
Can Language Models Be Too Big? 🦜 with Emily Bender and Margaret Mitchell - #467
The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)
Exploring the Risks of Language Models
This chapter discusses the dangers associated with large language models, referencing insights from a pivotal paper on 'stochastic parrots.' The hosts explore the historical evolution of language models and their implications for bias and fairness in AI, emphasizing the importance of multidisciplinary perspectives. The conversation also highlights key developments from traditional n-gram methods to contemporary neural networks, setting the stage for ethical discussions surrounding AI technologies.
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