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Training and evaluation data, with the modality, task and licence stated up front. Listed live from the Hugging Face Hub.

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01nvidia /Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1 Dataset Description: We created an RL dataset for conversational tool-use by utilizing existing expert tool-use trajectories. We pose each assistant step of the trajectory as a separate behavior cloning problem where the policy model is incentivized to match the tool call choices of the expert model. Each trajectory includes the use of tools for authentication, data lookup, servicing (i.e. booking reservations, changing them, getting discounts, etc), and more across 838 different… See the full description on the dataset page: https://huggingface.co/datasets/nvidia/Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1.tabular10K<n<100K32 likes1.4k downloads7mo agoHugging Face02nvidia /Nemotron-RL-Agentic-SWE-Pivot-v1 Dataset Description: The SWE-RL dataset provides GitHub issues for training and validating real-world software engineering agents using the OpenHands environment in NeMo Gym. The dataset is a refactored version of the SWE-Gym and R2E-Gym datasets to support the NeMo Gym input format. This dataset is released as part of NVIDIA NeMo Gym, a framework for building reinforcement learning environments to train large language models. NeMo Gym contains a growing collection of training… See the full description on the dataset page: https://huggingface.co/datasets/nvidia/Nemotron-RL-Agentic-SWE-Pivot-v1.tabular10K<n<100K15 likes1.2k downloads3mo agoHugging Face03jamesdborin /Nemotron-RL-Agentic-SWE-Pivot-v1-prompt-only Nemotron-RL-Agentic-SWE-Pivot-v1-prompt-only Prompt-only extraction from nvidia/Nemotron-RL-Agentic-SWE-Pivot-v1. Files: prompts.csv: one prompt extraction record per source row. Records include prompt, separated system_prompt, and structured tools when the source row defines available tools. Nested values are JSON-encoded inside CSV cells. summary.md: source row counts, extracted row counts, count deltas, and failed prompt counts. null_or_empty_rows.md: row indexes where… See the full description on the dataset page: https://huggingface.co/datasets/jamesdborin/Nemotron-RL-Agentic-SWE-Pivot-v1-prompt-only.tabular10K<n<100K0 likes77 downloads3mo agoHugging Face04jamesdborin /Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1-prompt-only Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1-prompt-only Prompt-only extraction from nvidia/Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1. Files: prompts.csv: one prompt extraction record per source row. Records include prompt, separated system_prompt, and structured tools when the source row defines available tools. Nested values are JSON-encoded inside CSV cells. summary.md: source row counts, extracted row counts, count deltas, and failed prompt counts.… See the full description on the dataset page: https://huggingface.co/datasets/jamesdborin/Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1-prompt-only.tabular10K<n<100K0 likes72 downloads3mo agoHugging Face05jamesdborin /Nemotron-RL-Agentic-Function-Calling-Pivot-v1-prompt-only Nemotron-RL-Agentic-Function-Calling-Pivot-v1-prompt-only Prompt-only extraction from nvidia/Nemotron-RL-Agentic-Function-Calling-Pivot-v1. Files: prompts.csv: one prompt extraction record per source row. Records include prompt, separated system_prompt, and structured tools when the source row defines available tools. Nested values are JSON-encoded inside CSV cells. summary.md: source row counts, extracted row counts, count deltas, and failed prompt counts.… See the full description on the dataset page: https://huggingface.co/datasets/jamesdborin/Nemotron-RL-Agentic-Function-Calling-Pivot-v1-prompt-only.tabular1K<n<10K0 likes53 downloads3mo agoHugging Face06Bobollinix /Nemotron-RL-Agentic-SWE-Pivot-v1 Dataset Description: The SWE-RL dataset provides GitHub issues for training and validating real-world software engineering agents using the OpenHands environment in NeMo Gym. The dataset is a refactored version of the SWE-Gym and R2E-Gym datasets to support the NeMo Gym input format. This dataset is released as part of NVIDIA NeMo Gym, a framework for building reinforcement learning environments to train large language models. NeMo Gym contains a growing collection of training… See the full description on the dataset page: https://huggingface.co/datasets/Bobollinix/Nemotron-RL-Agentic-SWE-Pivot-v1.tabular10K<n<100K0 likes31 downloads5d agoHugging Face07Arsh9210 /Nemotron-RL-Agentic-SWE-Pivot-v1 Dataset Description: The SWE-RL dataset provides GitHub issues for training and validating real-world software engineering agents using the OpenHands environment in NeMo Gym. The dataset is a refactored version of the SWE-Gym and R2E-Gym datasets to support the NeMo Gym input format. This dataset is released as part of NVIDIA NeMo Gym, a framework for building reinforcement learning environments to train large language models. NeMo Gym contains a growing collection of training… See the full description on the dataset page: https://huggingface.co/datasets/Arsh9210/Nemotron-RL-Agentic-SWE-Pivot-v1.tabular10K<n<100K0 likes28 downloads2mo agoHugging Face08Arsh9210 /Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1 Dataset Description: We created an RL dataset for conversational tool-use by utilizing existing expert tool-use trajectories. We pose each assistant step of the trajectory as a separate behavior cloning problem where the policy model is incentivized to match the tool call choices of the expert model. Each trajectory includes the use of tools for authentication, data lookup, servicing (i.e. booking reservations, changing them, getting discounts, etc), and more across 838… See the full description on the dataset page: https://huggingface.co/datasets/Arsh9210/Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1.tabular10K<n<100K0 likes23 downloads2mo agoHugging Face09PK567 /pivoted_data Dataset Card for "pivoted_data" More Information needed tabular1K<n<10K0 likes6 downloads2y agoHugging Face10Mayur295 /Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1 Dataset Description: We created an RL dataset for conversational tool-use by utilizing existing expert tool-use trajectories. We pose each assistant step of the trajectory as a separate behavior cloning problem where the policy model is incentivized to match the tool call choices of the expert model. Each trajectory includes the use of tools for authentication, data lookup, servicing (i.e. booking reservations, changing them, getting discounts, etc), and more across 838… See the full description on the dataset page: https://huggingface.co/datasets/Mayur295/Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1.tabular10K<n<100K0 likes6 downloads3mo agoHugging Face11alucent /mirror-Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1gated Dataset Description: We created an RL dataset for conversational tool-use by utilizing existing expert tool-use trajectories. We pose each assistant step of the trajectory as a separate behavior cloning problem where the policy model is incentivized to match the tool call choices of the expert model. Each trajectory includes the use of tools for authentication, data lookup, servicing (i.e. booking reservations, changing them, getting discounts, etc), and more across 838… See the full description on the dataset page: https://huggingface.co/datasets/alucent/mirror-Nemotron-RL-Agentic-Conversational-Tool-Use-Pivot-v1.tabular10K<n<100K0 likes6 downloads2mo agoHugging Face12syazayacob /crop_data_pivot_logtabular100K<n<1M0 likes3 downloads1y agoHugging Face13syazayacob /crop_data_pivottabular100K<n<1M0 likes2 downloads1y agoHugging Face

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