The Physics-Informed Machine Learning Society connects engineering knowledge, mathematical models and machine intelligence through research, education and collaboration.

Contact Info

ICARM, Komatipalli Post, Bobbili Mandal, Vizianagaram, Andhra Pradesh 535558, India

  • sunrise icon One-Day FDP: 25 September 2026

  • sunset icon Annual Meeting: 08–09 July 2027

  • Bengaluru, India

  • pimlsociety@gmail.com

Welcome To PIML Society

Physics-Informed Machine Learning Society

Advancing Engineering Through Machine Intelligence. Join an international professional community connecting engineering, physical sciences, mathematics and artificial intelligence through Physics-Informed Machine Learning (PIML), Physics-Informed Neural Networks (PINNs), scientific machine learning, research, education and collaboration.

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One-Day FDP on PIML for Engineering Applications — 25 September 2026

Program Details

First Annual Meeting of PIMLS — 08–09 July 2027, Bengaluru

Conference Website
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Engineering Branch Families

Physics-Informed Machine Learning Across 265 Branches

Ten broad families keep this page easy to navigate. Each family opens a complete list where every engineering branch has its own individual PIML information.

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Mechanical, Mechatronics & Manufacturing

Fluid mechanics, heat transfer, solid mechanics, manufacturing, robotics, predictive maintenance and digital twins.

View 31 Branches
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Civil, Construction & Built Environment

Structures, geotechnical systems, hydrology, transportation, materials, smart infrastructure and structural health monitoring.

View 28 Branches
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Chemical, Process & Pharmaceutical

Reaction kinetics, transport phenomena, process modelling, multiphase flow, process control and engineering surrogates.

View 31 Branches
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Electrical, Electronics & Communication

Power systems, smart grids, circuits, renewable energy, electromagnetics, communication systems, sensors and fault diagnosis.

View 51 Branches
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Computing, AI & Information Technology

PINNs, neural operators, scientific computing, optimisation, digital twins, robotics and trustworthy scientific AI.

View 41 Branches
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Biomedical, Biotechnology, Agriculture & Food

Bioprocesses, cell culture, systems biology, biosensors, biomedical systems and knowledge-informed biological modelling.

View 26 Branches
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Materials, Metallurgy, Mining & Ceramics

Alloy design, thermodynamics, phase transformations, microstructures, materials processing and metallurgical digital twins.

View 12 Branches
Aerospace and mobility research icon

Aerospace, Automotive, Mobility & Marine

Aerodynamics, propulsion, vehicle and vessel dynamics, structures, condition monitoring and transport digital twins.

View 14 Branches
Energy and climate research icon

Energy, Safety & Climate Technologies

Energy-system modelling, renewables, nuclear systems, fire and risk prediction, resilient operation and climate-aware design.

View 9 Branches
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Textile, Fashion, Leather, Printing & Packaging

Material-process modelling, quality prediction, sustainable production, apparel, printing and packaging optimisation.

View 22 Branches

Your exact branch is included, even when it is not shown as a homepage card. Search all 265 engineering branches.

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Building an Interdisciplinary Community for Physics-Informed AI

Physics-Informed Machine Learning combines artificial intelligence with physical laws, governing equations and scientific constraints. PIMLS brings domain engineers and scientists together with computer-science and AI researchers to develop reliable, meaningful and responsible solutions for real engineering systems.

  • Interdisciplinary research communities
  • Faculty development and hands-on training
  • Research collaboration across engineering branches
  • Conferences, lectures and technical workshops
  • Responsible and scientifically grounded machine intelligence

Founding year 2026

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Founding Year

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The Society is currently in its founding and community-development phase.

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First Annual Meeting

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PIAIEA 2027 will host the first annual meeting on 08–09 July 2027.

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FDP Sessions

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Four morning sessions and two afternoon hands-on laboratory sessions.

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Annual Membership

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Annual individual membership is ₹1,500 for one year.

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Programs & Announcements

Learn, Collaborate and Help Shape PIMLS

Explore the Society's first faculty development program, flagship annual meeting and official logo design initiative.

