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01scaleinvariant /paired-llama-3.2-1b-embeddings-lmsys-chat-1m Paired Llama 3.2 1B Token Embeddings (LMSYS-Chat-1M) This dataset contains paired activations corresponding to single token locations extracted from Meta's Llama 3.2 1B Instruct on conversations from LMSYS-Chat-1M. Embeddings are provided for layers 5 through 14, which capture the most interesting intermediate representations. This dataset was built to study things like: Learning different basis for activations at a given layer Studying if there are cases where position encodes… See the full description on the dataset page: https://huggingface.co/datasets/scaleinvariant/paired-llama-3.2-1b-embeddings-lmsys-chat-1m.tabularfeature-extraction100M<n<1B3 likes6.6k downloads7mo agoHugging Face02Realmbird /nla-av-responses-llama-70b-layer53tabular1K<n<10K0 likes4.9k downloads4mo agoHugging Face03neuralmagic /quantized-llama-3.1-leaderboard-v2-evals Open LLM Leaderboard v2 Benchmark Results This artifact contains all the data from evaluations of Neural Magic's quantized Llama-3.1 models. These evaluations were produced with lm-evaluation-harness by running the following command: lm_eval \ --model vllm \ --model_args pretrained="<model_path>",dtype=auto,add_bos_token=False,max_model_len=4096,tensor_parallel_size="<num_gpus>",gpu_memory_utilization=0.8,enable_chunked_prefill=True \ --apply_chat_template \… See the full description on the dataset page: https://huggingface.co/datasets/neuralmagic/quantized-llama-3.1-leaderboard-v2-evals.tabular100K<n<1M0 likes2.1k downloads2y agoHugging Face04OALL /details_grimjim__Llama-3-Instruct-8B-SimPO-SPPO-Iter3-merge Dataset Card for Evaluation run of grimjim/Llama-3-Instruct-8B-SimPO-SPPO-Iter3-merge Dataset automatically created during the evaluation run of model grimjim/Llama-3-Instruct-8B-SimPO-SPPO-Iter3-merge. The dataset is composed of 136 configuration, each one coresponding to one of the evaluated task. The dataset has been created from 1 run(s). Each run can be found as a specific split in each configuration, the split being named using the timestamp of the run.The "train" split is… See the full description on the dataset page: https://huggingface.co/datasets/OALL/details_grimjim__Llama-3-Instruct-8B-SimPO-SPPO-Iter3-merge.tabular100K<n<1M0 likes2k downloads2y agoHugging Face05juiceb0xc0de /llama-3.2-1b-atlas llama-3.2-1b-atlas image100K<n<1M1 likes1.9k downloads25d agoHugging Face06LumiOpen /hpltv2-llama33-edu-annotation HPLT version 2.0 educational annotations This dataset contains annotations derived from HPLT v2 cleaned samples. There are 500,000 annotations for each language if the source contains at least 500,000 samples. We prompt Llama-3.3-70B-Instruct to score web pages based on their educational value following FineWeb-Edu classifier. Note 1: The dataset contains the prompt (using the first 1500 characters of the text sample), the scores, and the full Llama 3 generation. The column "idx"… See the full description on the dataset page: https://huggingface.co/datasets/LumiOpen/hpltv2-llama33-edu-annotation.tabular10M<n<100M3 likes1.4k downloads1y agoHugging Face07ibm-esa-geospatial /Llama3-SSL4EO-S12-v1.1-captions Llama3-SSL4EO-S12-Captions The captions are aligned with the SSL4EO-S12 v1.1 dataset and were automatically generated using the Llama3-LLaVA-Next-8B model. Please find more information regarding the generation and evaluation in the Llama3-MS-CLIP paper. Code: https://github.com/IBM/MS-CLIP Data Structure We provide the captions in two versions: As a single compressed Parquet file per split and as CSV files with 256 captions each that match the Zarr Zip files of the… See the full description