SOTAVerified

Multiple Instance Learning

Multiple Instance Learning is a type of weakly supervised learning algorithm where training data is arranged in bags, where each bag contains a set of instances $X=\{x_1,x_2, \ldots,x_M\}$, and there is one single label $Y$ per bag, $Y\in\{0, 1\}$ in the case of a binary classification problem. It is assumed that individual labels $y_1, y_2,\ldots, y_M$ exist for the instances within a bag, but they are unknown during training. In the standard Multiple Instance assumption, a bag is considered negative if all its instances are negative. On the other hand, a bag is positive, if at least one instance in the bag is positive.

Source: Monte-Carlo Sampling applied to Multiple Instance Learning for Histological Image Classification

Papers

Showing 626650 of 744 papers

TitleStatusHype
Learning Time Series Detection Models from Temporally Imprecise Labels0
Learning to Detect Blue-white Structures in Dermoscopy Images with Weak Supervision0
Learning to Detect Semantic Boundaries with Image-level Class Labels0
Learning to Predict RNA Sequence Expressions from Whole Slide Images with Applications for Search and Classification0
Learning to quantify emphysema extent: What labels do we need?0
Learning to Select Cuts for Efficient Mixed-Integer Programming0
Leveraging Gait Patterns as Biomarkers: An attention-guided Deep Multiple Instance Learning Network for Scoliosis Classification0
Leveraging Unlabelled Data in Multiple-Instance Learning Problems for Improved Detection of Parkinsonian Tremor in Free-Living Conditions0
LLM-Enhanced Multiple Instance Learning for Joint Rumor and Stance Detection with Social Context Information0
LNPL-MIL: Learning from Noisy Pseudo Labels for Promoting Multiple Instance Learning in Whole Slide Image0
Locality-aware Attention Network with Discriminative Dynamics Learning for Weakly Supervised Anomaly Detection0
LOMo: Latent Ordinal Model for Facial Analysis in Videos0
Long-MIL: Scaling Long Contextual Multiple Instance Learning for Histopathology Whole Slide Image Analysis0
Towards Train-Test Consistency for Semi-supervised Temporal Action Localization0
Lung Cancer Diagnosis Using Deep Attention Based on Multiple Instance Learning and Radiomics0
Machine learning identification of maternal inflammatory response and histologic choroamnionitis from placental membrane whole slide images0
MECFormer: Multi-task Whole Slide Image Classification with Expert Consultation Network0
MergeUp-augmented Semi-Weakly Supervised Learning for WSI Classification0
Metastatic Cancer Outcome Prediction with Injective Multiple Instance Pooling0
MHAttnSurv: Multi-Head Attention for Survival Prediction Using Whole-Slide Pathology Images0
MicroMIL: Graph-based Contextual Multiple Instance Learning for Patient Diagnosis Using Microscopy Images0
MILCut: A Sweeping Line Multiple Instance Learning Paradigm for Interactive Image Segmentation0
MIL vs. Aggregation: Evaluating Patient-Level Survival Prediction Strategies Using Graph-Based Learning0
Mining fMRI Dynamics with Parcellation Prior for Brain Disease Diagnosis0
Mixed Supervised Object Detection with Robust Objectness Transfer0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Snuffy (DINO Exhaustive)AUC0.99Unverified
2Snuffy (SimCLR Exhaustive)AUC0.97Unverified
3CAMILAUC0.96Unverified
4CAMIL (CAMIL-L)AUC0.95Unverified
5CAMIL (CAMIL-G)AUC0.95Unverified
6DTFD-MIL (AFS)AUC0.95Unverified
7DTFD-MIL (MAS)AUC0.95Unverified
8DTFD-MIL (MaxMinS)AUC0.94Unverified
9TransMILAUC0.93Unverified
10DSMIL-LCAUC0.92Unverified
#ModelMetricClaimedVerifiedStatus
1DTFD-MIL (MAS)AUC0.96Unverified
2DTFD-MIL (AFS)ACC0.95Unverified
3Snuffy (SimCLR Exhaustive)ACC0.95Unverified
4DSMIL-LCACC0.93Unverified
5DSMILACC0.92Unverified
6DTFD-MIL (MaxMinS)ACC0.89Unverified
7TransMILACC0.88Unverified
8DTFD-MIL (MaxS)ACC0.87Unverified
#ModelMetricClaimedVerifiedStatus
1SnuffyAUC0.97Unverified
2DSMILACC0.93Unverified
#ModelMetricClaimedVerifiedStatus
1SnuffyACC0.96Unverified
2DSMILACC0.95Unverified
#ModelMetricClaimedVerifiedStatus
1DSMILACC0.93Unverified
2SnuffyACC0.79Unverified