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Andreas Kamilaris

Researcher at University of Twente

Publications -  89
Citations -  5039

Andreas Kamilaris is an academic researcher from University of Twente. The author has contributed to research in topics: Web of Things & Computer science. The author has an hindex of 20, co-authored 83 publications receiving 3045 citations. Previous affiliations of Andreas Kamilaris include University of Cyprus & Polytechnic University of Catalonia.

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Deep learning in agriculture: A survey

TL;DR: A survey of 40 research efforts that employ deep learning techniques, applied to various agricultural and food production challenges indicates that deep learning provides high accuracy, outperforming existing commonly used image processing techniques.
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A review on the practice of big data analysis in agriculture

TL;DR: A review of current studies and research works in agriculture which employ the recent practice of big data analysis, showing that the availability of hardware and software, techniques and methods for big dataAnalysis, as well as the increasing openness ofbig data sources, shall encourage more academic research, public sector initiatives and business ventures in the agricultural sector.
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The rise of blockchain technology in agriculture and food supply chains

TL;DR: The findings indicate that blockchain is a promising technology towards a transparent supply chain of food, with many ongoing initiatives in various food products and food-related issues, but many barriers and challenges still exist, which hinder its wider popularity among farmers and systems.
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A review of the use of convolutional neural networks in agriculture

TL;DR: The overall findings indicate that CNN constitutes a promising technique with high performance in terms of precision and classification accuracy, outperforming existing commonly used image-processing techniques.
Proceedings ArticleDOI

Agri-IoT: A semantic framework for Internet of Things-enabled smart farming applications

TL;DR: Agri-IoT is proposed, a semantic framework for IoT-based smart farming applications, which supports reasoning over various heterogeneous sensor data streams in real-time, and can integrate multiple cross-domain data streams, providing a complete semantic processing pipeline.