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Изходен канал @clockstackwheels · Post #456 · 22.07

Раз уж зашёл разговор про YouTube, я хотел было рассказать вам про свои подписки, но потом подумал, что каких-нибудь Slow Mo Guys или Доктора Дью и так все знают. Поэтому вот вам из моих подписок каналы либо малопопулярные, либо узкой тематики: Виталий Галайчук (рус) — автор летает на планерах без мотора (их поднимают самолётом, а затем он лавирует в воздушных потоках). Очень атмосферные и крутые съёмки. Luke Towan (англ) — автор — мастер по созданию диорам (миниатюрных трёхмерных моделей участка местности). Показывает процесс создания, залипательно и медитативно. Человек с Земли (рус) — украинский видеоблогер, занимающийся квадрокоптерами. Очень красиво делает ролики, отличный саунд-дизайн. Алексей Макаренков (рус) — раньше вёл канал как сотрудник компании 4game, а сейчас свой отдельный. Про видеоигры и игровую индустрию. Хорошо рассказывает, интересно, и явно в теме. Numberfile (англ) — автор ходит к разным математикам, и они рассказывают ему о любопытных задачах и других вещах из мира математики. Для любителей чисел, много необычных и удивительных сюжетов. Dustin Penner (англ) — плотник и столяр, делает на станках и руками разные конструкции из дерева. Гуляйнен (рус) — парни из Петербурга катают на велосипедах по красивым местам. Очень молодой канал, желаю ему всяческих успехов и развития. Это они, кстати, авторы проекта "Скретч-карта Ленобласти". Лёша Корепанов (рус) — чисто разговорный блог для начинающих программистов и тех, кто хочет ими стать. Автор русский, но живёт в Нидерландах и работает программистом уже много лет, делится своим опытом. Рыбалка с Romario Agro (рус) — медитативный блог о рыбалке. Автор выезжает на лодке один в красивые места, там рыбачит, готовит походную еду итд. Хотя последние месяцы что-то его не видно. AnikFPV (рус/англ) — опытный русскоязычный FPV-пилот тестирует дроны и связанные с этим вещи, участвует в соревнованиях, ездит летать в красивые места. Что-то только для тех, кто этим занимается сам, но что-то вполне себе интересно для широкой публики. Буду рад, если в комментариях поделитесь своими малоизвестными или узкотематическими подписками! #web

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AI & Law

@ai_and_law · Post #750 · 26.01.2026 г., 08:04

🇺🇸TRAIN Act: U.S. Congress Moves Toward Mandatory AI Training Transparency Bipartisan lawmakers have introduced the Transparency and Responsibility for Artificial Intelligence Networks (TRAIN) Act in the U.S. House, aiming to give copyright holders access to AI training records to determine whether their works were used to train generative AI models without consent or compensation. The bill, led by Rep. Madeleine Dean (PA-04) and Rep. Nathaniel Moran (TX-01), follows a Senate version reintroduced by Senators Peter Welch, Marsha Blackburn, Adam Schiff, and Josh Hawley. This is the first time the TRAIN Act has been introduced in the House. The proposal is modeled on enforcement mechanisms used in online piracy cases and responds to the current lack of any clear process for creators to verify whether their content was ingested into training datasets. The bill has support from major creator and rights-holder organizations, including the Recording Industry Association of America (RIAA) and SAG-AFTRA, alongside groups representing musicians, publishers, and copyright licensing. If enacted, the TRAIN Act would shift AI copyright disputes from speculation to evidence by establishing a legal path to training-data disclosure. It would also add pressure on AI companies that do not currently reveal how their models are trained. #AIandLaw#Copyright#TrainingData#Transparency

AI & Law

@ai_and_law · Post #785 · 16.03.2026 г., 07:04

🇪🇺📖Study Finds Limited Availability of AI Training Data Disclosures Under EU AI Act Researchers from Trinity College Dublin report that information about AI training data required under the AI Act is often missing and difficult to locate. The law requires developers to publish summaries explaining how their models were trained, using a disclosure template designed to help copyright holders enforce their rights regarding the use of copyrighted material in AI training. A pre-print study funded by Mozilla found that only a small number of such summaries could be identified. The researchers also found structural issues in accessing the disclosures. The AI Act does not specify where companies must publish the summaries, leaving the decision to developers. As a result, no common publication mechanism exists and practices vary widely. The template created by the European Commission AI Office has led to heterogeneous implementations, making it difficult to determine whether the available documents meet EU transparency requirements. Most of the identified disclosures were produced by smaller organizations, including documentation for Switzerland’s Apertus national model. A document published by Microsoft for one of its open-source models was also reviewed, but the study found that it lacked several required details. Researchers recommend creating a centralized portal for publishing transparency summaries to improve accessibility and support enforcement once the AI Act obligations become applicable in August. #AIAct#AITransparency#TrainingData#Copyright#AIGovernance#AIRegulation#EULaw

Venture Village Wall 🦄

@venturevillagewall · Post #3551 · 20.12.2024 г., 09:32

Fraction AI Raises $6M Fraction AI successfully secured $6M in funding for its groundbreaking project aimed at democratizing access to high-quality training data for artificial intelligence using Web3 technology. The funding round concluded on December 18, 2024. #FractionAI#Funding#AI#Web3#TrainingData#TechInvestment#Innovation#DataDemocratization

AI & Law

@ai_and_law · Post #783 · 12.03.2026 г., 07:04

🇺🇸Court Allows Enforcement of California AI Training Data Disclosure Law A US federal court has denied a request by Elon Musk’s AI company xAI to block enforcement of California Assembly Bill 2013. The law requires AI developers whose models are accessible in California to publicly disclose key information about training datasets, including dataset sources, collection timelines, whether collection is ongoing, and whether datasets contain copyrighted, trademarked, patented, or personal data. Companies must also indicate whether training data was licensed or purchased and the extent of synthetic data used. xAI argued the law would force disclosure of trade secrets, including dataset sources, dataset sizes, and data-cleaning methods. According to the company, such transparency could allow competitors to infer what datasets it uses and replicate its approach. The company warned that compliance could be “economically devastating” and reduce the value of its proprietary data practices. However, US District Judge Jesus Bernal ruled that xAI failed to demonstrate that the law requires disclosure of protected trade secrets. The court found the company’s claims too general and based largely on hypotheticals. The motion for a preliminary injunction was denied, allowing the law—which took effect in January—to remain in force while the lawsuit continues. #AIRegulation#AITransparency#TrainingData#TradeSecrets#AIAct#AIGovernance#TechLaw