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AuthorHassija, Vikas
AuthorBatra, Siddharth
AuthorChamola, Vinay
AuthorAnand, Tanmay
AuthorGoyal, Poonam
AuthorGoyal, Navneet
AuthorGuizani, Mohsen
Available date2022-10-30T20:36:31Z
Publication Date2021-08-01
Publication NameAd Hoc Networks
Identifierhttp://dx.doi.org/10.1016/j.adhoc.2021.102537
CitationHassija, V., Batra, S., Chamola, V., Anand, T., Goyal, P., Goyal, N., & Guizani, M. (2021). A blockchain and deep neural networks-based secure framework for enhanced crop protection. Ad Hoc Networks, 119, 102537.‏
ISSN15708705
URIhttps://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=85105874297&origin=inward
URIhttp://hdl.handle.net/10576/35611
AbstractThe problem faced by one farmer can also be the problem of some other farmer in other regions. Providing information to farmers and connecting them has always been a challenge. Crowdsourcing and community building are considered as useful solutions to these challenges. However, privacy concerns and inactivity of users can make these models inefficient. To tackle these challenges, we present a cost-efficient and blockchain-based secure framework for building a community of farmers and crowdsourcing the data generated by them to help the farmers’ community. Apart from ensuring privacy and security of data, a revenue model is also incorporated to provide incentives to farmers. These incentives would act as a motivating factor for the farmers to willingly participate in the process. Through integration of a deep neural network-based model to our proposed framework, prediction of any abnormalities present within the crops and their predicted possible solutions would be much more coherent. The simulation results demonstrate that the prediction of plant pathology model is highly accurate.
Languageen
PublisherElsevier B.V.
SubjectBlockchain
Farmers
Neural networks
Plant pathology
Smart contract
TitleA blockchain and deep neural networks-based secure framework for enhanced crop protection
TypeArticle
Volume Number119


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