on the dataset page: https://huggingface.co/datasets/ibm-esa-geospatial/Llama3-SSL4EO-S12-v1.1-captions.tabularzero-shot-image-classification100K<n<1M5 likes1.3k downloads1y agoHugging Face08Magpie-Align /Magpie-Llama-3.1-Pro-300K-Filtered Project Web: https://magpie-align.github.io/ Arxiv Technical Report: https://arxiv.org/abs/2406.08464 Codes: https://github.com/magpie-align/magpie Abstract Click Here High-quality instruction data is critical for aligning large language models (LLMs). Although some models, such as Llama-3-Instruct, have open weights, their alignment data remain private, which hinders the democratization of AI. High human labor costs and a limited, predefined scope for prompting prevent… See the full description on the dataset page: https://huggingface.co/datasets/Magpie-Align/Magpie-Llama-3.1-Pro-300K-Filtered.tabulartext-generation100K<n<1M17 likes1.3k downloads2y agoHugging Face09scaleinvariant /sae-activations-llama-3.1-8b-layer19-lmsys-chat-1m SAE Feature Activations — Llama 3.1 8B Instruct, Layer 19 (LMSYS-Chat-1M) This dataset contains Sparse Autoencoder (SAE) feature activations extracted from layer 19 of Meta's Llama 3.1 8B Instruct on conversations from LMSYS-Chat-1M. It also has natural language explainations of features generated by GPT OSS 120B. See subset 4 for details. The SAE used is Goodfire/Llama-3.1-8B-Instruct-SAE-l19, which decomposes layer-19 residual stream activations into interpretable sparse features.… See the full description on the dataset page: https://huggingface.co/datasets/scaleinvariant/sae-activations-llama-3.1-8b-layer19-lmsys-chat-1m.tabularfeature-extraction100M<n<1B0 likes1.2k downloads6mo agoHugging Face10toksuitebackup /meta-llama-Llama-3.2-1B-toksuite-detokenizedTraining data of the model detokenized in the exact order seen by the model. The training data is partitioned into 8 chunks (chunk-0 through chunk-7), based on the GPU rank that generated the data. Each chunk contains detokenized text files in JSON Lines format (.jsonl). tabular10M<n<100M0 likes1.2k downloads10mo agoHugging Face11Magpie-Align /Magpie-Llama-3.1-Pro-MT-300K-Filtered Project Web: https://magpie-align.github.io/ Arxiv Technical Report: https://arxiv.org/abs/2406.08464 Codes: https://github.com/magpie-align/magpie Abstract Click Here High-quality instruction data is critical for aligning large language models (LLMs). Although some models, such as Llama-3-Instruct, have open weights, their alignment data remain private, which hinders the democratization of AI. High human labor costs and a limited, predefined scope for prompting prevent… See the full description on the dataset page: https://huggingface.co/datasets/Magpie-Align/Magpie-Llama-3.1-Pro-MT-300K-Filtered.tabulartext-generation100K<n<1M17 likes1.2k downloads2y agoHugging Face12ENSEONG /full-math-private-n256-Llama-3.2-3B-Instruct-bontabular100K<n<1M0 likes1.1k downloads5mo agoHugging Face13OALL /details_princeton-nlp__Llama-3-8B-ProLong-512k-Instruct Dataset Card for Evaluation run of princeton-nlp/Llama-3-8B-ProLong-512k-Instruct Dataset automatically created during the evaluation run of model princeton-nlp/Llama-3-8B-ProLong-512k-Instruct. The dataset is composed of 136 configuration, each one coresponding to one of the evaluated task. The dataset has been created from 1 run(s). Each run can be found as a specific split in each configuration, the split being named using the timestamp of the run.The "train" split is always… See the full description on the dataset page: https://huggingface.co/datasets/OALL/details_princeton-nlp__Llama-3-8B-ProLong-512k-Instruct.tabular100K<n<1M0 likes1.1k downloads2y agoHugging Face14self-long /RULER-llama3-1M RULER-Llama3-1M A 1M token version