Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T20:23:44.680955Z
Paper Citation Record · LEDGER
As of 13 August 2026, this Paper Citation Record lists 65 of 65 outbound references and 0 inbound Pith citation observations for arXiv:2412.06847.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T20:23:44.680955Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-13T06:32:02.005865+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links
A source-named dated measurement, never combined with another source.
Source: cited_works
65 of 65 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 342daa81-8659-4066-b498-dd6470753374 · outbound
M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery GPT-4 Technical Report
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Extracting structured data from organic synthesis procedures using a fine-tuned large language model
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Geom, energy-annotated molecular conformations for property prediction and molecular generation
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery New substructure filters for removal of pan assay interference compounds (pains) from screening libraries and for their exclusion in bioassays
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Molgpt: molecular generation using a transformer-decoder model
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Towards Foundational Models for Molecular Learning on Large-Scale Multi-Task Datasets
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Artificial intelligence for drug discovery: Resources, methods, and applications
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery ChemBERTa: Large-Scale Self-Supervised Pretraining for Molecular Property Prediction
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Molecular representations in ai-driven drug discovery: a review and practical guide
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery The Llama 3 Herd of Models
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Molecular structure input on the web
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Molecular representation learning with language models and domain-relevant auxiliary tasks
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Unresolved cited work
Reference 17
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Probabilistic transformer: Modelling ambiguities and distributions for rna folding and molecule design
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Observation 47fceb73-e667-40e1-be9c-289ab20cbde1 · outbound
M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Admetlab 3.0: an updated comprehensive online admet prediction platform enhanced with broader coverage, improved performance, api functionality and decision support
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Prefix-tree decoding for predicting mass spectra from molecules
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Diffusing on two levels and optimizing for multiple properties: A novel approach to generating molecules with desirable properties
Reference 23
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery What can Large Language Models do in chemistry? A comprehensive benchmark on eight tasks
Reference 24
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Unresolved cited work
Reference 25
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Observation f25cfd4f-e920-4eb4-aa07-4772ebf5932a · outbound
M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery LoRA: Low-Rank Adaptation of Large Language Models
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Principles of early drug discovery
Reference 27
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Observation a293946b-ca50-4e7b-bc96-733baf6a5d24 · outbound
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Comprehensive assessment of nine target prediction web services: which should we choose for target fishing? Briefings in Bioinformatics, 24(2):bbad014, 2023
Reference 29
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Natural questions: a benchmark for question answering research
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Rdkit documentation
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Effective drug–target interaction prediction with mutual interaction neural network
Reference 34
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Deep learning methods for molecular representation and property prediction
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Git- mol: A multi-modal large language model for molecular science with graph, image, and text
Reference 36
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery A quantitative analysis of knowledge-learning preferences in large language models in molecular science
Reference 37
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery A group symmetric stochastic differential equation model for molecule multi-modal pretraining
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Multi-modal molecule structure–text model for text-based retrieval and editing
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Dynamicbind: predicting ligand-specific protein-ligand complex structure with a deep equivariant generative model
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery GPS++: An Optimised Hybrid MPNN/Transformer for Molecular Property Prediction
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery UMAP: Uniform Manifold Approximation and Projection for Dimension Reduction
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery GLUE: A Multi-Task Benchmark and Analysis Platform for Natural Language Understanding
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery MultiModal-Learning for Predicting Molecular Properties: A Framework Based on Image and Graph Structures
Reference 57
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Hit and lead discovery with explorative rl and fragment-based molecule generation
Reference 59
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Reference 60
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Reference 61
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery Multimodal molecular pretraining via modality blending
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M$^{3}$-20M: A Large-Scale Multi-Modal Molecule Dataset for AI-driven Drug Design and Discovery A deep-learning system bridging molecule structure and biomedical text with comprehension comparable to human professionals
Reference 65
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No inbound Pith citation observations are available.