Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-07T11:17:01.431576Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 76 of 76 outbound references and 3 inbound Pith citation observations for arXiv:2506.02911.
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 2026-08-07T11:17:01.431576Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-08T06:32:00.761636+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-04T18:48:59.629102Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-07-01T20:56:14.438810Z
76 of 76 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 96474c8c-d8e5-4fc0-8303-02681b2abdd3 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Challenges in unsupervised clustering of single-cell rna-seq data
Reference 1
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Observation 8e01376e-887b-4bf9-8b7d-49477baf1075 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Current best practices in single-cell rna-seq analysis: a tutorial
Reference 2
Source-reported events for the cited work
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Observation 5717a930-e9b8-43d0-bb34-c2a913b6669d · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Integrating single-cell transcriptomic data across different conditions, technologies, and species
Reference 3
Source-reported events for the cited work
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Observation 054f247f-850a-4c3b-8dc8-6cf0c8983e40 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning From louvain to leiden: guaranteeing well-connected communities
Reference 4
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Observation bbbb5311-4b20-4e96-b1c3-ba4d198de141 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Com- prehensive integration of single-cell data
Reference 5
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Observation ece4455e-2a93-4239-83f4-c4ff31dcf799 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Reference-based analysis of lung single-cell sequencing reveals a transitional profibrotic macrophage
Reference 6
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Observation 112bed47-9f3e-4031-b4cf-080df221e0ae · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Eleven grand challenges in single-cell data science
Reference 7
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Observation b665e430-4b9e-4488-88c2-f03e24550502 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning A comparison of automatic cell identification methods for single-cell rna sequencing data
Reference 8
Source-reported events for the cited work
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Observation 7f50af10-5d1e-4121-ba93-f111d41cf5f8 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning scbert as a large-scale pretrained deep language model for cell type annotation of single-cell rna-seq data
Reference 9
Source-reported events for the cited work
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Observation 297f3e38-a97e-40bc-81cd-30610bfbe306 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Transfer learning enables predictions in network biology
Reference 10
Source-reported events for the cited work
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Observation f586aefe-ae76-4bc7-927b-0c5b1e9fdd19 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Large-scale foundation model on single-cell transcriptomics
Reference 11
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Observation 8d3f4009-20f8-484a-9b5f-a734ac630ed8 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Assessing gpt-4 for cell type annotation in single-cell rna-seq analysis
Reference 12
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Observation e6e6f8dc-ca3d-4aa2-80bf-3ac343704c2e · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Cell2sentence: Teaching large language models the language of biology
Reference 13
Source-reported events for the cited work
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Observation b34b11f4-4909-4044-bdf7-87b52819f27c · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning scelmo: Embeddings from language models are good learners for single-cell data analysis
Reference 14
Source-reported events for the cited work
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Observation 60a29201-8f2c-4ce0-96c0-5bfe3aec2136 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Simple and effective embedding model for single-cell biology built from chatgpt
Reference 15
Source-reported events for the cited work
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Observation 34c0df96-8d0d-4f7f-91e5-efe7fcf123f4 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Langcell: Language- cell pre-training for cell identity understanding
Reference 16
Source-reported events for the cited work
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Observation efcb3d14-48ee-4304-b950-af8d68c60081 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Multimodal learning of transcriptomes and text enables interactive single-cell rna-seq data exploration with natural-language chats
Reference 17
Source-reported events for the cited work
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Observation 0c283730-2fe5-4c9e-bd8e-4d62930734c9 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning A Multi-Modal AI Copilot for Single-Cell Analysis with Instruction Following
Reference 18
Source-reported events for the cited work
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Observation 6ae63305-8ee6-4157-bc6a-e8d6cf22e131 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Language-Enhanced Representation Learning for Single-Cell Transcriptomics
Reference 19
Source-reported events for the cited work
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Observation c4ef9fbd-bcf7-40ce-9627-72261937b22e · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Au- tomated methods for cell type annotation on scrna-seq data
Reference 20
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Observation 8f439dd7-d1a4-49b1-9e48-1a70186cfd37 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Opening the black box: interpretable machine learning for geneticists
Reference 21
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Observation d49b6564-8e10-4e70-ba55-519949e89df7 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning OpenAI o1 System Card
Reference 22
Source-reported events for the cited work
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Observation 90619cce-0b95-45d5-9b04-dc6f7e367744 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Self-Reflection in LLM Agents: Effects on Problem-Solving Performance
Reference 23
Source-reported events for the cited work
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Observation 5745bcd5-c6f8-4eba-934f-d6517a3067ae · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Evaluating large language models through role-guide and self-reflection: A comparative study
Reference 24
Source-reported events for the cited work
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Observation 427131eb-f085-4143-b24d-323cbb8d8b24 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning A mathematical model for curriculum learning for parities
