Interpretability of Machine Learning: Recent Advances and Future Prospects
April 30, 2023 ยท Declared Dead ยท ๐ IEEE Multimedia
"No code URL or promise found in abstract"
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Authors
Lei Gao, Ling Guan
arXiv ID
2305.00537
Category
cs.MM: Multimedia
Cross-listed
cs.CY,
cs.LG
Citations
55
Venue
IEEE Multimedia
Last Checked
1 month ago
Abstract
The proliferation of machine learning (ML) has drawn unprecedented interest in the study of various multimedia contents such as text, image, audio and video, among others. Consequently, understanding and learning ML-based representations have taken center stage in knowledge discovery in intelligent multimedia research and applications. Nevertheless, the black-box nature of contemporary ML, especially in deep neural networks (DNNs), has posed a primary challenge for ML-based representation learning. To address this black-box problem, the studies on interpretability of ML have attracted tremendous interests in recent years. This paper presents a survey on recent advances and future prospects on interpretability of ML, with several application examples pertinent to multimedia computing, including text-image cross-modal representation learning, face recognition, and the recognition of objects. It is evidently shown that the study of interpretability of ML promises an important research direction, one which is worth further investment in.
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