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Error code: DatasetGenerationError
Exception: TypeError
Message: Couldn't cast array of type string to null
Traceback: Traceback (most recent call last):
File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1816, in _prepare_split_single
for key, table in generator:
^^^^^^^^^
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 613, in wrapped
for item in generator(*args, **kwargs):
~~~~~~~~~^^^^^^^^^^^^^^^^^
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 2369, in table_cast
return cast_table_to_schema(table, schema)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2303, in cast_table_to_schema
cast_array_to_feature(
~~~~~~~~~~~~~~~~~~~~~^
table[name] if name in table_column_names else pa.array([None] * len(table), type=schema.field(name).type),
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
feature,
^^^^^^^^
)
^
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 1852, in wrapper
return pa.chunked_array([func(chunk, *args, **kwargs) for chunk in array.chunks])
~~~~^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2059, in cast_array_to_feature
_c(array.field(name) if name in array_fields else null_array, subfeature)
~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 1854, in wrapper
return func(array, *args, **kwargs)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2109, in cast_array_to_feature
casted_array_values = _c(array.values, feature.feature)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 1854, in wrapper
return func(array, *args, **kwargs)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2143, in cast_array_to_feature
return array_cast(
array,
...<2 lines>...
allow_decimal_to_str=allow_decimal_to_str,
)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 1854, in wrapper
return func(array, *args, **kwargs)
File "/usr/local/lib/python3.14/site-packages/datasets/table.py", line 2005, in array_cast
raise TypeError(f"Couldn't cast array of type {_short_str(array.type)} to {_short_str(pa_type)}")
TypeError: Couldn't cast array of type string to null
The above exception was the direct cause of the following exception:
Traceback (most recent call last):
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 1369, in compute_config_parquet_and_info_response
parquet_operations, partial, estimated_dataset_info = stream_convert_to_parquet(
~~~~~~~~~~~~~~~~~~~~~~~~~^
builder, max_dataset_size_bytes=max_dataset_size_bytes
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
)
^
File "/src/services/worker/src/worker/job_runners/config/parquet_and_info.py", line 948, in stream_convert_to_parquet
builder._prepare_split(split_generator=splits_generators[split], file_format="parquet")
~~~~~~~~~~~~~~~~~~~~~~^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1683, in _prepare_split
for job_id, done, content in self._prepare_split_single(
~~~~~~~~~~~~~~~~~~~~~~~~~~^
gen_kwargs=gen_kwargs, job_id=job_id, **_prepare_split_args
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
):
^
File "/usr/local/lib/python3.14/site-packages/datasets/builder.py", line 1869, in _prepare_split_single
raise DatasetGenerationError("An error occurred while generating the dataset") from e
datasets.exceptions.DatasetGenerationError: An error occurred while generating the datasetNeed help to make the dataset viewer work? Make sure to review how to configure the dataset viewer, and open a discussion for direct support.
dataset_version string | example_type string | split string | challenge_domain string | challenge_id string | challenge_seed string | record_id string | source_s3_key string | selection dict | quality_score float64 | prompt string | messages list | assistant_response unknown | assistant_response_text string | document string | questions list | constraints list | question_metadata list | constraint_paths dict | paragraph_count int64 | modifiers list | trap_metadata dict | reasoning_trace list | artifact string | submitted_answers unknown | answer_verification dict | trace_quality unknown | trace_validation dict | trace_stats dict | trace_spatial_summary dict | reasoning_depth dict | pass bool | acceptance_path string | trap_classification string | path_a_would_have_passed bool | constraint_results dict | constraint_pass_count int64 | constraint_fail_count int64 | constraint_total int64 | constraints_passed list | constraints_failed list | attempt_index int64 | retry_metadata dict | constraint_flip_summary dict | time_since_previous_attempt_ms int64 | feedback_shown dict | miner_id string | model_version string | timestamp string | storage_schema_version int64 | quality_schema_version int64 | dataset_namespace string | reward_answer_accuracy float64 | reward_constraint_satisfaction float64 | reward_citation_accuracy float64 | reward_reasoning_depth float64 | reward_trace_quality float64 | reward_trap_avoidance float64 | reward_pass bool | domain string |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0xe43997def28b0c4a2ee4ca742f6640aec22e3e91c624b4547d1514850444e768 | 314341446272128819860832392633014860281 | 4140d941-d6bf-4bba-bedf-328592bd1a72 | dataset/v2/domains/companies/seeds/314341446272128819860832392633014860281/attempts/research-ready/4140d941-d6bf-4bba-bedf-328592bd1a72.json | {
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} | 1 | You are solving a deterministic reasoning challenge.