of the RULER dataset based on the Llama-3 chat template. It is automatically generated based on the scripts available in the RULER repository: https://github.com/NVIDIA/RULER. It is designed for evaluating the performance of Long Language Models (LLMs) on various tasks with varying sequence lengths. How to Use from datasets import load_dataset LENGTH_IN_STRING = ['4k', '8k', '16k', '32k', '64k', '128k', '256k', '512k', '1M'] TASKS =… See the full description on the dataset page: https://huggingface.co/datasets/self-long/RULER-llama3-1M.tabular10K<n<100K3 likes1k downloads2y agoHugging Face15ENSEONG /preprocessed-full-math-private-n256-Llama-3.2-3B-Instruct-bontabular100K<n<1M0 likes944 downloads5mo agoHugging Face16alliedtoasters /latenet-v0-activations-llama3.1-70b-base meta-llama/Llama-3.1-70B — Activation Dataset Cached activations extracted from meta-llama/Llama-3.1-70B (revision 349b2ddb53ce8f2849a6c168a81980ab25258dac). Full-sequence activations (80 layers, 8192 dim, float16, all tokens) from meta-llama/Llama-3.1-70B (base) on 23724 LateNet v0 statements (affirmative + negated). Extracted via NDIF. Raw statements only (no chat template). Prompts ordered by negated→generator→pair_id for contiguous domain shards. Contents… See the full description on the dataset page: https://huggingface.co/datasets/alliedtoasters/latenet-v0-activations-llama3.1-70b-base.tabularfeature-extraction10K<n<100K0 likes935 downloads6mo agoHugging Face17latent-lab /got-activations-llama3.1-405b-base meta-llama/Llama-3.1-405B — Activation Dataset Cached activations extracted from meta-llama/Llama-3.1-405B (revision unknown). Contents Tensor Layers Dim Pooling Shards Row Bytes hidden_layers 0-125 16384 - 12 - Prompts: 7660 Format version: 1.1 Load with lmprobe from lmprobe import pull_dataset, load_activation_dataset # Option 1: Pull into local cache (enables probe training without re-extraction)… See the full description on the dataset page: https://huggingface.co/datasets/latent-lab/got-activations-llama3.1-405b-base.tabularfeature-extraction1K<n<10K0 likes857 downloads6mo agoHugging Face18Magpie-Align /Llama-3-Magpie-Pro-1M-v0.1 Project Web: https://magpie-align.github.io/ Arxiv Technical Report: https://arxiv.org/abs/2406.08464 Codes: https://github.com/magpie-align/magpie Abstract Click Here High-quality instruction data is critical for aligning large language models (LLMs). Although some models, such as Llama-3-Instruct, have open weights, their alignment data remain private, which hinders the democratization of AI. High human labor costs and a limited, predefined scope for prompting prevent… See the full description on the dataset page: https://huggingface.co/datasets/Magpie-Align/Llama-3-Magpie-Pro-1M-v0.1.tabular1M<n<10M21 likes837 downloads2y agoHugging Face19alliedtoasters /latenet-v0-activations-llama3.1-405b-base meta-llama/Llama-3.1-405B — Activation Dataset Cached activations extracted from meta-llama/Llama-3.1-405B (revision b906e4dc842aa489c962f9db26554dcfdde901fe). LateNet v0 activations for Llama 3.1 405B base (all layers, full sequence) Contents Tensor Layers Dim Pooling Shards Row Bytes hidden_layers 0-125 16384 - 20 - Prompts: 23724 Format version: 2.0 Load with lmprobe from lmprobe import load_activations, Probe acts =… See the full description on the dataset page: https://huggingface.co/datasets/alliedtoasters/latenet-v0-activations-llama3.1-405b-base.tabularfeature-extraction10K<n<100K0 likes834 downloads6mo agoHugging Face20nyu-dice-lab /lm-eval-results-princeton-nlp-Llama-3-Base-8B-SFT-RDPO-private Dataset Card for Evaluation run of princeton-nlp/Llama-3-Base-8B-SFT-RDPO Dataset automatically created during the evaluation run of model princeton-nlp/Llama-3-Base-8B-SFT-RDPO