2020
DOI: 10.1007/978-3-030-47436-2_1
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Adversarial Autoencoder and Multi-Task Semi-Supervised Learning for Multi-stage Process

Abstract: In selection processes, decisions follow a sequence of stages. Early stages have more applicants and general information, while later stages have fewer applicants but specific data. This is represented by a dual funnel structure, in which the sample size decreases from one stage to the other while the information increases. Training classifiers for this case is challenging. In the early stages, the information may not contain distinct patterns to learn, causing underfitting. In later stages, applicants have be… Show more

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