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SOTA
人群计数
Crowd Counting On Ucf Cc 50
Crowd Counting On Ucf Cc 50
评估指标
MAE
评测结果
各个模型在此基准测试上的表现结果
Columns
模型名称
MAE
Paper Title
Repository
Zhang et al.
467.0
Cross-Scene Crowd Counting via Deep Convolutional Neural Networks
-
Idrees et al.
419.5
Multi-source Multi-scale Counting in Extremely Dense Crowd Images
-
MCNN
377.6
Single-Image Crowd Counting via Multi-Column Convolutional Neural Network
-
Liu et al.
337.6
Leveraging Unlabeled Data for Crowd Counting by Learning to Rank
Cascaded-MTL
322.8
CNN-based Cascaded Multi-task Learning of High-level Prior and Density Estimation for Crowd Counting
Switch-CNN
318.1
Switching Convolutional Neural Network for Crowd Counting
CP-CNN
295.8
Generating High-Quality Crowd Density Maps using Contextual Pyramid CNNs
-
IG-CNN
291.4
Divide and Grow: Capturing Huge Diversity in Crowd Images with Incrementally Growing CNN
-
ACSCP
291.0
Crowd Counting via Adversarial Cross-Scale Consistency Pursuit
-
D-ConvNet
288.4
Crowd Counting With Deep Negative Correlation Learning
-
CSRNet
266.1
CSRNet: Dilated Convolutional Neural Networks for Understanding the Highly Congested Scenes
ic-CNN
260.9
Iterative Crowd Counting
-
SANet
258.4
Scale Aggregation Network for Accurate and Efficient Crowd Counting
-
SPANet
232.6
Learning Spatial Awareness to Improve Crowd Counting
-
LSC-CNN
225.6
Locate, Size and Count: Accurately Resolving People in Dense Crowds via Detection
SGANet
224.6
Crowd Counting via Segmentation Guided Attention Networks and Curriculum Loss
SGANet + CL
221.9
Crowd Counting via Segmentation Guided Attention Networks and Curriculum Loss
CAN
212.2
Context-Aware Crowd Counting
DM-Count
211.0
Distribution Matching for Crowd Counting
GauNet (ResNet-50)
186.3
Rethinking Spatial Invariance of Convolutional Networks for Object Counting
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