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Audio Deepfake Perceptions in College Going Populations

2021-12-06 · Gabrielle Watson, Zahra Khanjani, Vandana P. Janeja

Deepfake is content or material that is generated or manipulated using AI methods, to pass off as real. There are four different deepfake types: audio, video, image and text. In this research we focus on audio deepfakes and how people perceive it. There are several audio deepfake generation frameworks, but we chose MelGAN which is a non-autoregressive and fast audio deepfake generating framework, requiring fewer parameters. This study tries to assess audio deepfake perceptions among college students from different majors. This study also answers the question of how their background and major can affect their perception towards AI generated deepfakes. We also analyzed the results based on different aspects of: grade level, complexity of the grammar used in the audio clips, length of the audio clips, those who knew the term deepfakes and those who did not, as well as the political angle. It is interesting that the results show when an audio clip has a political connotation, it can affect what people think about whether it is real or fake, even if the content is fairly similar. This study also explores the question of how background and major can affect perception towards deepfakes.

📄 PDF Abstract BibTeX arXiv:2112.03351

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Methods 이 논문이 사용한 방법론

Dilated Convolution 설명 없음
Average Pooling 설명 없음
Residual Connection 설명 없음
GAN Hinge Loss The GAN Hinge Loss is a hinge loss based loss function for [generative adversarial…
1x1 Convolution A 1 x 1 Convolution is a convolution with some special properties in that it can be used for dimensionality reduction,…
MelGAN Residual Block 설명 없음
Grouped Convolution A Grouped Convolution uses a group of convolutions - multiple kernels per layer - resulting in multiple channel outputs per layer. This leads to wider networks helping a…
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