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Source channel @githubtrending · Post #14879 · Jun 28

#cplusplus#cpp#hacktoberfest#iot#iot_device#iot_edge#microcontroller#microsoft_for_beginners#python#raspberry_pi#rpi You can learn the basics of the Internet of Things (IoT) through a free 12-week course with 24 lessons that guide you step-by-step in building real projects like plant monitoring, vehicle tracking, and smart cooking timers. Each lesson includes quizzes, instructions, challenges, and solutions to help you understand sensors, cloud connections, security, and AI on devices. The course uses real hardware or virtual options, making it easy to practice hands-on skills. This project-based learning helps you gain practical IoT knowledge useful for many industries, improving your tech skills and job readiness. https://github.com/microsoft/IoT-For-Beginners

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Am Neumarkt 😱

@amneumarkt · Post #261 · 09/13/2021, 05:49 AM

#ML#self-supervised #representation Contrastive loss is widely used in representation learning. However, the mechanism behind it is not as straightforward as it seems. Wang & Isola proposed a method to rewrite the contrastive loss in to alignment and uniformity. Samples in the feature space are normalized to unit vectors. These vectors are allocated onto a hypersphere. The two components of the contrastive loss are - alignment, which forces the positive samples to be aligned on the hypersphere, and - uniformity, which distributes the samples uniformly on the hypersphere. By optimization of such objectives, the samples are distributed on a hypersphere, with similar samples clustered, i.e., pointing to the similar directions. Uniformity makes sure the samples are using the whole hypersphere so we don't waste "space". References: Wang T, Isola P. Understanding Contrastive Representation Learning through Alignment and Uniformity on the Hypersphere. arXiv [cs.LG]. 2020. Available: http://arxiv.org/abs/2005.10242

Google Facts™ [ ️@googlefactss🌎]

@googlefactss · Post #40401 · 12/24/2025, 03:01 PM

The Bechdel-Wallace Test checks if a movie or story has at least two women who talk to each other about something other than a man. It shows how women are often missing or only shown in relation to men. Many films fail this simple test, highlighting the need for better female representation in media. 👱‍♀👩‍🦳🚫🤷‍♂ [Read more] [See more] @googlefactss #BechdelWallaceTest🎬#WomenInFilm#Representation#Equality