemakerHuggingfaceDashboard - This is a solution that demonstrates how to train and deploy a pre-trained Huggingface model on AWS SageMaker and publish an AWS QuickSight Dashboard that visualizes the model performance over the validation dataset and Exploratory Data Analysis for the pre-processed training dataset.

Kedro - Kedro is a toolbox for production-ready data science. It uses software engineering best practices to help you create data engineering and data science pipelines that are reproducible, maintainable, and modular.

kubeflow - Machine Learning Toolkit for Kubernetes

streamlit - Streamlit — A faster way to build and share data apps.