2min chapter

Machine Learning Street Talk (MLST) cover image

047 Interpretable Machine Learning - Christoph Molnar

Machine Learning Street Talk (MLST)

CHAPTER

What We Want Out of an Explanation

I think this chapter that you referenced was about from the social view or the human view, what people like or prefer as explanations in the whole chapter space. It's actually quite interesting thinking about what we really want out of an explanation. I remember first of all looking at sharp values that are very fair and will distribute the blame equally amongst all the different relevant features. But then it turns out that apparently that's what people actually want as a useful, interpretable explanation.

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