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Introduction

Abstract: 

The problem of theory choice can be hard even for a realist but still important even for an instrumentalist. Namely, we can find some cases in which useful truths are underdetermined by the kinds of data we can have access to ethically or practicably, but even an infinity of such data would not remove the underdetermination in question. This talk will address a causal version of the above problem: the problem of inferring causal relations from non-experimental data (which is important for, say, epidemiologists and policy makers). To this causal version of the problem, the now-standard solution proceeds with an assumption about how causation and chance are actually related, an assumption that works simply by ruling out some skeptical scenarios that incur underdetermination. (For those who are familiar with causal Bayesian networks, the assumption I have in mind is the so-called Faithfulness assumption.) The goal of this talk is to show you how the problem can be solved without making such a factual assumption about causation. The crux lies not in the factual, but in the normative, the evaluative, and the mathematical---or so I will argue. The result is a new way of doing formal epistemology and a new class of (learning-theoretic) theorems in statistics and machine learning. 


 Speaker


Hanti Lin is an assistant professor of philosophy at the University of California, Davis. His philosophical work concerns the epistemology of scientific inference. His technical work belongs to the more theoretical areas of machine learning and statistics, such as learning theory and causal discovery/inference.


返回《逻辑学前沿报告——向量空间、信念基础的逻辑》慕课在线视频列表

逻辑学前沿报告——向量空间、信念基础的逻辑课程列表:

向量空间模型的逻辑(On the Logic of Vector Space Models)

-Introduction

-The basic language and logic

-The semantics and belief revision in the vector space model

-Extension, interpretation and application

-讲座内容总结

信念基础的重新审视 (Rethinking Epistemic Logic with Belief Bases)

-Introduction

-A logic of explicit and implicit belief

-Universal Epistemic Model

-Dynamic extensions

-讲座内容总结

STIT理论中的反事实条件句(Counterfactuals in stit with action types)

-Introduction

-Counterfactuals in stit

-Similarity on histories

-讲座内容总结

混合逻辑的推理与完全性(Reasoning and Completeness in Hybrid Logic)

-Introduction

-Syntax, Semantics and Standard Translation

-Hybrid Reasoning

-Completeness

-讲座内容总结

论博弈逻辑(On Game Logic)

-Introduction

-Game logic

-More issues

-讲座内容总结

半真与说谎者 (Half Truth and the Liar)

-Introduction and strict-tolerant

-Absolute adjectives and half truths

-讲座内容总结

归纳学习逻辑(Logics for Inductive Learning)

-Introduction

-Subset Space Logic and Learning Frames

-"Universality" of AGM and the Ockhan Prior

-总结讲座内容

理论选择的难题 —— 一个关于因果推理的案例研究 (The Hard Problem of Theory Choice -- A Case Study of Causal Inference)

-Introduction

-Bayesian Network

-The problem of underdetermination and the old approach to it

-New approach

-讲座内容总结

Introduction笔记与讨论

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