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Time After Time:Deep-Q Effect Estimation for Interventions on When and What to do

Title: Time After Time:Deep-Q Effect Estimation for Interventions on When and What to do
Authors: Wald,Yoav; Goldstein,Mark; Efroni,Yonathan; van Amsterdam, Wouter A.C.; Ranganath,Rajesh; Datascience; Cancer
Publication Year: 2025
Subject Terms: Taverne; Language and Linguistics; Computer Science Applications; Education; Linguistics and Language
Description: Problems in fields such as healthcare, robotics, and finance requires reasoning about the value both of what decision or action to take and when to take it. The prevailing hope is that artificial intelligence will support such decisions by estimating the causal effect of policies such as how to treat patients or how to allocate resources over time. However, existing methods for estimating the effect of a policy struggle with irregular time. They either discretize time, or disregard the effect of timing policies. We present a new deep-Q algorithm that estimates the effect of both when and what to do called Earliest Disagreement Q-Evaluation (EDQ). EDQ makes use of recursion for the Q-function that is compatible with flexible sequence models, such as transformers. EDQ provides accurate estimates under standard assumptions. We validate the approach through experiments on survival time and tumor growth tasks.
Document Type: book part
File Description: application/pdf
Language: English
Relation: https://dspace.library.uu.nl/handle/1874/461770
Availability: https://dspace.library.uu.nl/handle/1874/461770
Rights: info:eu-repo/semantics/OpenAccess
Accession Number: edsbas.44BB7EE5
Database: BASE