SOTAVerified

Person Re-Identification

Person Re-Identification is a computer vision task in which the goal is to match a person's identity across different cameras or locations in a video or image sequence. It involves detecting and tracking a person and then using features such as appearance, body shape, and clothing to match their identity in different frames. The goal is to associate the same person across multiple non-overlapping camera views in a robust and efficient manner.

Papers

Showing 551575 of 1488 papers

TitleStatusHype
Benchmarks for Corruption Invariant Person Re-identificationCode1
Unsupervised Person Re-Identification with Wireless Positioning under Weak Scene LabelingCode0
MSO: Multi-Feature Space Joint Optimization Network for RGB-Infrared Person Re-Identification0
DEX: Domain Embedding Expansion for Generalized Person Re-identification0
Decentralised Person Re-Identification with Selective Knowledge Aggregation0
CMTR: Cross-modality Transformer for Visible-infrared Person Re-identification0
Exciting-Inhibition Network for Person Reidentification in Internet of Things0
Relation Preserving Triplet Mining for Stabilising the Triplet Loss in Re-identification SystemsCode1
MGH: Metadata Guided Hypergraph Modeling for Unsupervised Person Re-identificationCode1
Rectifying the Data Bias in Knowledge Distillation0
Rethinking Person Re-Identification via Semantic-Based PretrainingCode1
Deep learning-based person re-identification methods: A survey and outlook of recent works0
MilliTRACE-IR: Contact Tracing and Temperature Screening via mm-Wave and Infrared Sensing0
2nd Place Solution to Google Landmark Retrieval 2021Code1
Context-Aware Unsupervised Clustering for Person Search0
Video Temporal Relationship Mining for Data-Efficient Person Re-identification0
A Technical Report for ICCV 2021 VIPriors Re-identification Challenge0
Camera Bias Regularization for Person Re-identification0
Benchmarking person re-identification approaches and training datasets for practical real-world implementations0
Generalizable Person Re-identification Without Demographics0
Hybrid Dynamic Contrast and Probability Distillation for Unsupervised Person Re-Id0
Hard-sample Guided Hybrid Contrast Learning for Unsupervised Person Re-IdentificationCode1
OH-Former: Omni-Relational High-Order Transformer for Person Re-Identification0
Less is More: Learning from Synthetic Data with Fine-grained Attributes for Person Re-IdentificationCode1
Homogeneous and Heterogeneous Relational Graph for Visible-infrared Person Re-identificationCode1
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1st-ReID(RE, RK)Rank-198Unverified
2SSKD(GH)Rank-197.36Unverified
3CLIP-ReID+Pose2ID (no RK)Rank-197.3Unverified
4SOLIDER +UFFM+AMCRank-197Unverified
5Unsupervised Pre-training (ResNet101+MGN)Rank-197Unverified
6RGT&RGPR (RK)Rank-196.9Unverified
7SOLIDERRank-196.9Unverified
8LightMBN (RR)Rank-196.8Unverified
9Viewpoint-Aware Loss(RK)Rank-196.79Unverified
10SOLIDER (RK)Rank-196.7Unverified
#ModelMetricClaimedVerifiedStatus
1DenseILmAP97.1Unverified
2CTL Model (ResNet50, 256x128)mAP96.1Unverified
3BPBreID (RK)mAP92.9Unverified
4Unsupervised Pre-training (ResNet101+RK)mAP92.77Unverified
5st-ReID(RE, RK,Cam)mAP92.7Unverified
6RGT&RGPR (RK)mAP92.7Unverified
7Viewpoint-Aware Loss(RK)mAP91.8Unverified
8LDS (ResNet50 + RK)mAP91Unverified
9Adaptive L2 Regularization (with re-ranking)mAP90.7Unverified
10FlipReID (with re-ranking)mAP90.7Unverified