Abstract
Convolutional Neural Network (CNN) is popular deep learning framework with vast applications in image classification, segmentation, object detection etc., and has attracted attention of the machine learning community at large. In this publication, we aim to propose a model for classification of fruits. Our model is novel as it applies the concept of local connectivity of patterns in neural networks and learns low level features while preserving information about the geometry of objects and shapes. We demonstrated the effectiveness of our approach on a fruits dataset with 63 classes. The obtained results effectively demonstrate the local representation capacity of CNNs. We achieved test set accuracy of 96.63% and training set accuracy of 96.42%, which effectively exemplify the effectiveness of CNNs for this class of problems.
| Original language | English |
|---|---|
| Title of host publication | Communications, Signal Processing, and Systems - Proceedings of the 8th International Conference on Communications, Signal Processing, and Systems, CSPS 2019 |
| Editors | Qilian Liang, Wei Wang, Xin Liu, Zhenyu Na, Min Jia, Baoju Zhang |
| Publisher | Springer |
| Pages | 2671-2677 |
| Number of pages | 7 |
| ISBN (Print) | 9789811394089 |
| DOIs | |
| State | Published - 2020 |
| Externally published | Yes |
| Event | 8th International Conference on Communications, Signal Processing, and Systems, CSPS 2019 - Urumqi, China Duration: 20 Jul 2019 → 22 Jul 2019 |
Publication series
| Name | Lecture Notes in Electrical Engineering |
|---|---|
| Volume | 571 LNEE |
| ISSN (Print) | 1876-1100 |
| ISSN (Electronic) | 1876-1119 |
Conference
| Conference | 8th International Conference on Communications, Signal Processing, and Systems, CSPS 2019 |
|---|---|
| Country/Territory | China |
| City | Urumqi |
| Period | 20/07/19 → 22/07/19 |
Bibliographical note
Publisher Copyright:© 2020, Springer Nature Singapore Pte Ltd.
Keywords
- Classification
- Convolutional neural networks
- Deep learning
- Image statistics
- Machine learning
ASJC Scopus subject areas
- Industrial and Manufacturing Engineering
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