{"as_of":"2026-08-07T09:45:00Z","caps":{"database_statements":6,"inbound":100,"outbound":100},"context_digest":"sha256:ea8b4c3373ec1d88f08bfe440a087be53467def31a56e86f4a96692ed64e1aec","coverage":[{"denominator":0,"lane":"reference_resolution","note":"Typed states for the displayed outbound observations.","records_observed":0,"source":"paper_references, paper_reference_links","source_observed_at":null,"state":"measured"},{"denominator":5,"lane":"standing_notices","note":"One-hop event checks from named stored sources.","records_observed":5,"source":"scholarly_work_events, retraction_status_cache","source_observed_at":"2026-08-07T06:34:17.273281+00:00","state":"measured"},{"denominator":5,"lane":"inbound_itemization","note":"Pith citing papers itemized under the disclosed page cap.","records_observed":5,"source":"paper_references, paper_reference_links","source_observed_at":"2026-08-05T05:50:38.971836Z","state":"measured"},{"denominator":1,"lane":"external_citation_measurements","note":"A source-named dated measurement, never combined with another source.","records_observed":0,"source":"arxiv_reference","source_observed_at":"2026-05-10T22:25:49.479069Z","state":"measured"}],"external_citation_measurements":[],"inbound":[{"citation":{"cited_paper":{"arxiv_id":"2410.13856","last_updated":"2024-10-17T17:59:34Z","snapshot_observed_at":"2026-07-06T19:35:30.732080Z","submitted_at":"2024-10-17T17:59:34Z","title":"A Fourier analysis framework for approximate classical simulations of quantum circuits","version":1},"cited_work":{"arxiv_id":null,"doi":null,"metadata_source":null,"pith_arxiv_id":"2410.13856","snapshot_observed_at":"2026-08-05T05:50:38.971836Z","title":"Cirstoiu","venue":null,"work_id":null,"year":2024},"citing_paper":{"arxiv_id":"2509.04923","last_updated":"2025-09-05T08:41:24Z","snapshot_observed_at":"2026-08-06T23:10:35.759751Z","submitted_at":"2025-09-05T08:41:24Z","title":"Artificial intelligence for representing and characterizing quantum systems","version":1},"reference_index":69,"source":"pdf_text","source_observed_at":"2026-08-05T05:50:38.971836Z"},"links":{"cited_paper":"/paper/2410.13856","citing_paper":"/paper/2509.04923"},"observation_digest":"sha256:7f49478b04674b276230fdb0cf4324237b192fbfc4f007662365652a60e6c72c","observation_id":"c35d7aef-d059-4fa4-a522-a33eee56d654","resolution":{"observed_at":"2026-08-05T05:50:38.971836Z","resolver_source":null,"status":"unresolved"},"standing_notice":{"events":[],"reason":"canonical_work_link_unavailable","source_receipts":[],"state":"unavailable"}},{"citation":{"cited_paper":{"arxiv_id":"2410.13856","last_updated":"2024-10-17T17:59:34Z","snapshot_observed_at":"2026-07-06T19:35:30.732080Z","submitted_at":"2024-10-17T17:59:34Z","title":"A Fourier analysis framework for approximate classical simulations of quantum circuits","version":1},"cited_work":{"arxiv_id":null,"doi":null,"metadata_source":null,"pith_arxiv_id":"2410.13856","snapshot_observed_at":"2026-08-05T05:22:17.733536Z","title":"A fourier analysis framework for approximate classical simulations of quantum circuits","venue":null,"work_id":null,"year":2024},"citing_paper":{"arxiv_id":"2509.05710","last_updated":"2025-09-09T04:58:35Z","snapshot_observed_at":"2026-08-05T05:22:15.956301Z","submitted_at":"2025-09-06T13:09:50Z","title":"Another generalization of Hadamard test: Optimal sample complexities for learning functions on the unitary group","version":2},"reference_index":14,"source":"arxiv_source","source_observed_at":"2026-08-05T05:22:17.733536Z"},"links":{"cited_paper":"/paper/2410.13856","citing_paper":"/paper/2509.05710"},"observation_digest":"sha256:44589ad8cc7d60b75868e9369b4f09c24b960f13d410e2fff92a44612d534500","observation_id":"bc2a2a76-69d0-4612-a545-5f1e0b94fa8c","resolution":{"observed_at":"2026-08-05T05:22:17.733536Z","resolver_source":null,"status":"unresolved"},"standing_notice":{"events":[],"reason":"canonical_work_link_unavailable","source_receipts":[],"state":"unavailable"}},{"citation":{"cited_paper":{"arxiv_id":"2410.13856","last_updated":"2024-10-17T17:59:34Z","snapshot_observed_at":"2026-07-06T19:35:30.732080Z","submitted_at":"2024-10-17T17:59:34Z","title":"A Fourier analysis framework for approximate classical simulations of quantum circuits","version":1},"cited_work":{"arxiv_id":"2410.13856","doi":null,"metadata_source":"arxiv_reference","pith_arxiv_id":"2410.13856","snapshot_observed_at":"2026-06-05T21:23:00.469572Z","title":"Cirstoiu, arXiv preprint arXiv:2410.13856 (2024)","venue":null,"work_id":"937cecb5-a37f-48c7-8d3c-67ad48ea13ea","year":2024},"citing_paper":{"arxiv_id":"2604.05036","last_updated":"2026-04-22T17:19:37Z","snapshot_observed_at":"2026-08-03T04:01:34.433238Z","submitted_at":"2026-04-06T18:00:04Z","title":"Efficient simulation of noisy IQP circuits