2021
DOI: 10.1007/978-3-030-92310-5_60
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MeTGAN: Memory Efficient Tabular GAN for High Cardinality Categorical Datasets

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Cited by 2 publications
(1 citation statement)
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“…It consists of two neural networks that compete with one another: the discriminator, which is trained to distinguish between real and fake data, and the generator, which creates fictitious data. To trick the discriminator, the generator makes adjustments throughout training, which comprises learning to produce fake data that is indistinguishable from the real data [24].…”
Section: Generative Adversarial Network (Gan)mentioning
confidence: 99%
“…It consists of two neural networks that compete with one another: the discriminator, which is trained to distinguish between real and fake data, and the generator, which creates fictitious data. To trick the discriminator, the generator makes adjustments throughout training, which comprises learning to produce fake data that is indistinguishable from the real data [24].…”
Section: Generative Adversarial Network (Gan)mentioning
confidence: 99%