Hybrid Conferencee

International Conference on Bioinformatics and Machine Learning (ICBIML - 27)

26th - 27th May 2027 | Ulaanbaatar, Mongolia
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Expand the Academic Reach of Your Research - a Q1-ranked and Scopus-indexed journal publication opportunity

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Conference Notifications:

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Call for Papers Extended:
"The deadline for full paper submissions has been extended for the Research Plus International Conference in Ulaanbaatar. Submit your research by today to participate in one of the top conferences."
Certificate of Presentation:
"Present your research and receive a Certificate of Presentation to recognise your valuable contribution to the conference."
Abstract Submissions Open:
"Abstract submissions for the Ulaanbaatar event are now open! Don’t miss the chance to present your research. Submit now."
Networking with Global Experts:
"Engage with researchers and professionals from around the world at the Ulaanbaatar conference. Build collaborations and gain insights from leading experts."
Keynote Speaker Sessions:
"Don’t miss our Keynote Sessions in Ulaanbaatar, featuring global leaders and innovators sharing their knowledge."
Best Paper & Best Paper Presentation Award:
"Submit your paper and stand a chance to win the Best Paper Presentation Award. The winner will be recognized at the conference in Ulaanbaatar."
SDG-Inspired Conference Focus:
"Our conference will highlight research that addresses global sustainability, inclusive education, and solutions for environmental challenges."

Conference Session Tracks

SDG Wheel

Aligned with

UN Sustainable Development Goals

This conference contributes to global sustainability by aligning its research discussions and academic sessions with key United Nations Sustainable Development Goals. It fosters knowledge exchange, innovation, and collaborative engagement.

SDG 3
SDG 3 Good Health and Well-being
SDG 4
SDG 4 Quality Education
SDG 9
SDG 9 Industry, Innovation and Infrastructure
Track 01

Advancements in Genomic Data Analysis

This track focuses on innovative machine learning techniques applied to genomic data, emphasizing methods for enhancing data interpretation and accuracy. Contributions may include novel algorithms for sequence analysis and genomic feature extraction.

Track 02

Protein Structure Prediction Using AI

This session will explore the integration of machine learning approaches in predicting protein structures, highlighting breakthroughs in computational methods. Papers should discuss the implications of these predictions for understanding biological functions and drug design.

Track 03

Clustering Algorithms in Biomedical Research

This track invites submissions on the application of clustering algorithms to analyze complex biomedical datasets. Emphasis will be placed on novel methodologies that improve clustering accuracy and interpretability in various biological contexts.

Track 04

Classification Models for Disease Prediction

This session will cover the development and application of classification models aimed at predicting disease outcomes from biological data. Researchers are encouraged to present their findings on supervised learning techniques and their effectiveness in clinical settings.

Track 05

Predictive Modeling in Drug Discovery

This track focuses on the role of predictive modeling in the drug discovery process, showcasing machine learning applications that enhance lead identification and optimization. Contributions should demonstrate how these models can streamline the drug development pipeline.

Track 06

Feature Extraction Techniques in Bioinformatics

This session aims to discuss advanced feature extraction techniques that facilitate the analysis of high-dimensional biological data. Papers should highlight innovative approaches that improve the quality and relevance of extracted features for downstream analysis.

Track 07

Deep Learning Applications in Systems Biology

This track will explore the application of deep learning methodologies in systems biology, focusing on their ability to model complex biological systems. Researchers are invited to present case studies that illustrate the impact of deep learning on biological insights.

Track 08

Anomaly Detection in Biomedical Data

This session will address the challenges and solutions related to anomaly detection in biomedical datasets, emphasizing the importance of identifying outliers for accurate data analysis. Contributions should focus on novel algorithms and their applications in real-world scenarios.

Track 09

Integrative Genomics and Machine Learning

This track invites discussions on integrative genomics approaches that leverage machine learning to combine diverse biological data sources. Papers should explore methodologies that enhance the understanding of complex biological interactions.

Track 10

Unsupervised Learning in Biological Data Analytics

This session will focus on the application of unsupervised learning techniques in the analysis of biological data, highlighting their potential to uncover hidden patterns. Researchers are encouraged to share insights on innovative approaches and their biological implications.

Track 11

AI Innovations in Computational Biology

This track will showcase cutting-edge AI innovations that are transforming computational biology, with a focus on novel algorithms and applications. Contributions should highlight the intersection of artificial intelligence and biological research, demonstrating significant advancements.