Overcoming Intrinsic Losses With a Physical-Transport Cross-Layer Control System for Low-SNR Links
Author
dc.contributor.author
Estévez Montero, Claudio
Author
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Azurdia Meza, César
Author
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Céspedes Umaña, Sandra
Admission date
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2016-01-13T20:36:22Z
Available date
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2016-01-13T20:36:22Z
Publication date
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2015
Cita de ítem
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IEEE Communications Letters, vol. 19, no. 12, December 2015
en_US
Identifier
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DOI: 10.1109/LCOMM.2015.2490672
Identifier
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https://repositorio.uchile.cl/handle/2250/136485
General note
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Artículo de publicación ISI
en_US
Abstract
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Communication over low-SNR environments faces various challenges and data detection designing can be arduous. An aggregative sampling technique with TCP feedback is proposed to transmit in low-SNR channels. The proposed scheme overcomes intrinsic losses by having a physical-transport cross-layer interaction. Samples are aggregated to make a single bit decision. As the quantity of aggregated samples is increased, the bit error rate (BER) is reduced. The transport-layer loss information is fed back to the physical layer to dynamically control the amount of redundancy, therefore, reducing intrinsic loss. Results show that with an SNR of 0 dB the system is able to reach over 10 Mbps with a BER of near 10(-9). It is demonstrated that by implementing the proposed technique it is feasible to reduce the BER by a factor of 10(9) by reducing the effective throughput by a factor of 3. For SNR environments of over -10 dB a BER of 10(-8) is achieved. Performance improvement of 11 dB or more is obtained compared to the analyzed techniques.