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Audio Classification
Audio Classification On Icbhi Respiratory
Audio Classification On Icbhi Respiratory
Metrics
ICBHI Score
Sensitivity
Specificity
Results
Performance results of various models on this benchmark
Columns
Model Name
ICBHI Score
Sensitivity
Specificity
Paper Title
Repository
DAT (AST)
59.81
42.50
77.11
Stethoscope-guided Supervised Contrastive Learning for Cross-domain Adaptation on Respiratory Sound Classification
AST (Patch-Mix CL)
62.37
43.07
81.66
Patch-Mix Contrastive Learning with Audio Spectrogram Transformer on Respiratory Sound Classification
-
SG-SCL (AST)
61.71
43.55
79.87
Stethoscope-guided Supervised Contrastive Learning for Cross-domain Adaptation on Respiratory Sound Classification
CNN6 (+metadata)
58.04
-
-
Pretraining Respiratory Sound Representations using Metadata and Contrastive Learning
AST (fine-tuning)
-
41.97
77.14
Patch-Mix Contrastive Learning with Audio Spectrogram Transformer on Respiratory Sound Classification
-
ResNeSt
55.30
40.20
70.40
A DOMAIN TRANSFER BASED DATA AUGMENTATION METHOD FOR AUTOMATED RESPIRATORY CLASSIFICATION
-
Audio-CLAP
62.56
44.67
80.85
BTS: Bridging Text and Sound Modalities for Metadata-Aided Respiratory Sound Classification
bi-ResNet (scratch)
50.16
31.10
69.20
LungBRN: A Smart Digital Stethoscope for Detecting Respiratory Disease Using bi-ResNet Deep Learning Algorithm
M2D/0.7 (e=0.3)
62.73
-
-
Masked Modeling Duo: Towards a Universal Audio Pre-training Framework
CNN6 (scratch)
54.74
33.84
75.35
Pretraining Respiratory Sound Representations using Metadata and Contrastive Learning
CycleGuardian
63.26
44.47
82.06
CycleGuardian: A Framework for Automatic RespiratorySound classification Based on Improved Deep clustering and Contrastive Learning
AFT on Mixed-500
61.79
42.86
80.72
Adversarial Fine-tuning using Generated Respiratory Sound to Address Class Imbalance
ResNet-34
56.20
40.10
72.30
RespireNet: A Deep Neural Network for Accurately Detecting Abnormal Lung Sounds in Limited Data Setting
CNN6
57.55
-
75.95
Pretraining Respiratory Sound Representations using Metadata and Contrastive Learning
CNN6 (+metadata)
-
39.15
76.93
Pretraining Respiratory Sound Representations using Metadata and Contrastive Learning
M2D-X/0.7 (η=0.3)
63.29
-
-
0/1 Deep Neural Networks via Block Coordinate Descent
-
ResNet-50
58.29
37.24
79.34
Lung Sound Classification Using Co-tuning and Stochastic Normalization
-
AST (fine-tuning)
59.55
-
-
Patch-Mix Contrastive Learning with Audio Spectrogram Transformer on Respiratory Sound Classification
-
BTS
63.54
45.67
81.4
BTS: Bridging Text and Sound Modalities for Metadata-Aided Respiratory Sound Classification
bi-ResNet-Att
56.76
46.38
67.13
ARSC-Net: Adventitious Respiratory Sound Classification Network Using Parallel Paths with Channel-Spatial Attention
-
0 of 22 row(s) selected.
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