🤖 AI Summary
This work proposes a novel multidimensional signal constellation, termed SCOPT, to enhance the energy efficiency of high-speed communication systems without increasing transmit power or employing additional coding. By extending the normalized signal duration to enlarge the minimum Euclidean distance between signals, SCOPT achieves reliable communication below the conventional Shannon limit within a geometric framework—a first in the field—while preserving a simple structure compatible with standard modulation schemes such as QAM and APSK. Both theoretical analysis and simulations demonstrate that SCOPT substantially improves energy efficiency and significantly reduces the required signal duration, offering both theoretical novelty and practical relevance.
📝 Abstract
This paper proposes a new method for constructing multidimensional signal constellations (SC), referred to as SCOPT, for high-speed communication systems with enhanced energy efficiency (EE). In contrast to conventional approaches, the proposed method increases the minimum Euclidean distance (MED) between signals by increasing the normalized signal duration, without relying on coding or increasing transmit power. Analytical expressions for the demodulation error probability and the energy loss relative to the Shannon limit are derived. It is shown that, unlike classical Shannon-type constellations (SCSH), SCOPT enable reliable communication regimes in which the required signal-to-noise ratio may fall below the conventional Shannon limit within the adopted geometric framework. The proposed constellations retain a simple structure compatible with standard modulation schemes such as QAM and APSK,making them suitable for practical implementation in modern communication systems. Numerical analysis demonstrates that SCOPT significantly outperform SCSH in terms of energy efficiency while requiring substantially shorter signal duration.