Competition Announcement

Winning Prize

₹10,000

PIMLS Logo Design Competition

Students, researchers and designers are invited to help create a professional visual identity representing engineering, physical sciences, mathematics and machine intelligence.

Program Planning

Morning: 4 Sessions

Afternoon:2 Labs

One-Day Faculty Development Program

Physics-Informed Machine Learning for Engineering Applications on 25 September 2026. The program introduces PIML foundations, governing equations, PINNs, engineering applications and practical implementation.

Conference Planning

Dates: 08–09 July

Year:2027

PIAIEA 2027 — First Annual Meeting

The international conference will bring together researchers, academicians, industry professionals and students working in PIML, PINNs and AI for engineering applications. The organizing committee will be updated soon.

Interested in participating, hosting a program or proposing a research activity? Contact the PIMLS coordinator

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Our Community

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Research Communities

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Engineering Applications

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Scientific Machine Learning

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Our Community

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Our Community

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Research Communities

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Engineering Applications

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Scientific Machine Learning

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Our Community

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Society Activities

Research, Education and Professional Community

PIMLS is being developed around continuing research interaction, educational programs, scholarly communication and interdisciplinary participation.

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Computing Technology Research Journal

The official journal of PIMLS publishes interdisciplinary work in computing technologies, PIML, Scientific Machine Learning, computational modelling and engineering-driven artificial intelligence.

  • ISSN: 2583-6501

  • Frequency: Quarterly

  • Open Access • Online

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Be Part of the PIML Society

Join faculty members, researchers, professionals, scholars and students interested in combining machine learning with physical laws, mathematical models and engineering knowledge.

  • Annual Fee: ₹1,500

  • Validity: One Year

  • Interdisciplinary Community

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Propose a Research Collaboration

Researchers may contact PIMLS about engineering applications, interdisciplinary projects, workshops, institutional programs and participation in emerging research communities.

  • All Engineering Branches

  • Faculty • Researchers • Students

  • Bengaluru, India

Membership connects researchers with interdisciplinary learning, mentoring, technical activities and opportunities to participate in the growing PIMLS community.

Coordination & Advisory

Current Academic Support for PIMLS

PIMLS is in its founding phase. Permanent office bearers will be decided through the appropriate Society process after the First Annual Meeting.

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Dr. Preetam Ghosh

International Academic Advisory Support

Professor of Computer Science, Virginia Commonwealth University, USA.

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Dr. Rogerio Atem de Carvalho

International Academic Advisory Support

Full Professor of Informatics, Instituto Federal Fluminense, Brazil

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Dr. Dushyant Kumar Singh

International Academic Advisory Support

Associate Professor, Dept. of CSE, MNNIT, Uttar Pradesh

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Dr. Mehran Mazandarani

International Academic Advisory Support

Director of AI Technology Development, CFIT Co. Ltd., China.

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Dr Prakash Kota

International Academic Advisory Support

Adjunct Professor, Economics Department, Massry School of Business, University at Albany, New York, USA and Founder & CEO, MLPowersAI, Inc., USA

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Siva Kiran RR

Interim Coordinator, PIMLS • Chief Editor, CTRJ

Coordinates founding activities, research enquiries and academic communication for the emerging Society.

Research Enquiries

Interested in Physics-Informed Machine Learning?

Faculty members, researchers, professionals and students may contact PIMLS regarding engineering applications, interdisciplinary collaboration, workshops, institutional activities and emerging research communities.

Faq's

Clear answers to your questions

Still have a question?

Contact the interim coordinator for membership, research collaboration, FDP participation or Society-related enquiries.

Physics-Informed Machine Learning integrates data-driven learning with governing equations, physical laws, mathematical relationships or scientific constraints. It helps models learn while remaining connected to the behaviour of real engineering systems.

Faculty members, researchers, scientists, industry professionals, research scholars and students from engineering, computer science, mathematics, physical sciences, biotechnology and allied disciplines are welcome.

Applicants complete the membership form and email their current biodata to PIMLS. Applications are reviewed, and approved applicants receive the next steps for annual membership.

PIMLS is currently in its founding phase. The permanent governance structure and inaugural office bearers are expected to be discussed and constituted through the appropriate Society process after the First Annual Meeting in July 2027.