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Advanced analytics and learning on t...
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Advanced analytics and learning on temporal data4th ECML PKDD Workshop, AALTD 2019, Wurzburg, Germany, September 20, 2019 : revised selected papers /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Advanced analytics and learning on temporal dataedited by Vincent Lemaire ... [et al.].
Reminder of title:
4th ECML PKDD Workshop, AALTD 2019, Wurzburg, Germany, September 20, 2019 : revised selected papers /
remainder title:
AALTD 2019
other author:
Lemaire, Vincent.
corporate name:
Published:
Cham :Springer International Publishing :2020.
Description:
x, 229 p. :ill. (some col.), digital ;24 cm.
Contained By:
Springer eBooks
Subject:
Time-series analysisCongresses.Data processing
Online resource:
https://doi.org/10.1007/978-3-030-39098-3
ISBN:
9783030390983$q(electronic bk.)
Advanced analytics and learning on temporal data4th ECML PKDD Workshop, AALTD 2019, Wurzburg, Germany, September 20, 2019 : revised selected papers /
Advanced analytics and learning on temporal data
4th ECML PKDD Workshop, AALTD 2019, Wurzburg, Germany, September 20, 2019 : revised selected papers /[electronic resource] :AALTD 2019edited by Vincent Lemaire ... [et al.]. - Cham :Springer International Publishing :2020. - x, 229 p. :ill. (some col.), digital ;24 cm. - Lecture notes in computer science,119860302-9743 ;. - Lecture notes in computer science ;4891..
Robust Functional Regression for Outlier Detection -- Transform Learning Based Function Approximation for Regression and Forecasting -- Proactive Fiber Break Detection based on Quaternion Time Series and Automatic Variable Selection from Relational Data -- A fully automated periodicity detection in time series -- Conditional Forecasting of Water Level Time Series with RNNs -- Challenges and Limitations in Clustering Blood Donor Hemoglobin Trajectories -- Localized Random Shapelets -- Feature-Based Gait Pattern Classification for a Robotic Walking Frame -- How to detect novelty in textual data streams? A comparative study of existing methods -- Seq2VAR: multivariate time series representation with relational neural networks and linear autoregressive model -- Modelling Patient Sequences for Rare Disease Detection with Semi-supervised Generative Adversarial Nets -- Extended Kalman Filter for Large Scale Vessels Trajectory Tracking in Distributed Stream Processing Systems -- Unsupervised Anomaly Detection in Multivariate Spatio-Temporal Datasets using Deep Learning -- Learning Stochastic Dynamical Systems via Bridge Sampling -- Quantifying Quality of Actions Using Wearable Sensor -- An Initial Study on Adapting DTW at Individual Query for Electrocardiogram Analysis.
This book constitutes the refereed proceedings of the 4th ECML PKDD Workshop on Advanced Analytics and Learning on Temporal Data, AALTD 2019, held in Wurzburg, Germany, in September 2019. The 7 full papers presented together with 9 poster papers were carefully reviewed and selected from 31 submissions. The papers cover topics such as temporal data clustering; classification of univariate and multivariate time series; early classification of temporal data; deep learning and learning representations for temporal data; modeling temporal dependencies; advanced forecasting and prediction models; space-temporal statistical analysis; functional data analysis methods; temporal data streams; interpretable time-series analysis methods; dimensionality reduction, sparsity, algorithmic complexity and big data challenge; and bio-informatics, medical, energy consumption, on temporal data.
ISBN: 9783030390983$q(electronic bk.)
Standard No.: 10.1007/978-3-030-39098-3doiSubjects--Topical Terms:
758246
Time-series analysis
--Data processing--Congresses.
LC Class. No.: QA280 / .A35 2019
Dewey Class. No.: 006.3
Advanced analytics and learning on temporal data4th ECML PKDD Workshop, AALTD 2019, Wurzburg, Germany, September 20, 2019 : revised selected papers /
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Robust Functional Regression for Outlier Detection -- Transform Learning Based Function Approximation for Regression and Forecasting -- Proactive Fiber Break Detection based on Quaternion Time Series and Automatic Variable Selection from Relational Data -- A fully automated periodicity detection in time series -- Conditional Forecasting of Water Level Time Series with RNNs -- Challenges and Limitations in Clustering Blood Donor Hemoglobin Trajectories -- Localized Random Shapelets -- Feature-Based Gait Pattern Classification for a Robotic Walking Frame -- How to detect novelty in textual data streams? A comparative study of existing methods -- Seq2VAR: multivariate time series representation with relational neural networks and linear autoregressive model -- Modelling Patient Sequences for Rare Disease Detection with Semi-supervised Generative Adversarial Nets -- Extended Kalman Filter for Large Scale Vessels Trajectory Tracking in Distributed Stream Processing Systems -- Unsupervised Anomaly Detection in Multivariate Spatio-Temporal Datasets using Deep Learning -- Learning Stochastic Dynamical Systems via Bridge Sampling -- Quantifying Quality of Actions Using Wearable Sensor -- An Initial Study on Adapting DTW at Individual Query for Electrocardiogram Analysis.
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This book constitutes the refereed proceedings of the 4th ECML PKDD Workshop on Advanced Analytics and Learning on Temporal Data, AALTD 2019, held in Wurzburg, Germany, in September 2019. The 7 full papers presented together with 9 poster papers were carefully reviewed and selected from 31 submissions. The papers cover topics such as temporal data clustering; classification of univariate and multivariate time series; early classification of temporal data; deep learning and learning representations for temporal data; modeling temporal dependencies; advanced forecasting and prediction models; space-temporal statistical analysis; functional data analysis methods; temporal data streams; interpretable time-series analysis methods; dimensionality reduction, sparsity, algorithmic complexity and big data challenge; and bio-informatics, medical, energy consumption, on temporal data.
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EB QA280 .A112 2019 2020
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https://doi.org/10.1007/978-3-030-39098-3
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