Publication | Open Access
Counterfactual Reasoning and Learning Systems
13
Citations
30
References
2012
Year
Artificial IntelligenceEngineeringMachine LearningModel-based ReasoningInteractive SearchIntelligent SystemsCounterfactual ReasoningCausal InferenceInformation RetrievalData SciencePublic HealthCausal ModelCognitive ScienceReasoning SystemPredictive AnalyticsKnowledge DiscoveryLearning AnalyticsComputer ScienceBing Search EngineCausal ReasoningPredictive LearningAutomated ReasoningAd Placement SystemEpistemologyLogical ReasoningAdaptive LearningDecision Science
This work shows how to leverage causal inference to understand the behavior of complex learning systems interacting with their environment and predict the consequences of changes to the system. Such predictions allow both humans and algorithms to select changes that improve both the short-term and long-term performance of such systems. This work is illustrated by experiments carried out on the ad placement system associated with the Bing search engine.
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