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01nvidia /Nemotron-RL-Agentic-Function-Calling-Pivot-v1 Dataset Description: This is a RL dataset for general function-calling 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. 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… See the full description on the dataset page: https://huggingface.co/datasets/nvidia/Nemotron-RL-Agentic-Function-Calling-Pivot-v1.text1K<n<10K14 likes2k downloads7mo agoHugging Face02nvidia /Nemotron-RL-Agentic-Terminal-Pivot-v1 Dataset Description The Nemotron-RL-Agentic-Terminal-Pivot-v1 dataset provides training samples for reinforcement learning of command-line ("terminal use") LLM agents with the terminus_judge environment in NeMo Gym. Each record is a single agent decision point extracted from a successful agent trajectory on a terminal task: responses_create_params.input — the prompt: the task instruction plus the terminal interaction history (prior agent actions and terminal outputs) up to the… See the full description on the dataset page: https://huggingface.co/datasets/nvidia/Nemotron-RL-Agentic-Terminal-Pivot-v1.texttext-generation10K<n<100K31 likes1.8k downloads26d agoHugging Face03nvidia /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 Face04nvidia /Nemotron-RL-Agentic-Indirect-Prompt-Injection-v1 Nemotron-RL-Agentic-Indirect-Prompt-Injection-v1 Dataset Description: Nemotron-RL-Agentic-Indirect-Prompt-Injection-v1 is an RL dataset for training and evaluating a tool-using agent's ability to resist Indirect Prompt Injection (IPI) attacks hidden inside tool-returned environment data. In each record, the agent receives a benign user request that requires calling a read tool whose output contains an adversarial instruction disguised as legitimate domain content… See the full description on the dataset page: https://huggingface.co/datasets/nvidia/Nemotron-RL-Agentic-Indirect-Prompt-Injection-v1.textreinforcement-learning1K<n<10K8 likes1.4k downloads4mo agoHugging Face05nvidia /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 Face06Dabou /Nemotron-RL-Agentic-Terminal-Pivot-v1 Dataset Description The Nemotron-RL-Agentic-Terminal-Pivot-v1 dataset provides training samples for reinforcement learning of command-line ("terminal use") LLM agents with the terminus_judge environment in NeMo Gym. Each record is a single agent decision point extracted from a successful agent trajectory on a terminal task: responses_create_params.input — the prompt: the task instruction plus the terminal interaction history (prior agent actions and terminal outputs) up to the… See the full description on the dataset page: https://huggingface.co/datasets/Dabou/Nemotron-RL-Agentic-Terminal-Pivot-v1.texttext-generation10K<n<100K0 likes65 downloads26d agoHugging Face07deeprcurs /IKNN-Rl1-Dataset-Agentic-V2 IKNN-Rl1-Dataset-Agentic-V2 text10K<n<100K0 likes57 downloads20d 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 likes31 downloads2mo agoHugging Face09Bobollinix /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 downloads4d agoHugging Face10Arsh9210 /Nemotron-RL-Agentic-Function-Calling-Pivot-v1 Dataset Description: This is a RL dataset for general function-calling 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. 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… See the full description on the dataset page: https://huggingface.co/datasets/Arsh9210/Nemotron-RL-Agentic-Function-Calling-Pivot-v1.text1K<n<10K0 likes28 downloads2mo agoHugging Face11Arsh9210 /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 Face12alucent /mirror-Nemotron-RL-Agentic-Function-Calling-Pivot-v1gated Dataset Description: This is a RL dataset for general function-calling 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. 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… See the full description on the dataset page: https://huggingface.co/datasets/alucent/mirror-Nemotron-RL-Agentic-Function-Calling-Pivot-v1.text1K<n<10K0 likes17 downloads2mo agoHugging Face13alucent /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 likes7 downloads2mo agoHugging Face14Mayur295 /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 downloads2mo agoHugging Face

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