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Published in: Telecommunication Systems 1/2017

29-08-2016

Evaluation of mixed permutation codes in PLC channels, using Hamming distance profile

Authors: Kehinde Ogunyanda, Ayokunle D. Familua, Theo G. Swart, Hendrik C. Ferreira, Ling Cheng

Published in: Telecommunication Systems | Issue 1/2017

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Abstract

We report a new concept involving an adaptive mixture of different sets of permutation codes (PC) in a single DPSK–OFDM modulation scheme. Since this scheme is robust and the algorithms involved are simple, it is a good candidate for implementation for OFDM-based power line communication (PLC) systems. By using a special and easy concept called Hamming distance profile, as a comparison tool, we are able to showcase the strength of the new PC scheme over other schemes reported in literature, in handling the incessant noise types associated with PLC channels. This prediction tool is also useful for selecting an efficient PC codebook out of a number of similar ones.

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Literature
1.
go back to reference Ferreira, H. C., Grové, H. M., Hooijen, O., & Vinck, A. J. H. (2001). Power line communication. Wiley Encyclopedia of Electrical and Electronics Engineering. Ferreira, H. C., Grové, H. M., Hooijen, O., & Vinck, A. J. H. (2001). Power line communication. Wiley Encyclopedia of Electrical and Electronics Engineering.
2.
go back to reference Papilaya, V. N., Shongwe, T., Vinck, A. J. H., & Ferreira, H. C. (2012). Selected subcarriers QPSK-OFDM transmission schemes to combat frequency disturbances. IEEE International Symposium on Power Line Communications and Its Application (pp. 200–205). Papilaya, V. N., Shongwe, T., Vinck, A. J. H., & Ferreira, H. C. (2012). Selected subcarriers QPSK-OFDM transmission schemes to combat frequency disturbances. IEEE International Symposium on Power Line Communications and Its Application (pp. 200–205).
3.
go back to reference Vinck, A. J. H., & Häring, J. (2000). Coding and modulation for power-line communications, IEEE International Symposium on Power Line Communications and Its Application (pp. 265–271). Vinck, A. J. H., & Häring, J. (2000). Coding and modulation for power-line communications, IEEE International Symposium on Power Line Communications and Its Application (pp. 265–271).
4.
go back to reference CENELEC (1992). 50065 part 1: Signalling on low voltage electrical installations in the frequency range 3 kHz to 148.5 kHz, general requirments, frequency bands and electromagnetic disturbances. CENELEC (1992). 50065 part 1: Signalling on low voltage electrical installations in the frequency range 3 kHz to 148.5 kHz, general requirments, frequency bands and electromagnetic disturbances.
5.
go back to reference CENELEC (2008). PRIME Technology, whitepaper: PHY, MAC and Convergence layers, (21st Ed.). CENELEC (2008). PRIME Technology, whitepaper: PHY, MAC and Convergence layers, (21st Ed.).
6.
go back to reference eRDF (2013). PLC G3 Physical Layer Specification. eRDF (2013). PLC G3 Physical Layer Specification.
7.
go back to reference Juwono, F. H., Guo, Q., Huang, D., & Wong, K. P. (2014). Deep clipping for impulsive noise mitigation in OFDM-based power-line communications. IEEE Transactions on Power Delivery, 29(3), 1335–1343.CrossRef Juwono, F. H., Guo, Q., Huang, D., & Wong, K. P. (2014). Deep clipping for impulsive noise mitigation in OFDM-based power-line communications. IEEE Transactions on Power Delivery, 29(3), 1335–1343.CrossRef
8.
go back to reference Juwono, F. H., Guo, Q., Huang, D., & Wong, K. P (2013). Joint peak amplitude and impulsive noise clippings in OFDM-based power line communications. Asia-Pacific Conference on Communications (pp. 567–571). Juwono, F. H., Guo, Q., Huang, D., & Wong, K. P (2013). Joint peak amplitude and impulsive noise clippings in OFDM-based power line communications. Asia-Pacific Conference on Communications (pp. 567–571).
9.
go back to reference Al-Mawali, K. S., & Hussain, Z. M. (2009). Adaptive-threshold clipping for impulsive noise reduction in OFDM-based power line communications. International Conference on Advanced Technologies for Communications (pp. 43–48). Al-Mawali, K. S., & Hussain, Z. M. (2009). Adaptive-threshold clipping for impulsive noise reduction in OFDM-based power line communications. International Conference on Advanced Technologies for Communications (pp. 43–48).
10.