Reference 25
Source-reported events for the cited work
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Observation 26372481-4fbc-4e29-a570-33c28b71b145 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning On curriculum learning for commonsense reasoning
Reference 26
Source-reported events for the cited work
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Observation 43593b7a-07ca-4c48-b31a-ecafb66ba442 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Defining cell types and states with single-cell genomics
Reference 27
Source-reported events for the cited work
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Observation 57acc0c8-80ed-455e-a986-50b0d57ea465 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning A scalable scenic workflow for single-cell gene regulatory network analysis
Reference 28
Source-reported events for the cited work
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Observation 27ebcc3a-11c2-4a64-a219-ecf88475805e · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning sctenifoldnet: a machine learning workflow for constructing and comparing transcriptome-wide gene regulatory networks from single-cell data
Reference 29
Source-reported events for the cited work
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Observation dc8306e7-3d04-4120-9652-e7abf495d114 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning scgen predicts single-cell perturbation responses
Reference 30
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Observation 6b066e76-ffd8-493c-91bb-7fb62ef7a9ae · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Machine learning for perturbational single-cell omics
Reference 31
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Observation 1b2f109f-6467-48b6-a73b-6645c7dd7143 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning scgpt: toward building a foundation model for single-cell multi-omics using generative ai
Reference 32
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Observation eda8a69c-b5f6-476f-b959-bb2c4be43738 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning GPT-4 Technical Report
Reference 33
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Observation cb408bc8-ac01-4dac-8bf9-fb54abd69618 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning LLaMA: Open and Efficient Foundation Language Models
Reference 34
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Observation 97d807b1-ce16-4f1e-bdcd-a78fcf4e5027 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Large language model instruction following: A survey of progresses and challenges
Reference 35
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Observation ac48ee0e-d853-41e8-8ec5-a551e9c10bbc · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Language models are few-shot learners
Reference 36
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Observation 538e0425-740d-4428-9715-772a013f3622 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Chain-of-thought prompting elicits reasoning in large language models
Reference 37
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Observation 0889c62f-50a5-4ff8-b7b5-f043d70a0f62 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Large language models are zero-shot reasoners
Reference 38
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Observation 46a8d3a9-012c-426c-8328-dbb73c2cf2e2 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Cz cellxgene discover: a single-cell data platform for scalable exploration, analysis and modeling of aggregated data
Reference 39
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Observation b0e8e1be-c5f3-4b0c-97a4-92a7e1afc757 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning DeepSeek-R1: Incentivizing Reasoning Capability in LLMs via Reinforcement Learning
Reference 40
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Observation 52923677-86c9-471d-bb43-fdd2fffafabf · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning DeepSeekMath: Pushing the Limits of Mathematical Reasoning in Open Language Models
Reference 41
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Observation 56a0ed5f-a6f2-4bc9-ac70-490bafecb94b · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Qwen Technical Report
Reference 42
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Observation 410eaf93-cd9d-4b28-ac9f-28cd17bbe857 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Proximal Policy Optimization Algorithms
Reference 43
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Observation 5f5dd9ac-b4da-402f-9528-d31211a0bfa9 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Search-R1: Training LLMs to Reason and Leverage Search Engines with Reinforcement Learning
Reference 44
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Observation 456875cc-aab0-41bf-88a4-46e23986080c · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning DeepRetrieval: Hacking Real Search Engines and Retrievers with Large Language Models via Reinforcement Learning
Reference 45
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Observation d3eb3b00-292c-4421-856b-7d9ee4b3945e · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Supervising the search process produces reliable and generalizable information-seeking agents
Reference 46
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Observation e33be5f4-da44-49b8-895f-66da14033761 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning ReSearch: Learning to Reason with Search for LLMs via Reinforcement Learning
Reference 47
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Observation ad069c54-e81d-47ab-be4c-631b872fab63 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning The role of ontologies in biological and biomedical research: a functional perspective
Reference 48
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Observation b95b1192-41da-4a1d-8e5a-12099638567e · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Gene ontology: tool for the unification of biology
Reference 49
Source-reported events for the cited work
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Observation 3dcc2852-3a6e-49bf-82cc-ffd3dcd0bcc4 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning The Impact of Reasoning Step Length on Large Language Models
Reference 50
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Observation 095a7ad4-357b-44b2-9a39-c234102d7d8e · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Opportunities and challenges for chatgpt and large language models in biomedicine and health
Reference 51
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Observation 1fe3ab29-a6ba-419e-adbf-c1dd12806dab · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Single cell rna sequencing of human microglia uncovers a subset associated with alzheimer’s disease
Reference 52
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Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Single-cell rna-seq analysis reveals cell subsets and gene signatures associated with rheumatoid arthritis disease activity
