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On Line Learning In Neural Networks by David Saad
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1Reward Shaping With Recurrent Neural Networks For Speeding Up On-Line Policy Learning In Spoken Dialogue Systems
By Pei-Hao Su, David Vandyke, Milica Gasic, Nikola Mrksic, Tsung-Hsien Wen and Steve Young
Statistical spoken dialogue systems have the attractive property of being able to be optimised from data via interactions with real users. However in the reinforcement learning paradigm the dialogue manager (agent) often requires significant time to explore the state-action space to learn to behave in a desirable manner. This is a critical issue when the system is trained on-line with real users where learning costs are expensive. Reward shaping is one promising technique for addressing these concerns. Here we examine three recurrent neural network (RNN) approaches for providing reward shaping information in addition to the primary (task-orientated) environmental feedback. These RNNs are trained on returns from dialogues generated by a simulated user and attempt to diffuse the overall evaluation of the dialogue back down to the turn level to guide the agent towards good behaviour faster. In both simulated and real user scenarios these RNNs are shown to increase policy learning speed. Importantly, they do not require prior knowledge of the user's goal.
“Reward Shaping With Recurrent Neural Networks For Speeding Up On-Line Policy Learning In Spoken Dialogue Systems” Metadata:
- Title: ➤ Reward Shaping With Recurrent Neural Networks For Speeding Up On-Line Policy Learning In Spoken Dialogue Systems
- Authors: ➤ Pei-Hao SuDavid VandykeMilica GasicNikola MrksicTsung-Hsien WenSteve Young
- Language: English
“Reward Shaping With Recurrent Neural Networks For Speeding Up On-Line Policy Learning In Spoken Dialogue Systems” Subjects and Themes:
- Subjects: Computation and Language - Computing Research Repository - Learning
Edition Identifiers:
- Internet Archive ID: arxiv-1508.03391
Downloads Information:
The book is available for download in "texts" format, the size of the file-s is: 10.29 Mbs, the file-s for this book were downloaded 28 times, the file-s went public at Thu Jun 28 2018.
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2On-line Learning In Neural Networks
Statistical spoken dialogue systems have the attractive property of being able to be optimised from data via interactions with real users. However in the reinforcement learning paradigm the dialogue manager (agent) often requires significant time to explore the state-action space to learn to behave in a desirable manner. This is a critical issue when the system is trained on-line with real users where learning costs are expensive. Reward shaping is one promising technique for addressing these concerns. Here we examine three recurrent neural network (RNN) approaches for providing reward shaping information in addition to the primary (task-orientated) environmental feedback. These RNNs are trained on returns from dialogues generated by a simulated user and attempt to diffuse the overall evaluation of the dialogue back down to the turn level to guide the agent towards good behaviour faster. In both simulated and real user scenarios these RNNs are shown to increase policy learning speed. Importantly, they do not require prior knowledge of the user's goal.
“On-line Learning In Neural Networks” Metadata:
- Title: ➤ On-line Learning In Neural Networks
- Language: English
“On-line Learning In Neural Networks” Subjects and Themes:
- Subjects: ➤ Neural networks (Computer science) - Computer networks - Neural Networks, Computer - Computer Communication Networks - Réseaux neuronaux (Informatique) - Réseaux d'ordinateurs - Lernendes System - Neuronales Netz - Aufsatzsammlung
Edition Identifiers:
- Internet Archive ID: onlinelearningin0000unse_t9v7
Downloads Information:
The book is available for download in "texts" format, the size of the file-s is: 1167.29 Mbs, the file-s for this book were downloaded 38 times, the file-s went public at Fri Aug 26 2022.
