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Liqiang Nie | Akateeminen Kirjakauppa

Haullasi löytyi yhteensä 13 tuotetta
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Learning from Multiple Social Networks
Liqiang Nie; Xuemeng Song; Tat-Seng Chua
MORGAN&CLAYPOOL (2016)
Pehmeäkantinen kirja
64,10
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Multimodal Learning toward Micro-Video Understanding
Liqiang Nie; Meng Liu; Xuemeng Song
Morgan & Claypool Publishers (2019)
Pehmeäkantinen kirja
110,90
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Multimodal Learning toward Micro-Video Understanding
Liqiang Nie; Meng Liu; Xuemeng Song
Morgan & Claypool Publishers (2019)
Kovakantinen kirja
122,60
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Multimodal Learning toward Micro-Video Understanding
Liqiang Nie; Meng Liu; Xuemeng Song
Springer International Publishing AG (2019)
Pehmeäkantinen kirja
59,30
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Learning from Multiple Social Networks
Liqiang Nie; Xuemeng Song; Tat-Seng Chua
Springer International Publishing AG (2016)
Pehmeäkantinen kirja
35,10
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Internet Multimedia Computing and Service : 9th International Conference, ICIMCS 2017, Qingdao, China, August 23-25, 2017, Revis
Benoit Huet (ed.); Liqiang Nie (ed.); Richang Hong (ed.)
Springer (2018)
Pehmeäkantinen kirja
74,70
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Compatibility Modeling - Data and Knowledge Applications for Clothing Matching
Xuemeng Song; Liqiang Nie; Yinglong Wang
Morgan & Claypool Publishers (2019)
Pehmeäkantinen kirja
85,10
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Compatibility Modeling - Data and Knowledge Applications for Clothing Matching
Xuemeng Song; Liqiang Nie; Yinglong Wang
Morgan & Claypool Publishers (2019)
Kovakantinen kirja
110,90
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Compatibility Modeling - Data and Knowledge Applications for Clothing Matching
Xuemeng Song; Liqiang Nie; Yinglong Wang
Springer International Publishing AG (2019)
Pehmeäkantinen kirja
49,60
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Graph Learning for Fashion Compatibility Modeling
Weili Guan; Xuemeng Song; Xiaojun Chang; Liqiang Nie
Springer International Publishing AG (2022)
Kovakantinen kirja
78,60
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Graph Learning for Fashion Compatibility Modeling
Weili Guan; Xuemeng Song; Xiaojun Chang; Liqiang Nie
Springer International Publishing AG (2023)
Pehmeäkantinen kirja
59,30
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Advanced Multimodal Compatibility Modeling and Recommendation
Weili Guan; Xuemeng Song; Dongliang Zhou; Liqiang Nie
Springer (2025)
Kovakantinen kirja
40,00
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Multimodal Learning toward Recommendation
Fan Liu; Zhenyang Li; Liqiang Nie
Springer (2025)
Pehmeäkantinen kirja
97,90
Tuotetta lisätty
ostoskoriin kpl
Siirry koriin
Learning from Multiple Social Networks
64,10 €
MORGAN&CLAYPOOL
Sivumäärä: 118 sivua
Asu: Pehmeäkantinen kirja
Julkaisuvuosi: 2016, 21.04.2016 (lisätietoa)
Kieli: Englanti
Tuotesarja: Synthesis Lectures on Informat
With the proliferation of social network services, more and more social users, such as individuals and organizations, are simultaneously involved in multiple social networks for various purposes. In fact, multiple social networks characterize the same social users from different perspectives, and their contexts are usually consistent or complementary rather than independent. Hence, as compared to using information from a single social network, appropriate aggregation of multiple social networks offers us a better way to comprehensively understand the given social users.Learning across multiple social networks brings opportunities to new services and applications as well as new insights on user online behaviors, yet it raises tough challenges: (1) How can we map different social network accounts to the same social users? (2) How can we complete the item-wise and block-wise missing data? (3) How can we leverage the relatedness among sources to strengthen the learning performance? And (4) How can we jointly model the dual-heterogeneities: multiple tasks exist for the given application and each task has various features from multiple sources? These questions have been largely unexplored to date.

We noticed this timely opportunity, and in this book we present some state-of-the-art theories and novel practical applications on aggregation of multiple social networks. In particular, we first introduce multi-source dataset construction. We then introduce how to effectively and efficiently complete the item-wise and block-wise missing data, which are caused by the inactive social users in some social networks. We next detail the proposed multi-source mono-task learning model and its application in volunteerism tendency prediction. As a counterpart, we also present a mono-source multi-task learning model and apply it to user interest inference. We seamlessly unify these models with the so-called multi-source multi-task learning, and demonstrate several application scenarios, such as occupation prediction. Finally, we conclude the book and figure out the future research directions in multiple social network learning, including the privacy issues and source complementarity modeling.

This is preliminary research on learning from multiple social networks, and we hope it can inspire more active researchers to work on this exciting area. If we have seen further it is by standing on the shoulders of giants.

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Myymäläsaatavuus
Helsinki
Tapiola
Turku
Tampere
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