伊朗戰爭第三天,我們仍完全不知道它將走向何方

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Andrew Mountbatten-Windsor’s ‘deplorable’ alleged actions warrant his removal from the royal line of succession, Carney says

Конфликт США с Ираном назвали ударом для Украины14:58

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韩国政府:如有需要,将积极启动100万亿韩元的市场稳定计划

Compute grows much faster than data . Our current scaling laws require proportional increases in both to scale . But the asymmetry in their growth means intelligence will eventually be bottlenecked by data, not compute. This is easy to see if you look at almost anything other than language models. In robotics and biology, the massive data requirement leads to weak models, and both fields have enough economic incentives to leverage 1000x more compute if that led to significantly better results. But they can't, because nobody knows how to scale with compute alone without adding more data. The solution is to build new learning algorithms that work in limited data, practically infinite compute settings. This is what we are solving at Q Labs: our goal is to understand and solve generalization.

固本强基

“中华民族是一个大家庭,一家人都要过上好日子。”