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Hyperspace AGI project's 'discovery' is a decade-old deep learning technique

A project called Hyperspace claimed to be the first distributed AGI system, utilizing 660 agents to conduct 27,000 experiments. However, its most significant discovery, which it highlighted as proof of its system's efficacy, was the Kaiming initialization method. This method has been a standard in deep learning libraries since 2015 and was published eleven years ago. While the underlying infrastructure, including gradient compression and peer-to-peer networking, is technically impressive, the project is described as a parallel random search engine with strong branding rather than true AGI. AI

影响 Project's claims of AGI are unsubstantiated, with its primary 'discovery' being a decade-old technique, highlighting the gap between marketing and actual AI advancement.

排序理由 The cluster describes a project that falsely claims AGI capabilities, with its main 'discovery' being a well-established technique, fitting the definition of a meme or unsubstantiated claim.

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Hyperspace AGI project's 'discovery' is a decade-old deep learning technique

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  1. Towards AI TIER_1 English(EN) · Vektor Memory ·

    660 AI Agents Ran 27,000 Experiments. Their Biggest Discovery Was a 2015 Textbook Result.

    <figure><img alt="" src="https://cdn-images-1.medium.com/max/1024/1*ZYvHXZwBJSxTscyKSpQGBg.jpeg" /></figure><p><em>On Hyperspace, basic swarms, the math nobody wrote down, and why we built the thing they were missing in a single afternoon.</em></p><p>Join us as we traverse multip…