go back to reference Salehi, V., Mohamed, A., Mazloomzadeh, A., & Mohammed, O. A. (2012). Laboratory-based smart power system, part II: Control, monitoring, and protection. IEEE Transactions on Smart Grid, 3(3), 1405–1417.CrossRef Salehi, V., Mohamed, A., Mazloomzadeh, A., & Mohammed, O. A. (2012). Laboratory-based smart power system, part II: Control, monitoring, and protection. IEEE Transactions on Smart Grid, 3(3), 1405–1417.CrossRef
11.
go back to reference Zhang, P., Li, F., & Bhatt, N. (2010). Next-generation monitoring, analysis, and control for the future smart control center. IEEE Transactions on Smart Grid, 1(2), 186–192.CrossRef Zhang, P., Li, F., & Bhatt, N. (2010). Next-generation monitoring, analysis, and control for the future smart control center. IEEE Transactions on Smart Grid, 1(2), 186–192.CrossRef
12.
go back to reference Cheng, L., & Ferreira, H. C. (2012). Time-diversity permutation coding scheme for narrow-band power-line channels. In IEEE International Symposium on Power Line Communications and Its Application (pp. 120–125). Cheng, L., & Ferreira, H. C. (2012). Time-diversity permutation coding scheme for narrow-band power-line channels. In IEEE International Symposium on Power Line Communications and Its Application (pp. 120–125).
13.
go back to reference Cheng, L., Swart, T. G, & Ferreira, H. C. Adaptive rateless permutation coding scheme for OFDM-based PLC. (2013). In IEEE International Symposium on Power Line Communications and Its Application (pp. 242–246). Cheng, L., Swart, T. G, & Ferreira, H. C. Adaptive rateless permutation coding scheme for OFDM-based PLC. (2013). In IEEE International Symposium on Power Line Communications and Its Application (pp. 242–246).
14.
go back to reference Swart, T. G., & Ferreira, H. C. (2007). Decoding distance-preserving permutation codes for power-line communications. In IEEE AFRICON (pp. 1–7). Swart, T. G., & Ferreira, H. C. (2007). Decoding distance-preserving permutation codes for power-line communications. In IEEE AFRICON (pp. 1–7).
15.
go back to reference Ferreira, H. C., Vinck, A. J. H., Swart, T. G., & de Beer, I. (2005). Permutation trellis codes. IEEE Transactions on Communications, 53(11), 1782–1789.CrossRef Ferreira, H. C., Vinck, A. J. H., Swart, T. G., & de Beer, I. (2005). Permutation trellis codes. IEEE Transactions on Communications, 53(11), 1782–1789.CrossRef
16.
go back to reference Dukes, P. J. (2012). Coding with injections. Designs, Codes and Cryptography, 65(3), 213–222.CrossRef Dukes, P. J. (2012). Coding with injections. Designs, Codes and Cryptography, 65(3), 213–222.CrossRef
17.
go back to reference Huczynska, S., & Mullen, G. L. (2006). Frequency permutation arrays. Journal of Combinatorial Designs, 14(6), 463–478.CrossRef Huczynska, S., & Mullen, G. L. (2006). Frequency permutation arrays. Journal of Combinatorial Designs, 14(6), 463–478.CrossRef
18.
go back to reference Hunt, F. H., Perkins, S., & Smith, D. H. (2015). Decoding mixed errors and erasures in permutation codes. Designs, Codes and Cryptography, 74(2), 481–493.CrossRef Hunt, F. H., Perkins, S., & Smith, D. H. (2015). Decoding mixed errors and erasures in permutation codes. Designs, Codes and Cryptography, 74(2), 481–493.CrossRef
19.
go back to reference Bailey, R. F. (2009). Error-correcting codes from permutation groups. Discrete Mathematics, 309(13), 4253–4265.CrossRef Bailey, R. F. (2009). Error-correcting codes from permutation groups. Discrete Mathematics, 309(13), 4253–4265.CrossRef
20.
go back to reference Chee, Y. M., Kiah, H. M., Purkayastha, P., & Wang, C. (2012). Importance of symbol equity in coded modulation for power line communications. IEEE International Symposium on Information Theory (pp. 661–665). Chee, Y. M., Kiah, H. M., Purkayastha, P., & Wang, C. (2012). Importance of symbol equity in coded modulation for power line communications. IEEE International Symposium on Information Theory (pp. 661–665).
21.
go back to reference Ogunyanda, K., Familua, A. D., Swart, T. G., Ferreira, H. C., & Cheng, L. (2014). Permutation coding with differential quinary phase shift keying for power line communication. IEEE PES Innovative Smart Grid Technology European Conference (pp. 1–6). Ogunyanda, K., Familua, A. D., Swart, T. G., Ferreira, H. C., & Cheng, L. (2014). Permutation coding with differential quinary phase shift keying for power line communication. IEEE PES Innovative Smart Grid Technology European Conference (pp. 1–6).
22.
