DocumentCode
1751291
Title
Low-power direct-sequence spread-spectrum modem architecture for distributed wireless sensor networks
Author
Chien, Charles ; Elgorriaga, Igor ; McConaghy, Charles
Author_Institution
Rockwell Sci. Center, Thousand Oaks, CA, USA
fYear
2001
fDate
2001
Firstpage
251
Lastpage
254
Abstract
Emerging CMOS and MEMS technologies enable the implementation of a large number of wireless distributed microsensors that can be easily and rapidly deployed to form highly redundant, self-configuring, and ad hoc sensor networks. To facilitate ease of deployment, these sensors should operate on battery for extended periods of time. A particular challenge in maintaining extended battery lifetime lies in achieving communications with low power. This paper presents a direct-sequence spread-spectrum modem architecture that provides robust communications for wireless sensor networks while dissipating very low power. The modem architecture has been verified in an FPGA implementation that dissipates only 33 mW for both transmission and reception. The implementation can be easily mapped to an ASIC technology with an estimated power performance of less than 1 row
Keywords
CMOS digital integrated circuits; distributed sensors; field programmable gate arrays; low-power electronics; microsensors; modems; radiotelemetry; spread spectrum communication; 1 mW; 33 mW; ASIC technology; DS-SS modem architecture; FPGA implementation; MEMS sensors; battery lifetime; battery operation; direct-sequence spread-spectrum modem; distributed wireless sensor networks; low power. modem architecture; redundant sensor networks; self-configuring sensor networks; wireless distributed microsensors; Application specific integrated circuits; Batteries; CMOS technology; Field programmable gate arrays; Micromechanical devices; Microsensors; Modems; Robustness; Spread spectrum communication; Wireless sensor networks;
fLanguage
English
Publisher
ieee
Conference_Titel
Low Power Electronics and Design, International Symposium on, 2001.
Conference_Location
Huntington Beach, CA
Print_ISBN
1-58113-371-5
Type
conf
DOI
10.1109/LPE.2001.945410
Filename
945410
Link To Document