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
Detecting Domain Shift in Multiple Instance Learning for Digital Pathology Using Fréchet Domain Distance0
Detecting genetic alterations in BRAF and NTRK as oncogenic drivers in digital pathology images: towards model generalization within and across multiple thyroid cohorts.0
Detecting Histologic & Clinical Glioblastoma Patterns of Prognostic Relevance0
Detecting Parkinsonian Tremor from IMU Data Collected In-The-Wild using Deep Multiple-Instance Learning0
Detection of Fights in Videos: A Comparison Study of Anomaly Detection and Action Recognition0
Detection of Major ASL Sign Types in Continuous Signing For ASL Recognition0
Detector Discovery in the Wild: Joint Multiple Instance and Representation Learning0
Development and Validation of a Deep Learning-Based Microsatellite Instability Predictor from Prostate Cancer Whole-Slide Images0
Differentiable Zooming for Multiple Instance Learning on Whole-Slide Images0
Digital Volumetric Biopsy Cores Improve Gleason Grading of Prostate Cancer Using Deep Learning0
Discovery-and-Selection: Towards Optimal Multiple Instance Learning for Weakly Supervised Object Detection0
Discriminative and Consistent Similarities in Instance-Level Multiple Instance Learning0
Discriminatively Trained Latent Ordinal Model for Video Classification0
Discriminative Video Representation Learning Using Support Vector Classifiers0
Disease Detection in Weakly Annotated Volumetric Medical Images using a Convolutional LSTM Network0
Dissimilarity-based Ensembles for Multiple Instance Learning0
Distilling High Diagnostic Value Patches for Whole Slide Image Classification Using Attention Mechanism0
Distill-to-Label: Weakly Supervised Instance Labeling Using Knowledge Distillation0
Distribution Based MIL Pooling Filters are Superior to Point Estimate Based Counterparts0
Diversified Multiple Instance Learning for Document-Level Multi-Aspect Sentiment Classification0
DRGRADUATE: uncertainty-aware deep learning-based diabetic retinopathy grading in eye fundus images0
Dual Graph Attention based Disentanglement Multiple Instance Learning for Brain Age Estimation0
Dynamic Hypergraph Representation for Bone Metastasis Cancer Analysis0
EEG-Language Modeling for Pathology Detection0
Effective and Interpretable Information Aggregation with Capacity Networks0
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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