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  5. Background Knowledge Injection for Interpretable Sequence Classification
 
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Background Knowledge Injection for Interpretable Sequence Classification

Author(s)
Gsponer, Severin  
Costabello, Luca  
Van, Chan Le  
Ifrim, Georgiana  
et al.  
Uri
http://hdl.handle.net/10197/12037
Date Issued
2019-09-16
Date Available
2021-03-11T16:17:03Z
Abstract
Sequence classification is the supervised learning task of building models that predict class labels of unseen sequences of symbols. Although accuracy is paramount, in certain scenarios interpretability is a must. Unfortunately, such trade-off is often hard to achieve since we lack human-independent interpretability metrics. We introduce a novel sequence learning algorithm, that combines (i) linear classifiers - which are known to strike a good balance between predictive power and interpretability, and (ii) background knowledge embeddings. We extend the classic subsequence feature space with groups of symbols which are generated by background knowledge injected via word or graph embeddings, and use this new feature space to learn a linear classifier. We also present a new measure to evaluate the interpretability of a set of symbolic features based on the symbol embeddings. Experiments on human activity recognition from wearables and amino acid sequence classification show that our classification approach preserves predictive power, while delivering more interpretable models.
Sponsorship
Science Foundation Ireland
Type of Material
Conference Publication
Subjects

Sequence classificati...

Semantic embeddings

Clustering techniques...

Web versions
http://www.di.uniba.it/~loglisci/NFMCP2019/program.html
Language
English
Status of Item
Peer reviewed
Conference Details
The 8th International New Frontiers in Mining Complex Patterns Workshop 2019, Wùzburg, Germany, 16 September 2019
This item is made available under a Creative Commons License
https://creativecommons.org/licenses/by-nc-nd/3.0/ie/
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2006.14248v1.pdf

Size

414.87 KB

Format

Adobe PDF

Checksum (MD5)

358d1fae523518ae49654e77693017dc

Owning collection
Computer Science Research Collection
Mapped collections
Insight Research Collection

Item descriptive metadata is released under a CC-0 (public domain) license: https://creativecommons.org/public-domain/cc0/.
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