Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T11:31:39.944872Z
Paper Citation Record · LEDGER
As of 9 August 2026, this Paper Citation Record lists 52 of 52 outbound references and 2 inbound Pith citation observations for arXiv:2510.04487.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-04T11:31:39.944872Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-09T06:31:02.800959+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-05-12T02:10:12.434970Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-05-12T02:11:15.634485Z
52 of 52 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation f1620966-6835-4ccc-88ad-4094c3d1c6bd · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Maddix, Syama Rangapuram, David Salinas, Jasper Schulz, Lorenzo Stella, Ali Caner Tarkmen, and Yuyang Wang
Reference 1
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Unavailable: canonical work link unavailable.
Observation 7730d5e7-f727-4e86-a558-75da0b3591a8 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Maddix, Michael W
Reference 2
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Observation 5228ec8b-a662-4f0e-9b98-fffc48e4ff8d · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Hyndman, Haiyan Song, and Doris C
Reference 3
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Observation efce0775-3f19-4c64-b828-1cbfdd178147 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Neural machine translation by jointly learning to align and translate
Reference 4
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Unavailable: canonical work link unavailable.
Observation 8db473fd-fdf7-4f45-84c4-fbbbf427e1ed · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility PyTorchForecasting: Forecasting with neural networks made simple
Reference 5
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Observation 993609ee-2ebe-4fa9-89c6-c82c24619122 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility A neural probabilistic language model.Journal of Machine Learning Research, 3:1137–1155, 2003
Reference 6
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Unavailable: canonical work link unavailable.
Observation de580170-7225-46d9-8ddd-5473c182b3c2 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility On the use of cross-validation for time series predictor evaluation.Information Sciences, 191:192–213, 2012
Reference 7
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Unavailable: canonical work link unavailable.
Observation ef061b2f-166f-42a8-83f0-e81316b1d60d · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Language models are few-shot learners
Reference 8
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Observation f16f3ca2-65f0-4d9d-a138-d920bc9500cb · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Olivares, Boris N
Reference 9
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Unavailable: canonical work link unavailable.
Observation d8de52ba-ded3-4ab7-b3b7-d965d1df2cf1 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Dilated recurrent neural networks
Reference 10
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Observation 9d8069e5-24fd-4db2-97d1-178d108b8c98 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Chen, Lee Dicker, Carson Eisenach, and Dhruv Madeka
Reference 11
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Unavailable: canonical work link unavailable.
Observation 12453f54-946c-41ea-a24c-bf4e1b408008 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Dai and Quoc V
Reference 12
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Unavailable: canonical work link unavailable.
Observation 5659f7e1-c7d4-45b9-ac58-b91b20bffadf · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility A decoder-only foundation model for time-series forecasting, 2024
Reference 13
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Unavailable: canonical work link unavailable.
Observation 61d12861-c61d-4ecb-b79b-3d65036cd249 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility MQTransformer: Multi-Horizon Forecasts with Context Dependent and Feedback-Aware Attention
Reference 14
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Observation a405f083-950a-446b-899c-759d28d65792 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Foster and Robert A
Reference 15
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Observation 1daa30d3-90c7-4417-a018-ce55ab9b21c4 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Timegpt, 2023
Reference 16
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Observation 9e6d6dc0-93b1-4e75-9f4e-12462df0ef9d · outbound
Reference 17
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Unavailable: canonical work link unavailable.
Observation 4d3d4d47-0600-45c5-aa6c-dd4ed8b5f81d · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Strictly proper scoring rules, prediction, and estimation
Reference 18
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Unavailable: canonical work link unavailable.
Observation b9623eab-3589-4fe4-91e5-27ad013a9042 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Unresolved cited work
Reference 19
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Unavailable: canonical work link unavailable.
Observation c495bab9-f1ae-4e31-a360-3cb93b34ee5d · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility HEATH and PETER L
Reference 20
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Unavailable: canonical work link unavailable.
Observation 35da161e-150a-471a-8ea3-bbed9f6fab85 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Darts: User-friendly modern machine learning for time series.Journal of Machine Learning Research, 23(124):1–6, 2022
Reference 21
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Observation fd52fd6b-2037-487c-abb4-415cc55f1698 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Forecasting seasonals and trends by exponentially weighted moving averages
Reference 22
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Unavailable: canonical work link unavailable.
Observation 3efa3d65-7921-4035-af85-46e18742cf3e · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Olivares.Forecasting: Principles and Practice, the Pythonic Way
Reference 23
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Observation 90e47e61-a93c-49aa-a397-5f2d9fd9de11 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Hyndman and Baki Billah
Reference 24
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Unavailable: canonical work link unavailable.
Observation 2601c702-32ad-420a-b62b-64934cc435f3 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Hyndman and Yeasmin Khandakar
Reference 25
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Unavailable: canonical work link unavailable.
Observation 30f7ecaa-799f-4667-a38d-5cea796feb47 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Hyndman and Anne B
Reference 26
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Unavailable: canonical work link unavailable.
Observation 943c5551-9d4f-4c42-88cf-d9ed0666c6a6 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Regression quantiles.Econometrica, 46(1):33–50, 1978
Reference 27
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Unavailable: canonical work link unavailable.
Observation 39072e85-4193-427c-b863-f3b0f6d31f69 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Deeply- Supervised Nets
Reference 28
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Unavailable: canonical work link unavailable.
Observation c1266e91-0527-4dd8-93d6-92dfe7df9597 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Arık, Nicolas Loeff, and Tomas Pfister
Reference 29
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Unavailable: canonical work link unavailable.
