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Frontiers of Information Technology & Electronic Engineering
Article . 2018 . Peer-reviewed
License: Springer TDM
Data sources: Crossref
https://dx.doi.org/10.48550/ar...
Article . 2017
License: arXiv Non-Exclusive Distribution
Data sources: Datacite
DBLP
Article . 2021
Data sources: DBLP
DBLP
Article . 2022
Data sources: DBLP
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Artificial intelligence and statistics

Authors: Bin Yu; Karl Kumbier;

Artificial intelligence and statistics

Abstract

Artificial intelligence (AI) is intrinsically data-driven. It calls for the application of statistical concepts through human-machine collaboration during generation of data, development of algorithms, and evaluation of results. This paper discusses how such human-machine collaboration can be approached through the statistical concepts of population, question of interest, representativeness of training data, and scrutiny of results (PQRS). The PQRS workflow provides a conceptual framework for integrating statistical ideas with human input into AI products and research. These ideas include experimental design principles of randomization and local control as well as the principle of stability to gain reproducibility and interpretability of algorithms and data results. We discuss the use of these principles in the contexts of self-driving cars, automated medical diagnoses, and examples from the authors' collaborative research.

Country
United States
Keywords

FOS: Computer and information sciences, Artificial intelligence, Computer Science - Artificial Intelligence, Machine Learning (stat.ML), 4006 Communications engineering (for-2020), 4008 Electrical engineering (for-2020), Statistics - Machine Learning, 4008 Electrical Engineering (for-2020), Electrical and Electronic Engineering, Sensors and Digital Hardware (for-2020), Networking and Information Technology R&D (NITRD) (rcdc), 4006 Communications Engineering (for-2020), Bioengineering (rcdc), Statistics, Human-machine collaboration, 40 Engineering (for-2020), 0906 Electrical and Electronic Engineering (for), Artificial Intelligence (cs.AI), 4009 Electronics, Machine Learning and Artificial Intelligence (rcdc), sensors and digital hardware (for-2020)

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    selected citations
    These citations are derived from selected sources.
    This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
    27
    popularity
    This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
    Top 10%
    influence
    This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
    Top 10%
    impulse
    This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
    Top 10%
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selected citations
These citations are derived from selected sources.
This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Citations provided by BIP!
popularity
This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
BIP!Popularity provided by BIP!
influence
This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically).
BIP!Influence provided by BIP!
impulse
This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network.
BIP!Impulse provided by BIP!
27
Top 10%
Top 10%
Top 10%
Green
bronze