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Model agnostic method can be used with any model. In Explainable AI (XAI), this means we can use them to interpret models without looking at their interworkings. This gives us a powerful way to interpret and explain complex black-box machine learning models. We will elaborate on this definition. We will also discuss the taxonomy of model agnostic methods for interpretability. They can be classified as Global vs local methods or Permutations vs Surrogate models. We end by discussing the limitations of model agnostic methods and their benefits over other approaches to interpretability. 🚀 Free Course 🚀 Signup here: https://mailchi.mp/40909011987b/signup XAI course: https://adataodyssey.com/courses/xai-... SHAP course: https://adataodyssey.com/courses/shap... 🚀 Companion Article (no-paywall link): 🚀 https://medium.com/data-science/what-... 🚀 Useful playlists 🚀 XAI: • Explainable AI (XAI) SHAP: • SHAP Algorithm fairness: • Algorithm Fairness 🚀 Get in touch 🚀 Medium: / conorosullyds Threads: https://www.threads.net/@conorosullyds Twitter: / conorosullyds Website: https://adataodyssey.com/ 🚀 Chapters 🚀 00:00 Introduction 01:37 What are model agnostic methods? 02:48 Global v.s. local methods 04:43 Permutations v.s. surrogate models 05:53 Benefits and limitations