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Source: paper_references, paper_reference_links, observed 2026-08-01T13:39:16.008611Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 69 of 69 outbound references and 0 inbound Pith citation observations for arXiv:2607.19044.
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Source: paper_references, paper_reference_links, observed 2026-08-01T13:39:16.008611Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+00:00
Pith citing papers itemized under the disclosed page cap.
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Source: cited_works
69 of 69 outbound references displayed
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Observation f7540bac-d383-4e73-8244-d11db3c25e66 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Crystal diffusion variational autoencoder for periodic material generation,
Reference 1
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Observation 78e11b98-7170-4db8-8153-bcf9dd413d2b · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation GeoDiff: a Geometric Diffusion Model for Molecular Conformation Generation
Reference 2
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Accelerating 3d molecule generation via jointly geometric optimal transport,
Reference 3
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Diffusion-driven domain adaptation for generating 3d molecules,
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Crystalline material discovery in the era of artificial intelligence,
Reference 5
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Estimation of the size of drug-like chemical space based on gdb-17 data,
Reference 6
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Impact of high-throughput screening in biomedical research,
Reference 7
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Observation 70c503db-c76e-4271-98c3-c821b78516b4 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Strategy to discover diverse optimal molecules in the small molecule universe,
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Medgan: optimized generative adversarial network with graph convolutional networks for novel molecule design,
Reference 9
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Equivariant flow matching with hybrid probability transport for 3d molecule generation,
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Auto-encoding variational bayes,
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Automatic chemical design using a data-driven continuous representation of molecules,
Reference 12
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Observation a263c8a1-1f89-4d36-877f-a6e875e1e1da · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Junction tree variational autoen- coder for molecular graph generation,
Reference 13
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Limo: 10 Latent inceptionism for targeted molecule generation,
Reference 14
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Observation f5f4fcc1-d558-4792-a116-f3f132cdc1af · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Objective-Reinforced Generative Adversarial Networks (ORGAN) for Sequence Generation Models
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Observation ec7b1bb4-f78c-443e-82ce-0bcb02307069 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation drugan: an advanced generative adversarial autoencoder model for de novo generation of new molecules with desired molecular properties in silico,
Reference 16
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Observation 93c8a075-b445-40fe-b42d-5db8a61a97ab · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Graph convolutional policy network for goal-directed molecular graph generation,
Reference 17
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Observation eb4df5e1-b453-4ce4-9197-d24ee8cf9ad4 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Graphdf: A discrete flow model for molecular graph generation,
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation GraphAF: a Flow-based Autoregressive Model for Molecular Graph Generation
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Constrained graph variational autoencoders for molecule design,
Reference 20
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Observation 00369f46-1e24-4475-9abb-73531aaa5fdc · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Retrieval-based Controllable Molecule Generation
Reference 21
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Observation ff09af64-6b10-41b1-934d-b5a048bab4f1 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Qwen Technical Report
Reference 22
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Language models can learn complex molecular distributions,
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Smiles, a chemical language and information system. 1. introduction to methodology and encoding rules,
Reference 24
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Observation c081fe2c-200d-4624-b979-a6fb6abb0a8b · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation A systematic study of key elements underlying molecular property prediction,
Reference 25
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Observation bf8b95af-ca54-4d62-be77-ddf28cedcbbe · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation A review of molecular representation in the age of machine learning,
Reference 26
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Chemformer: a pre- trained transformer for computational chemistry,
Reference 27
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Observation 634ef702-d8bc-4561-9d02-a0348fa689bd · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Empowering molecule discovery for molecule-caption translation with large language models: A chatgpt perspective,
Reference 28
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Observation 1b46b590-9b9d-48ee-ad10-51a881f58262 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Conversational drug editing using retrieval and domain feedback,
Reference 29
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Domain- agnostic molecular generation with chemical feedback,
Reference 30
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Observation 9c00d5ed-1a0f-4d4a-b0ec-6a7b36183712 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation MolecularRNN: Generating realistic molecular graphs with optimized properties
Reference 31
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Observation 9bbdd0a6-37fc-474c-bee3-3fdc86bba183 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation MARS: Markov Molecular Sampling for Multi-objective Drug Discovery
Reference 32
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Observation 1165f557-45c8-4e02-8012-41b4b3a0a7b9 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Tulu 3: Pushing Frontiers in Open Language Model Post-Training
Reference 33
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Observation 899c8e91-0af9-4f04-8383-8dfa1dcfb395 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Training language models to follow instructions with human feedback,
Reference 34
