Multi-Rate Control over AWGN Channels via Analog Joint Source-Channel Coding
September 25, 2016 ยท Declared Dead ยท ๐ IEEE Conference on Decision and Control
"No code URL or promise found in abstract"
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Authors
Anatoly Khina, Gustav M. Pettersson, Victoria Kostina, Babak Hassibi
arXiv ID
1609.07715
Category
eess.SY: Systems & Control (EE)
Cross-listed
cs.IT
Citations
10
Venue
IEEE Conference on Decision and Control
Last Checked
1 month ago
Abstract
We consider the problem of controlling an unstable plant over an additive white Gaussian noise (AWGN) channel with a transmit power constraint, where the signaling rate of communication is larger than the sampling rate (for generating observations and applying control inputs) of the underlying plant. Such a situation is quite common since sampling is done at a rate that captures the dynamics of the plant and which is often much lower than the rate that can be communicated. This setting offers the opportunity of improving the system performance by employing multiple channel uses to convey a single message (output plant observation or control input). Common ways of doing so are through either repeating the message, or by quantizing it to a number of bits and then transmitting a channel coded version of the bits whose length is commensurate with the number of channel uses per sampled message. We argue that such "separated source and channel coding" can be suboptimal and propose to perform joint source-channel coding. Since the block length is short we obviate the need to go to the digital domain altogether and instead consider analog joint source-channel coding. For the case where the communication signaling rate is twice the sampling rate, we employ the Archimedean bi-spiral-based Shannon-Kotel'nikov analog maps to show significant improvement in stability margins and linear-quadratic Gaussian (LQG) costs over simple schemes that employ repetition.
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