A03要闻 - 澳门能做高精尖、国际一流科学研究

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人們嘗試過各種奇葩策略,試圖從大型語言模型(LLM,ChatGPT等工具背後的AI技術)中獲得更好的回饋。有些人深信,威脅AI能讓它表現得更好;另一些人認為,禮貌待人會讓聊天機器人更配合;還有些人甚至要求機器人扮演某個研究領域的專家來回答問題。這樣的例子不勝枚舉。這都是圍繞著「提示工程」或「情境工程」——即建構指令以使AI提供更佳結果的不同方法——所形成的迷思的一部分。但事實是:專家告訴我,許多被廣泛接受的提示技巧根本不起作用,有些甚至可能是危險的。但是,你與AI的溝通方式確實至關重要,某些技巧真的能帶來差異。

In recent years, LLMs have shown significant improvements in their overall performance. When they first became mainstream a couple of years before, they were already impressive with their seemingly human-like conversation abilities, but their reasoning always lacked. They were able to describe any sorting algorithm in the style of your favorite author; on the other hand, they weren't able to consistently perform addition. However, they improved significantly, and it's more and more difficult to find examples where they fail to reason. This created the belief that with enough scaling, LLMs will be able to learn general reasoning.

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Musk promised it will have "the manual dexterity of a human, meaning a very complex hand".

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