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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。。关于这个话题,快连下载-Letsvpn下载提供了深入分析
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Git packfiles use delta compression, storing only the diff when a 10MB file changes by one line, while the objects table stores each version in full. A file modified 100 times takes about 1GB in Postgres versus maybe 50MB in a packfile. Postgres does TOAST and compress large values, but that’s compressing individual objects in isolation, not delta-compressing across versions the way packfiles do, so the storage overhead is real. A delta-compression layer that periodically repacks objects within Postgres, or offloads large blobs to S3 the way LFS does, is a natural next step. For most repositories it still won’t matter since the median repo is small and disk is cheap, and GitHub’s Spokes system made a similar trade-off years ago, storing three full uncompressed copies of every repository across data centres because redundancy and operational simplicity beat storage efficiency even at hundreds of exabytes.
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