Ellora: Exploring Low-Power OFDM-based Radar Processors using Approximate Computing
In recent times, orthogonal frequency-division multiplexing (OFDM)-based radar has gained wide acceptance given its applicability in joint radar-communication systems. However, realizing such a system on hardware poses a huge area and power bottleneck given its complexity. Therefore it has become ev...
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Zusammenfassung: | In recent times, orthogonal frequency-division multiplexing (OFDM)-based
radar has gained wide acceptance given its applicability in joint
radar-communication systems. However, realizing such a system on hardware poses
a huge area and power bottleneck given its complexity. Therefore it has become
ever-important to explore low-power OFDM-based radar processors in order to
realize energy-efficient joint radar-communication systems targeting edge
devices. This paper aims to address the aforementioned challenges by exploiting
approximations on hardware for early design space exploration (DSE) of
trade-offs between accuracy, area and power. We present Ellora, a DSE framework
for incorporating approximations in an OFDM radar processing pipeline. Ellora
uses pairs of approximate adders and multipliers to explore design points
realizing energy-efficient radar processors. Particularly, we incorporate
approximations into the block involving periodogram based estimation and report
area, power and accuracy levels. Experimental results show that at an average
accuracy loss of 0.063% in the positive SNR region, we save 22.9% of on-chip
area and 26.2% of power. Towards achieving the area and power statistics, we
design a fully parallel Inverse Fast Fourier Transform (IFFT) core which acts
as a part of periodogram based estimation and approximate the addition and
multiplication operations in it. The aforementioned results show that Ellora
can be used in an integrated way with various other optimization methods for
generating low-power and energy-efficient radar processors. |
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DOI: | 10.48550/arxiv.2312.00176 |