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 351375 of 744 papers

TitleStatusHype
Explaining Classifiers Trained on Raw Hierarchical Multiple-Instance Data0
Psychophysiological Arousal in Young Children Who Stutter: An Interpretable AI ApproachCode0
Is Attention Interpretation? A Quantitative Assessment On Sets0
Effective and Interpretable Information Aggregation with Capacity Networks0
Robust Object Detection With Inaccurate Bounding BoxesCode1
Gigapixel Whole-Slide Images Classification using Locally Supervised LearningCode1
Point-to-Box Network for Accurate Object Detection via Single Point SupervisionCode2
RTN: Reinforced Transformer Network for Coronary CT Angiography Vessel-level Image Quality Assessment0
Modality-Aware Contrastive Instance Learning with Self-Distillation for Weakly-Supervised Audio-Visual Violence DetectionCode1
Scaling Novel Object Detection with Weakly Supervised Detection TransformersCode1
ReMix: A General and Efficient Framework for Multiple Instance Learning based Whole Slide Image ClassificationCode1
Anomaly-aware multiple instance learning for rare anemia disorder classificationCode0
Deep Multiple Instance Learning For Forecasting Stock Trends Using Financial News0
Multiple Instance Learning with Mixed Supervision in Gleason GradingCode1
Feature Re-calibration based Multiple Instance Learning for Whole Slide Image ClassificationCode1
Weakly-Supervised Temporal Action Localization by Progressive Complementary LearningCode0
DGMIL: Distribution Guided Multiple Instance Learning for Whole Slide Image ClassificationCode1
Rank the triplets: A ranking-based multiple instance learning framework for detecting HPV infection in head and neck cancers using routine H&E images0
Balancing Bias and Variance for Active Weakly Supervised LearningCode0
Multiple Instance Learning for Digital Pathology: A Review on the State-of-the-Art, Limitations & Future Potential0
Pancreatic Cancer ROSE Image Classification Based on Multiple Instance Learning with Shuffle Instances0
Additive MIL: Intrinsically Interpretable Multiple Instance Learning for Pathology0
Point-Teaching: Weakly Semi-Supervised Object Detection with Point Annotations0
A robust and lightweight deep attention multiple instance learning algorithm for predicting genetic alterations0
Non-Markovian Reward Modelling from Trajectory Labels via Interpretable Multiple Instance LearningCode0
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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