Document:
[paragraph_1]
[FOR IMMEDIATE RELEASE] Corporate performance highlights.
[paragraph_2]
Q3 revenue at Pyra Flow beat Byte Hub's tally by $1,399M. For the late-year, Pyra Flow registered growth 25 points weaker than Byte Hub. Pyra Flow's closing-quarter top ... | [
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"role": "user",
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"think": "> extract: Byte Hub | ceo | Sven Sato | paragraph_68 | verified | zone:STANDARD\n> extract: Byte Hub | hq_city | Falkridge | paragraph_68 | verified | zone:STANDARD\n> extract: Byte Hub | hq_country | Jorvik | paragraph_68 | verified | zone:STANDARD\n> extract: Byte Hub | founded | 2000 | paragraph_68 | v... | <think>
> extract: Byte Hub | ceo | Sven Sato | paragraph_68 | verified | zone:STANDARD
> extract: Byte Hub | hq_city | Falkridge | paragraph_68 | verified | zone:STANDARD
> extract: Byte Hub | hq_country | Jorvik | paragraph_68 | verified | zone:STANDARD
> extract: Byte Hub | founded | 2000 | paragraph_68 | verified |... | [paragraph_1]
[FOR IMMEDIATE RELEASE] Corporate performance highlights.
[paragraph_2]
Q3 revenue at Pyra Flow beat Byte Hub's tally by $1,399M. For the late-year, Pyra Flow registered growth 25 points weaker than Byte Hub. Pyra Flow's closing-quarter top line surpassed Byte Hub's by 47 million dollars. Byte Hub outpac... | [
"Which company had the highest average quarterly growth rate across all four quarters?",
"Of the publicly traded companies, which one has the smallest debt-to-equity ratio?",
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{
"id": "highest_avg_growth",
"text": "Which company had the highest average quarterly growth rate across all four quarters?",
"answer": "Byte Hub"
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{
"id": "lowest_debt_to_equity_public",
"text": "Of the publicly traded companies, which one has the smallest debt-to-equity ratio?",
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... | Business High Falkridge Sato Jorvik 29 15+28=43 Silverlake Zephyrton Irondale Valecross Rosemount Elsmere | null | null | {
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"paragraphIndex": 68,
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... | {
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} | null | null | null | 0x66b85e039ca7932f426f8ddec4cad4716147a126 | claude-opus-4-6 | 2026-03-25T12:08:02.415Z | 2 | null | dataset/v2 | 0 | 1 | 1 | 0.115 | 1 | 1 | true | companies |
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} | null | null | null | 0x375cf1f4261045feb601b480ae12afb1efda761b | claude-opus-4-6 | 2026-03-25T12:09:11.216Z | 2 | null | dataset/v2 | 0 | 1 | 1 | 0.203 | 1 | 1 | true | companies |
balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0xb8022ceaf72cc2bc4673437abd2470476b35f53ae9cc873857ffb70b7df68c9b | 200748782387273049818513571678729967805 | 943f49d2-c6e4-4816-a109-4d58985c89b7 | "dataset/v2/domains/companies/seeds/200748782387273049818513571678729967805/attempts/research-ready/(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 1 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\n[FOR IMMEDIATE RE(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Zeno Wave | ceo | Pavel Albrecht | paragraph_40 | verified | zone:STANDARD\n> e(...TRUNCATED) | "<think>\n> extract: Zeno Wave | ceo | Pavel Albrecht | paragraph_40 | verified | zone:STANDARD\n> e(...TRUNCATED) | "[paragraph_1]\n[FOR IMMEDIATE RELEASE] Corporate performance highlights.