go back to reference Barta, J., Montemanni, R., & Smith, D. H. (2014). A branch and bound approach to permutation codes. IEEE International Conference on Infromation and Communication Technology (pp. 187–192). Barta, J., Montemanni, R., & Smith, D. H. (2014). A branch and bound approach to permutation codes. IEEE International Conference on Infromation and Communication Technology (pp. 187–192).
23.
go back to reference Vinck, A. J. H. (2000). Coded modulation for power line communications. AEU International Journal of Electronics and Communications, 54(1), 45–49. Vinck, A. J. H. (2000). Coded modulation for power line communications. AEU International Journal of Electronics and Communications, 54(1), 45–49.
24.
go back to reference Deza, M., & Vanstone, S. A. (1978). Bounds for permutation arrays. Journal of Statistical Planning and Inference, 2(2), 197–209.CrossRef Deza, M., & Vanstone, S. A. (1978). Bounds for permutation arrays. Journal of Statistical Planning and Inference, 2(2), 197–209.CrossRef
25.
go back to reference Wadayama, T., & Hagiwara, M. (2012). LP-decodable permutation codes based on linearly constrained permutation matrices. IEEE Transactions on Information Theory, 58(8), 5454–5470.CrossRef Wadayama, T., & Hagiwara, M. (2012). LP-decodable permutation codes based on linearly constrained permutation matrices. IEEE Transactions on Information Theory, 58(8), 5454–5470.CrossRef
26.
go back to reference Kong, J., & Hagiwara, M. (2012). Comparing Euclidean, Kendall tau metrics toward extending LP decoding. IEEE International Symposium on Information Theory and its Applications (pp. 91–95). Kong, J., & Hagiwara, M. (2012). Comparing Euclidean, Kendall tau metrics toward extending LP decoding. IEEE International Symposium on Information Theory and its Applications (pp. 91–95).
27.
go back to reference Klove, T., Lin, T. T., Tsai, S. C., & Tzeng, W. G. (2010). Permutation arrays under the Chebyshev distance. IEEE Transactions on Information Theory, 56(6), 2611–2617.CrossRef Klove, T., Lin, T. T., Tsai, S. C., & Tzeng, W. G. (2010). Permutation arrays under the Chebyshev distance. IEEE Transactions on Information Theory, 56(6), 2611–2617.CrossRef
28.
go back to reference Gologlu, F., Lember, J., Riet, A. E., & Skachek, V. (2015). New bounds for permutation codes in Ulam metric. IEEE International Symposium on Information Theory and its Applications (pp. 1726–1730). Gologlu, F., Lember, J., Riet, A. E., & Skachek, V. (2015). New bounds for permutation codes in Ulam metric. IEEE International Symposium on Information Theory and its Applications (pp. 1726–1730).
29.
go back to reference Swart, T. G. (2006). Distance-preserving mappings and trellis codes with permutation sequences. Ph.D. dissertation, University of Johannesburg, Johannesburg. Swart, T. G. (2006). Distance-preserving mappings and trellis codes with permutation sequences. Ph.D. dissertation, University of Johannesburg, Johannesburg.
30.
go back to reference Swart, T. G., de Beer, I., & Ferreira, H. C. (2005). On the distance optimality of permutation mappings. IEEE International Symposium on Information Theory (pp. 1068–1072). Swart, T. G., de Beer, I., & Ferreira, H. C. (2005). On the distance optimality of permutation mappings. IEEE International Symposium on Information Theory (pp. 1068–1072).
31.
go back to reference Sklar, B., & Grant, P. M. (1988). Digital communications: Fundamentals and applications. Englewood Cliffs: Prentice Hall. Sklar, B., & Grant, P. M. (1988). Digital communications: Fundamentals and applications. Englewood Cliffs: Prentice Hall.
32.
go back to reference Alexandre, G. A., Guido, M., & Sergio, B. (2001). A new approach to the construction of high-rate convolutional codes. IEEE Communications Letters, 5(11), 453–455.CrossRef Alexandre, G. A., Guido, M., & Sergio, B. (2001). A new approach to the construction of high-rate convolutional codes. IEEE Communications Letters, 5(11), 453–455.CrossRef
33.
go back to reference Ucha-Filho, B. F., Souza, R. D., Pimentel, C., & Jar, M. (2006). Further results on convolutional codes based on a minimal trellis complexity measure. IEEE International Telecommunications Symposium (pp. 123–128). Ucha-Filho, B. F., Souza, R. D., Pimentel, C., & Jar, M. (2006). Further results on convolutional codes based on a minimal trellis complexity measure. IEEE International Telecommunications Symposium (pp. 123–128).
34.
go back to reference Bian, Y., Popplewell, A., & O’Reilly, J. J. (1994). New very high rate punctured convolutional codes. Electronics Letters, 30(14), 1119–1120.CrossRef Bian, Y., Popplewell, A., & O’Reilly, J. J. (1994). New very high rate punctured convolutional codes. Electronics Letters, 30(14), 1119–1120.CrossRef
