International Journal of Engineering Research and Development (IJERD)

(IJERD Journal is UGC Approved Journal)
e-ISSN: 2278-067X                                                     p-ISSN: 2278-800X
Website:  www.ijerd.com
E-mail:    ​ijerd@editormails.com   
IJERD is an open access peer-reviewed, interdisciplinary international platform for disseminating results of relevant research related to all the disciplines of engineering, science, technology etc.  IJERD invites all research, review articles, short communications & technical notes that describe significant advances research in the areas of Engineering, Technology, Science & more…..
All scientific engineering research & technology  area i.e. (Electrical, Electronics and Computer Engineering, Information Engineering and Technology, Mechanical, Industrial and Manufacturing Engineering, Automation and Mechatronics Engineering, Material and Chemical Engineering, Civil and Architecture Engineering, Biotechnology and Bio Engineering, Environmental Engineering, Petroleum and Mining Engineering, Marine and Agriculture engineering, Aerospace Engineering & more relevant fields).
 IJERD publish paper online as well as print versions (hard copy) of the Journal. 

 Indexing http://WWW.IJERD.COM/indexing.html
 Archive http://WWW.IJERD.COM/archive.html
 Libraries Auburn University, Aalborg University, Queen’s University, Goethe University etc.
 Digital E-Certificates http://WWW.IJERD.COM/digital-certificate.html
 Subscription Alerts http://IJERD.COM/subscribe.html
 

Its publication frequency is 12 issues per year.
Date of submission for August issue 

Sl. No Process Description Last Date Status
1 Manuscript Submission 30th August, 2017 In Processing
2 Manuscript Review Feedback Within 5 to 7 days (To be Processed)
3 Date of Publication 10th September,  2017 (To be Processed)
4 Indexing & book delivering Within 7 days (To be Processed)
 

 
IJERD Journal is UGC Approved Journal with Sl. No. 4733 and Journal No. 48012. Link:  http://UGC.AC.IN/journallist/ugc_admin_journal_report.aspx?eid=NDgwMTI  
 
Submit process:
A. Online submission on web-link:  http://WWW.IJERD.COM/submit%20an%20article.html      
B. Through simply mailing as an attachment & any query, mail us at   ijerd@editormails.com     
 

Join us at TIE’17 to be part of the debate on future Innovation Studies

Web version
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Call for Participation

Conference Date: September 11 – 12, 2017
Location:
 
Canterbury, Great Britain

The event will consist of regular conference papers, poster sessions, workshops, keynote speakers and networking sessions together with an optional gala dinner – all set in the beautiful setting of Canterbury – UNESCO World Heritage Site.

Find out more about Topics and Posters Track

TIE 2017 is happy to present renowned keynote speakers: 

Prof. Richard Scase (former winner of European Business Speaker of the Year Award)
Talk Synopsis – Future technologies, entrepreneurship and the coming age of personal liberation

Gene Dolgoff (creator of the Startrek Holodeck concept)
Talk Synopsis – The Holodeck and other stories

Hear what Prof. Richard Scase have to say about the conference:

Workshops:

Smart Cities, Big Data Analytics and Digital Manufacturing

Holonovels: New Frontiers for Engaging Arts and Sciences

Interactive – Real applications for wearable and mixed reality technologies

Register Now

ELM2017: List of 27 Keynotes

The 8th International Conference on Extreme Learning Machines (ELM2017), Yantai, China, October 4 – 7, 2017

Organized by: Nanyang Technological University, Singapore

Co-organized by: Tsinghua University, China; Shanghai Jiaotong University, China; University of New South Wales, Australia; City University of Hong Kong, China

Registration Link: http://elm2017.extreme-learning-machines.org Early Bird Registration deadline: August 20, 2017

The main theme of ELM2017 is: Intelligent Things, Smart Chips, Hierarchical Machine Learning and Biological Learning

Extreme Learning Machines (ELM) aims to enable pervasive learning and pervasive intelligence. As advocated by ELM theories, it is exciting to see the convergence of machine learning and biological learning from the long-term point of view. ELM may be one of the fundamental `learning particles’ filling the gaps between machine learning and biological learning (of which activation functions are even unknown). ELM represents a suite of (machine and biological) learning techniques in which hidden neurons need not be tuned: inherited from their ancestors or randomly generated.