\n\n[paragraph_2]\nUnder Ch(...TRUNCATED) | ["Which company founded during the 2010s has the best satisfaction rating?","Which company with a de(...TRUNCATED) | ["Write EXACTLY 15 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"founded_in_decade_highest_satisfaction","text":"Which company founded during the 2010s has t(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":15},{"type":"must_include","text":"Northgate(...TRUNCATED) | 100 | [] | {"worldSeed":"200748782387273049818513571678729967805","challenge_domain":"companies","trap_count":1(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Zeno Wave","attribute":"ceo","valueExtracte(...TRUNCATED) | "Results Annual Northgate Park Alderia 59 45+55=100 Thornfield Umberdale Kelverton Glenspire Rosemou(...TRUNCATED) | null | null | {"total_steps":33,"verified_steps":33,"unverified_steps":0,"citation_match_rate":1,"unique_paragraph(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":1.0,"total_extract_facts":25,"matched_extract_facts":(...TRUNCATED) | {
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} | null | null | null | 0x375cf1f4261045feb601b480ae12afb1efda761b | claude-opus-4-6 | 2026-03-25T12:44:32.575Z | 2 | null | dataset/v2 | 0 | 1 | 1 | 0.151 | 1 | 1 | true | companies |
balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0xabf3ee067cec29b9baee34af4298d5aa7ed3117e2d5d33c84fa75504c1fb9394 | 28867555149359817711545522576092879651 | 4b37b9db-7143-437e-8540-ccf715b7a0a4 | "dataset/v2/domains/companies/seeds/28867555149359817711545522576092879651/attempts/research-ready/4(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 1 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\n== Corporate data(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Mira Edge | ceo | Corwin Webb | paragraph_47 | verified | zone:STANDARD\n> extr(...TRUNCATED) | "<think>\n> extract: Mira Edge | ceo | Corwin Webb | paragraph_47 | verified | zone:STANDARD\n> extr(...TRUNCATED) | "[paragraph_1]\n== Corporate data digest ==\n\n[paragraph_2]\nLeadership Daria Thorne; 97,304 employ(...TRUNCATED) | ["Which company had the highest average quarterly growth rate across all four quarters?","Among priv(...TRUNCATED) | ["Write EXACTLY 17 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"highest_avg_growth","text":"Which company had the highest average quarterly growth rate acro(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":17},{"type":"must_include","text":"Zephyrton(...TRUNCATED) | 99 | [] | {"worldSeed":"28867555149359817711545522576092879651","challenge_domain":"companies","trap_count":1,(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Mira Edge","attribute":"ceo","valueExtracte(...TRUNCATED) | On Findings Zephyrton Webb Brevoria 23 21+22=43 Pinecrest Veldmar Haverston Northgate Caltheon | null | null | {"total_steps":56,"verified_steps":56,"unverified_steps":0,"citation_match_rate":1,"unique_paragraph(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":1.0,"total_extract_facts":48,"matched_extract_facts":(...TRUNCATED) | {
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"extract_fact_steps": 48,
"compute_logic_steps": 8,
"reasoning_steps": 0
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} | null | null | null | 0x45723ffa4491cf9b1a36e4e4156d47566a068b3e | claude-opus-4-6 | 2026-03-25T13:04:08.110Z | 2 | null | dataset/v2 | 0 | 1 | 1 | 0.137 | 1 | 1 | true | companies |
balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0x9751174ce1e402941d4e9e220dfc247ec31a58af3bd1545ecdd1e809a3a0ccd9 | 113844102833447018447731241413164985640 | df918dba-8123-45b9-ab33-824cf319433f | "dataset/v2/domains/companies/seeds/113844102833447018447731241413164985640/attempts/research-ready/(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 1 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\nRegulatory filing(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Flux Robotics | revenue.0 | $1,057M | paragraph_6 | verified | zone:STANDARD\n>(...TRUNCATED) | "<think>\n> extract: Flux Robotics | revenue.0 | $1,057M | paragraph_6 | verified | zone:STANDARD\n>(...TRUNCATED) | "[paragraph_1]\nRegulatory filing synopsis.