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Probing the evolution of fault properties during the seismic cycle with deep learning

Flipboard

We use seismic waves that pass through the hypocentral region of the 2016 M6.5 Norcia earthquake together with Deep Learning (DL) to distinguish between foreshocks, aftershocks and time-to-failure (TTF). Artificial Intelligence technique based on Deep Learning is used to differentiate seismic waves before and after a M6.5

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TensorFlow vs. PyTorch: What’s Better for a Deep Learning Project?

Towards AI

Photo by Marius Masalar on Unsplash Deep learning. A subset of machine learning utilizing multilayered neural networks, otherwise known as deep neural networks. If you’re getting started with deep learning, you’ll find yourself overwhelmed with the amount of frameworks. Let’s answer that question.

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Can Using Deep Learning to Write Code Help Software Developers Stand Out?

Smart Data Collective

Although there are plenty of tech jobs out there at the moment thanks to the tech talent gap and the Great Resignation, for people who want to secure competitive packages and accelerate their software development career with sought-after java jobs , a knowledge of deep learning or AI could help you to stand out from the rest.

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Groq sparks LPU vs GPU face-off

Dataconomy

Recall the historic Go match in 2016 , where AlphaGo defeated the world champion Lee Sedol ? This attribute is particularly beneficial for algorithms that thrive on parallelization, effectively accelerating tasks that range from complex simulations to deep learning model training.

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Top 10 Deep Learning Platforms in 2024

DagsHub

Source: Author Introduction Deep learning, a branch of machine learning inspired by biological neural networks, has become a key technique in artificial intelligence (AI) applications. Deep learning methods use multi-layer artificial neural networks to extract intricate patterns from large data sets.

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Entity Recognition with LLM: A Complete Evaluation

Towards AI

SpaCy is a language processing library written in Python and Cython that has been well-established since 2016. The majority of processing is a combination of deep learning, Transformers technologies (since version 3.0), and statistical analysis.

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How to tackle lack of data: an overview on transfer learning

Data Science Blog

1, Data is the new oil, but labeled data might be closer to it Even though we have been in the 3rd AI boom and machine learning is showing concrete effectiveness at a commercial level, after the first two AI booms we are facing a problem: lack of labeled data or data themselves.