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      On fine-tuning deep learning models using transfer learning and hyper-parameters optimization for disease identification in maize leaves

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          Deep learning.

          Deep learning allows computational models that are composed of multiple processing layers to learn representations of data with multiple levels of abstraction. These methods have dramatically improved the state-of-the-art in speech recognition, visual object recognition, object detection and many other domains such as drug discovery and genomics. Deep learning discovers intricate structure in large data sets by using the backpropagation algorithm to indicate how a machine should change its internal parameters that are used to compute the representation in each layer from the representation in the previous layer. Deep convolutional nets have brought about breakthroughs in processing images, video, speech and audio, whereas recurrent nets have shone light on sequential data such as text and speech.
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            Deep Residual Learning for Image Recognition

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              Going deeper with convolutions

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Neural Computing and Applications
                Neural Comput & Applic
                Springer Science and Business Media LLC
                0941-0643
                1433-3058
                August 2022
                April 18 2022
                August 2022
                : 34
                : 16
                : 13951-13968
                Article
                10.1007/s00521-022-07246-w
                7871f5d3-723e-4da2-b357-010a4d61e198
                © 2022

                https://www.springer.com/tdm

                https://www.springer.com/tdm

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