Abstract:
Deep learning has been recently applied to physical layer processing in digital communication systems in order to improve end-to-end performance. In this work, we introdu...Show MoreMetadata
Abstract:
Deep learning has been recently applied to physical layer processing in digital communication systems in order to improve end-to-end performance. In this work, we introduce a novel deep learning solution for soft bit quantization across wideband channels. Our method is trained end-to-end with quantization-and entropy-aware augmentations to the loss function and is used at inference in conjunction with source coding to achieve near-optimal compression gains over wideband channels. We prove and verify that a proper weight initialization scheme leads to a reduced feature variance, which allows us to use a fixed latent feature quantization scheme. When tested on channel distributions never seen during training, the proposed method achieves a compression gain of up to 10% in the high SNR regime versus previous state-of-the-art methods.
Date of Conference: 10-13 April 2022
Date Added to IEEE Xplore: 16 May 2022
ISBN Information:
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- IEEE Keywords
- Index Terms
- Soft Bit ,
- Deep Learning ,
- Source Code ,
- Distribution Channels ,
- Quantization Scheme ,
- Gain Compression ,
- Digital Communication Systems ,
- Quantum ,
- Random Variables ,
- Deep Neural Network ,
- Hidden Layer ,
- Approximate Entropy ,
- Latent Representation ,
- Codeword ,
- Orthogonal Frequency Division Multiplexing ,
- Compression Rate ,
- Latent Dimensions ,
- Discrete Random Variable ,
- Soft Matrix ,
- Backward Pass ,
- NVIDIA RTX 2080Ti GPU ,
- Low-density Parity-check ,
- Block Error Rate ,
- SNR Values ,
- Arithmetic Coding ,
- Code Repository ,
- Optimal Quantization ,
- Equal Probability
- Author Keywords
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Soft Bit ,
- Deep Learning ,
- Source Code ,
- Distribution Channels ,
- Quantization Scheme ,
- Gain Compression ,
- Digital Communication Systems ,
- Quantum ,
- Random Variables ,
- Deep Neural Network ,
- Hidden Layer ,
- Approximate Entropy ,
- Latent Representation ,
- Codeword ,
- Orthogonal Frequency Division Multiplexing ,
- Compression Rate ,
- Latent Dimensions ,
- Discrete Random Variable ,
- Soft Matrix ,
- Backward Pass ,
- NVIDIA RTX 2080Ti GPU ,
- Low-density Parity-check ,
- Block Error Rate ,
- SNR Values ,
- Arithmetic Coding ,
- Code Repository ,
- Optimal Quantization ,
- Equal Probability
- Author Keywords