Showing 1,161 - 1,180 results of 3,382 for search '(difference OR different) convolutional', query time: 0.13s Refine Results
  1. 1161

    Enhancing the quality of low-light images via the coefficient bounds derived for a subclass of Sakaguchi-type function by K. Sivagami Sundari, B. Srutha Keerthi

    Published 2025-02-01
    “…Our method is designed to adapt dynamically to different lighting conditions, ensuring effective image enhancement in both uniformly and non-uniformly illuminated environments. …”
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    Article
  2. 1162

    SER-DC YOLO for the Detection of Abnormal Cervical Cells by LI Chaowei, YANG Xiaona, ZHAO Siqi, HE Yongjun

    Published 2024-02-01
    “… Due to the complex content of Thin Prep Cytology Test ( TCT) images of cervical cell samples with rich and diverse background colors and a certain degree of natural variation of cervical cells among different women,this poses a great difficulty in the detection of abnormal cervical cells. …”
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    Article
  3. 1163

    Efficient GDD feature approximation based brain tumour classification and survival analysis model using deep learning by M. Vimala, SatheeshKumar Palanisamy, Sghaier Guizani, Habib Hamam

    Published 2024-12-01
    “…The problem of brain tumor classification (BTC) has been approached with several methods and uses different features obtained from MRI brain scans. However, they suffer from achieving higher performance in BTC and produce poor performance with a higher false ratio. …”
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    Article
  4. 1164

    MultiSEss: Automatic Sleep Staging Model Based on SE Attention Mechanism and State Space Model by Zhentao Huang, Yuyao Yang, Zhiyuan Wang, Yuan Li, Zuowen Chen, Yahong Ma, Shanwen Zhang

    Published 2025-05-01
    “…The MultiSEss architecture utilizes a multi-scale convolution module to capture signal features from different frequency bands and incorporates a Squeeze-and-Excitation attention mechanism to enhance the learning of channel feature weights. …”
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    Article
  5. 1165

    AHG-YOLO: multi-category detection for occluded pear fruits in complex orchard scenes by Na Ma, Na Ma, Na Ma, Yile Sun, Yile Sun, Chenfei Li, Chenfei Li, Zonglin Liu, Zonglin Liu, Haiyan Song, Haiyan Song

    Published 2025-05-01
    “…Next, shared weight parameters are introduced in the head network, and group convolution is applied to achieve a lightweight detection head. …”
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    Article
  6. 1166

    End‐To‐End Deep Learning Temperature Prediction Algorithms of a Phase Change Materials From Experimental Photos by Mohammad Hassan Ranjbar, Kobra Gharali, Artie Ng

    Published 2025-06-01
    “…Initially, the networks were built using different convolutional layers and weights for feature extraction, and then the fully connected layers extracted the temperature profiles of the PCM. …”
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    Article
  7. 1167

    LM-CNN-based Automatic Cost Calculation Model for Power Transmission and Transformation Projects by Xiaolin WU, Ling LUAN, Lianwu PAN, Hailong LI

    Published 2023-02-01
    “…Finally, in view of the big difference between the expected output and the actual output, the Levenberg-Marquart algorithm is utilized to optimize the weight parameters of the convolutional neural network to complete the model training. …”
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    Article
  8. 1168

    Research of Fault Feature Extraction and Diagnosis of Planetary Gear Train based on SPS and CNN by Pan Zheng, Jianhua Zhou, Sujie Gao, Ben Chen, Xiangxiong Liu, Shijing Wu

    Published 2022-04-01
    “…The vibration signals of the planetary gearbox under different operating conditions and different fault states are further collected,and the extracted fault features are input into the convolutional neural network for fault identification. …”
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  9. 1169
  10. 1170
  11. 1171

    Apple Watercore Grade Classification Method Based on ConvNeXt and Visible/Near-Infrared Spectroscopy by Chunlin Zhao, Zhipeng Yin, Yushuo Tan, Wenbin Zhang, Panpan Guo, Yaxing Ma, Haijian Wu, Ding Hu, Quan Lu

    Published 2025-03-01
    “…Next, methods such as the Gramian Angular Summation Field (GASF), Gram Angular Difference Field (GADF), and Markov Transition Field (MTF) were applied to transform the one-dimensional spectral data into two-dimensional images. …”
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  12. 1172

    Application of machine learning for brain tumor diagnosis using magnetic resonance images: a comparative analysis by Patel Rahul kumar-Manilal, D. J. Shah

    Published 2024-12-01
    “…The study described applies and evaluates three different methods. The study applied and evaluated three different methods for identifying brain tumors: a self-defined a support vector machine (SVM), a Random forest (RF), and a convolution neural network (CNN). …”
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  13. 1173

    Deep Learning Based Breast Cancer Detection Using Decision Fusion by Doğu Manalı, Hasan Demirel, Alaa Eleyan

    Published 2024-11-01
    “…First, SVM distinguishes between different tumor types using local binary pattern (LBP) features. …”
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  14. 1174
  15. 1175

    Blind Interleaver Recognition Using Deep Learning Techniques by Nayim Ahamed, Swaminathan R., B. Naveen

    Published 2024-01-01
    “…This paper explores the application of deep learning to recognize four different interleavers such as block, convolutional, helical, and random especially in non-cooperative environments. …”
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  16. 1176

    Deep Learning Integrating Scale Conversion and Pedo‐Transfer Function to Avoid Potential Errors in Cross‐Scale Transfer by Peijun Li, Yuanyuan Zha, Yonggen Zhang, Chak‐Hau Michael Tso, Sabine Attinger, Luis Samaniego, Jian Peng

    Published 2024-03-01
    “…The proposed method uses the convolutional neural network (CNN) as a cross‐scale transfer approach to directly map soil/landscape static properties to soil hydraulic parameters across different spatial scales. …”
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    Article
  17. 1177

    Denoising of Heart Sounds Using Lightweight FCNs and Spectrograms With and Without Context by Declan Duggan, Andriy Temko, Volodymyr Sarana, Andreea Factor, Emanuel Popovici

    Published 2025-01-01
    “…We tested all models with different contamination types at different signal-to-noise ratios (SNRs), and found that the DWC gave an overall average improvement of 10.322 dB, with average increases ranging from 6.151 dB to 14.479 dB. …”
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  18. 1178

    Environmental sound classification system by I. N. Zhuk

    Published 2019-06-01
    “…Classification model includes classic convolutional neuron network architectures. Experiments based on different architectures of convolutional neural networks and proposed feature extraction method. …”
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  19. 1179

    Computer-aided diagnosis of hepatic cystic echinococcosis based on deep transfer learning features from ultrasound images by Miao Wu, Chuanbo Yan, Gan Sen

    Published 2025-01-01
    “…And each subtype has different treatment methods. An accurate diagnosis is the prerequisite for effective HCE treatment. …”
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  20. 1180

    Exploring Transfer Learning for Anthropogenic Geomorphic Feature Extraction from Land Surface Parameters Using UNet by Aaron E. Maxwell, Sarah Farhadpour, Muhammad Ali

    Published 2024-12-01
    “…Transfer learning between the different geomorphic datasets offered minimal benefits. …”
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    Article