The dataset is composed of 62 configuration(s), each one corresponding to one of the evaluated task. The dataset has been created from 7 run(s). Each run can be found as a specific split in each configuration, the split being named using the timestamp of the run.The "train" split is always pointing to the… See the full description on the dataset page: https://huggingface.co/datasets/nyu-dice-lab/lm-eval-results-princeton-nlp-Llama-3-Base-8B-SFT-RDPO-private.tabular100K<n<1M0 likes697 downloads2y agoHugging Face21dest1n1 /llamascope2-dashboardtabular1M<n<10M0 likes631 downloads4mo agoHugging Face22skandermoalla /qrpo-paper-llama-nosft-magpieair-armorm-temp1-ref50-offpolicy2best-armorm qrpo-paper-llama-nosft-magpieair-armorm-temp1-ref50-offpolicy2best-armorm Dataset with reference completions and rewards for a specific model and reward model, ready for training with the QRPO reference codebase (https://github.com/CLAIRE-Labo/quantile-reward-policy-optimization). Part of the dataset collection for the paper Quantile Reward Policy Optimization: Alignment with Pointwise Regression and Exact Partition Functions (https://arxiv.org/pdf/2507.08068). tabular10K<n<100K0 likes563 downloads10mo agoHugging Face23Realmbird /nla-av-ar-attribution-llama-70b-layer53tabularn<1K0 likes561 downloads4mo agoHugging Face24RLAIF /numina-math-llama-3.1-8b-bon-meta-cottabular100K<n<1M0 likes543 downloads2y agoHugging Face25Ouroboros-Research /llama-9b-bulk-npztabularn<1K0 likes540 downloads14d agoHugging Face26kothasuhas /llama-3b-gold-15M-student-generations_SNIS_2048_tune422v1tabular10M<n<100M0 likes521 downloads1y agoHugging Face27skandermoalla /qrpo-paper-llama-nosft-magpieair-armorm-temp1-ref50-offline-armorm qrpo-paper-llama-nosft-magpieair-armorm-temp1-ref50-offline-armorm Dataset with reference completions and rewards for a specific model and reward model, ready for training with the QRPO reference codebase (https://github.com/CLAIRE-Labo/quantile-reward-policy-optimization). Part of the dataset collection for the paper Quantile Reward Policy Optimization: Alignment with Pointwise Regression and Exact Partition Functions (https://arxiv.org/pdf/2507.08068). tabular10K<n<100K0 likes494 downloads10mo agoHugging Face28SummerSmile /a-llama1b-testtabular1M<n<10M0 likes451 downloads1y agoHugging Face29skandermoalla /qrpo-paper-llama-nosft-leetcode-sandbox-temp1-ref50-offpolicy10random-sandbox qrpo-paper-llama-nosft-leetcode-sandbox-temp1-ref50-offpolicy10random-sandbox Dataset with reference completions and rewards for a specific model and reward model, ready for training with the QRPO reference codebase (https://github.com/CLAIRE-Labo/quantile-reward-policy-optimization). Part of the dataset collection for the paper Quantile Reward Policy Optimization: Alignment with Pointwise Regression and Exact Partition Functions (https://arxiv.org/pdf/2507.08068). tabular10K<n<100K0 likes446 downloads10mo agoHugging Face30OALL /details_meta-llama__Meta-Llama-3-8B-Instruct Dataset Card for Evaluation run of meta-llama/Meta-Llama-3-8B-Instruct Dataset automatically created during the evaluation run of model meta-llama/Meta-Llama-3-8B-Instruct. The dataset is composed of 136 configuration, each one coresponding to one of the evaluated task. The dataset has been created from 2 run(s). Each run can be found as a specific split in each configuration, the split being named using the timestamp of the run.The "train" split is always pointing to the latest… See the full description on the dataset page: https://huggingface.co/datasets/OALL/details_meta-llama__Meta-Llama-3-8B-Instruct.tabular100K<n<1M0 likes442 downloads2y agoHugging Face

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