\n\n[paragraph_2]\nThe difference in first-quarter revenu(...TRUNCATED) | ["Among publicly traded companies with above-average total annual revenue, which has the lowest debt(...TRUNCATED) | ["Write EXACTLY 14 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"public_above_avg_revenue_lowest_de","text":"Among publicly traded companies with above-avera(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":14},{"type":"must_include","text":"Kelverton(...TRUNCATED) | 99 | [] | {"worldSeed":"113844102833447018447731241413164985640","challenge_domain":"companies","trap_count":1(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Flux Robotics","attribute":"revenue.0","val(...TRUNCATED) | Nava Capital is based in Kelverton; Croft leads from Westmark; prime is 97; 38+30=68 | null | null | {"total_steps":30,"verified_steps":30,"unverified_steps":0,"citation_match_rate":1,"unique_paragraph(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":1.0,"total_extract_facts":21,"matched_extract_facts":(...TRUNCATED) | {
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"extract_fact_steps": 21,
"compute_logic_steps": 9,
"reasoning_steps": 0
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balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0x4af2ba038964a80b0f31c2839ac9291010d26ad685fd3f7c49b6f029ff21925d | 306909620233331560534163555544157203261 | 308f18db-ee11-48bd-a4ba-d6bbac7d2782 | "dataset/v2/domains/companies/seeds/306909620233331560534163555544157203261/attempts/research-ready/(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 1 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\nOperations call t(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Torq Synth | ceo | Corwin Ulrich | paragraph_94 | verified | zone:STANDARD\n> e(...TRUNCATED) | "<think>\n> extract: Torq Synth | ceo | Corwin Ulrich | paragraph_94 | verified | zone:STANDARD\n> e(...TRUNCATED) | "[paragraph_1]\nOperations call transcript extract.\n\n[paragraph_2]\nThe late-year shortfall for Xe(...TRUNCATED) | ["Which company had the highest average quarterly growth rate across all four quarters?","Which comp(...TRUNCATED) | ["Write EXACTLY 17 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"highest_avg_growth","text":"Which company had the highest average quarterly growth rate acro(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":17},{"type":"must_include","text":"Aelbrook"(...TRUNCATED) | 99 | [] | {"worldSeed":"306909620233331560534163555544157203261","challenge_domain":"companies","trap_count":1(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Torq Synth","attribute":"ceo","valueExtract(...TRUNCATED) | "Total Sector Aelbrook Sato Alderia 17 58+28=86 Veldmar Windmere Silverlake Thornfield Millhaven Cop(...TRUNCATED) | null | null | {"total_steps":62,"verified_steps":62,"unverified_steps":0,"citation_match_rate":1,"unique_paragraph(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":1.0,"total_extract_facts":54,"matched_extract_facts":(...TRUNCATED) | {
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"compute_logic_steps": 8,
"reasoning_steps": 0
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balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0xed9555a98b5069b09258cbda759adbc02185c544d42e2bb9975b7e694ddb791e | 217916386605467421925644926471044822834 | c8da660b-ede6-47f0-8e8d-05a86ff2a349 | "dataset/v2/domains/companies/seeds/217916386605467421925644926471044822834/attempts/research-ready/(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 0.977 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\n== Corporate data(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Flux Analytics | ceo | Sigrid Graves | paragraph_17 | verified | zone:STANDARD\(...TRUNCATED) | "<think>\n> extract: Flux Analytics | ceo | Sigrid Graves | paragraph_17 | verified | zone:STANDARD\(...TRUNCATED) | "[paragraph_1]\n== Corporate