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- W3023173618 abstract "The bone is a major component of the human body. Bone provides the ability to move the body. The bone fractures are common in the human body. The doctors use the X-ray image to diagnose the fractured bone. The manual fracture detection technique is time consuming and also error probability chance is high. Therefore, an automated system needs to develop to diagnose the fractured bone. The Deep Neural Network (DNN) is widely used for the modeling of the power electronic devices. In the present study, a deep neural network model has been developed to classify the fracture and healthy bone. The deep learning model gets over fitted on the small data set. Therefore, data augmentation techniques have been used to increase the size of the data set. The three experiments have been performed to evaluate the performance of the model using softmax and Adam optimizer. The classification accuracy of the proposed model is 92.44% for the healthy and the fractured bone using 5 fold cross validation. The accuracy on 10% and 20% of the test data is more than 95% and 93% respectively. The proposed model performs much better than [1] of the 84.7% and 86% of the [2]." @default.
- W3023173618 created "2020-05-13" @default.
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- W3023173618 date "2020-02-01" @default.
- W3023173618 modified "2023-10-13" @default.
- W3023173618 title "Bone Fracture Detection and Classification using Deep Learning Approach" @default.
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- W3023173618 doi "https://doi.org/10.1109/parc49193.2020.236611" @default.
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