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162
kategorie
2 032
podkategorie
23 060
pojęcia
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podkategorie

Convolution Layers

Mathematical operations applying filters to extract local features from images.

18 pojęcia
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podkategorie

Pooling Layers

Dimensionality reduction operations to decrease the size of feature maps.

14 pojęcia
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Classic CNN Architectures

Fundamental models like LeNet, AlexNet, and VGG that established the foundation of modern CNNs.

13 pojęcia
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Deep and Residual CNNs

Advanced architectures like ResNet and DenseNet enabling the training of very deep networks.

18 pojęcia
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CNN for Semantic Segmentation

Specialized applications like U-Net for pixel-by-pixel classification of images.

18 pojęcia
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CNN for Object Detection

Systems like YOLO and R-CNN to locate and classify multiple objects in an image.

16 pojęcia
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3D and Spatio-temporal CNNs

Networks processing volumetric or video data with three-dimensional convolutions.

20 pojęcia
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Transfer Learning with CNN

Techniques for reusing pre-trained models to accelerate learning on new tasks.

19 pojęcia
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CNN for Image Generation

Applications in GANs and VAEs to create new realistic synthetic images.

19 pojęcia
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CNN Optimization and Regularization

Techniques like dropout, batch normalization, and data augmentation to improve performance.

15 pojęcia
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podkategorie

CNN for Computer Vision

Integrated applications for scene recognition, depth estimation, and object tracking.

12 pojęcia
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podkategorie

CNN for Medical Analysis

Specialized applications for diagnosis from medical images such as MRI and scans.

17 pojęcia
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podkategorie

Lightweight and Mobile CNNs

Optimized architectures like MobileNet and SqueezeNet for resource-limited devices.

16 pojęcia
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Attention Mechanisms in CNN

Integration of attention mechanisms to focus on relevant regions of images.

17 pojęcia
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podkategorie

Multi-task CNN

Architectures simultaneously performing multiple computer vision tasks.

19 pojęcia
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