data digest ==\n\n[paragraph_2]\nZeta Tech traces its origins to 2018 a(...TRUNCATED) | ["Which company headquartered in Novara has the largest employee count?","Among companies headquarte(...TRUNCATED) | ["Write EXACTLY 17 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"most_employees_in_country","text":"Which company headquartered in Novara has the largest emp(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":17},{"type":"must_include","text":"Valecross(...TRUNCATED) | 102 | [] | {"worldSeed":"217916386605467421925644926471044822834","challenge_domain":"companies","trap_count":1(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Flux Analytics","attribute":"ceo","valueExt(...TRUNCATED) | "Results Capital Valecross Graves Zelmara 97 21+29=50 Surion Windmere Millhaven Pinecrest Thornfield(...TRUNCATED) | null | null | {"total_steps":63,"verified_steps":61,"unverified_steps":2,"citation_match_rate":0.9636363636,"uniqu(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":0.9636363636,"total_extract_facts":55,"matched_extrac(...TRUNCATED) | {
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"compute_logic_steps": 8,
"reasoning_steps": 0
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balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0xeead7f4deea9920f399958143d9cfb9a16cf50d1d877f76c970079d7d4b418f5 | 51728035528790940991064727385051469451 | 96e1e18e-5083-448c-b650-6a9d5db4e772 | "dataset/v2/domains/companies/seeds/51728035528790940991064727385051469451/attempts/research-ready/9(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 0.969 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\nAnalyst briefing:(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Arlo Industries | ceo | Kael Eriksen | paragraph_56 | verified | zone:STANDARD\(...TRUNCATED) | "<think>\n> extract: Arlo Industries | ceo | Kael Eriksen | paragraph_56 | verified | zone:STANDARD\(...TRUNCATED) | "[paragraph_1]\nAnalyst briefing: compiled corporate performance summaries.\n\n[paragraph_2]\nWith 4(...TRUNCATED) | ["Among public companies that had positive growth in every quarter, which has the fewest employees?"(...TRUNCATED) | ["Write EXACTLY 14 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"smallest_public_all_positive_growth","text":"Among public companies that had positive growth(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":14},{"type":"must_include","text":"Tamberlyn(...TRUNCATED) | 98 | [] | {"worldSeed":"51728035528790940991064727385051469451","challenge_domain":"companies","trap_count":1,(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Arlo Industries","attribute":"ceo","valueEx(...TRUNCATED) | "Net Per Tamberlyn Quade Rivenna 89 34+10=44 Surion Jinsworth Veldmar Falkridge Thornfield Quartzhil(...TRUNCATED) | null | null | {"total_steps":68,"verified_steps":65,"unverified_steps":3,"citation_match_rate":0.9500000000000001,(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":0.95,"total_extract_facts":60,"matched_extract_facts"(...TRUNCATED) | {
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} | null | null | null | 0xb259d31a9f5d312cb9bf84484b13691a56e164d2 | claude-opus-4-6 | 2026-03-25T13:56:26.452Z | 2 | null | dataset/v2 | 0 | 1 | 0.95 | 0.182 | 0.969 | 1 | true | companies |
balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0x62b720eba5de5f20962c5cc022d2b6667e6f78e9facb9c4c8a0d31759d1945cd | 218135113837572451373718041190217434477 | 93bbd0cb-1cde-47cf-a271-c4b65afe1052 | "dataset/v2/domains/companies/seeds/218135113837572451373718041190217434477/attempts/research-ready/(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 0.947 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\nInternal memo thr(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Neos Arc | ceo | Brynn Yeung | paragraph_39 | verified | zone:STANDARD\n> extra(...TRUNCATED) | "<think>\n> extract: Neos Arc | ceo | Brynn Yeung | paragraph_39 | verified | zone:STANDARD\n> extra(...TRUNCATED) | "[paragraph_1]\nInternal memo thread: quarterly performance summaries.\n\n[paragraph_2]\nOpti Wave t(...TRUNCATED) | ["Find the oldest company in the Petro sector; among companies in that same country, which has the h(...TRUNCATED) | ["Write EXACTLY 15 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"conditional_country_from_oldest_sector_then_highest_q3_revenue","text":"Find the oldest comp(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":15},{"type":"must_include","text":"Falkridge(...TRUNCATED) | 100 | [] | {"worldSeed":"218135113837572451373718041190217434477","challenge_domain":"companies","trap_count":1(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Neos Arc","attribute":"ceo","valueExtracted(...TRUNCATED) | "Findings Capital Falkridge Yeung Kelmara 97 49+59=108 Draycott Aelbrook Zephyrton Haverston Umberda(...TRUNCATED) | null | null | {"total_steps":55,"verified_steps":51,"unverified_steps":4,"citation_match_rate":0.914893617,"unique(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":0.914893617,"total_extract_facts":47,"matched_extract(...TRUNCATED) | {
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"compute_logic_steps": 8,
"reasoning_steps": 0
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"retry_allowed": false
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balanced-top50-v1 | enriched_reasoning_attempt | test | companies | 0x6ff703f2114af43dc3cf51f19fa3325fc4e216ae26b53867091fdfb68893e997 | 51782686629441875389061652654859633026 | a7a31d93-b183-449f-80fd-b0cd6373aaee | "dataset/v2/domains/companies/seeds/51782686629441875389061652654859633026/attempts/research-ready/a(...TRUNCATED) | {"policy":"research_ready_top_50_percent_per_domain_equalized_to_smallest_domain","quality_metric":"(...TRUNCATED) | 0.94 | "You are solving a deterministic reasoning challenge.\n\nDocument:\n[paragraph_1]\nAnalyst briefing:(...TRUNCATED) | [{"role":"user","content":"You are solving a deterministic reasoning challenge.\n\nDocument:\n[parag(...TRUNCATED) | {"think":"> extract: Aero Global | ceo | Anya Ashford | paragraph_10 | verified | zone:STANDARD\n> e(...TRUNCATED) | "<think>\n> extract: Aero Global | ceo | Anya Ashford | paragraph_10 | verified | zone:STANDARD\n> e(...TRUNCATED) | "[paragraph_1]\nAnalyst briefing: compiled corporate performance summaries.\n\n[paragraph_2]\nThe ga(...TRUNCATED) | ["Among companies with more than 29,893 employees, which has the lowest total annual revenue?","In T(...TRUNCATED) | ["Write EXACTLY 16 words. Single line.","Must include the headquarters city of the company that answ(...TRUNCATED) | [{"id":"lowest_total_revenue_large_headcount","text":"Among companies with more than 29,893 employee(...TRUNCATED) | {"pathAConstraints":[{"type":"exact_word_count","words":16},{"type":"must_include","text":"Quartzhil(...TRUNCATED) | 100 | [] | {"worldSeed":"51782686629441875389061652654859633026","challenge_domain":"companies","trap_count":1,(...TRUNCATED) | [{"step_id":"e1","action":"extract_fact","targetEntity":"Aero Global","attribute":"ceo","valueExtrac(...TRUNCATED) | "Per Quartzhill Ashford Caltheon 97 55+22=77 Rosemount Oakvale Veldmar Istara Thalassa Alderia Brenn(...TRUNCATED) | null | null | {"total_steps":49,"verified_steps":45,"unverified_steps":4,"citation_match_rate":0.9024390244,"uniqu(...TRUNCATED) | {"ok":true,"bogus":false,"citation_match_rate":0.9024390244,"total_extract_facts":41,"matched_extrac(...TRUNCATED) | {
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BOTCOIN Balanced Top-50 Reasoning Traces
This public dataset contains enriched BOTCOIN reasoning-trace attempts selected
from canonical dataset/v2 research-ready objects.
