CPSC: Conformal prediction with shrunken centroids for efficient prediction reliability quantification and data augmentation, a case in alternative herbal medicine classification with electronic nose
Li Liu, Xianghao Zhan, Xikai Yang, Xiaoqing Guan, Rumeng Wu, Zhan, Wang, Zhiyuan Luo, You Wang, Guang Li

TL;DR
This paper introduces CPSC, a new conformal prediction framework that improves prediction accuracy and reliability quantification by regularizing class centroids, demonstrated on herbal medicine classification with electronic nose data.
Contribution
The paper proposes CPSC, a novel conformal prediction method that reduces variance and bias, enhances computational efficiency, and improves data augmentation for reliable predictions.
Findings
CPSC outperforms CPKNN in accuracy and computation time.
Data augmentation with CPSC improves prediction robustness.
CPSC provides more balanced class data after augmentation.
Abstract
In machine learning applications, the reliability of predictions is significant for assisted decision and risk control. As an effective framework to quantify the prediction reliability, conformal prediction (CP) was developed with the CPKNN (CP with kNN). However, the conventional CPKNN suffers from high variance and bias and long computational time as the feature dimensionality increases. To address these limitations, a new CP framework-conformal prediction with shrunken centroids (CPSC) is proposed. It regularizes the class centroids to attenuate the irrelevant features and shrink the sample space for predictions and reliability quantification. To compare CPKNN and CPSC, we employed them in the classification of 12 categories of alternative herbal medicine with electronic nose as a case and assessed them in two tasks: 1) offline prediction: the training set was fixed and the accuracy…
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Taxonomy
TopicsAdvanced Chemical Sensor Technologies · Analytical Chemistry and Chromatography
