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Why Analog-to-Information Converters Suffer in High-Bandwidth Sparse Signal Applications.

, , , and . IEEE Trans. on Circuits and Systems, 60-I (9): 2273-2284 (2013)

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A signal-agnostic compressed sensing acquisition system for wireless and implantable sensors., , and . CICC, page 1-4. IEEE, (2010)Analysis and demonstration of MEM-relay power gating., , , , , , , , , and 3 other author(s). CICC, page 1-4. IEEE, (2010)A low-power area-efficient switching scheme for charge-sharing DACs in SAR ADCs., , and . CICC, page 1-4. IEEE, (2010)Demonstration of Integrated Micro-Electro-Mechanical Relay Circuits for VLSI Applications., , , , , , , , , and 3 other author(s). J. Solid-State Circuits, 46 (1): 308-320 (2011)Relays do not leak: CMOS does., , , , , , , and . DAC, page 127:1-127:4. ACM, (2013)Design and Analysis of a Hardware-Efficient Compressed Sensing Architecture for Data Compression in Wireless Sensors., , and . J. Solid-State Circuits, 47 (3): 744-756 (2012)Integrated circuit design with NEM relays., , , , , and . ICCAD, page 750-757. IEEE Computer Society, (2008)A 7.5Gb/s 10-Tap DFE Receiver with First Tap Partial Response, Spectrally Gated Adaptation, and 2nd-Order Data-Filtered CDR., , , , , , , , , and 9 other author(s). ISSCC, page 228-599. IEEE, (2007)Scaling and evaluation of carbon nanotube interconnects for VLSI applications., , , and . Nano-Net, page 24. ICST/ACM, (2007)Why Analog-to-Information Converters Suffer in High-Bandwidth Sparse Signal Applications., , , and . IEEE Trans. on Circuits and Systems, 60-I (9): 2273-2284 (2013)