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ICBDCI 2019: International Conference on Big Data and Computational Intelligence - Call for paper, ranking, acceptance rate, submission deadline, notification date, conference location, submission guidelines, and other important details


This article provides the call for paper, ranking, acceptance rate, submission deadline, notification date, conference location, submission guidelines, and other important details of ICBDCI 2019: International Conference on Big Data and Computational Intelligence all at one place.

Conference Location Meridian, Mauritius
Conference Date 2019-02-08
Notification Date 2018-12-15
Submission Deadline 2018-11-25
Conference Website and Submission Link http://www.indiarg.org/icbdci/


Conference Ranking


International Conference on Big Data and Computational Intelligence ranking based on CCF, Core, and Qualis is shown below:

CCF Ranking
Core Ranking
Qualis Ranking

Click here to check the ranking of any conference.
  • About CCF Ranking: The Chinese Computing Federation (CCF) Ranking provides a ranking of peer-reviewed journals and conferences in the field of computer science.

  • About Core Ranking: The CORE Conference Ranking is a measure to assess the major conference in the computing field. This ranking is governed by the CORE Executive Committee. To know more about Core ranking, visit Core ranking portal.

  • About Qualis Ranking: This conference ranking is published by the Brazilian ministry of education. It uses the h-index as a performance metric to rank conferences. Conferences are classified into performance groups that range from A1 (to the best), A2, B1, B2,..., B5 (to the wost). To know more about qualis ranking, visit here

Conference Acceptance Rate


Below is the acceptance rate of International Conference on Big Data and Computational Intelligence conference for the last few years:

Year Submitted Papers Accepted Papers Accepted Percentage/Acceptance Rate

We are working hard to collect and update the acceptance rate details of the conferences for recent years. However, you can consider the above (if available) acceptance rates to predict the average chances of acceptance of your research paper at this conference.



