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 151175 of 744 papers

TitleStatusHype
Contrastive Transformer-based Multiple Instance Learning for Weakly Supervised Polyp Frame DetectionCode1
A Data-driven Approach for Noise Reduction in Distantly Supervised Biomedical Relation ExtractionCode1
Predicting Axillary Lymph Node Metastasis in Early Breast Cancer Using Deep Learning on Primary Tumor Biopsy SlidesCode1
Predicting Ovarian Cancer Treatment Response in Histopathology using Hierarchical Vision Transformers and Multiple Instance LearningCode1
Unified Multisensory Perception: Weakly-Supervised Audio-Visual Video ParsingCode1
Proposal-Based Multiple Instance Learning for Weakly-Supervised Temporal Action LocalizationCode1
Attention-Challenging Multiple Instance Learning for Whole Slide Image ClassificationCode1
Explainable AI for computational pathology identifies model limitations and tissue biomarkersCode1
Face Forensics in the WildCode1
Feature Re-calibration based Multiple Instance Learning for Whole Slide Image ClassificationCode1
Fast Hierarchical Games for Image ExplanationsCode1
Data Efficient and Weakly Supervised Computational Pathology on Whole Slide ImagesCode1
Active Learning for Semantic Segmentation with Multi-class Label QueryCode0
Mixing Histopathology Prototypes into Robust Slide-Level Representations for Cancer SubtypingCode0
Anomaly-aware multiple instance learning for rare anemia disorder classificationCode0
MixUp-MIL: Novel Data Augmentation for Multiple Instance Learning and a Study on Thyroid Cancer DiagnosisCode0
Modeling Context Between Objects for Referring Expression UnderstandingCode0
CAMEL: A Weakly Supervised Learning Framework for Histopathology Image SegmentationCode0
A Noisy-Label-Learning Formulation for Immune Repertoire Classification and Disease-Associated Immune Receptor Sequence IdentificationCode0
mil-benchmarks: Standardized Evaluation of Deep Multiple-Instance Learning TechniquesCode0
MEDFORM: A Foundation Model for Contrastive Learning of CT Imaging and Clinical Numeric Data in Multi-Cancer AnalysisCode0
MergeUp-augmented Semi-Weakly Supervised Learning for WSI ClassificationCode0
Masked Pre-Training of Transformers for Histology Image AnalysisCode0
A bag-to-class divergence approach to multiple-instance learningCode0
MesoGraph: Automatic Profiling of Malignant Mesothelioma Subtypes from Histological ImagesCode0
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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