Reference 53
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Observation 5e1b902a-d9e3-43dc-8c05-d61fa4d7633c · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning High- resolution single-cell atlas reveals diversity and plasticity of tissue-resident neutrophils in non-small cell lung cancer
Reference 54
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Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Cells of the human intestinal tract mapped across space and time
Reference 55
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Observation c2d467af-8292-455f-93ab-090062646b3b · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Persistent t cell unresponsiveness associated with chronic visceral leishmaniasis in hiv-coinfected patients
Reference 56
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Observation fe3d8965-122b-4830-8a66-84e20374ce99 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Single-cell multi-omics analysis of human pancreatic islets reveals novel cellular states in type 1 diabetes
Reference 57
Source-reported events for the cited work
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Observation d2eb3e37-3678-4444-a463-7af50a0c2974 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning An integrated cell atlas of the lung in health and disease
Reference 58
Source-reported events for the cited work
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Observation 6df45982-5f83-4e13-bea6-fc152f5b731c · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Single-cell transcriptomics of the human retinal pigment epithelium and choroid in health and macular degeneration
Reference 59
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Observation cffba966-6346-4b2e-81fb-cc797b91df07 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning An atlas of healthy and injured cell states and niches in the human kidney
Reference 60
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Observation c2558940-4ce9-43f5-8612-24154dc35015 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Ovarian cancer mutational processes drive site-specific immune evasion
Reference 61
Source-reported events for the cited work
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Observation c09b4e6b-7884-42c8-9393-e6082662b9bd · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Single-cell multiomics reveals increased plasticity, resistant populations, and stem-cell–like blasts in kmt2a-rearranged leukemia
Reference 62
Source-reported events for the cited work
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Observation a435344f-2d4c-4dfa-af24-a62a453ef8a4 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Single-cell atlas of common variable immunodefi- ciency shows germinal center-associated epigenetic dysregulation in b-cell responses
Reference 63
Source-reported events for the cited work
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Observation 683ee068-e380-48ad-861d-1a6b66801ef5 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Single-cell resolution characterization of myeloid-derived cell states with implication in cancer outcome
Reference 64
Source-reported events for the cited work
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Observation 3a89a888-d1ea-4b28-afad-320b2c929129 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Distribution-independent cell type identification for single-cell rna-seq data
Reference 65
Source-reported events for the cited work
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Observation 90ad1f8f-8708-44ad-92a1-a114baebff62 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Celler:A Genomic Language Model for Long-Tailed Single-Cell Annotation
Reference 66
Source-reported events for the cited work
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Observation 1d78876e-2c5a-4db4-8bc7-69a775814f40 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Trl: Transformer reinforce- ment learning
Reference 67
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Observation a8fb9d8c-c22b-4bc9-a22a-5384a4e27167 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Lora: Low-rank adaptation of large language models
Reference 68
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Observation 84ca8230-ddc9-4526-b4e1-92b88305c321 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Qwen2.5: A party of foundation models, September 2024
Reference 69
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Observation 780c8b66-c312-430a-a861-bd189270c019 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Qwen2 Technical Report
Reference 70
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Observation 3a9f7399-e5b9-461a-b03e-1e1fcbf73ffe · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning HybridFlow: A Flexible and Efficient RLHF Framework
Reference 71
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Observation 21b79bf0-b282-4cad-90d6-5d7256f32b32 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning Gonzalez, Hao Zhang, and Ion Stoica
Reference 72
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Observation 3a5959f8-91ed-4d46-8caa-0833888a3c12 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning chain-of-thought
Reference 73
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No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.
Observation a5b343b4-af07-43e3-86f4-c301089be1bd · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning These genes alone are not sufficient for cell type identification
Reference 74
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No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.
Observation b95fb062-9d1d-4ae4-a2be-d2003e91aec2 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning • Some cell types are more specific (e.g., IgA plasma cell, activated CD4-positive T cell), while others are broader (e.g., plasma cell, vein endothelial cell)
Reference 75
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Observation 924e6c46-b86a-4c62-bbb5-89ed2d0e5b92 · outbound
Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning T-helper 1 cell
Reference 76
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No event found in the named queried sources as of 2026-08-08T06:32:00.761636+00:00.
Observation 931a8e8e-ad3b-42e9-a1f7-a90113ca7e37 · inbound
Gene-R1: Reasoning with Data-Augmented Lightweight LLMs for Gene Set Analysis Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning
Reference 27
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Unavailable: canonical work link unavailable.
Observation 5f3b5f4c-df96-4550-80b1-9a364ae5c934 · inbound
Reasoning4Sciences: Bridging Reasoning Language Models to All Scientific Branches Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning
Reference 74
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Observation 2f77efaf-05ed-45d9-b62b-22ddd243659e · inbound
Reasoning4Sciences: Bridging Reasoning Language Models to All Scientific Branches Cell-o1: Training LLMs to Solve Single-Cell Reasoning Puzzles with Reinforcement Learning
Reference 80
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