Conference Call for paper


Original contributions from researchers describing their original, unpublished, research contribution which is not currently under review by another conference or journal and addressing state-of-the-art research are invited to share their work in all areas of Smart and Innovative trends. Accepted papers will be published in the proceedings and submitted to the IEEE-Digital Library and EI Index. At least one author of each accepted paper is required to register and present their work at the conference; otherwise, the paper will not be included in the proceedings. Best Paper/Demo Awards will be presented to high-quality papers/demos. The ICBDCI 2019 Organizing Committee also invites proposals for workshops associated with the conference, addressing research areas related to the conference. Accepted workshop papers will be included in the proceedings. Please send workshop proposals to [email protected] Submission Link:https://easychair.org/conferences/?conf=icbdci2019Track 1: Computational Intelligence in Big DataNovel CI methods of big data acquisition, CI in distributed computing of big data, Memory efficient CI algorithms relating to reading, processing or analysing big data, Data mining in big data, Deep learning in big data, Integration of big data, such as multi-modal, multi-fidelity, structured and unstructured data, Big data in industry, Big data in healthcare, Big data and the internet of things, Big data in the future of media and social media, Big data in finances and economy, Big data in public services, Big data in intelligent robotics, Big data driven business or industry, Extracting understanding from distributed, diverse and large-scale data resources, Real time analysis of large data streams, Predictive analysis and in-memory analytics, Dimensionality reduction and analysis of large and complex data, New information infrastructures, Visualisation of big data and visual data analytics, Semantics technologies for big data, Scalable learning in big data, Optimisation of big data in complex systems, Data governance and management, CI in curation of big data, Human-computer interaction and collaboration in big data, Big data and cloud computing, Applications of big data, such as industrial process, business intelligence, healthcare, bioinformatics and securityTrack 2: Computational Intelligence for Wireless SystemsRadar architectures and systems; Advanced and 5G communications systems and networks, Automotive wireless systems and devices, Electromagnetic imaging and diagnostics, Remote sensing, Radio-frequency identification, Wireless power transmission, Wireless sensor networks, Wireless green networks, Antennas, MIMO, Software defined radio, Smart antennas, Direction findingTrack 3: Computational Intelligence in Internet of EverythingData Analytics middleware for Edge computing, Cloud-based intelligent analytics, Edge-node-driven data analytics, Intelligent data synchronization and updating between Edge nodes or Cloud nodes, Data metering for Edge nodes and Cloud nodes, Intelligent pricing mechanisms for Edge nodes and Cloud nodes, Data-driven privacy and security solutions in Edge computing and Cloud computing, Case studies for data analytics using Edge nodes or Cloud nodes, Internet of Everything for Biomedical/Healthcare Data and Imaging, Internet of Everything for Brain Computer Interface/Human Machine Interaction, Internet of Everything for Robotics/Humanitarian Science and TechnologyTrack 4: Computational Intelligence in Vehicles and Transportation SystemsAutomated driving and driverless cars, Big data learning algorithms from connected vehicle data: V2V, V2I, V2P and V2X communications, Cloud computing and big data in transportation and vehicle systems, Computational intelligence in advanced transportation information, communication and management systems, Computational intelligence in air, road, and rail traffic management, Computer vision and machine learning in collision detection and avoidance, Deep learning algorithms and applications, Driver assistance and automation systems, Driver state detection and monitoring, Multimodal intelligent transport systems and shared services, Object recognitions such as pedestrian detection, traffic sign detection and recognition, Machine learning algorithms for personalized driver and traveler support systems, Simulation and forecasting models using computational intelligence, Spatio-temporal traffic pattern recognition, Trip modeling and driver speed prediction, Vehicle fault diagnostics and health monitoring, Vehicle energy management and optimization in hybrid vehicles.Track 5: Computational Intelligence in Remote SensingCI based processing - Image registration, Image enhancement, Band selection, SAR speckle filtering, Spectral unmixing, Image classification methods, Image clustering methods, Image segmentation, Spectral-spatial methods, Spatio-spectral fusion, Regression techniques RS Application - Short/long term change detection in hyperspectral/multispectral images, Land-surface phenology using AVHRR/MODIS/VIIRS data, Disaster monitoring using SAR image, Forest monitoring by LIDAR, Land use and land cover mapping, Oil spill detection, Ocean surface RS, Land surface temperature, Land surface dynamics, Target detection, Numerical weather modeling, Agriculture monitoring, Road extraction, Forest fire mitigation, Urban sprawl, Power line monitoringTrack 6: Computational Intelligence for Engineering solutionsComplex engineering systems, structures and processes, Intelligent analysis, control and decision-making, Management and processing of uncertainties, Problem solution in uncertain and noisy environments, Reliable computing, Sustainable solutions, Infrastructure security, Climate change, Environmental processes, Disaster warning and management, Lifecycle analysis and design, Automotive systems, Monitoring, Smart sensing, System identification, Decision-support and assistance systems, Visualization methods, Prediction schemes, Classification