Narrow big data in a stream: Computational limitations and regression

被引:4
作者
Cerny, Michal [1 ]
机构
[1] Univ Econ, Dept Econometr, Fac Informat & Stat, Winston Churchill Sq 4, Prague 13067, Czech Republic
关键词
Data stream; On-line data; Restricted memory computing; Narrow Big Data; Regression; Kolmogorov complexity; RECURSIVE ESTIMATION; ROBUSTIFICATION; MODELS; CMARS;
D O I
10.1016/j.ins.2019.02.052
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
We consider the on-line model for a data stream: data points are waiting in a queue and are accessible one-by-one by a special instruction. When a data point is processed, it is dropped forever. The data stream is assumed to be so long that it cannot be stored in memory in full: the size of memory is assumed to be polynomial in the dimension of data, but not the number of observations. This is a natural model for Narrow Big Data. First we prove a negative theorem illustrating that this model leads to serious limitations: we show that some elementary statistics, such as sample quantiles, cannot be computed in this model (the proof is based on a Kolmogorov complexity argument). This raises a crucial question which data-analytic procedures can be implemented in the stream data model and which cannot be performed at all, or only approximately (with some loss of information). After the negative results, we turn our attention to several positive results from multivariate linear regression with Narrow Big Data. We prove that least-squares based estimators and regression diagnostic statistics, such as statistics based on the residual sum of squares, can be computed in this model efficiently. The class of statistics efficiently computable in the stream data model also includes two-stage procedures involving auxiliary regressions, such as White's heteroscedasticity test of Breusch-Godfrey autocorrelation test (which may be surprising because the procedures, as defined, seem to require a data point to be processed several times). The computation is done exactly: we do not use preprocessing steps involving data compression techniques with information loss (such as sampling or grouping) for a reduction of the size of the data set. (C) 2019 Elsevier Inc. All rights reserved.
引用
收藏
页码:379 / 392
页数:14
相关论文
共 50 条
[31]   Distance variable improvement of time-series big data stream evaluation [J].
Ari Wibisono ;
Petrus Mursanto ;
Jihan Adibah ;
Wendy D. W. T. Bayu ;
May Iffah Rizki ;
Lintang Matahari Hasani ;
Valian Fil Ahli .
Journal of Big Data, 7
[32]   Bayesian scale mixtures of normals linear regression and Bayesian quantile regression with big data and variable selection [J].
Chu, Yuanqi ;
Yin, Zhouping ;
Yu, Keming .
JOURNAL OF COMPUTATIONAL AND APPLIED MATHEMATICS, 2023, 428
[33]   Architectural Design Of Data Stream-Based Big Data Real-Time Analysis System [J].
Liu, Qiang ;
Lv, Junmin ;
Yuan, Xun ;
Luo, Renyi ;
Lv, Dekui .
PROCEEDINGS OF THE 2017 2ND JOINT INTERNATIONAL INFORMATION TECHNOLOGY, MECHANICAL AND ELECTRONIC ENGINEERING CONFERENCE (JIMEC 2017), 2017, 62 :153-156
[34]   Big data analysis of human mitochondrial DNA substitution models: a regression approach [J].
Hallak, Keren Levinstein ;
Tzur, Shay ;
Rosset, Saharon .
BMC GENOMICS, 2018, 19
[35]   Bayesian Dynamic Feature Partitioning in High-Dimensional Regression With Big Data [J].
Gutierrez, Rene ;
Guhaniyogi, Rajarshi .
TECHNOMETRICS, 2022, 64 (02) :224-240
[36]   Big data regression with parallel enhanced and convex incremental extreme learning machines [J].
Kokkinos, Yiannis ;
Margaritis, Konstantinos G. .
COMPUTATIONAL INTELLIGENCE, 2018, 34 (03) :875-894
[37]   Big data analysis of human mitochondrial DNA substitution models: a regression approach [J].
Keren Levinstein Hallak ;
Shay Tzur ;
Saharon Rosset .
BMC Genomics, 19
[38]   A Nature-Inspired Concept Drift Adaptation Method for Industrial Data Stream Regression [J].
Trat, Martin ;
Bergmann, Philipp ;
Ott, Andreas ;
Ovtcharova, Jivka .
FLEXIBLE AUTOMATION AND INTELLIGENT MANUFACTURING: MANUFACTURING INNOVATION AND PREPAREDNESS FOR THE CHANGING WORLD ORDER, FAIM 2024, VOL 1, 2024, :3-13
[39]   Process Data Analytics in the Era of Big Data [J].
Qin, S. Joe .
AICHE JOURNAL, 2014, 60 (09) :3092-3100
[40]   Challenges of Big Data analysis [J].
Fan, Jianqing ;
Han, Fang ;
Liu, Han .
NATIONAL SCIENCE REVIEW, 2014, 1 (02) :293-314