Similarity-Based Forecasting with Simultaneous Previews: A River Plot Interface for Time Series Forecasting

P. Buono, C. Plaisant, A. Simeone, Aleks Aris, Galit Shmueli, Wolfgang Jank
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引用次数: 73

Abstract

Time-series forecasting has a large number of applications. Users with a partial time series for auctions, new stock offerings, or industrial processes desire estimates of the future behavior. We present a data driven forecasting method and interface called similarity-based forecasting (SBF). A pattern matching search in an historical time series dataset produces a subset of curves similar to the partial time series. The forecast is displayed graphically as a river plot showing statistical information about the SBF subset. A forecasting preview interface allows users to interactively explore alternative pattern matching parameters and see multiple forecasts simultaneously. User testing with 8 users demonstrated advantages and led to improvements.
具有同步预览的基于相似性的预测:用于时间序列预测的河流图界面
时间序列预测具有广泛的应用前景。拥有拍卖、新股发行或工业流程的部分时间序列的用户希望对未来的行为进行估计。提出了一种数据驱动的预测方法和接口,称为基于相似性的预测(SBF)。在历史时间序列数据集中进行模式匹配搜索会产生与部分时间序列相似的曲线子集。预报以图形形式显示为显示SBF子集统计信息的河流图。预测预览界面允许用户交互式地探索可选择的模式匹配参数,并同时查看多个预测。8个用户的用户测试展示了优势并带来了改进。
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