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 201–250 of 744 papers

TitleStatusHype
Shapley Values-enabled Progressive Pseudo Bag Augmentation for Whole Slide Image ClassificationCode1
Rethinking Multiple Instance Learning for Whole Slide Image Classification: A Bag-Level Classifier is a Good Instance-Level TeacherCode1
Learning county from pixels: Corn yield prediction with attention-weighted multiple instance learning—0
Slot-Mixup with Subsampling: A Simple Regularization for WSI Classification—0
Reducing Histopathology Slide Magnification Improves the Accuracy and Speed of Ovarian Cancer SubtypingCode0
Long-MIL: Scaling Long Contextual Multiple Instance Learning for Histopathology Whole Slide Image Analysis—0
High-resolution Image-based Malware Classification using Multiple Instance LearningCode0
Deep learning-based detection of morphological features associated with hypoxia in H&E breast cancer whole slide images—0
Inherently Interpretable Time Series Classification via Multiple Instance LearningCode1
Attention-Challenging Multiple Instance Learning for Whole Slide Image ClassificationCode1
MixUp-MIL: A Study on Linear & Multilinear Interpolation-Based Data Augmentation for Whole Slide Image Classification—0
Mixed Models with Multiple Instance LearningCode1
SC-MIL: Sparsely Coded Multiple Instance Learning for Whole Slide Image ClassificationCode1
Introducing instance label correlation in multiple instance learning. Application to cancer detection on histopathological images—0
Reproducibility in Multiple Instance Learning: A Case For Algorithmic Unit Tests—0
WSDMS: Debunk Fake News via Weakly Supervised Detection of Misinforming Sentences with Contextualized Social WisdomCode0
Mixing Histopathology Prototypes into Robust Slide-Level Representations for Cancer SubtypingCode0
Predicting Ovarian Cancer Treatment Response in Histopathology using Hierarchical Vision Transformers and Multiple Instance LearningCode1
Development and Validation of a Deep Learning-Based Microsatellite Instability Predictor from Prostate Cancer Whole-Slide Images—0
Deep Learning Predicts Biomarker Status and Discovers Related Histomorphology Characteristics for Low-Grade Glioma—0
Data efficient deep learning for medical image analysis: A survey—0
Proposal-based Temporal Action Localization with Point-level Supervision—0
Whole Slide Multiple Instance Learning for Predicting Axillary Lymph Node MetastasisCode0
Delving into CLIP latent space for Video Anomaly RecognitionCode1
RoFormer for Position Aware Multiple Instance Learning in Whole Slide Image ClassificationCode0
NEUCORE: Neural Concept Reasoning for Composed Image Retrieval—0
MUSTANG: Multi-Stain Self-Attention Graph Multiple Instance Learning Pipeline for Histopathology Whole Slide ImagesCode1
Cross-attention-based saliency inference for predicting cancer metastasis on whole slide images—0
Active Learning for Semantic Segmentation with Multi-class Label QueryCode0
Nucleus-aware Self-supervised Pretraining Using Unpaired Image-to-image Translation for Histopathology ImagesCode1
On the detection of Out-Of-Distribution samples in Multiple Instance LearningCode0
Beyond attention: deriving biologically interpretable insights from weakly-supervised multiple-instance learning models—0
Anatomy-Driven Pathology Detection on Chest X-raysCode0
RACR-MIL: Weakly Supervised Skin Cancer Grading using Rank-Aware Contextual Reasoning on Whole Slide Images—0
Spatio-Temporal Analysis of Patient-Derived Organoid Videos Using Deep Learning for the Prediction of Drug Efficacy—0
Forensic Histopathological Recognition via a Context-Aware MIL Network Powered by Self-Supervised Contrastive LearningCode0
Towards Hierarchical Regional Transformer-based Multiple Instance Learning—0
A Study of Age and Sex Bias in Multiple Instance Learning based Classification of Acute Myeloid Leukemia Subtypes—0
Few-shot Anomaly Detection in Text with Deviation Learning—0
Boundary-RL: Reinforcement Learning for Weakly-Supervised Prostate Segmentation in TRUS Images—0
Food Image Classification and Segmentation with Attention-based Multiple Instance Learning—0
Weakly-Supervised Action Localization by Hierarchically-structured Latent Attention Modeling—0
PDL: Regularizing Multiple Instance Learning with Progressive Dropout LayersCode1
LaFiCMIL: Rethinking Large File Classification from the Perspective of Correlated Multiple Instance Learning—0
A Noisy-Label-Learning Formulation for Immune Repertoire Classification and Disease-Associated Immune Receptor Sequence IdentificationCode0
Multiple Instance Learning Framework with Masked Hard Instance Mining for Whole Slide Image ClassificationCode1
Weakly Supervised AI for Efficient Analysis of 3D Pathology SamplesCode1
Topologically Regularized Multiple Instance Learning to Harness Data ScarcityCode0
UniFormaly: Towards Task-Agnostic Unified Framework for Visual Anomaly DetectionCode1
Spatial Self-Distillation for Object Detection with Inaccurate Bounding Boxes—0
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Benchmark Results

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