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Efficient data delivery in dense reader environment of passive sensor network

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Abstract

Wireless Sensor Network (WSN) is a self-organizing network which is mostly employed in industrial scale. In this network, there is random dispersion of nodes in order to sense diverse range of parameters. The main objective of this research paper is to scrutinize the design of Wireless Surface Acoustic Wave (SAW) Sensor Network (WSSN). Passive SAW sensor is a ridged sensor which is best suited to monitor harsh environmental condition. It works in a dense reader environment for stable communication because it has a narrow connectivity radius. In this research paper, the viability analysis has been performed, utilizing WirelessHART (WH) connectivity protocol, by gauging the operation of WSSN with simulator and emulator in aggregation, in order to support the practicality of WSSN. The results have shown that WH can be relied upon and implemented in a Dense Reader Environment (DRE) for commercial applications. The analysis has also showed the efficiency of WH in rugged and harsh environments. However, WH is not built to operate particularly in DRE. Through our study, a distinctive anti-collision algorithm, NFRA-C is proposed, which is in line with protocols of the WSSN and WH. NFRA-C provides noise free connectivity in WSSN as compared to other protocols. A power proficient standard (GREEN protocol) with capabilities of network coding is analyzed for WSSN. GREEN protocol even works in DRE producing high packet transmission percentage because the protocol arrangement is used with the network coding and retransmission request capabilities.

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References

  • Baroudi U, Bin-Yahya M, Alshammari M, Yaqoub U (2018) Ticket-based QoS routing optimization using genetic algorithm for WSN applications in smart grid. J Ambient Intell Humaniz Comput 10:1325–1338. https://doi.org/10.1007/s12652-018-0906-0

    Article  Google Scholar 

  • Bartolomeu P, Alam M, Ferreira J, Fonseca J (2016) Survey on low power real-time wireless MAC protocols. J Ambient Intell Humaniz Comput 75:293–316

    Google Scholar 

  • Chen D, Nixon M, Han S, Mok AK, Zhu X (2014) WirelessHART and IEEE 802.15. 4e. In: 2014 IEEE international conference on industrial technology (icit), IEEE, pp 760–765

  • Di Pietrantonio F, Cannatà D, Benetti M, Verona E, Varriale A, Staiano M, D’Auria S (2013) Detection of odorant molecules via surface acoustic wave biosensor array based on odorant-binding proteins. Biosens Bioelectron 41:328–334

    Article  Google Scholar 

  • Faruque J, Helmy A (2003) Gradient-based routing in sensor networks ACM SIGMOBILE. Mob Comput Commun Rev 7:50–52

    Article  Google Scholar 

  • Hartmann CS (2002) A global SAW ID tag with large data capacity. In: Proc. IEEE International Ultrasonics Symposium, pp 65–69

  • Jiang D, Xu Z, Li W, Chen Z (2015) Network coding-based energy-efficient multicast routing algorithm for multi-hop wireless networks J Syst Software 104:152–165

    Google Scholar 

  • Li Z, Jones Y, Hossenlopp J, Cernosek R, Josse F (2005) Analysis of liquid-phase chemical detection using guided shear horizontal-surface acoustic wave sensors. Anal Chem 77:4595–4603

    Article  Google Scholar 

  • Nawaz F, Jeoti V (2014) SAW sensor read range limitations and perspectives. Wirel Netw 20:2581–2587

    Article  Google Scholar 

  • Nawaz F, Jeoti V (2015) NFRA-C, neighbor friendly reader to reader anti-collision protocol with counters for dense reader environments. J Ambient Intell Humaniz Comput 49:60–67

    Google Scholar 

  • Nawaz F, Jeoti V (2016a) GREEN protocol: gradient based energy efficient routing with network coding capacity. Telecommun Syst 62:135–147

    Article  Google Scholar 

  • Nawaz F, Jeoti V (2016b) Performance assessment of WirelessHART technology for its implementation in dense reader environment. Computing 98:257–277

    Article  MathSciNet  Google Scholar 

  • Peng Y, Song Q, Yu Y, Wang F (2014) Fault-tolerant routing mechanism based on network coding in wireless mesh networks. J Ambient Intell Humaniz Comput 37:259–272

    Google Scholar 

  • Plessky V, Reindl L (2010) Review on SAW RFID tags. IEEE Trans Ultrason Ferroelectr Freq Control 57:654–668

    Article  Google Scholar 

  • Preeth SKSL, Dhanalakshmi R, Kumar R, Shakeel PM (2018) An adaptive fuzzy rule based energy efficient clustering and immune-inspired routing protocol for WSN-assisted IoT system. J Ambient Intell Humaniz Comput. https://doi.org/10.1007/s12652-018-1154-z

    Article  Google Scholar 

  • Rai Bellipady S, Shetty SM, Airbail H (2019) Quality of information analysis in WSN: an application in BASN. J Ambient Intell Humaniz Comput. https://doi.org/10.1007/s12652-019-01362-7

    Article  Google Scholar 

  • Reindl L, Pohl A, Scholl G, Weigel R (2001) SAW-based radio sensor systems. IEEE Sens J 1:69–78

    Article  Google Scholar 

  • Shen B, Yang P-q, Liu X-L, Zhang H-q, Cao S-w (2018) Fabrication and characterizations of SAW methane sensor based on cryptophane-E membrane. J Ambient Intell Humaniz Comput. https://doi.org/10.1007/s12652-018-0982-1

    Article  Google Scholar 

  • Silva D, Mendes JC, Pereira AB, Gégot F, Alves LN (2017) Measuring torque and temperature in a rotating shaft using commercial SAW sensors. Sensors 17:1547

    Article  Google Scholar 

  • Singh SK, Kumar P (2019) A comprehensive survey on trajectory schemes for data collection using mobile elements in WSNs. J Ambient Intell Humaniz Comput. https://doi.org/10.1007/s12652-019-01268-4

    Article  Google Scholar 

  • Yang Z, Li M, Lou W (2011) R-Code: Network coding-based reliable broadcast in wireless mesh networks. Ad Hoc Netw 9:788–798

    Article  Google Scholar 

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Correspondence to Faiza Nawaz.

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Nawaz, F., Jeoti, V. Efficient data delivery in dense reader environment of passive sensor network. J Ambient Intell Human Comput 11, 3707–3715 (2020). https://doi.org/10.1007/s12652-019-01566-x

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