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01AlgorithmicResearchGroup /s2orc_full S2ORC Full — Semantic Scholar Open Research Corpus A complete redistribution of the S2ORC dataset in Parquet format on Hugging Face, containing 14.5 million academic papers with full text, structured metadata, and citation information. Dataset Description S2ORC (Semantic Scholar Open Research Corpus) is a general-purpose corpus for NLP and text mining research over scientific papers, originally developed by the Allen Institute for AI. This version provides the full… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/s2orc_full.texttext-generation10M<n<100M2 likes9.8k downloads6mo agoHugging Face02AlgorithmicResearchGroup /arxiv_s2orc_parsed Dataset Card for "ArtifactAI/arxiv_s2orc_parsed" Dataset Description https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_s2orc_parsed Dataset Summary AlgorithmicResearchGroup/arxiv_s2orc_parsed is a subset of the AllenAI S2ORC dataset, a general-purpose corpus for NLP and text mining research over scientific papers, The dataset is filtered strictly for ArXiv papers, including the full text for each paper. Github links have been extracted… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_s2orc_parsed.texttext-generation1M<n<10M28 likes3.2k downloads2y agoHugging Face03AlgorithmicResearchGroup /s2orc-cs-enriched S2ORC CS Enriched A Computer Science subset of the Semantic Scholar Open Research Corpus (S2ORC) enriched with LLM-generated structured metadata. Contains 1.1 million CS papers with extracted methods, models, datasets, metrics, compute estimates, and summaries. Dataset Summary Statistic Value Total papers 1,117,706 Total size 54.7 GB Parquet files 1,118 Split train Dataset Structure Base Columns Content: parsed_title, abstract… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/s2orc-cs-enriched.tabulartext-classification1M<n<10M3 likes3k downloads6mo agoHugging Face04AlgorithmicResearchGroup /arxiv_cplusplus_research_code Dataset card for ArtifactAI/arxiv_cplusplus_research_code Dataset Description https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_cplusplus_research_code Dataset Summary ArtifactAI/arxiv_python_research_code contains over 10.6GB of source code files referenced strictly in ArXiv papers. The dataset serves as a curated dataset for Code LLMs. How to use it from datasets import load_dataset # full dataset (10.6GB of data) ds =… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_cplusplus_research_code.tabulartext-generation1M<n<10M9 likes2.7k downloads2y agoHugging Face05AlgorithmicResearchGroup /s2orc_arxiv S2ORC ArXiv A subset of the Semantic Scholar Open Research Corpus (S2ORC) filtered to ArXiv papers. Contains 2.58 million parsed scientific papers with full text, abstracts, structured sections, figures, and citation metadata. Dataset Summary Statistic Value Total papers 2,579,762 Total size ~266 GB Format Parquet Split train Dataset Structure Content Fields Field Type Description title string Paper title abstract… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/s2orc_arxiv.texttext-generation1M<n<10M2 likes1.9k downloads6mo agoHugging Face06AlgorithmicResearchGroup /arxiv_research_code Dataset Card for "AlgorithmicResearchGroup/arxiv_research_code" Dataset Description https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_research_code Dataset Summary ArtifactAI/arxiv_research_code contains over 21.8GB of source code files referenced strictly in ArXiv papers. The dataset serves as a curated dataset for Code LLMs. How to use it from datasets import load_dataset # full dataset (21.8GB of data) ds =… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_research_code.tabulartext-generation1M<n<10M3 likes985 downloads2y agoHugging Face07multimodal-reasoning-lab /Graph-Algorithmsimage10K<n<100K0 likes747 downloads1y agoHugging Face08AlgorithmicResearchGroup /arxiv_deep_learning_python_research_code_functions_summaries Dataset Card for "AlgorithmicResearchGroup/arxiv_deep_learning_python_research_code_functions_summaries" Dataset Description https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_deep_learning_python_research_code_functions_summaries Dataset Summary AlgorithmicResearchGroup/arxiv_deep_learning_python_research_code_functions_summaries contains summaries for every python function and class extracted from source code files referenced in ArXiv papers. The… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_deep_learning_python_research_code_functions_summaries.tabular100K<n<1M9 likes735 downloads2y agoHugging Face09AlgorithmicResearchGroup /openreview-papers-with-reviewstext10K<n<100K1 likes691 downloads2y agoHugging Face10AlgorithmicResearchGroup /arxiv_python_research_code Dataset Card for "ArtifactAI/arxiv_python_research_code" Dataset