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Observation 043dc77e-a570-49ae-93f4-d6f418f0d664 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation LoRA: Low-Rank Adaptation of Large Language Models
Reference 35
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Observation cf565f18-c4a4-40d1-b401-eca5eb7c8205 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Rdkit: A software suite for cheminformatics, computational chemistry, and predictive modeling,
Reference 36
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Observation 88e10974-d2da-4b96-8785-cf8884f11247 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation DeepSeekMath: Pushing the Limits of Mathematical Reasoning in Open Language Models
Reference 37
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Observation 381eaec8-9fe1-438e-9f62-a0b8e7a20a59 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Learning Multimodal Graph-to-Graph Translation for Molecular Optimization
Reference 38
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Observation 354a0825-163e-49f9-9421-300f0a6301d8 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Deep learn- ing for molecular design—a review of the state of the art,
Reference 39
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Observation 203d8ef9-bf72-4abf-b706-304d248e7060 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Autoencoders, unsupervised learning, and deep architectures,
Reference 40
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Observation d897fefd-0765-45ba-afcd-ed4bc3de2933 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Efficient multi-objective molecular optimization in a continuous latent space,
Reference 41
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Observation f23c8b40-0a45-4958-9f78-b8c521ca25ba · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Generative adversarial networks,
Reference 42
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Observation b2d722fd-18c4-4d74-96eb-a9927e1414f1 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Reinforced ad- versarial neural computer for de novo molecular design,
Reference 43
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Observation 7518aa54-424d-4bd7-8aa6-de01541b8607 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation De novo generation of hit-like molecules from gene expression signa- tures using artificial intelligence,
Reference 44
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Observation 793705d0-c806-4d87-91eb-9e7f48b9d738 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Hierarchical generation of molecular graphs using structural motifs,
Reference 45
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Observation a72a7859-f500-41ca-b9ed-cd991c891b0d · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Genetic algorithms are strong baselines for molecule generation
Reference 46
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Observation 53d94f9d-1ea1-45ed-b5d2-38c6e52970b7 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Augmenting Genetic Algorithms with Deep Neural Networks for Exploring the Chemical Space
Reference 47
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Regression transformer enables concurrent sequence regression and generation for molecular language modelling,
Reference 48
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Observation f6405a04-c01f-41dc-9027-6dcc5f837e22 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Translation between Molecules and Natural Language
Reference 49
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Observation 9dff0155-c829-4c62-acaa-83815e7d55fd · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Hierarchical deep re- inforcement learning for multi-robot cooperation in partially observable environment,
Reference 50
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Open x-embodiment: Robotic learning datasets and rt-x models: Open x-embodiment collab- oration 0,
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Scaling laws for reward model overoptimization,
Reference 52
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation DeepSeek-R1: Incentivizing Reasoning Capability in LLMs via Reinforcement Learning
Reference 53
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Deep reinforcement learning for de novo drug design,
Reference 54
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Observation f948f92f-fe37-4e53-b45c-ee7aaa7b73a6 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Proximal Policy Optimization Algorithms
Reference 55
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Reinforcement learning with verifiable rewards: Grpo’s effective loss, dynamics, and success amplification,
Reference 56
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Self- referencing embedded strings (selfies): A 100% robust molecular string representation,
Reference 57
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Observation f82e891f-9ac7-4cce-b3e8-77749337e1d0 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Zinc 15–ligand discovery for everyone,
Reference 58
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Observation 677b7bac-9175-4725-9cea-3b9b0b257198 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Quantifying the chemical beauty of drugs,
Reference 59
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Optimization of molecules via deep reinforcement learning,
Reference 60
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Extended-connectivity fingerprints,
Reference 61
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Observation 51864bbf-ee06-4750-8ff3-fc3ac74b4f9b · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Quiet-STaR: Language Models Can Teach Themselves to Think Before Speaking
Reference 62
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Observation 70dd1fe4-a02b-4b26-a492-9ec369a7b6b3 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Training chain- of-thought via latent-variable inference,
Reference 63
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Observation ae5926b7-33cb-4f8d-93b0-fb5d51422def · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation RLEF: Grounding Code LLMs in Execution Feedback with Reinforcement Learning
Reference 64
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Observation 2129baba-e7a5-445f-b1e2-aa2714dc6e00 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Moleculenet: a benchmark for molecular machine learning,
Reference 65
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Observation 8c6a9ff5-b478-43a1-bd1c-422e12c68a34 · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Qwen3 Technical Report
Reference 66
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Transformers: State- of-the-art natural language processing,
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Observation 11116f65-dbcc-4a81-8352-71f3a0a7d98f · outbound
Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Pytorch: An imperative style, high-performance deep learning library,
Reference 68
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Adopting Reinforcement Learning with Verifiable Rewards for Molecular Generation Virtual compound libraries in computer-assisted drug discovery,
Reference 69
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No inbound Pith citation observations are available.