Direct Speech-to-image Translation
April 07, 2020 ยท Declared Dead ยท ๐ IEEE Journal on Selected Topics in Signal Processing
"No code URL or promise found in abstract"
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Authors
Jiguo Li, Xinfeng Zhang, Chuanmin Jia, Jizheng Xu, Li Zhang, Yue Wang, Siwei Ma, Wen Gao
arXiv ID
2004.03413
Category
cs.MM: Multimedia
Cross-listed
cs.SD,
eess.AS
Citations
34
Venue
IEEE Journal on Selected Topics in Signal Processing
Last Checked
2 months ago
Abstract
Direct speech-to-image translation without text is an interesting and useful topic due to the potential applications in human-computer interaction, art creation, computer-aided design. etc. Not to mention that many languages have no writing form. However, as far as we know, it has not been well-studied how to translate the speech signals into images directly and how well they can be translated. In this paper, we attempt to translate the speech signals into the image signals without the transcription stage. Specifically, a speech encoder is designed to represent the input speech signals as an embedding feature, and it is trained with a pretrained image encoder using teacher-student learning to obtain better generalization ability on new classes. Subsequently, a stacked generative adversarial network is used to synthesize high-quality images conditioned on the embedding feature. Experimental results on both synthesized and real data show that our proposed method is effective to translate the raw speech signals into images without the middle text representation. Ablation study gives more insights about our method.
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