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| license: other | |
| pretty_name: Ropedia Xperience-10M Task Suite Artifacts | |
| tags: | |
| - robotics | |
| - embodied-ai | |
| - multimodal | |
| - ropedia | |
| - xperience-10m | |
| - evaluation | |
| - baseline | |
| - neural-network | |
| - pytorch | |
| - retrieval | |
| task_categories: | |
| - robotics | |
| - time-series-forecasting | |
| - text-retrieval | |
| language: | |
| - en | |
| size_categories: | |
| - n<1K | |
| # Ropedia Xperience-10M Task Suite Artifacts | |
| This dataset repo contains the derived evidence layer for the public Xperience-10M sample episode released by Ropedia: metrics, predictions, manifests, charts, diagrams, notes, reproduction scripts, and the small neural MLP task-head artifacts. | |
| The dashboard assets follow a Ropedia-inspired visual system: dark 4D-world | |
| canvas, lime-green accents, point-cloud texture, thin green cards, and | |
| research-grade typography, while all labels and metrics are script-generated | |
| from committed result files. | |
| It does **not** contain raw Xperience-10M videos or raw `annotation.hdf5`. Download raw data only from the official Ropedia / Hugging Face sources and follow their terms. | |
| Current scale-up status: the full `ropedia-ai/xperience-10m` Hugging Face | |
| dataset is still gated for this account. The A100 relay has been configured to | |
| poll access, download a 32-episode stratified pilot subset after approval, | |
| validate it, transfer it to H20, and run the readiness gate. Until that | |
| completes, the committed Qwen3-Omni artifacts remain smoke/debug evidence, not | |
| real 32-episode held-out metrics. | |
| ## Why This Repo Exists | |
| This is the reviewable half of the project. You can inspect the task outputs, compare the committed metrics, and understand the single-episode limitations without downloading the raw videos first. | |
| ## Evidence Contract | |
| | Claim layer | Evidence | Boundary | | |
| | --- | --- | --- | | |
| | Data windows | `results/episode_task_suite/windows.csv`, `shared_windows.npz`, `summary_report.json` | one public sample episode | | |
| | Feature contract | `results/episode_task_suite/feature_manifest.json`, `available_modalities.json` | 8,378 current features; audio documented but not featurized | | |
| | 12-task suite | per-task `metrics.json`, predictions, confusion matrices | chronological single-episode split | | |
| | Neural heads | `results/episode_task_suite/neural_mlp/` | compact MLP heads, not a foundation model | | |
| | Research directions | `research_direction_taxonomy.json`, extension probe results | direct/proxy/diagnostic evidence, not full solutions | | |
| | Qwen3-Omni | `DATA_BLOCKER_REPORT.md`, `A100_HF_RELAY_STATUS.md` | smoke-only until 32 valid episodes are available | | |
| | Publication hygiene | `docs/data/publication_audit.json`, `scripts/validate_publication_package.py` | public files and HF bundles only | | |
| | Citation metadata | `PROJECT_README.md`, `docs/data/project_manifest.json`, GitHub `CITATION.cff` | code/data license boundary remains explicit | | |
| ## What Is Included | |
| - `results/**/*.json`: verified metrics and metadata for minimal and neural MLP runs | |
| - `results/**/*.csv`: predictions, confusion matrices, per-class metrics, windows, boundaries | |
| - `results/**/history.json`: neural MLP training traces | |
| - `docs/assets/*.svg` and `docs/assets/*.png`: generated diagrams, charts, and ChatGPT-image-backed overview figures | |
| - `docs/assets/task_suite_infographic.png`: ChatGPT-image-backed infographic with larger public-sample modality atlas thumbnails, including audio waveform context, and verified metric overlays | |
| - `docs/data/summary_metrics.json`: dashboard-readable summary bundle | |
| - `docs/data/evidence_contract.json`: machine-readable proof boundary | |
| - `docs/data/publication_audit.json`: machine-readable publication hygiene check | |
| - `docs/data/project_manifest.json`: machine-readable public URL and citation metadata | |
| - `docs/data/research_directions.json`: generated four-track taxonomy for the website | |
| - `docs/data/research_direction_extensions.json`: four extra data-backed probes, one per research direction | |
| - `docs/data/task_walkthroughs.json`: beginner-oriented input/process/output guide for all 12 tasks | |
| - `results/episode_task_suite/research_directions/`: JSON, CSV, and Markdown task-to-research-track mapping | |
| - `results/episode_task_suite/research_direction_extensions/`: metrics, prediction CSVs, rank CSVs, and Markdown summary for the four extension probes | |
| - `results/episode_task_suite/task_walkthroughs/`: case-study walkthroughs for every task contract | |
| - `scripts/*.py`: reproduction scripts | |
| - `scripts/validate_publication_package.py`: public bundle validator | |
| - `notes/*.md`: interpretation and reproducibility notes | |
| The companion model repo stores the lightweight model checkpoints and mirrors | |
| the binary arrays (`model.npz`, `model.pt`, and compact neural prediction | |
| arrays). This artifact dataset stays focused on reviewable CSV/JSON/Markdown, | |
| scripts, notes, and visual assets: | |
| https://huggingface.co/cy0307/ropedia-xperience-10m-task-baselines | |
| ## Links | |
| | Resource | URL | | |
| | --- | --- | | |
