Brain tumor segmentation at scale using AWS Inferentia

Favorite Medical imaging is an important tool for the diagnosis and localization of disease. Over the past decade, collections of medical images have grown rapidly, and open repositories such as The Cancer Imaging Archive and Imaging Data Commons have democratized access to this vast imaging data. Computational tools such as

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Shared by AWS Machine Learning November 9, 2022

Predict lung cancer survival status using multimodal data on Amazon SageMaker JumpStart

Favorite Non-small cell lung cancer (NSCLC) is the most common type of lung cancer, and is composed of tumors with significant molecular heterogeneity resulting from differences in intrinsic oncogenic signaling pathways [1]. Enabling precision medicine, anticipating patient preferences, detecting disease, and improving care quality for NSCLC patients are important topics

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Shared by AWS Machine Learning November 8, 2022

Getting started with deploying real-time models on Amazon SageMaker

Favorite Amazon SageMaker is a fully-managed service that provides every developer and data scientist with the ability to quickly build, train, and deploy machine learning (ML) models at scale. ML is realized in inference. SageMaker offers four Inference options: Real-Time Inference Serverless Inference Asynchronous Inference Batch Transform These four options

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Shared by AWS Machine Learning November 8, 2022