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The dataset viewer is not available for this split.
Cannot load the dataset split (in streaming mode) to extract the first rows.
Error code:   StreamingRowsError
Exception:    CastError
Message:      Couldn't cast
id: string
id_no: int64
title: string
code_file: string
language: string
kernel_type: string
is_private: bool
enable_gpu: bool
enable_tpu: bool
enable_internet: bool
keywords: list<item: string>
  child 0, item: string
dataset_sources: list<item: string>
  child 0, item: string
kernel_sources: list<item: null>
  child 0, item: null
competition_sources: list<item: string>
  child 0, item: string
model_sources: list<item: null>
  child 0, item: null
docker_image: string
machine_shape: string
to
{'id': Value('string'), 'title': Value('string'), 'code_file': Value('string'), 'language': Value('string'), 'kernel_type': Value('string'), 'is_private': Value('bool'), 'enable_gpu': Value('bool'), 'enable_tpu': Value('bool'), 'enable_internet': Value('bool'), 'keywords': List(Value('string')), 'dataset_sources': List(Value('string')), 'kernel_sources': List(Value('null')), 'competition_sources': List(Value('string')), 'model_sources': List(Value('null')), 'docker_image': Value('string'), 'machine_shape': Value('string')}
because column names don't match
Traceback:    Traceback (most recent call last):
                File "/src/services/worker/src/worker/utils.py", line 147, in get_rows_or_raise
                  return get_rows(
                      dataset=dataset,
                  ...<4 lines>...
                      column_names=column_names,
                  )
                File "/src/libs/libcommon/src/libcommon/utils.py", line 272, in decorator
                  return func(*args, **kwargs)
                File "/src/services/worker/src/worker/utils.py", line 127, in get_rows
                  rows_plus_one = list(itertools.islice(safe_iter(ds, dataset=dataset), rows_max_number + 1))
                File "/src/services/worker/src/worker/utils.py", line 483, in safe_iter
                  yield from ds.decode(False) if ds.features else ds
                File "/usr/local/lib/python3.14/site-packages/datasets/iterable_dataset.py", line 2840, in __iter__
                  for key, example in ex_iterable:
                                      ^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/iterable_dataset.py", line 2373, in __iter__
                  for key, pa_table in self._iter_arrow():
                                       ~~~~~~~~~~~~~~~~^^
                File "/usr/local/lib/python3.14/site-packages/datasets/iterable_dataset.py", line 2398, in _iter_arrow
                  for key, pa_table in self.ex_iterable._iter_arrow():
                                       ~~~~~~~~~~~~~~~~~~~~~~~~~~~~^^
                File "/usr/local/lib/python3.14/site-packages/datasets/iterable_dataset.py", line 536, in _iter_arrow
                  for key, pa_table in iterator:
                                       ^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/iterable_dataset.py", line 419, in _iter_arrow
                  for key, pa_table in self.generate_tables_fn(**gen_kwags):
                                       ~~~~~~~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/packaged_modules/json/json.py", line 343, in _generate_tables
                  self._cast_table(pa_table, json_field_paths=json_field_paths),
                  ~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
                File "/usr/local/lib/python3.14/site-packages/datasets/packaged_modules/json/json.py", line 132, in _cast_table
                  pa_table = table_cast(pa_table, self.info.features.arrow_schema)
                File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2378, in table_cast
                  return cast_table_to_schema(table, schema)
                File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2306, in cast_table_to_schema
                  raise CastError(
                  ...<3 lines>...
                  )
              datasets.table.CastError: Couldn't cast
              id: string
              id_no: int64
              title: string
              code_file: string
              language: string
              kernel_type: string
              is_private: bool
              enable_gpu: bool
              enable_tpu: bool
              enable_internet: bool
              keywords: list<item: string>
                child 0, item: string
              dataset_sources: list<item: string>
                child 0, item: string
              kernel_sources: list<item: null>
                child 0, item: null
              competition_sources: list<item: string>
                child 0, item: string
              model_sources: list<item: null>
                child 0, item: null
              docker_image: string
              machine_shape: string
              to
              {'id': Value('string'), 'title': Value('string'), 'code_file': Value('string'), 'language': Value('string'), 'kernel_type': Value('string'), 'is_private': Value('bool'), 'enable_gpu': Value('bool'), 'enable_tpu': Value('bool'), 'enable_internet': Value('bool'), 'keywords': List(Value('string')), 'dataset_sources': List(Value('string')), 'kernel_sources': List(Value('null')), 'competition_sources': List(Value('string')), 'model_sources': List(Value('null')), 'docker_image': Value('string'), 'machine_shape': Value('string')}
              because column names don't match