methods, cluster analysis, Response surface approximations and surrogate models Sensitivity analysis, Robust design, reliability-based design, performance-based design, Risk analysis, hazard analysis, risk and hazard mitigation, Optimization methods, evolutionary concepts, Probabilistic and statistical methods, Simulation methods, Monte-Carlo and quasi Monte-Carlo, Bayesian approaches / networks, Artificial Neural Networks, Imprecise probabilities, Evidence theory, p-box approach, Fuzzy probability theory, Interval methods, Fuzzy methods, Convex modeling, Information gap theoryTrack 7: Computational Intelligence in Image and Pattern RecognitionFeature ranking/weighting, Feature selection, Feature extraction, Feature construction, Dimensionality reduction, Multi-objective feature selection, construction or extraction, Feature analysis on high-dimensional and large-scale data, Analysis on computational intelligence for feature selection, construction, and extraction algorithms, Evolutionary computation for feature analysis, Neural networks for feature analysis, Fuzzy logic for feature analysis, Hybridisation of evolutionary computation, neural networks, and fuzzy logic for feature selection, construction, and extraction, Hybridisation of evolutionary computation and machine learning, information theory, statistics, mathematical modelling, etc., for feature analysis, Feature analysis in classification, clustering, regression, image analysis, and other tasks, Real-world applications of computational intelligence for feature analysis, e.g. image sequences/analysis, face recognition, gene analysis, biomarker detection, medical data classification, diagnosis, and analysis, handwritten digit recognition, text mining, instrument recognition, power system, financial and business data analysis, etc.Track 8: Computational Intelligence Applications in Smart GridAlgorithms for modeling, control and optimization, Communication and control, Cyber security, Demand side management, Distributed energy resources, Dynamic equivalents, Emission Reductions, FACTS, Markets and economics, Methods and algorithms for real-time analysis, Optimization, Planning, operation and control, Plug-in electric vehicles, Renewable energy, Smart grid education, Smart homes, Smart micro-grids, Smart nano-grids, Smart sensing, Synchrophasors, Wide area monitoring, control and protection, Visualizations for control centersTrack 9: Computational Intelligence in Control and Automation Control and Decision:Neural Networks Control, Fuzzy Systems and Control, Evolutionary Control, Intelligent and AI Based Control, Model-Predictive Control, Adaptive and Optimal Control, Large-scale Systems and Decentralized Control, Intelligent Control Systems, Industrial Automations, Intelligent Decision Making and Support, Expert and Decision Support Systems, System Modeling and Learning: System Identification and Learning, Fault Detection and Diagnosis, Complex System Modeling, Dynamic Systems Modeling, Time Series and System Modeling, Hybrid Control: Fuzzy Evolutionary Systems and Control, Fuzzy Neural Systems and Control, Neural Genetic Systems and Control, Hybrid Intelligent Control, Granular Computing and Control, Hierarchical Systems and ControlTrack 10: Computational Intelligence in E-governanceIntegration of structured, semi-structured and unstructured data, Data fusion of diverse data resource, Data mining, Computer vision, Intelligent analytics of big data, Workflow scheduling, Resource scheduling in cloud environment, Knowledge discovery, fusion and service, Case based reasoning, Optimization of complex systems, Decision support system, Emergency management, Smart city, Human-computer interaction and collaborationTrack 11: Computational Intelligence in Cyber SecurityIntrusion/malware detection, prediction, classification, and response, models for survivable, resilient, and self-healing systems, sensor network security, web security, wireless and 4G, 5G media security, digital forensics, security information visualization, new sensor fusion and decision support for mobile device security, Self-awareness, auto-defensiveness, self-reconfiguration, and self-healing networking paradigm, Modeling adversarial behavior for insider and outsider threat detection, Cloud and virtualization security, Internet of Things (IoT), wearable device security, Identity Science, Authentication and Access Control, Social network security and privacy, Electronic Healthcare security, privacy and compliance, BigData and Application Security, Blockchain Security

Submission Deadline


ICBDCI 2019: International Conference on Big Data and Computational Intelligence submission deadline is 2018-11-25.

Note: It is generally recommended to submit your conference paper on or before the submission deadline. Generally, conferences do not encourage to submit the research paper after the deadline is over. In rare scenarios, conferences extend their deadline. Decision about the extension of the deadline is generally updated on the official conference webpage.


Notification date


Notification date of ICBDCI 2019: International Conference on Big Data and Computational Intelligence is 2018-12-15.

Note: This is the date on which conference announces the result about acceptance or rejection of submitted papers. If your research paper is accepted, the conference will request you to submit the camera ready version of your research paper by the due date. Due date to submit the camera ready version of the paper is generally posted on the official web page of the conferences or notified to you via. email.


Conference Date


ICBDCI 2019: International Conference on Big Data and Computational Intelligence will start on 2019-02-08.

Note: This is the date on which the conference starts.


Conference Location


ICBDCI 2019: International Conference on Big Data and Computational Intelligence will be organized at Meridian, Mauritius. This is the place where the conference is organized and the research paper is to be presented.