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From data to knowledge: Deep learning model compression, transmission and communication

  • Ziqian Chen
  • , Shiqi Wang
  • , Dapeng Oliver Wu
  • , Tiejun Huang
  • , Ling Yu Duan

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

With the advances of articial intelligence, recent years have witnessed a gradual transition from the big data to the big knowledge. Based on the knowledge-powered deep learning models, the big data such as the vast text, images and videos can be eciently analyzed. As such, in addition to data, the communication of knowledge implied in the deep learning models is also strongly desired. As a specic example regarding the concept of knowledge creation and communication in the context of Knowledge Centric Networking (KCN), we investigate the deep learning model compression and demonstrate its promise use through a set of experiments. In particular, towards future KCN, we introduce ecient transmission of deep learning models in terms of both single model compression and multiple model prediction. The necessity, importance and open problems regarding the standardization of deep learning models, which enables the interoperability with the standardized compact model representation bitstream syntax, are also discussed.

Original languageEnglish
Title of host publicationMM 2018 - Proceedings of the 2018 ACM Multimedia Conference
PublisherAssociation for Computing Machinery, Inc
Pages1625-1633
Number of pages9
ISBN (Electronic)9781450356657
DOIs
StatePublished - 15 Oct 2018
Externally publishedYes
Event26th ACM Multimedia conference, MM 2018 - Seoul, Korea, Republic of
Duration: 22 Oct 201826 Oct 2018

Publication series

NameMM 2018 - Proceedings of the 2018 ACM Multimedia Conference

Conference

Conference26th ACM Multimedia conference, MM 2018
Country/TerritoryKorea, Republic of
CitySeoul
Period22/10/1826/10/18

Keywords

  • Deep learning model compression
  • Knowledge communication
  • Standardization

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