Journal of Sensors

Artificial Intelligence and Deep Learning for Sustainable Farming and Smart Environmental Monitoring


Publishing date
01 Jan 2023
Status
Closed
Submission deadline
02 Sep 2022

Lead Editor

1Shaanxi Normal University, Xi'an, China

2University of Copenhagen, Copenhagen, Denmark

3Colorado State University, Fort Collins, USA

4Northeast Normal University, Changchun, China

This issue is now closed for submissions.

Artificial Intelligence and Deep Learning for Sustainable Farming and Smart Environmental Monitoring

This issue is now closed for submissions.

Description

The continuous advancements in design, performance, and application of sensors and sensing systems have had a strong impact on agricultural, environmental, and ecological engineering. The applications of sensors range from smaller scales, such as monitoring the processes of a plant cell, to larger scales, such as the global remote sensing survey of agriculture, grassland, and forests. Manufacturers of agricultural and environmental machinery are increasingly incorporating advanced sensor technology into their precision farming and environmental equipment, such as portable photosynthesis systems, soil carbon flux monitoring, time domain reflectometry, and soil salinity monitoring. Recent developments in Internet-of-Things (IoT) technology have enabled a new paradigm of smart farming to manage agricultural produce, land, and animals more effectively and efficiently. In addition, deep learning approaches make better use of big data and provide an end-to-end learning framework in which jointly learning feature transformations and classifiers via the back propagation technique makes their integration optimal. The detection of agricultural production and changes in the natural environment and the rapid development of the analysis and application technologies are continuing. As a result, this progress is expected to dramatically improve quality of life.

However, deep learning and intelligent sensor research is still in its infancy, and there are some technical difficulties to be resolved in the agricultural and environmental fields. There is a need to consider the concept of combining artificial intelligence with high-performance hardware in sustainable farming and smart environmental monitoring. To broaden the database, deep learning and big sensor data can also be used.

The aim of this Special Issue is to solicit articles from academic and experts discussing their contribution to artificial intelligence and its applications for sustainable farming and smart environmental monitoring. This Special Issue will consider original research and review articles reporting theoretical, simulation, or experimental studies related to deep learning, artificial intelligence, and big data by sensor technologies in agricultural and environmental monitoring. The target audiences are researchers and engineers in the agricultural and environmental fields who need to apply reliable sensing and artificial intelligence technologies.

Potential topics include but are not limited to the following:

  • Sensors and applications in farming practices
  • Sensors for food science
  • The response of animals, plants, and microorganisms to environmental change by sensor technologies
  • Sensors and applications in the natural environment, including land, air, and water
  • Global and regional observation on the earth environment (such as carbon cycle and urban heat island effect) and its technical challenges
  • Using remote sensing data to monitor and predict climate change
  • Environmental monitoring, modelling, and impact analysis using multi-sensors
  • Deep learning by sensor technologies for agricultural and environmental monitoring
  • Big sensor data in agricultural and environmental monitoring
  • Emerging IoT-based sensor applications in smart farming
  • Software engineering techniques for agricultural and environmental monitoring
  • Sensing artificial intelligence systems for agricultural production, transportation, and storage

Articles

  • Special Issue
  • - Volume 2024
  • - Article ID 9862915
  • - Retraction

Retracted: A Two-Phase Method for Optimization of the SPARQL Query

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9858796
  • - Retraction

Retracted: Risks and Opportunities of High-Quality Development of Higher Education from the Perspective of ISO45001:2018

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9807937
  • - Retraction

Retracted: Research on Path Planning Method of Unmanned Boat Based on Improved DWA Algorithm

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9849582
  • - Retraction

Retracted: Performance Analysis of Logistic Model Tree-Based Ensemble Learning Algorithms for Landslide Susceptibility Mapping

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9827409
  • - Retraction

Retracted: Construction and Validation of a CNV-Driven Ferroptosis-Related Gene Signature for Predicting the Prognosis of Lung Adenocarcinoma

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9820689
  • - Retraction

Retracted: Intraprediction Complexity Control Algorithm Based on Visual Saliency

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9792326
  • - Retraction

Retracted: Research on Mapping Error Control of Underground Space Mobile LiDAR Constrained by Cooperative Targets

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9796471
  • - Retraction

Retracted: A Novel Attention-Based Lightweight Network for Multiscale Object Detection in Underwater Images

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9838015
  • - Retraction

Retracted: Construction of Land Ecological Sustainable Evaluation System Based on Dynamic Simulation and TOPSIS Model

Journal of Sensors
  • Special Issue
  • - Volume 2024
  • - Article ID 9850392
  • - Retraction

Retracted: The Research on Intelligent Measurement Terminal of Water-Saving Irrigation Based on RN2026 Microcontroller

Journal of Sensors
Journal of Sensors
 Journal metrics
See full report
Acceptance rate12%
Submission to final decision129 days
Acceptance to publication27 days
CiteScore2.600
Journal Citation Indicator0.440
Impact Factor1.9
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