其他
最顶尖的大语言模型人才,只关心这10个挑战
编者按:本文探讨了大语言模型(LLM)研究中的十大挑战,作者是Chip Huyen,她毕业于斯坦福大学,现为Claypot AI —— 一个实时机器学习平台的创始人,此前在英伟达、Snorkel AI、Netflix、Primer公司开发机器学习工具。
编译 | 林檎编辑 | 蔓蔓周首图来源:WSJ
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以下是可以参考的相关演讲
·Survey of Hallucination in Natural Language Generation (Ji et al., 2022)·How Language Model Hallucinations Can Snowball (Zhang et al., 2023)·A Multitask, Multilingual, Multimodal Evaluation of ChatGPT on Reasoning, Hallucination, and Interactivity (Bang et al., 2023)·Contrastive Learning Reduces Hallucination in Conversations (Sun et al., 2022)·Self-Consistency Improves Chain of Thought Reasoning in Language Models (Wang et al., 2022)·SelfCheckGPT: Zero-Resource Black-Box Hallucination Detection for Generative Large Language Models (Manakul et al., 2023)·Natural language is the lazy user interface (Austin Z. Henley, 2023)
·Why Chatbots Are Not the Future (Amelia Wattenberger, 2023)
·What Types of Questions Require Conversation to Answer? A Case Study of AskReddit Questions (Huang et al., 2023)
·AI chat interfaces could become the primary user interface to read documentation (Tom Johnson, 2023)
·Interacting with LLMs with Minimal Chat (Eugene Yan, 2023)
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