ILCAN: A New Vision Attention-Based Late Blight Disease Localization and Classification
Deep Convolutional Neural Networks (CNNs) are the heart of deep neural network research and have accomplished remarkable masterstrokes in various domains. In this research, a new attention-driven deep neural network approach is proposed to localize and classify late blight crop disease by improving...
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| Published in | Arabian journal for science and engineering (2011) Vol. 47; no. 2; pp. 2305 - 2314 |
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| Main Authors | , , |
| Format | Journal Article |
| Language | English |
| Published |
Berlin/Heidelberg
Springer Berlin Heidelberg
01.02.2022
Springer Nature B.V |
| Subjects | |
| Online Access | Get full text |
| ISSN | 2193-567X 1319-8025 2191-4281 |
| DOI | 10.1007/s13369-021-06201-6 |
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| Abstract | Deep Convolutional Neural Networks (CNNs) are the heart of deep neural network research and have accomplished remarkable masterstrokes in various domains. In this research, a new attention-driven deep neural network approach is proposed to localize and classify late blight crop disease by improving the embedding network performance using visual attention. Early disease detection is critical to plan expeditiously and reduce crop losses. Late blight diagnosis is still mainly performed physically. Additionally, this work also expands the visualized gradient-based method by tiding over the gap and facilitates the exploration of the rich dynamics of the core behavioral trained CNNs to identify the unusual patterns that are hidden behind huge data to localize the target object. Studies on decision support for target localization have increased drastically achieving very significant results using deep learning techniques that still fail to explain the black box. As proof of concept, we applied our approach assessing the ongoing benchmark expertly curated images on healthy and late blight contaminated harvests through the current online stage PlantVillage. Experimental comparative results show that our proposed approach achieves a test accuracy of 98.99%, which offers higher localization with classification and assists with taking care of the issue of yield misfortunes in harvests because of irresistible infectious diseases. The result of this research will upgrade the implementation of a deep neural network for early disease diagnosis and management in the agricultural field. |
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| AbstractList | Deep Convolutional Neural Networks (CNNs) are the heart of deep neural network research and have accomplished remarkable masterstrokes in various domains. In this research, a new attention-driven deep neural network approach is proposed to localize and classify late blight crop disease by improving the embedding network performance using visual attention. Early disease detection is critical to plan expeditiously and reduce crop losses. Late blight diagnosis is still mainly performed physically. Additionally, this work also expands the visualized gradient-based method by tiding over the gap and facilitates the exploration of the rich dynamics of the core behavioral trained CNNs to identify the unusual patterns that are hidden behind huge data to localize the target object. Studies on decision support for target localization have increased drastically achieving very significant results using deep learning techniques that still fail to explain the black box. As proof of concept, we applied our approach assessing the ongoing benchmark expertly curated images on healthy and late blight contaminated harvests through the current online stage PlantVillage. Experimental comparative results show that our proposed approach achieves a test accuracy of 98.99%, which offers higher localization with classification and assists with taking care of the issue of yield misfortunes in harvests because of irresistible infectious diseases. The result of this research will upgrade the implementation of a deep neural network for early disease diagnosis and management in the agricultural field. |
| Author | Pattanaik, Priyadarshini A. Khan, Mohammad Zubair Patnaik, Prasant Kumar |
| Author_xml | – sequence: 1 givenname: Priyadarshini A. orcidid: 0000-0001-5058-5471 surname: Pattanaik fullname: Pattanaik, Priyadarshini A. email: ppattanaik055@gmail.com organization: Département Image and Traitement de l’Information, IMT Atlantique Bretagne–Pays de la Loire Plouzané – sequence: 2 givenname: Mohammad Zubair surname: Khan fullname: Khan, Mohammad Zubair organization: Department of Computer Science, Taibah University – sequence: 3 givenname: Prasant Kumar surname: Patnaik fullname: Patnaik, Prasant Kumar organization: School of Computer Engineering, KIIT University |
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| Cites_doi | 10.1504/IJBRA.2019.097987 10.1016/j.patcog.2018.08.012 10.1007/s11263-017-1059-x 10.1109/TPAMI.2019.2960224 10.3389/fpls.2016.01419 10.1109/ACCESS.2020.2996022 10.1016/S0140-6736(15)60692-4 10.3390/rs12081292 10.1007/978-3-319-65981-7_12 10.1002/ps.1247 10.1038/nature01019 10.1080/07038992.2020.1769471 10.1109/ICACCP.2019.8882973 10.1109/ICCV.2019.00060 10.1109/ICCV.2017.74 10.1007/978-3-319-10590-1_53 10.1109/WACV.2018.00097 10.1051/e3sconf/202017604011 10.1007/978-3-319-46466-4_8 10.1109/CVPR.2016.90 |
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| Keywords | Deep learning Infectious disease Plant pathology Convolutional neural network Gradient descent algorithm Classification Late blight Crop diseases Localization Resnet |
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| SubjectTerms | Artificial neural networks Classification Crop diseases Diagnosis Engineering Humanities and Social Sciences Infectious diseases Localization Machine learning multidisciplinary Neural networks Plant diseases Research Article-Computer Engineering and Computer Science Science |
| Title | ILCAN: A New Vision Attention-Based Late Blight Disease Localization and Classification |
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