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ARC-AGI-3 GitHub Collection — every useful repo, mirrored & organized

Mirrored 2026-09-29 · 45 repositories covering the full public ARC-AGI-3 landscape, discovered via GitHub API search (6 query buckets, 152 unique hits → 45 selected for direct competition relevance).

Companion Space: Nabidnur/arc-agi-3-command-center · Models index: Nabidnur/arc-agi-3-models-and-analysis · Datasets: Nabidnur/arc-agi-3-datasets-combined

Layout

  • repos/<owner>__<name>/ — full source of each repo (.git stripped, exact snapshot 2026-09-29)
  • repos/GITHUB-INDEX.md — annotated index: what each repo is, why it matters, star count
  • provenance/github_discovery_ranked.json — raw ranked discovery dump (152 repos with stars/topics/queries)

The crown jewels

Path Why
repos/Tufalabs__duck-harness Milestone-1 winner (our base harness) + full example-run trace corpus (events.jsonl + transcripts + prompts for all 25 games × levels)
repos/ryanbbrown__Retrodict 183/183, 99.86% RHAE, $654 — log-as-context + plan-queue verification + playbook memory
repos/NIMI-research__Tycho 183/183, 100.00 RHAE — deterministic Moore-machine rendering
repos/synchopate__arc-agi-crystalline 180/183 — source-reading + ACT-R cognitive memory
repos/Alexyskoutnev__TWIN-ARC-AGI-3 179/183 — executable game twin, plan-in-twin, ExecuteChecked
repos/alexisfox7__PRO-LONG +18pp, 4.2–5.8× token reduction — append-only searchable log
repos/studio-dots-ai__TELL 43.9% single-conversation experiential learning
repos/NVIDIA__dream-team NVIDIA's multi-agent ARC-AGI-3 solver (AVO lineage)
repos/feng-rrRay__Continual-Harness-ARC-AGI-3 Continual skill library across games
repos/arcprize__* Official: ARC-AGI-3-Agents, Kaggle-Starter, benchmarking, ARC-AGI-1/2 data, community leaderboard
repos/Hisernberg__checkmpobbyacckraggle Complete Kaggle research archive: 237-submission history, leaderboard snapshots, kernel index

Licenses

Each mirrored repo keeps its original LICENSE file. All content © original authors — mirrored for research access with attribution; see per-repo provenance in repos/GITHUB-INDEX.md.


Milestone-2 Update (2026-10-02)

ARC-AGI-3 Milestone 2 = leaderboard snapshot at Sept 30, 2026 23:59 UTC (open-source notebooks). Podium: dfranzen 27.89 · lordhansolo 23.84 · sirikilohit/rellik13 22.53 · richardcsaky 20.00. All four run the same lineage: Tufa Duck/TAAF harness + Qwen3.8-Flash-Next (Intel W4A16 AutoRound or mixed NVFP4/FP8) + MTP speculative decoding + FP8 E4M3 KV cache (1.0–1.4M-token pools) + 45–57k rolling history with blockwise hysteresis trims + score-aware scheduling.

The one ablation that matters: FP8 KV + longer history alone took rellik13 14.49 → 22.53 with zero prompt changes; KV pool was 91–97% full — memory, not decode TPS, was the bottleneck.

Full deconstruction incl. the 4→27 thought process, per-notebook serving configs, LB scoring factors (level = min(115, (baseline/your_actions)²×100)), top-notebook gap analysis, and the 30–40+ fusion plan: see docs/27-milestone2-analysis.md in arc-agi-3-models-and-analysis and this repo's milestone2/ folder.

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