SOTAVerified

One-Shot Learning

One-shot learning is the task of learning information about object categories from a single training example.

( Image credit: Siamese Neural Networks for One-shot Image Recognition )

Papers

Showing 276300 of 305 papers

TitleStatusHype
Learning feed-forward one-shot learners0
Learning from limited datasets: Implications for Natural Language Generation and Human-Robot Interaction0
Learning in Text Streams: Discovery and Disambiguation of Entity and Relation Instances0
Learning Non-deterministic Representations with Energy-based Ensembles0
Learning Relational Representations by Analogy using Hierarchical Siamese Networks0
Learning similarity measures from data0
Learning to Segment Anatomical Structures Accurately from One Exemplar0
Learning to Support: Exploiting Structure Information in Support Sets for One-Shot Learning0
Leveraging Siamese Networks for One-Shot Intrusion Detection Model0
Leveraging Weakly Annotated Data for Hate Speech Detection in Code-Mixed Hinglish: A Feasibility-Driven Transfer Learning Approach with Large Language Models0
Lifelong Machine Learning for Topic Modeling and Beyond0
Little Giants: Exploring the Potential of Small LLMs as Evaluation Metrics in Summarization in the Eval4NLP 2023 Shared Task0
LLMs are One-Shot URL Classifiers and Explainers0
Low Data Drug Discovery with One-shot Learning0
Mathematics of Digital Twins and Transfer Learning for PDE Models0
MAVOT: Memory-Augmented Video Object Tracking0
Max-Margin Invariant Features from Transformed Unlabeled Data0
Max-Margin Invariant Features from Transformed Unlabelled Data0
Measuring Immediate Adaptation Performance for Neural Machine Translation0
MemGEN: Memory is All You Need0
Memory Matching Networks for One-Shot Image Recognition0
Metalearning with Hebbian Fast Weights0
Modeling Time Series Similarity with Siamese Recurrent Networks0
More than the Sum of Its Parts: Ensembling Backbone Networks for Few-Shot Segmentation0
Multi-Attention Network for One Shot Learning0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1Siamese Neural NetworkAccuracy97.5Unverified