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01chrislimbe /pubmedqa-recursive-llm-degradation-qwen2.5-0.5b PubMedQA Recursive LLM Degradation — Qwen2.5-3B This repository contains synthetic biomedical question-answering data and model predictions generated as part of a study of recursive fine-tuning and model degradation. Base Model Qwen/Qwen2.5-3B Source Dataset The experiments use the PubMedQA dataset: qiaoxin/PubMedQA This repository contains generated/derived research artifacts and does not redistribute the original PubMedQA dataset in its entirety.… See the full description on the dataset page: https://huggingface.co/datasets/chrislimbe/pubmedqa-recursive-llm-degradation-qwen2.5-0.5b.tabularquestion-answering10K<n<100K0 likes139 downloads3d agoHugging Face02chrislimbe /pubmedqa-recursive-llm-degradation-qwen2.5-3b PubMedQA Recursive LLM Degradation — Qwen2.5-3B This repository contains synthetic biomedical question-answering data and model predictions generated as part of a study of recursive fine-tuning and model degradation. Base Model Qwen/Qwen2.5-3B Source Dataset The experiments use the PubMedQA dataset: qiaoxin/PubMedQA This repository contains generated/derived research artifacts and does not redistribute the original PubMedQA dataset in its entirety.… See the full description on the dataset page: https://huggingface.co/datasets/chrislimbe/pubmedqa-recursive-llm-degradation-qwen2.5-3b.tabularquestion-answering10K<n<100K0 likes136 downloads3d agoHugging Face03suhanii23 /qwen2.5-3b-blind-spots Qwen2.5-3B Factual Recall Blind Spots Model Tested Qwen/Qwen2.5-3B A 3.09B parameter base causal language model, pretrained only. How I Loaded the Model from transformers import AutoModelForCausalLM, AutoTokenizer import torch model_name = "Qwen/Qwen2.5-3B" tokenizer = AutoTokenizer.from_pretrained(model_name) model = AutoModelForCausalLM.from_pretrained( model_name, torch_dtype=torch.float16, device_map="auto" ) Loaded on Google Colab.… See the full description on the dataset page: https://huggingface.co/datasets/suhanii23/qwen2.5-3b-blind-spots.texttext-generationn<1K0 likes19 downloads7mo agoHugging Face04Sriyanshsh1805 /qwen2b-blindspots Qwen3.5-2B Blindspots Dataset Overview This dataset contains examples where the base language model Qwen3.5-2B-Base produces incorrect or unexpected outputs. The goal of this dataset is to identify blind spots in small frontier language models by testing them on tasks involving reasoning, counting, symbolic manipulation, and strict instruction following. The dataset records: The input prompt The expected output The actual model output The error category These examples… See the full description on the dataset page: https://huggingface.co/datasets/Sriyanshsh1805/qwen2b-blindspots.texttext-generationn<1K0 likes1 downloads7mo agoHugging Face

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