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SOTA
Vehicle Re Identification
Vehicle Re Identification On Vehicleid Small
Vehicle Re Identification On Vehicleid Small
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Rank-1
Rank-5
Ergebnisse
Leistungsergebnisse verschiedener Modelle zu diesem Benchmark
Columns
Modellname
Rank-1
Rank-5
Paper Title
Repository
Recall@k Surrogate loss (ResNet-50)
95.7
97.9
Recall@k Surrogate Loss with Large Batches and Similarity Mixup
CLIP-ReID (without re-ranking)
85.5
97.2
CLIP-ReID: Exploiting Vision-Language Model for Image Re-Identification without Concrete Text Labels
HPGN
-
-
Exploring Spatial Significance via Hybrid Pyramidal Graph Network for Vehicle Re-identification
PNP Loss
95.5
97.8
Rethinking the Optimization of Average Precision: Only Penalizing Negative Instances before Positive Ones is Enough
QD-DLF
-
-
Vehicle Re-identification Using Quadruple Directional Deep Learning Features
-
Recall@k Surrogate loss (ViT-B/16)
96.2
98.0
Recall@k Surrogate Loss with Large Batches and Similarity Mixup
MBR-4B (without RK)
88.3
-
Strength in Diversity: Multi-Branch Representation Learning for Vehicle Re-Identification
ANet
87.9
97.8
AttributeNet: Attribute Enhanced Vehicle Re-Identification
-
Smooth-AP
94.9
97.6
Smooth-AP: Smoothing the Path Towards Large-Scale Image Retrieval
GiT
-
-
GiT: Graph Interactive Transformer for Vehicle Re-identification
-
vehiclenet
83.64
-
VehicleNet: Learning Robust Feature Representation for Vehicle Re-identification
RPTM
95.5
97.4
Relation Preserving Triplet Mining for Stabilising the Triplet Loss in Re-identification Systems
CAL
82.5
-
Counterfactual Attention Learning for Fine-Grained Visual Categorization and Re-identification
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