with amplitude-damping noise","version":2},"reference_index":28,"source":"pdf_text","source_observed_at":"2026-05-10T19:55:12.229815Z"},"links":{"cited_paper":"/paper/2410.13856","citing_paper":"/paper/2604.05036"},"observation_digest":"sha256:36b27fd1f4d1d28dabaf66b7de2d2d638b415a5c4d2ef6f1033adb24abedc546","observation_id":"8ecc5ad9-f572-42f4-be94-aeefb23f8d3d","resolution":{"observed_at":"2026-05-10T22:25:49.484350Z","resolver_source":"arxiv_id","status":"verified_exact"},"standing_notice":{"events":[],"observation":"No event found in the named queried sources as of 2026-08-07T06:34:17.273281+00:00.","reason":null,"source_receipts":[{"observed_at":"2026-08-07T06:34:17.273281+00:00","source":"crossref"},{"observed_at":"2026-08-07T06:34:11.927384+00:00","source":"retraction_watch"}],"state":"measured"}},{"citation":{"cited_paper":{"arxiv_id":"2410.13856","last_updated":"2024-10-17T17:59:34Z","snapshot_observed_at":"2026-07-06T19:35:30.732080Z","submitted_at":"2024-10-17T17:59:34Z","title":"A Fourier analysis framework for approximate classical simulations of quantum circuits","version":1},"cited_work":{"arxiv_id":null,"doi":null,"metadata_source":null,"pith_arxiv_id":"2410.13856","snapshot_observed_at":"2026-08-01T23:57:33.595449Z","title":"Cirstoiu, A fourier analysis framework for approx- imate classical simulations of quantum circuits, arXiv preprint arXiv:2410.13856 (2024)","venue":null,"work_id":null,"year":2024},"citing_paper":{"arxiv_id":"2607.15184","last_updated":"2026-07-16T16:35:38Z","snapshot_observed_at":"2026-08-06T16:36:28.356758Z","submitted_at":"2026-07-16T16:35:38Z","title":"Backpropagating Pauli Propagation","version":1},"reference_index":31,"source":"pdf_text","source_observed_at":"2026-08-01T23:57:33.595449Z"},"links":{"cited_paper":"/paper/2410.13856","citing_paper":"/paper/2607.15184"},"observation_digest":"sha256:817163034c8e886cf67159c22877be8787ffd947f547a9af279974bd92a0085a","observation_id":"d8272ed6-91d6-4b19-b7d2-df1f0a5cc2a1","resolution":{"observed_at":"2026-08-01T23:57:33.595449Z","resolver_source":null,"status":"unresolved"},"standing_notice":{"events":[],"reason":"canonical_work_link_unavailable","source_receipts":[],"state":"unavailable"}},{"citation":{"cited_paper":{"arxiv_id":"2410.13856","last_updated":"2024-10-17T17:59:34Z","snapshot_observed_at":"2026-07-06T19:35:30.732080Z","submitted_at":"2024-10-17T17:59:34Z","title":"A Fourier analysis framework for approximate classical simulations of quantum circuits","version":1},"cited_work":{"arxiv_id":null,"doi":null,"metadata_source":null,"pith_arxiv_id":"2410.13856","snapshot_observed_at":"2026-08-01T09:31:33.662320Z","title":"A fourier analysis framework for approximate classical simulations of quantum circuits","venue":null,"work_id":null,"year":2024},"citing_paper":{"arxiv_id":"2607.20804","last_updated":"2026-07-23T00:23:18Z","snapshot_observed_at":"2026-08-05T12:56:34.760810Z","submitted_at":"2026-07-23T00:23:18Z","title":"Hardness and Complexity Transition of Noisy Random Circuit Sampling","version":1},"reference_index":34,"source":"pdf_text","source_observed_at":"2026-08-01T09:31:33.662320Z"},"links":{"cited_paper":"/paper/2410.13856","citing_paper":"/paper/2607.20804"},"observation_digest":"sha256:579a6a8ddb6d2c12acfc8b1176f4db9383fc851f783423fc569cff83f4c38503","observation_id":"c17cdc43-a97f-4f5b-b90e-78da8f95b6f1","resolution":{"observed_at":"2026-08-01T09:31:33.662320Z","resolver_source":null,"status":"unresolved"},"standing_notice":{"events":[],"reason":"canonical_work_link_unavailable","source_receipts":[],"state":"unavailable"}}],"links":{"evidence":"/evidence","html":"/paper/2410.13856/citation-record","integrity":"/paper/2410.13856/integrity","json":"/paper/2410.13856/citation-record.json","paper":"/paper/2410.13856"},"outbound":[],"paper":{"arxiv_id":"2410.13856","last_updated":"2024-10-17T17:59:34Z","latest_version":1,"primary_category":"quant-ph","snapshot_observed_at":"2026-07-06T19:35:30.732080Z","submitted_at":"2024-10-17T17:59:34Z","title":"A Fourier analysis framework for approximate classical simulations of quantum circuits"},"reference_resolution":{"displayed":0,"state_counts":{"malformed_identifier":0,"metadata_mismatch":0,"parse_uncertain":0,"unresolved":0,"verified_exact":0,"verified_fuzzy":0},"total_outbound_references":0},"refusal":"A citation records a reference. It does not transfer a finding from one paper to another.","schema":"pith.paper-citation-record.v1","standing_sources":[{"observed_at":"2026-08-07T06:34:17.273281+00:00","source":"crossref"},{"observed_at":"2026-08-07T06:34:11.927384+00:00","source":"retraction_watch"}],"thesis":"As of 7 August 2026, this Paper Citation Record lists 0 of 0 outbound references and 5 inbound Pith citation observations for arXiv:2410.13856."}