| | Hugging Face Space | https://huggingface.co/spaces/cy0307/ropedia-xperience-10m-task-suite | | |
| | Live Hugging Face app | https://cy0307-ropedia-xperience-10m-task-suite.static.hf.space/ | | |
| | Hugging Face collection | https://huggingface.co/collections/cy0307/ropedia-xperience-10m-task-suite | | |
| | Minimal and neural task baseline repo | https://huggingface.co/cy0307/ropedia-xperience-10m-task-baselines | | |
| | GitHub repo | https://github.com/ChaoYue0307/ropedia-xperience-10m-task-suite | | |
| | GitHub Pages dashboard | https://chaoyue0307.github.io/ropedia-xperience-10m-task-suite/ | | |
| | Xperience-10M website | https://ropedia.com/dataset | | |
| | Xperience-10M release page | https://ropedia.com/blog/20260316_xperience_10m | | |
| | Ropedia GitHub organization | https://github.com/Ropedia | | |
| | HOMIE Toolkit | https://github.com/Ropedia/HOMIE-toolkit | | |
| | Xperience-10M dataset | https://huggingface.co/datasets/ropedia-ai/xperience-10m | | |
| | Xperience-10M sample | https://huggingface.co/datasets/ropedia-ai/xperience-10m-sample | | |
| ## Scope | |
| The artifacts validate one public sample episode: | |
| - 5,821 aligned frames | |
| - 1,161 sliding windows | |
| - 8,378 current feature dimensions, with audio documented but not featurized | |
| - 12 supervised/self-supervised task definitions | |
| - minimal linear/ridge baselines and neural MLP heads for all 12 tasks | |
| - four direction-extension probes with minimal and neural MLP baselines | |
| - chronological 70/30 split | |
| For research claims, rerun the same scripts over many episodes and evaluate on held-out episodes. | |
| ## Neural MLP Result Snapshot | |
| These are single-episode chronological-split metrics. They are useful for debugging task definitions and input contracts, not for claiming cross-episode generalization. | |
| | Task | Neural metric | Minimal metric | | |
| | --- | ---: | ---: | | |
| | `timeline_action` macro-F1 | 0.0263 | 0.0500 | | |
| | `timeline_subtask` macro-F1 | 0.0175 | 0.0495 | | |
| | `transition_detection` macro-F1 | 0.6485 | 0.6552 | | |
| | `next_action` macro-F1 | 0.0235 | 0.0593 | | |
| | `hand_trajectory_forecast` MPJPE, lower is better | 0.1116 | 0.8223 | | |
| | `contact_prediction` macro-F1 | 1.0000 | 1.0000 | | |
| | `object_relevance` micro-F1 | 0.1798 | 0.1839 | | |
| | `caption_grounding` MRR | 0.0178 | 0.0172 | | |
| | `cross_modal_retrieval` MRR | 0.1530 | 0.2634 | | |
| | `modality_reconstruction` R2 | -0.0102 | -0.0160 | | |
| | `temporal_order` F1 | 0.8718 | 0.5487 | | |
| | `misalignment_detection` F1 | 0.7335 | 0.4866 | | |
| Primary NN artifact path: | |
| `results/episode_task_suite/neural_mlp/<task>/` | |
| ## Four Research Directions | |
| The current 12 tasks are organized into the four Ropedia research directions | |
| with two baselines per task: minimal interpretable heads and neural MLP heads. | |
| | Direction | Current status | Evidence | | |
| | --- | --- | --- | | |
| | A. Human Modeling & Motion Understanding | partially implemented | hand trajectory and contact are direct; action/object tasks are proxies | | |
| | B. 3D/4D Reconstruction & Neural Rendering | proxy tasks only | retrieval, reconstruction, and misalignment diagnose prerequisites | | |
| | C. Egocentric Vision & Interaction | strongest implemented track | 6 direct tasks plus order/alignment diagnostics | | |
| | D. Scene Reconstruction & World Modeling | early proxy tasks | state, object, retrieval, reconstruction, and temporal probes | | |
| Primary taxonomy artifact: | |
| `results/episode_task_suite/research_directions/research_direction_taxonomy.json` | |
| ## Four Direction-Extension Probes | |
| The artifact bundle also includes one extra coded probe for each Ropedia | |
| research direction. These are still single-episode diagnostics, but they make | |
| the four-direction roadmap concrete. | |
| | Direction | Extension task | Minimal | Neural MLP | | |
| | --- | --- | ---: | ---: | | |
| | A. Human Modeling & Motion Understanding | `body_motion_intensity` | 0.7827 macro-F1 | 0.7986 macro-F1 | | |
| | B. 3D/4D Reconstruction & Neural Rendering | `multi_view_consistency_retrieval` | 0.5534 MRR | 0.3469 MRR | | |
| | C. Egocentric Vision & Interaction | `action_phase_progress` | 0.3416 MAE | 0.3038 MAE | | |
| | D. Scene Reconstruction & World Modeling | `ego_motion_forecast` | 0.1989 MAE | 0.0989 MAE | | |
| Primary extension artifact: | |
| `results/episode_task_suite/research_direction_extensions/research_direction_extension_results.json` | |
| ## Junior Task Walkthroughs | |
| Each task has a case study, input contract, middle process modules, output | |
| contract, metric, and current limitation. Start here when onboarding a junior | |
| researcher or engineer: | |
| `results/episode_task_suite/task_walkthroughs/TASK_WALKTHROUGHS.md` | |
| ## Pending 32-Episode Pilot | |
| | Item | Value | | |
| | --- | --- | | |
| | Selection strategy | stratified round-robin across top-level session UUIDs | | |
| | Candidate scan | first 64 top-level session UUIDs | | |
| | Valid complete candidates | 680 | | |
| | Selected pilot episodes | 32 from 32 session UUIDs | | |
| | Estimated raw subset | about 72.0 GB | | |
| | Excluded file type | `visualization.rrd` | | |
| | Blocker | HF gated dataset approval pending | | |
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