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ACS Encrypted PDF - AVIF Thumbnails ZIP - Cloth Cover Detection Log - DjVuTXT - Djvu XML - Dublin Core - EPUB - Item Tile - JPEG Thumb - JSON - LCP Encrypted EPUB - LCP Encrypted PDF - Log - MARC - MARC Binary - Metadata - OCR Page Index - OCR Search Text - PNG - Page Numbers JSON - RePublisher Final Processing Log - RePublisher Initial Processing Log - Scandata - Single Page Original JP2 Tar - Single Page Processed JP2 ZIP - Text PDF - Title Page Detection Log - chOCR - hOCR -
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3On-line Learning In Neural Networks
By None
Statistical spoken dialogue systems have the attractive property of being able to be optimised from data via interactions with real users. However in the reinforcement learning paradigm the dialogue manager (agent) often requires significant time to explore the state-action space to learn to behave in a desirable manner. This is a critical issue when the system is trained on-line with real users where learning costs are expensive. Reward shaping is one promising technique for addressing these concerns. Here we examine three recurrent neural network (RNN) approaches for providing reward shaping information in addition to the primary (task-orientated) environmental feedback. These RNNs are trained on returns from dialogues generated by a simulated user and attempt to diffuse the overall evaluation of the dialogue back down to the turn level to guide the agent towards good behaviour faster. In both simulated and real user scenarios these RNNs are shown to increase policy learning speed. Importantly, they do not require prior knowledge of the user's goal.
“On-line Learning In Neural Networks” Metadata:
- Title: ➤ On-line Learning In Neural Networks
- Author: None
- Language: English
“On-line Learning In Neural Networks” Subjects and Themes:
- Subjects: ➤ Neural networks (Computer science) - Computer networks - Réseaux neuronaux (Informatique) - Réseaux d'ordinateurs - Lernendes System - Neuronales Netz - Aufsatzsammlung
Edition Identifiers:
- Internet Archive ID: onlinelearningin0000unse
Downloads Information:
The book is available for download in "texts" format, the size of the file-s is: 1091.25 Mbs, the file-s for this book were downloaded 1073 times, the file-s went public at Wed Sep 12 2018.
Available formats:
ACS Encrypted EPUB - ACS Encrypted PDF - Abbyy GZ - Cloth Cover Detection Log - Contents - DjVuTXT - Djvu XML - Dublin Core - EPUB - Item Tile - JSON - LCP Encrypted EPUB - LCP Encrypted PDF - Log - MARC - MARC Binary - Metadata - OCR Page Index - OCR Search Text - Page Numbers JSON - Scandata - Single Page Original JP2 Tar - Single Page Processed JP2 ZIP - Text PDF - chOCR - hOCR -
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Source: The Open Library
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1On-Line Learning in Neural Networks
By David Saad

“On-Line Learning in Neural Networks” Metadata:
- Title: ➤ On-Line Learning in Neural Networks
- Author: David Saad
- Language: English
- Number of Pages: Median: 410
- Publisher: Cambridge University Press
- Publish Date: 1999 - 2009 - 2010 - 2011
“On-Line Learning in Neural Networks” Subjects and Themes:
- Subjects: ➤ Neural networks (Computer science) - Reseaux neuronaux (Informatique) - Neuronales Netz - Reseaux d'ordinateurs - Computer networks - Lernendes System - Aufsatzsammlung - Neural networks (computer science) - Computer Neural Networks - Computer Communication Networks - Réseaux neuronaux (Informatique) - Réseaux d'ordinateurs
Edition Identifiers:
- The Open Library ID: OL34443350M - OL34428447M - OL7750279M - OL40475378M
- Online Computer Library Center (OCLC) ID: 847358833
- Library of Congress Control Number (LCCN): 98031983
- All ISBNs: ➤ 9780511836589 - 9780521117913 - 0521652634 - 9780521652636 - 0511569920 - 0521117917 - 9780511569920 - 0511836589
First Setence:
"The convergence of online learning algorithms is analyzed using the tools of the stochastic approximation theory, and proved under very weak conditions."
Access and General Info:
- First Year Published: 1999
- Is Full Text Available: Yes
- Is The Book Public: No
- Access Status: Borrowable
Online Access
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