Title :
Experimental study of the interplay of channel and network coding in low power sensor applications
Author :
Angelopoulos, Georgios ; Paidimarri, A. ; Chandrakasan, Anantha P. ; Medard, Muriel
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., MIT, Cambridge, MA, USA
Abstract :
In this paper, we evaluate the performance of random linear network coding (RLNC) in low data rate indoor sensor applications operating in the ISM frequency band. We also investigate the results of its synergy with forward error correction (FEC) codes at the PHY-layer in a joint channel-network coding (JCNC) scheme. RLNC is an emerging coding technique which can be used as a packet-level erasure code, usually implemented at the network layer, which increases data reliability against channel fading and severe interference, while FEC codes are mainly used for correction of random bit errors within a received packet. The hostile wireless environment that low power sensors usually operate in, with significant interference from nearby networks, motivates us to consider a joint coding scheme and examine the applicability of RLNC as an erasure code in such a coding structure. Our analysis and experiments are performed using a custom low power sensor node, which integrates on-chip a low-power 2.4 GHz transmitter and an accelerator implementing a multi-rate convolutional code and RLNC, in a typical office environment. According to measurement results, RLNC of code rate 4/8 can provide an effective SNR improvement of about 3.4 dB, outperforming a PHY-layer FEC code of the same code rate, at a PER of 10-2. In addition, RLNC performs very well when used in conjunction with a PHY-layer FEC code as a JCNC scheme, offering an overall coding gain of 5.6 dB.
Keywords :
channel coding; convolutional codes; error statistics; fading channels; forward error correction; linear codes; low-power electronics; network coding; random codes; FEC codes; ISM frequency band; JCNC scheme; PHY-layer FEC code; RLNC; SNR improvement; channel coding; channel fading; coding gain; coding structure; coding technique; custom low power sensor node; data reliability; forward error correction codes; hostile wireless environment; joint channel-network coding scheme; joint coding scheme; low data rate indoor sensor applications; low power sensor applications; low power sensors; low-power transmitter; multirate convolutional code; network layer; office environment; packet-level erasure code; random bit errors; random linear network coding; same code rate; Encoding; Forward error correction; Gain; Network coding; Signal to noise ratio; Wireless communication; Wireless sensor networks;
Conference_Titel :
Communications (ICC), 2013 IEEE International Conference on
Conference_Location :
Budapest
DOI :
10.1109/ICC.2013.6655396