In addition to the multiple tracks of ELM technical sessions on October 6, 2017 and social networking on October 7, 2017, 27 keynotes will be arranged in ELM2017 on October 4-5, 2017. The keynote speakers include the pioneers of deep learning and random forest, and also researchers / professors from Harvard Medical School, MIT, Nanyang Technological University, IBM Watson, Amazon Web Services, George Institute of Technology, Michigan State University, University of Iowa, University of New Castle, Tsinghua University, Chinese Academy of Science, Shanghai Jiatong University, etc. Some topics are extreme learning machines, deep learning, random forest, brain computer interfaces as well as ELM applications (such as local positioning systems, neuromorphic and memoristor chips, remote sensing, smart grid, robots, etc)

Extreme Learning Machines, Random Forest, and Deep Learning

Guang-Bin Huang, Nanyang Technological University, Singapore, "Pervasive Intelligence and Cloud Intelligence Enabling Intelligent Revolution and Intelligent Economy"

Kunihiko Fukushima, Fuzzy Logic Systems Institute, Japan, "Artificial Vision by Deep CNN Neocognitron"

Tin Kam Ho, IBM Watson, USA, "Learning with Random Guesses in Random Decision Forests"

Mu Li, Amazon Web Services, USA, "Towards Next Generation of Deep Learning Frameworks"

Xin Yao, University of Birmingham, UK, "Ensemble Approaches to Class Imbalance Learning"

Brain Science, Machine Learning, Brain-Machine Interface, and Healthcare

Syd Cash, Harvard Medical School, "Brain Computer Interfaces and Closed Loop Control of Seizures" (tentative)

M. Brandon Westover, Harvard Medical School, "Big Data in Neurology"

Mohammad Ghassemi, Massachusetts Institute of Technology, “Predicting Neurologic Outcome Following Cardiac Arrest”

Gang Pan, Zhejiang University, China, “Brain-Machine Interfaces: Connecting Machine and Biological Intelligence”

Jimeng Sun, George Institute of Technology, USA, “Automated Sleep Study via Deep learning”

Juyang Weng, Michigan State University, USA, "Turing Machine Logic in Brain-Inspired Networks for Vision, Speech, and Natural Languages"

Jing Jin, Harvard Medical School, "Spike and Seizure Detection"

Haoqi Sun, Harvard Medical School, "Brain Age and Sleep"

Alice Lam, Harvard Medical School, "Detection of Occult Seizures in Dementia"

Bao-Liang Lu, Shanghai Jiaotong University, China, "Multimodal Emotion Recognition and Vigilance Estimation with Machine Learning"

Yiqiang Chen, Chinese Academy of Science, China, "Cognition Behaviour Opportunity Learning for Healthcare"

ELM Algorithms, Applications and Smart Chips

Lihua Xie, Nanyang Technological University, Singapore, "Indoor Positioning Systems: Some Recent Development and Challenges"

Fuchun Sun, Tsinghua University, China, “Experience Learning for Robot Dexterous Operations Using ELMs”

Arindam Basu, Nanyang Technological University, Singapore, “Designing ‘Intelligent’ Chips in the Face of Statistical Variations: The Neuromorphic Solution"

Erik Cambria, Nanyang Technological University, Singapore, "Extreme Learning Machines for Commonsense Reasoning and Sentiment Analysis"

Amir Hussain, University of Stirling, UK, "Extreme Learning Machine for Dimensionality Reduction" (tentative)

Lei Zhang, Chongqing University, China, "Advanced Transfer Learning in Intelligent Vision and Olfaction"

Xi-Zhao Wang, Shenzhen University, China, "ELM Tree and Its Spark Implementation"

Amaury Lendasse, University of Iowa, USA, "Applying Machine Learning to Open-Source Learning Management System in order to Develop Visualizations of Students’ Risk of Not Succeeding in STEM Courses"

Kar-Ann Toh, Yonsei University, South Korea, "Deterministic Methods for Pattern Classification"

Chenwei Deng, Beijing Institute of Technology, China, "ELM Feature Learning and Its Applications in Remote Sensing"

Zhaoyang Dong, University of New Castle, Australia, "Machine Learning in Smart Grid"

EAI/Springer book series accepting chapters on Mobile Solutions and Its Usefulness in Everyday Life

Web version
European Alliance for Innovation

Call for Chapters

Mobile Solutions and Its Usefulness in Everyday Life

Proposals Submission Deadline
(Max. 1 page long)

September 30, 2017

Full Chapters Due
November 30, 2017

Publication Opportunities

Chapters will be published in a book series
EAI/Springer Innovations in Communications and Computing
Introduction

This book provides an insight on the importance mobile solutions can have in people's daily lives. Mobile solutions can target the general public or a more specific one, such as visually or motor impaired people. The benefits mobile solutions can have are enormous and the range of applicability is also considerable and can include health contributions, travel and tourism, etc. This book intends to present to its readers useful mobile applications and architectures that somehow contribute to people well being.

Editor


Sara Paiva, 
Instituto Politécnico de Viana do Castelo, Portugal

Chapter Proposal Submission
The Chapter Proposal may kindly be sent to the Editor

Sara Paiva

  sara.paiva@estg.ipvc.pt by September 30, 2017

MILCOM’17 Registration is Open!

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August 10, 2017
 
 

 

Register early for the best tutorials!

 (invited keynote)

The Honorable Heather Wilson
24th Secretary of the Air Force

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