| Paper Abstract and Keywords |
| Presentation |
2019-09-06 13:55
Dynamic Virtual Resource Allocation Method Using Multi-agent Deep Reinforcement Learning Akito Suzuki, Shigeaki Harada (NTT) IN2019-29 |
| Abstract |
(in Japanese) |
(See Japanese page) |
| (in English) |
The network traffic demands have been changing dramatically in recent years due to the growth of various types of network service, e.g., high-quality video delivery and OS update. In order to maximize the utilization efficiency of limited network resources, network resource control technology is required to take a smooth and quick operation when the traffic demands changes. In this paper, we aim to develop the dynamic network resource control method using multi-agent deep reinforcement learning, which method can quickly optimize the network resources even when traffic demands changing drastically by learning the relationship between traffic demands pattern and optimal control in advance. |
| Keyword |
(in Japanese) |
(See Japanese page) |
| (in English) |
NFV / Deep Reinforcement Learning / Network Control / / / / / |
| Reference Info. |
IEICE Tech. Rep., vol. 119, no. 195, IN2019-29, pp. 35-40, Sept. 2019. |
| Paper # |
IN2019-29 |
| Date of Issue |
2019-08-29 (IN) |
| ISSN |
Online edition: ISSN 2432-6380 |
Copyright and reproduction |
All rights are reserved and no part of this publication may be reproduced or transmitted in any form or by any means, electronic or mechanical, including photocopy, recording, or any information storage and retrieval system, without permission in writing from the publisher. Notwithstanding, instructors are permitted to photocopy isolated articles for noncommercial classroom use without fee. (License No.: 10GA0019/12GB0052/13GB0056/17GB0034/18GB0034) |
| Download PDF |
IN2019-29 |
| Conference Information |
| Committee |
NS IN CS NV |
| Conference Date |
2019-09-05 - 2019-09-06 |
| Place (in Japanese) |
(See Japanese page) |
| Place (in English) |
Research Institute of Electrical Communication, Tohoku Univ. |
| Topics (in Japanese) |
(See Japanese page) |
| Topics (in English) |
Session management (SIP/IMS), Interoperability/Standardization, NGN/NwGN/Future networks, Cloud/Data center networks, SDN (OpenFlow, etc.)/NFV, IPv6, Machine learning, etc. |
| Paper Information |
| Registration To |
IN |
| Conference Code |
2019-09-NS-IN-CS-NV |
| Language |
Japanese |
| Title (in Japanese) |
(See Japanese page) |
| Sub Title (in Japanese) |
(See Japanese page) |
| Title (in English) |
Dynamic Virtual Resource Allocation Method Using Multi-agent Deep Reinforcement Learning |
| Sub Title (in English) |
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| Keyword(1) |
NFV |
| Keyword(2) |
Deep Reinforcement Learning |
| Keyword(3) |
Network Control |
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| 1st Author's Name |
Akito Suzuki |
| 1st Author's Affiliation |
NTT (NTT) |
| 2nd Author's Name |
Shigeaki Harada |
| 2nd Author's Affiliation |
NTT (NTT) |
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| Speaker |
Author-1 |
| Date Time |
2019-09-06 13:55:00 |
| Presentation Time |
25 minutes |
| Registration for |
IN |
| Paper # |
IN2019-29 |
| Volume (vol) |
vol.119 |
| Number (no) |
no.195 |
| Page |
pp.35-40 |
| #Pages |
6 |
| Date of Issue |
2019-08-29 (IN) |