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ICMLMDA · Registering as Listener

International Conference on Machine Learning Models for Data Analytics

8 - 9 Mar 2027 Santarem, Brazil Standard / Physical Participation
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$125
virtual · $155 in person
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Registration summary

ConferenceICMLMDA
ModeStandard / Physical
ParticipationListener
Registration fee$155.00
Bank charges (5.8%)$8.99
Total payable$163.99
Includes all bank processing charges — the amount above is exactly what will be charged.

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• Conference Session Tracks •
SDGs
SDG-Aligned Research Themes

ICMLMDA conference tracks support global knowledge exchange, innovation, and sustainable development priorities across diverse disciplines.

SDG 4 - Quality Education SDG 8 - Decent Work and Economic Growth SDG 9 - Industry, Innovation and Infrastructure SDG 12 - Responsible Consumption and Production
01 Advancements in Machine Learning for Predictive Modeling +
This track focuses on the latest advancements in machine learning techniques for predictive modeling in business contexts. Researchers are invited to present their findings on innovative algorithms and methodologies that enhance predictive accuracy and decision-making.
02 Neural Networks and Deep Learning Applications +
This session will explore the application of neural networks and deep learning in various business scenarios. Contributions should highlight case studies and novel approaches that demonstrate the effectiveness of these technologies in data analytics.
03 Feature Engineering for Enhanced Data Insights +
This track emphasizes the importance of feature engineering in extracting meaningful insights from complex datasets. Participants are encouraged to share techniques and frameworks that improve model performance through effective feature selection and transformation.
04 Decision Support Systems Powered by AI +
This session aims to discuss the integration of artificial intelligence in decision support systems within business environments. Papers should focus on AI-driven methodologies that facilitate informed decision-making and strategic planning.
05 Big Data Analytics in Business Intelligence +
This track addresses the challenges and opportunities presented by big data in the realm of business intelligence. Researchers are invited to present innovative solutions and frameworks that leverage big data analytics for enhanced organizational performance.
06 Statistical Analysis and Model Optimization Techniques +
This session will delve into statistical analysis methods and model optimization techniques that improve data analytics outcomes. Contributions should focus on quantitative approaches that enhance model reliability and efficiency.
07 Pattern Recognition and Its Business Applications +
This track explores the role of pattern recognition in identifying trends and anomalies in business data. Participants are encouraged to present research that demonstrates the application of pattern recognition techniques in various sectors.
08 AI Applications in Cognitive Computing +
This session will investigate the intersection of artificial intelligence and cognitive computing in business analytics. Papers should highlight innovative applications that enhance cognitive capabilities and support complex decision-making processes.
09 Reinforcement Learning in Business Strategies +
This track focuses on the application of reinforcement learning techniques in developing effective business strategies. Researchers are invited to share insights on how reinforcement learning can optimize decision-making and operational efficiency.
10 Automation and Data Mining for Business Insights +
This session will cover the role of automation and data mining in extracting actionable insights from large datasets. Contributions should focus on methodologies that streamline data mining processes and enhance analytical capabilities.
11 Data Visualization Techniques for Enhanced Understanding +
This track emphasizes the significance of data visualization in communicating complex analytical results. Participants are encouraged to present innovative visualization techniques that facilitate better understanding and interpretation of data analytics findings.