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Satellite Data, Bushfires and AI: Safeguarding Wine Industry Amidst Climate Challenges

Towards AI

Detecting drought in January 2020 (on the left) using the EVI vegetation index Yellow means very healthy vegetation while dark green means unhealthy. Clustering similar fields using unsupervised K-means clustering The outcome of K-means clustering is cluster labels that assign each data point to one of the K clusters.

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Ending an Ugly Chapter in Chip Design

Flipboard

The crux of the clash was whether Google’s AI solution to one of chip design’s thornier problems was really better than humans or state-of-the-art algorithms. In Circuit Training and Morpheus, a separate algorithm fills in the gaps with the smaller parts, called standard cells. The agent places one block at a time on the chip canvas.

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Introducing Multimodal Clustering

DataRobot

Yes, data created over the next three years will far exceed the amount created over the past 30 years ( Source : IDC Worldwide Global DataSphere Forecast, 2020-2024). Clustering is a technique that can be used to get a sense of the data while allowing to tell a powerful story. Introducing Multimodal Clustering. Name Clusters.

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Amazon SageMaker model parallel library now accelerates PyTorch FSDP workloads by up to 20%

AWS Machine Learning Blog

As a result, machine learning practitioners must spend weeks of preparation to scale their LLM workloads to large clusters of GPUs. Aligning SMP with open source PyTorch Since its launch in 2020, SMP has enabled high-performance, large-scale training on SageMaker compute instances. To mitigate this problem, SMP v2.0

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Anthropic’s $5B, 4-year plan to take on OpenAI

Flipboard

A pitch deck for Anthropic’s Series C fundraising round discloses these and other long-term goals for the company, which was founded in 2020 by former OpenAI researchers. The deck confirms that target number, though only half was raised at the time of the document’s creation from a “confidential investor.”

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Get Maximum Value from Your Visual Data

DataRobot

it’s possible to build a robust image recognition algorithm with high accuracy. In 2020, our team launched DataRobot Visual AI. Multimodal Clustering. Multimodal Clustering provides users with a one-click, one line-of-code experience to build and deploy clustering models on any data, including images.

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Technology Innovation Institute trains the state-of-the-art Falcon LLM 40B foundation model on Amazon SageMaker

AWS Machine Learning Blog

Starting June 7th, both Falcon LLMs will also be available in Amazon SageMaker JumpStart, SageMaker’s machine learning (ML) hub that offers pre-trained models, built-in algorithms, and pre-built solution templates to help you quickly get started with ML. The model weights are available to download, inspect and deploy anywhere.