3min snip

Machine Learning Street Talk (MLST) cover image

Is ChatGPT an N-gram model on steroids?

Machine Learning Street Talk (MLST)

NOTE

Understanding Transformers: Describing vs. Explaining

A transformer operates by selecting rules to generate the next token, with a notable 78% success rate attributed to matching templates. However, this does not imply that the transformer fundamentally relies on template matching alone; the term 'better' is misleading without a proper metric context. The distinction between describing and explaining predictions is crucial, where describing focuses on the output without delving into the mechanisms behind it, while explaining seeks to uncover the underlying processes. This analysis remains largely black box, emphasizing the importance of retracing outputs to statistical training data without providing a comprehensive explanation of the transformer’s inner workings. Understanding the semantic versus syntactic dimensions is also vital, as the former aids in interpretation and the latter in identifying feature quality and abstraction, particularly when dealing with low frequency samples.

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