Observation f6954e4d-6a44-4079-aa64-f5c5a030e6ba · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Kale, Charles Elkan, and Randall C
Reference 30
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Unavailable: canonical work link unavailable.
Observation 0ea8dab6-4a5d-444a-a2a2-32c21265e96a · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Makridakis, A
Reference 31
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Observation cf7904ef-aa19-41a5-b67c-c2f9b14be5a6 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility The M3-competition: results, conclusions and implica- tions.International Journal of Forecasting, 16(4):451–476, 2000
Reference 32
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Observation 98d46605-826d-47b5-af32-7822531f7044 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility The M4 competition: 100,000 time series and 61 forecasting methods.International Journal of Forecasting, 36(1):54– 74, 2020
Reference 33
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Observation 72167770-fbe3-45e6-bdb7-d1a4ca597153 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Marshall and Ingram Olkin
Reference 34
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Observation 7ba28fe5-c134-494a-941c-c3133c1e3924 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Nguyen, Phanwadee Sinthong, and Jayant Kalagnanam
Reference 35
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Unavailable: canonical work link unavailable.
Observation ecf2ce4d-4c56-4970-a0b7-dcfeac9ed571 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Olivares, Cristian Challú, Federico Garza, Max Mergenthaler Canseco, and Artur Dubrawski
Reference 36
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Unavailable: canonical work link unavailable.
Observation 5d8a6a88-098c-44a1-b336-c7b17fcfbcb6 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Probabilistic Hierarchical Forecasting with Deep Poisson Mixtures
Reference 37
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Unavailable: canonical work link unavailable.
Observation 37c37c05-9cdb-4678-9b56-846a5cf21922 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Olivares, Malcolm Wolff, Tatiana Konstantinova, Shankar Ramasubramanian, Boris Ore- shkin, Andrew Gordon Wilson, Andres Potapczynski, Willa Potosnak, Mengfei Cao, Michael W
Reference 38
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Unavailable: canonical work link unavailable.
Observation 45a2e34a-56e0-4afe-82e5-bb9d9a4c522e · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Oreshkin, Dmitri Carpov, Nicolas Chapados, and Yoshua Bengio
Reference 39
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Unavailable: canonical work link unavailable.
Observation c087ea52-a1d5-4087-8880-2e868002dcca · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Improving language understanding by generative pre-training
Reference 40
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Unavailable: canonical work link unavailable.
Observation 8c9aea27-84a6-4431-9abd-711bfc4a3de9 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility DeepAR: Probabilistic forecasting with autoregressive recurrent networks.International Journal of Forecasting, 36(3):1181–1191, 2020
Reference 41
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Unavailable: canonical work link unavailable.
Observation c78f9bee-1e8a-4cfb-a2b8-e3eb4b0a5e53 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Investigating the accuracy of cross-learning time series forecasting methods
Reference 42
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Unavailable: canonical work link unavailable.
Observation 86f85455-a32d-42b8-8d12-0350afe4b264 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Shumway and D.S
Reference 43
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Unavailable: canonical work link unavailable.
Observation 553c0d8c-8325-45d4-824c-62e5bf8a73da · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility A hybrid method of exponential smoothing and recurrent neural networks for time series forecasting.International Journal of Forecasting, 07 2019
Reference 44
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Observation 9971f793-69a3-418c-863a-c1fcb7574175 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility On the categorization of demand patterns.Journal of the Operational Research Society, 56, 05 2005
Reference 45
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Observation 3eaa9b24-1116-46b9-b6ca-bca768a969fd · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Beril Toktay and Lawrence M
Reference 46
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Observation 8ba07d77-b5f3-473d-8cc1-ec1666c637e9 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility WaveNet: A Generative Model for Raw Audio
Reference 47
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Unavailable: canonical work link unavailable.
Observation 35585375-1abe-4986-8799-43674a5c5432 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility A Multi- horizon Quantile Recurrent Forecaster
Reference 48
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Observation 613ddd68-f448-4837-a45f-0bc4b7954a3b · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Olivares, Boris Oreshkin, Sunny Ruan, Sitan Yang, Abhinav Katoch, Shankar Ramasubramanian, Youxin Zhang, Michael W
Reference 49
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Unavailable: canonical work link unavailable.
Observation 478788dc-7776-4d7b-97ab-40861b580f6a · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Unified training of universal time series forecasting transformers, 2024
Reference 50
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Observation 3545d004-2f32-4ea1-8d8f-920a13903a57 · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Time Series Library (TSLib)
Reference 51
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Observation a0051742-f563-45f2-bf58-237783ee38da · outbound
Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility Informer: Beyond Efficient Transformer for Long Sequence Time-Series Forecasting
Reference 52
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Observation a0dbf7ef-bef2-43bf-9938-68c53ea92417 · inbound
MICA: Multivariate Infini Compressive Attention for Time Series Forecasting Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility
Reference 39
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No event found in the named queried sources as of 2026-08-09T06:31:02.800959+00:00.
Observation 2f78ffd1-8b1d-4b44-87bc-50c36d5d2f25 · inbound
MICA: Multivariate Infini Compressive Attention for Time Series Forecasting Forking-Sequences: Statistically and Computationally Efficient Multi-Horizon Forecasting with Reduced Volatility
Reference 39
Source-reported events for the cited work
No event found in the named queried sources as of 2026-08-09T06:31:02.800959+00:00.