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Visualization results of text instances for our method DPNet and the baseline on different types of datasets.

Visualization results of text instances for our method DPNet and the baseline on different types of datasets.

<p>The images are randomly selected from three datasets, which better demonstrate the robustness of our model.</p>

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Bibliographic Details
Main Author: Yuan Li (67017) (author)
Published: 2024
Subjects:
Microbiology
Science Policy
Space Science
Biological Sciences not elsewhere classified
Mathematical Sciences not elsewhere classified
Information Systems not elsewhere classified
spatial enhanced self
integration effectively facilitates
channel enhanced self
automatically extracts features
achieves performance improvements
lacks global attributes
feature decoder designed
icdar 2015 dataset
global contextual information
dual perspective cnn
scene text detection
paper significantly improves
deep learning algorithm
transformer </ p
global information
text detection
feature map
evolved significantly
deep learning
text dataset
td500 dataset
detailed information
xlink ">
thereby alleviating
recent years
positional relationships
paper introduces
experiments show
different types
detecting text
convolution operation
continuous advancement
computer vision
complex backgrounds
attention module
72 vs
07 vs
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