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01thanhqt2002 /embodied-spatial-reasoning Embodied Spatial Reasoning Tasks Dataset Description This dataset is part of the embodied-spatial-reasoning project, where the agent has to actively explore the environment to determine if certain spatial relationships hold true. The tasks involve spatial reasoning with various objects and scenes. Each task includes a query about the spatial relationships between objects within a scene, which the agent must verify through exploration. Dataset Structure The… See the full description on the dataset page: https://huggingface.co/datasets/thanhqt2002/embodied-spatial-reasoning.imagevisual-question-answering1K<n<10K1 likes619 downloads2y agoHugging Face02tanhuajie2001 /spatial-visual-reasoning-66kimage10K<n<100K2 likes437 downloads2y agoHugging Face03tomhodemon /grounded-visual-spatial-reasoning Grounded Visual Spatial Reasoning Code for generating the annotations can be found here: github.com Dataset Summary This dataset extends the Visual Spatial Reasoning (VSR) dataset with visual grounding annotations: each caption is annotated with COCO-category object mentions, their positions , and corresponding bounding boxes in the image. Data instance Each sample instance has the following structure: Field Type Description image_file string… See the full description on the dataset page: https://huggingface.co/datasets/tomhodemon/grounded-visual-spatial-reasoning.image10K<n<100K2 likes347 downloads1y agoHugging Face04ReasonCore /open-spatial-reasoning Open Spatial Reasoning A multiple-choice dataset of spatial reasoning questions and answers for evaluating 3D spatial reasoning from single driving images. Each image contains numbered bounding boxes referencing objects in the scene, and each question probes a model's ability to reconstruct the real 3D scene rather than rely on flat-image shortcuts (e.g. "lower in the frame = closer", "bigger box = nearer"). Dataset Description Frontier vision-language models… See the full description on the dataset page: https://huggingface.co/datasets/ReasonCore/open-spatial-reasoning.imagemultiple-choicen<1K65 likes248 downloads4mo agoHugging Face05Kun-Xiang /ViRL39K-Spatial_Reasoningimage1K<n<10K0 likes212 downloads1y agoHugging Face06eousphoros /2d_3d_seq_path_spatial_reasoning Spatial Reasoning Dataset A synthetic dataset of Hamiltonian path puzzles with rich chain-of-thought reasoning, designed for training and evaluating spatial reasoning in language models. Overview Each sample presents a grid-based puzzle where the solver must find a path visiting every cell exactly once, moving only up/down/left/right (plus above/below for 3D). Puzzles span 2D grids (3x3 to 8x8) and 3D cubes (3x3x3 to 4x4x4), covering solvable, impossible, and multi-turn… See the full description on the dataset page: https://huggingface.co/datasets/eousphoros/2d_3d_seq_path_spatial_reasoning.tabularquestion-answering1K<n<10K0 likes155 downloads8mo agoHugging Face07tianleliphoebe /geometric_spatial_compose_reasoningimage1K<n<10K0 likes152 downloads11mo agoHugging Face08Rammen /SpatialReasoning The Spatial Reasoning Dataset The Spatial Reasoning Dataset comprises semantically meaningful question-answer pairs focused on the relative locations of geographic divisions within the United States — including states, counties, and ZIP codes. The dataset is designed for spatial question answering and includes three types of questions: Binary (Yes/No) Single-choice (Radio) Multi-choice (Checkbox) All questions include correct answers for training and evaluation purposes.… See the full description on the dataset page: https://huggingface.co/datasets/Rammen/SpatialReasoning.textquestion-answering1K<n<10K1 likes129 downloads1y agoHugging Face09Gokottaw434 /scaled_synthetic_spatial_reasoningimagen<1K0 likes121 downloads1y agoHugging Face10TrickyFactCheck /Object-Centric-Spatial-Relation-Reasoningimagen<1K0 likes98 downloads3mo agoHugging Face11safaeid48 /qwen-spatial-reasoning-incorrect-examples Incorrect spatial reasoning examples for Qwen/Qwen3.5-0.8B-Base Overview This dataset contains incorrect non-empty predictions made by Qwen/Qwen3.5-0.8B-Base on a synthetic spatial reasoning benchmark built from 4x4 object-grid images. I evaluated the model on 84 questions. It answered 54 of them incorrectly and achieved an overall accuracy of 35.714%. Some incorrect rows had an empty parsed pred_final, which I treat as formatting failures rather than useful supervised… See the full description on the dataset page: https://huggingface.co/datasets/safaeid48/qwen-spatial-reasoning-incorrect-examples.imagevisual-question-answeringn<1K0 likes58 downloads7mo agoHugging Face12Vidushee /reasoning_spatialtext1K<n<10K0 likes56 downloads2y agoHugging Face13djdumpling /spatial_reasoningtabularn<1K0 likes47 downloads9mo agoHugging Face14oscar128372 /chess_spatial_reasoning_10ktext10K<n<100K1 likes46 downloads2y agoHugging Face15Gokottaw434 /para_Spatial_Reasoningimagen<1K0 likes26 downloads11mo agoHugging Face

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