Description https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_python_research_code Dataset Summary AlgorithmicResearchGroup/arxiv_python_research_code contains over 4.13GB of source code files referenced strictly in ArXiv papers. The dataset serves as a curated dataset for Code LLMs. How to use it from datasets import load_dataset # full dataset (4.13GB of data) ds =… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_python_research_code.tabulartext-generation1M<n<10M4 likes494 downloads2y agoHugging Face11TaobaoTmall-AlgorithmProducts /Tstars-VTON Tstars-Tryon 1.0 Commercial Applications Our virtual try-on model, Tstars-Tryon 1.0, is now deployed on the Taobao App. Simply scan the QR code below with the Taobao app to instantly try on your favorite looks. We hope you enjoy a seamless and delightful shopping experience! Tstars-VTON - MetaInfo Introduction Tstars-VTON is a comprehensive benchmark designed to evaluate whether a virtual try-on… See the full description on the dataset page: https://huggingface.co/datasets/TaobaoTmall-AlgorithmProducts/Tstars-VTON.image1K<n<10K17 likes400 downloads6mo agoHugging Face12AlgorithmicResearchGroup /arxiv_java_research_code Dataset Card for "arxiv_java_research_code" More Information needed tabular100K<n<1M1 likes311 downloads3y agoHugging Face13TaobaoTmall-AlgorithmProducts /CPI-benchmark CPI-Bench Introduction CPI-Bench is a comprehensive suite of benchmarks designed to evaluate whether an image generation/editing model is truly capable of handling diverse, real-world, and knowledge-intensive tasks. It consists of three complementary subsets: Benchmark Description Data Files CPI-General-Benchmark General-purpose image editing tasks covering a wide range of task types CPI_general_benchmark/CPI_general_benchmark-*.parquet… See the full description on the dataset page: https://huggingface.co/datasets/TaobaoTmall-AlgorithmProducts/CPI-benchmark.image1K<n<10K2 likes214 downloads2mo agoHugging Face14AlgorithmicResearchGroup /ArXivDLInstruct Dataset Card for "AlgorithmicResearchGroup/arxiv_research_code" Dataset Description https://huggingface.co/datasets/AlgorithmicResearchGroup/ArXivDLInstruct Dataset Summary ArtifactAI/arxiv_research_code contains over 21.8GB of source code files referenced strictly in ArXiv papers. The dataset serves as a curated dataset for Code LLMs. How to use it from datasets import load_dataset # full dataset ds =… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/ArXivDLInstruct.tabular100K<n<1M15 likes201 downloads2y agoHugging Face15AlgorithmicResearchGroup /arxiv_python_research_code_summaries Dataset Card for "ArtifactAI/arxiv_python_research_code_summaries" Dataset Description https://huggingface.co/datasets/ArtifactAI/arxiv_python_research_code_summaries Dataset Summary ArtifactAI/arxiv_deep_learning_python_research_code contains summaries for every python function and class extracted from source code files referenced in ArXiv papers. The dataset serves as a curated dataset for Code LLMs. How to use it from datasets import load_dataset… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_python_research_code_summaries.text100K<n<1M0 likes171 downloads2y agoHugging Face16AlgorithmicResearchGroup /arxiv_deep_learning_python_research_code ArXiv Deep Learning Python Research Code A curated corpus of Python source code files extracted from GitHub repositories referenced in ArXiv papers. Contains 391,496 files (1.49 GB) filtered to deep learning frameworks, designed for training and evaluating Code LLMs on research-grade code. Dataset Summary Statistic Value Total files 391,496 Total size 1.49 GB Source repos 34,099 Time span ArXiv inception through July 2023 Dataset Structure… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/arxiv_deep_learning_python_research_code.tabulartext-generation100K<n<1M10 likes158 downloads6mo agoHugging Face17AlgorithmicResearchGroup /swe-bench-ml-summaries-with-estimatestextn<1K0 likes141 downloads3y agoHugging Face18broadinstitute /Domain_Identification_Algorithms_Comparison_Datatabular10M<n<100M0 likes131 downloads6mo agoHugging Face19ananyarn /Algorithm_and_Python_Source_CodeAlgorithm_and_Python_Source_Code This dataset provides different algorithms and their corresponding source code in Python. credits: Source codes given here are taken from "iamtarun/python_code_instructions_18k_alpaca" dataset in Hugging Face. text10K<n<100K11 likes109 downloads3y agoHugging Face20AlgorithmicResearchGroup /minipiletext1M<n<10M0 likes106 downloads2y agoHugging Face21AlgorithmicResearchGroup /openreview-pretrainingtext10K<n<100K0 likes101 downloads2y agoHugging Face22awni00 /multi-strategy-algorithmic-tasks Multi-Strategy Algorithmic Tasks A synthetic benchmark of parseable algorithmic problems with multiple valid solution