Selection policy:
- Source only
attempts/research-readyobjects. - Rank each domain by
trace_quality.reasoning_trace_quality_score. - Keep each domain's top 50 percent.
- Equalize domains to the smallest top-half count.
The rows are self-contained and intentionally rich: prompt/messages, document/questions/constraints, enriched reasoning trace, answer verification, trace quality, reward-style scalar fields, and provenance are included so downstream users can prune into SFT, GRPO/reward modeling, PRM, DPO-style pairing, or audit-specific views.
The attempts/ partition contains the balanced top-half quality attempts. The
recovery_pairs/ partition is intentionally not quality-filtered: it contains
all observed retry sessions where submit attempt 1 or 2 failed and a later
attempt 2 or 3 passed, represented as wrong-to-pass preference pairs.
Manifest
{
"dataset_version": "balanced-top50-v1",
"source_bucket": "botcoin-traces-annotated-429971482539-us-east-2-an",
"domains": [
"companies",
"computational_biology",
"quantum_physics",
"scrna_imputation"
],
"candidate_counts": {
"companies": 423753,
"computational_biology": 54771,
"quantum_physics": 52589,
"scrna_imputation": 56447
},
"top_half_counts": {
"companies": 211876,
"computational_biology": 27385,
"quantum_physics": 26294,
"scrna_imputation": 28223
},
"selected_per_domain": 26294,
"selected_total": 105176,
"quality_metric": "trace_quality.reasoning_trace_quality_score",
"created_at_unix_ms": 1782779509740,
"repo_id": "botcoinmoney/domain-agnostic-reasoning-traces-balanced-top50-v1",
"attempt_rows_written": 105176,
"attempt_split_counts": {
"companies": {
"train": 23672,
"validation": 1316,
"test": 1306
},
"computational_biology": {
"train": 23594,
"validation": 1368,
"test": 1332
},
"quantum_physics": {
"train": 23532,
"validation": 1388,
"test": 1374
},
"scrna_imputation": {
"train": 23627,
"validation": 1323,
"test": 1344
}
},
"recovery_pairs": {
"enabled": true,
"index_path": ".hf-exports/recovery-passed-attempt2-3.jsonl",
"sessions_seen": 6189,
"pairs_seen": 7030,
"pairs_written": 7030,
"skipped": 0,
"split_counts": {
"companies": {
"train": 2819,
"validation": 153,
"test": 165
},
"computational_biology": {
"train": 1199,
"validation": 74,
"test": 67
},
"quantum_physics": {
"train": 959,
"validation": 69,
"test": 53
},
"scrna_imputation": {
"train": 1339,
"validation": 66,
"test": 67
}
}
},
"actual_rows_written": 112206,
"context_misses": 0,
"context_regenerated": 104879
}
Split Counts
{
"companies": {
"train": 23672,
"validation": 1316,
"test": 1306
},
"computational_biology": {
"train": 23594,
"validation": 1368,
"test": 1332
},
"quantum_physics": {
"train": 23532,
"validation": 1388,
"test": 1374
},
"scrna_imputation": {
"train": 23627,
"validation": 1323,
"test": 1344
}
}
Loading
from datasets import load_dataset
attempts = load_dataset(
"botcoinmoney/domain-agnostic-reasoning-traces-balanced-top50-v1",
data_files="attempts/**/*.jsonl",
split="train",
)
recovery_pairs = load_dataset(
"botcoinmoney/domain-agnostic-reasoning-traces-balanced-top50-v1",
data_files="recovery_pairs/**/*.jsonl",
split="train",
)
Attempt rows include a messages column suitable for chat-style SFT and scalar
reward_* columns suitable for reward filtering or GRPO-style pipelines.
Recovery-pair rows include chosen/rejected, chosen_attempt/
rejected_attempt, and a rejected_attempts list for preference or recovery
tuning.
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