Explainable and Interpretable Models in Computer Vision and Machine Learning

Hugo Jair Escalante, et al.

Informasi Dasar

21.21.1395
006.3
Buku - Elektronik (E-Book)
4

This book compiles leading research on the development of explainable and interpretable machine learning methods in the context of computer vision and machine learning.

Research progress in computer vision and pattern recognition has led to a variety of modeling techniques with almost human-like performance. Although these models have obtained astounding results, they are limited in their explainability and interpretability: what is the rationale behind the decision made? what in the model structure explains its functioning? Hence, while good performance is a critical required characteristic for learning machines, explainability and interpretability capabilities are needed to take learning machines to the next step to include them in decision support systems involving human supervision.

Subjek

ARTIFICIAL INTELLIGENCE.
 

Katalog

Explainable and Interpretable Models in Computer Vision and Machine Learning
978-3-319-98131-4
299p.: pdf file.; 9 MB
Inggris

Sirkulasi

Rp. 0
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Tidak

Pengarang

Hugo Jair Escalante, et al.
Perorangan
 
 

Penerbit

Springer
New York
2018

Koleksi

Kompetensi

  • CII4Q3 - VISI KOMPUTER
  • CPI4Q3 - VISI KOMPUTER

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