35.
go back to reference Viterbi, A. J. (1971). Convolutional codes and their performance in communication systems. IEEE Transactions on Communications Technology, 19(5), 751–772.CrossRef Viterbi, A. J. (1971). Convolutional codes and their performance in communication systems. IEEE Transactions on Communications Technology, 19(5), 751–772.CrossRef
36.
go back to reference Guftaar, A. S. S. (2007). Computation of the distance spectrum of convolutional codes and the delay spectrum of a network. Semester Project, Jacobs University Bremen, Bremen. Guftaar, A. S. S. (2007). Computation of the distance spectrum of convolutional codes and the delay spectrum of a network. Semester Project, Jacobs University Bremen, Bremen.
37.
go back to reference Bellare, M. (1997). A note on negligible functions. Technical Report CS97-529. San Diego: University of California. Bellare, M. (1997). A note on negligible functions. Technical Report CS97-529. San Diego: University of California.
39.
go back to reference Courant, J., Daubignard, M., Ene, C., Lafourcade, P., & Lakhnech, Y. (2011). Automated proofs for asymmetric encryption. Journal of Automated Reasoning on Computer Security, 46(3–4), 261–291.CrossRef Courant, J., Daubignard, M., Ene, C., Lafourcade, P., & Lakhnech, Y. (2011). Automated proofs for asymmetric encryption. Journal of Automated Reasoning on Computer Security, 46(3–4), 261–291.CrossRef
40.
go back to reference Katz, J., & Lindell, Y. (2007). Introduction to modern cryptography: Principles and protocols. illustrated (Ed.). Taylor & Francis. Katz, J., & Lindell, Y. (2007). Introduction to modern cryptography: Principles and protocols. illustrated (Ed.). Taylor & Francis.
41.
go back to reference Riegelman, R. (2004). Studying a study and testing a test: How to read the medical evidence (5th ed.). Philadelphia, PA: Lippincott Williams & Wilkins. Riegelman, R. (2004). Studying a study and testing a test: How to read the medical evidence (5th ed.). Philadelphia, PA: Lippincott Williams & Wilkins.
43.
go back to reference Johnson, R., & Kuby, P. (2011). Elementary statistics, student (Ed.). Cengage Learning. Johnson, R., & Kuby, P. (2011). Elementary statistics, student (Ed.). Cengage Learning.
44.
go back to reference Ogunyanda, K., Familua, A. D., Swart, T. G., Ferreira, H. C., & Cheng, L. (2014). Adaptive permutation coded differential OFDM system for power line communications. IEEE International Conference on Adaptive Science & Technology (pp. 1–7). Ogunyanda, K., Familua, A. D., Swart, T. G., Ferreira, H. C., & Cheng, L. (2014). Adaptive permutation coded differential OFDM system for power line communications. IEEE International Conference on Adaptive Science & Technology (pp. 1–7).
45.
go back to reference Ogunyanda, K., Familua, A. D., Swart, T. G., Ferreira, H. C., & Cheng, L. (2014). Evaluation and implementation of cyclic permutation coding for power line communications. IEEE International Conference on Adaptive Science & Technology (pp. 1–7). Ogunyanda, K., Familua, A. D., Swart, T. G., Ferreira, H. C., & Cheng, L. (2014). Evaluation and implementation of cyclic permutation coding for power line communications. IEEE International Conference on Adaptive Science & Technology (pp. 1–7).
46.
go back to reference Oh, M., & Sweeney, P. (1999). Low complexity soft-decision sequential decoding using hybrid permutation for Reed-Solomon codes. IMA International Conference on Cryptography and Coding (pp. 163–172). Oh, M., & Sweeney, P. (1999). Low complexity soft-decision sequential decoding using hybrid permutation for Reed-Solomon codes. IMA International Conference on Cryptography and Coding (pp. 163–172).
47.
go back to reference Singh, A. (2010). A hybrid permutation-coded evolutionary algorithm for the early/tardy scheduling problem. Asia-Pacific Journal of Operational Research, 27(6), 713–725.CrossRef Singh, A. (2010). A hybrid permutation-coded evolutionary algorithm for the early/tardy scheduling problem. Asia-Pacific Journal of Operational Research, 27(6), 713–725.CrossRef
Metadata
Title
Evaluation of mixed permutation codes in PLC channels, using Hamming distance profile
Authors
Kehinde Ogunyanda
Ayokunle D. Familua
Theo G. Swart
Hendrik C. Ferreira
Ling Cheng
Publication date
29-08-2016
Publisher
Springer US
Published in
Telecommunication Systems / Issue 1/2017
Print ISSN: 1018-4864
Electronic ISSN: 1572-9451
DOI
https://doi.org/10.1007/s11235-016-0224-9

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