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Prompt Minimization: Reducing Input Redundancy Without Sacrificing Output Fidelity

Despite the growing capabilities of large language models (LLMs), prompt design remains largely heuristic and ad hoc. This project will explore $\textit{prompt minimization}$, the process of reducing prompts to their smallest, most information-dense form while preserving output fidelity. Practically, shorter prompts reduce computational overhead and inference latency, especially when large…

We haven't written up this one. arXiv cs.AI has the full story — the link below goes straight to it.

Read the original at arxiv.org →

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Muse Looks Cute, but Looks Are Deceiving

Jason Aten, in a good follow-up to his previous column at Inc. ( the one where he described how Muse, running on his Mac, read his Messages database) The entire reason Muse is interesting is that it…

  • Muse is a chatbot with advanced capabilities beyond basic conversation.
  • Full Disk Access allows Muse to read users' text messages.
  • Concerns arise about user understanding of Muse's implications.

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