strategies for each task. Each example contains a problem,a strategy-specific solution trace, and the strategy used to generate that trace. The benchmark accompanies Uncovering Latent Reasoning Strategies in Language Models, which studies the problem of recovering mixtures of strategies implicitly represented in language models. The benchmark provides a… See the full description on the dataset page: https://huggingface.co/datasets/awni00/multi-strategy-algorithmic-tasks.texttext-generation1M<n<10M0 likes100 downloads2mo agoHugging Face23reasoning-degeneration-dev /gepa-exp-algorithmic-rlm-20260220-083526 gepa-exp-algorithmic-rlm-20260220-083526 GEPA prompt optimization experiment on AIME math problems. Task LM: openai/gpt-4.1-mini | Reflection LM: openai/gpt-5 | Reflection Mode: algorithmic | Last updated: 2026-02-20 21:25 UTC Results Run Method k Mode Val Score Test Acc Tokens Cost Time fixed_rlm_k3 rlm 3 algorithmic 37.78% 44.00% 400,201 $0.0000 3483s Learning Curves Experiment Config { "script_name": "run_experiment.py"… See the full description on the dataset page: https://huggingface.co/datasets/reasoning-degeneration-dev/gepa-exp-algorithmic-rlm-20260220-083526.tabularn<1K0 likes99 downloads8mo agoHugging Face24reasoning-degeneration-dev /gepa-rlm-exp-algorithmic-20260219-191545 gepa-rlm-exp-algorithmic-20260219-191545 GEPA prompt optimization experiment on AIME math problems. Task LM: openai/gpt-4.1-mini | Reflection LM: openai/gpt-5 | Reflection Mode: algorithmic | Last updated: 2026-02-19 21:34 UTC Results Run Method k Mode Val Score Test Acc Tokens Cost Time fixed_rlm_k20 rlm 20 algorithmic 48.89% 26.67% 932,391 $0.0000 5209s Learning Curves Experiment Config { "script_name": "run_experiment.py"… See the full description on the dataset page: https://huggingface.co/datasets/reasoning-degeneration-dev/gepa-rlm-exp-algorithmic-20260219-191545.tabularn<1K0 likes87 downloads8mo agoHugging Face25AlgorithmicResearchGroup /s2orc-safety S2ORC Safety This dataset is a filtered and enriched subset of an S2ORC computer science paper corpus, focused on AI safety and adjacent safety-relevant research. It contains 16,806 papers selected through: local embedding generation clustering GPT-5.4 mini cluster-level screening GPT-5.4 mini paper-level labeling a rescue relabel pass on suspicious exclusions structured metadata extraction over the accepted paper set filtering out 304 rows that were missing both parsed_title and… See the full description on the dataset page: https://huggingface.co/datasets/AlgorithmicResearchGroup/s2orc-safety.tabulartext-classification10K<n<100K1 likes87 downloads6mo agoHugging Face26dougdotcon /douvras-algorithm-evolution-benchmark Douvras Algorithm Evolution Benchmark v0.1 Synthetic candidate records with correctness, latency, memory and generation. Candidates that fail correctness are invalid regardless of speed. It contains 48 records (32/8/8) across 12 workloads, split by workload. Metrics are illustrative, not measured on real hardware. A real benchmark must be run separately before claiming an optimization. tabularn<1K0 likes82 downloads25d agoHugging Face27AlgorithmicResearchGroup /arxiv-cs-ml-instruct-tune-50ktext10K<n<100K0 likes81 downloads2y agoHugging Face28reasoning-degeneration-dev /gepa-exp-algorithmic-vanilla-20260220-083526 gepa-exp-algorithmic-vanilla-20260220-083526 GEPA prompt optimization experiment on AIME math problems. Task LM: openai/gpt-4.1-mini | Reflection LM: openai/gpt-5 | Reflection Mode: algorithmic | Last updated: 2026-02-20 21:20 UTC Results Run Method k Mode Val Score Test Acc Tokens Cost Time fixed_vanilla_k3 vanilla 3 algorithmic 35.56% 46.67% 77,464 $0.2182 3126s Learning Curves Experiment Config { "script_name":… See the full description on the dataset page: https://huggingface.co/datasets/reasoning-degeneration-dev/gepa-exp-algorithmic-vanilla-20260220-083526.tabularn<1K0 likes78 downloads8mo agoHugging Face29AlgorithmicResearchGroup /arxiv-physics-instruct-tune-30ktext10K<n<100K0 likes75 downloads2y agoHugging Face30Neura-parse /advanced-quantum-algorithms Neura Parse — Advanced Quantum Algorithms: Derivations, QSVT/Block-Encoding & Hamiltonian Simulation A derivation- and resource-analyzed algorithms vertical spanning the canonical fault-tolerant canon (with full proofs, complexity, and worked traces) and the modern QSVT/block-encoding toolkit through Hamiltonian simulation, amplitude estimation, and quantum linear systems. Turns the general dataset's one-topic-per-algorithm summaries into line-by-line derivations, lower… See the full description on the dataset page: https://huggingface.co/datasets/Neura-parse/advanced-quantum-algorithms.tabulartext-generation100K<n<1M1 likes68 downloads3mo agoHugging Face

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