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BSDP: Big Sensor Data Preprocessing in Multi-Source Fusion Positioning System Using Compressive Sensing

  • College of Underwater Acoustic Engineering, Harbin Engineering University
  • Utah State University

Research output: Contribution to journalArticlepeer-review

Abstract

A multi-source fusion positioning system (MFPS) adopts a data fusion technique for hybrid positioning. This technique fully utilizes several types of positioning sources in contrast to the conventional positioning methods, which use a single positioning source. Sensor data collection and processing are essential components in MFPSs. A framework for a practical center-server-based MFPS is proposed in this paper. A big sensor data preprocessing (BSDP) scheme, which is composed of data extraction (DE-BSDP), data gathering (DG-BSDP), and data transmission (DT-BSDP), is further proposed under this framework. DE-BSDP attempts to remove useless positioning data from fusion sources. The big sensor data are further compressed in DG-BSDP, in which a compressive sensing technique is adopted to realize data compression before data transmission. After the data gathering phase, the compressed data are transmitted to the fusion center for reconstruction in DT-BSDP. The proposed BSDP method can reduce the data collection amount significantly and improves the data transmission efficiency with a slight reduction on positioning accuracy. Experiments and simulations verify the effectiveness of the proposed BSDP scheme.

Original languageEnglish
Article number8769921
Pages (from-to)8866-8880
Number of pages15
JournalIEEE Transactions on Vehicular Technology
Volume68
Issue number9
DOIs
StatePublished - Sep 2019

Keywords

  • Big sensor data
  • compressive sensing
  • data preprocessing
  • multi-source fusion positioning

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