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Two-stage fusion for short-term load forecasting based on benchmark prediction and key-period local adjustment (2027)

Status: pending Scraped: 2026-08-12 Source: crossref Relevance: Related

Authors: Yuqi Ji, Aoxue Qiao, Lu Zhang et al.

Citation: Yuqi Ji, Aoxue Qiao, Lu Zhang et al. (2027), Two-stage fusion for short-term load forecasting based on benchmark prediction and key-period local adjustment, crossref. Type: Determine after review

Abstract

Key Contribution

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Design

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Key Results

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Impact

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Linked To

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Data Quality Assessment

Field Assessment
Subject selection How were subjects selected? Inclusion/exclusion criteria, sampling strategy, n=? Power analysis?
Data acquisition How was data physically acquired? Device model (E4, Empatica, WHOOP, Polar, dedicated sensor), sampling rate, placement, firmware version.
Acquisition context From whom, what were they doing during recording? Clinic, home, school, sleep-only, free-living, task-based? Naturalistic or controlled?
Gold standard labels How were outcome events defined? Clinician-validated scale (ABCD, ABC, CAAS, VAS), event logs, direct observation, chart review? Inter-rater reliability reported?
Data validation How were data fields validated? Artifact rejection, signal quality indices, cross-modal checks, manual inspection, automated QC pipeline?
Missingness n=X subjects — do all have complete data? Missing at random, missing completely at random, or missing not at random? Is missingness correlated with outcome?