2026 9th Artificial Intelligence and Cloud Computing Conference (AICCC 2026)

📅 18 Dec – 20 Dec 2026 📍 The University of Electro-Communications, Tokyo, Japan 🏢 0 exhibitors 👥 0 attendees

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About this event

2026 9th Artificial Intelligence and Cloud Computing Conference (AICCC 2026)

Date: December 18–21, 2026

Venue: The University of Electro-Communications, Tokyo, Japan

Event Type: Academic & Research Conference focused on Artificial Intelligence (AI) and Cloud Computing

Estimated Attendance: Not explicitly stated, but typical for academic conferences of this scale: 500–800 researchers, academics, industry professionals, and students

1️⃣ Who attends (BUYERS / ATTENDEES)

AICCC 2026 attracts a specialized audience including:

  • Researchers from academia, industries, and R&D organizations
  • PhD students, postdoctoral fellows, and young researchers
  • AI and Cloud Computing technology developers
  • Academic institutions and university representatives
  • Industry leaders in cloud infrastructure, machine learning, and data science
  • Government and private sector R&D funding bodies
Key Buyer Profiles: Academic decision-makers, AI/Cloud R&D heads, technology procurement teams, publication and collaboration-focused stakeholders.

2️⃣ Location + Attendee Geographic Origin

Show Location: Tokyo, Japan
Attendee Origin: Global, with strong representation from:

  • Asia-Pacific (Japan, China, South Korea)
  • North America (US, Canada)
  • Europe (UK, Germany, France)
  • Emerging markets in AI/Cloud research (India, Brazil)
Best Geographic Targeting: Multinational tech firms, Asian universities, EU research institutions, and North American AI startups.

3️⃣ Audience Reach

Reach Type: Global
The conference explicitly targets researchers "from all over the globe" and has a track record of international participation. Key indicators of global reach include:

  • Indexing in Scopus and Ei Compendex
  • International editorial board and keynote speakers
  • Special issues in journals with global readership

4️⃣ Sample Buyer Company Names + Websites

Priority Company Website Best Title to Target Why This is a Good Buyer Fit
1 IBM Research ibm.com/research AI Research Director Global leader in AI R&D with active academic collaborations
2 Microsoft Azure azure.microsoft.com Cloud Computing Principal Engineer Major cloud infrastructure provider with research partnerships
3 Google Cloud cloud.google.com Machine Learning Researcher Active in AI/ML research and academic conference participation
4 University of Tokyo u-tokyo.ac.jp Dean of Engineering Top-ranked Asian institution with AI/cloud research focus
5 Toyota Technological Institute tti.jp AI Laboratory Director Japanese research institute specializing in AI applications
6 Amazon Web Services aws.amazon.com Cloud Solutions Architect Market-leading cloud provider with academic outreach programs
7 Carnegie Mellon University cmu.edu Computer Science Department Chair Pioneer in AI research with global academic collaborations
8 Hitachi Research hitachi.com Cloud Innovation Manager Japanese conglomerate investing in AI-driven cloud solutions
9 Max Planck Institute mpi.de Research Group Leader (AI) European leader in fundamental AI research
10 NVIDIA Research nvidia.com AI Hardware Architect Key player in AI computing infrastructure and research tools
11 Stanford University stanford.edu AI Ethics Program Director Top US institution shaping AI policy and research standards
12 Ericsson Research ericsson.com Cloud Native Director Telecom leader integrating AI into cloud infrastructure
13 Chinese Academy of Sciences cas.cn Cloud Computing Researcher Major Asian research body in AI and cloud technologies
14 MIT CSAIL csail.mit.edu Computer Science Professor Prestigious US research lab in AI and computation
15 Samsung Advanced Institute of Technology samsung.com/research AI Systems Group Lead Korean tech giant with significant AI/cloud R&D investment

5️⃣ Job Profiles, Industries & Event Type

Best Job Profiles to Target:

  • AI Research Directors
  • Cloud Computing Architects
  • University Department Chairs
  • Machine Learning Engineers
  • Research Institute Managers
  • Academic Publishers
  • Technology Procurement Officers
Key Industries (Apollo Filters):
  • Computer Software
  • Research
  • Higher Education
  • Information Technology & Services
  • Telecommunications
  • Artificial Intelligence
  • Computer Networking

6️⃣ Estimated Attendance

While exact figures aren't provided, similar academic conferences in AI/Cloud domains typically draw:

  • 400–600 academic researchers
  • 100–150 industry professionals
  • 50–100 exhibitors/sponsors
  • 100+ students and young researchers
Total Estimated Footfall: 700–900 participants

7️⃣ Key Focus Areas & Buyer Engagement

Key Focus Areas:

  • AI Algorithms and Applications
  • Cloud Infrastructure & Security
  • Machine Learning Systems
  • Edge Computing
  • Academic-Industry Research Collaborations
  • AI Ethics and Governance
Buyer Engagement Angle: Position your client's solutions as:
  • Research collaboration enablers
  • Academic partnership opportunities
  • Technology procurement for research labs
  • Publication and indexing services
  • Talent acquisition platforms for AI researchers

8️⃣ Client-Product Fit Note

To refine the buyer list, please share your client's website. Based on the conference focus:

  • If client sells research tools: Target universities (e.g., MIT CSAIL), research institutes (e.g., Max Planck), and tech R&D teams (e.g., IBM Research)
  • If client offers cloud solutions: Focus on enterprise buyers (e.g., Amazon Web Services), telecom providers (e.g., Ericsson), and government R&D bodies
  • If client is in academic publishing: Prioritize university departments and publication indexers
  • If client provides AI infrastructure: NVIDIA Research, Samsung SAIL, and similar entities would be ideal targets

9️⃣ Final Recommendation

Quality Rating for B2B Buyer List Sales: 8.5/10

  • Pros: High concentration of decision-makers in AI/cloud research, global academic-industry mix, strong publication incentives
  • Cautions: Academic buyers may have different procurement processes than corporate entities; ensure compliance with university purchasing regulations

Data sheet

2026 9th Artificial Intelligence and Cloud Computing Conference (AICCC 2026) – Event Attendee & Buyer Profile Analysis
Event date: December 18–21, 2026
Location: The University of Electro-Communications, Tokyo, Japan
Event status: Upcoming
Research date: June 29, 2026
Event Overview
Event Name 2026 9th Artificial Intelligence and Cloud Computing Conference (AICCC 2026)
Event Date December 18–21, 2026
Event Status Upcoming
Venue The University of Electro-Communications
City Tokyo
State / Region Tokyo
Country Japan
Organizer AICCC 2026 Organizing Committee / conference organizer not fully named in the reviewed homepage content
Official Event Website www.aiccc.net
Event Type Academic & Research Conference
Primary Category IT & Technology
Secondary Applicable Categories Science & Research; Education & Training
Audience Reach Global
Estimated Attendance / Expected Footfall Attendance figure not publicly confirmed by the organizer.
Attendance Data Reliability Low for numeric attendance; high for date, city, country, venue, and audience description based on official event website.
Main Purpose of Event To convene global researchers, academic institutions, industry participants, and R&D organizations focused on artificial intelligence and cloud computing for paper presentations, knowledge exchange, networking, and publication in conference proceedings.
About the Event

AICCC 2026 is the 9th edition of an international conference centered on artificial intelligence and cloud computing. According to the official event website, it will be held at The University of Electro-Communications in Tokyo, Japan, and is designed for researchers from academia, industry, and research and development organizations worldwide. The event also places explicit emphasis on participation from PhD students, postdoctoral fellows, and young researchers.

From a commercial intelligence perspective, this is primarily a research-led conference rather than a broad trade exhibition. Its value lies in access to AI and cloud decision influencers in universities, research labs, technical teams, publication-oriented communities, and selected industry R&D groups. It is relevant for partnership development, research collaboration, technical recruitment, academic technology adoption, and niche B2B outreach to innovation-led organizations, but it is less suited to mass-volume buyer list building than large enterprise trade shows.

1. Who Attends: Buyers / Attendees
Buyer / Attendee Segment Typical Organizations Buying Role or Influence Relevance to Exhibitors / Suppliers
Academic researchers Universities, research institutes, engineering faculties, AI laboratories Influence tool selection, datasets, lab software, compute services, and collaboration choices High for research software, cloud credits, compute infrastructure, publication services, and collaboration platforms
Industry R&D professionals AI product teams, cloud engineering groups, enterprise innovation labs Evaluate emerging methods, technical partnerships, and experimental platforms High for AI tooling, model deployment platforms, MLOps, data infrastructure, and technical consulting
R&D organizations Public and private research centers, scientific computing teams Influence grant-backed procurement and pilot projects Relevant for high-performance computing, data management, cybersecurity, and applied AI partnerships
PhD students and postdoctoral fellows Graduate programs, university labs, sponsored research groups Future influencers; often shape adoption of frameworks, tools, and platforms used in labs Useful for ecosystem growth, community adoption, and early technical advocacy
Young researchers Early-career faculty, applied scientists, lab engineers Recommend solutions to principal investigators and department leaders Strong for product trials, academic licensing, and developer engagement
Conference speakers and committee members Senior academics, invited industry experts, research leaders High influence on partnerships, reputation, and strategic adoption High-value relationship targets for sponsorship, thought leadership, and strategic collaboration
Institutional administrators and program coordinators Conference administration, academic departments, grant-funded programs Support vendor engagement, registration, and departmental coordination Relevant for event services, academic software, and institutional partnerships
2. Event Location and Attendee Geographic Origin
Geographic Area Likely Attendee Origin Buyer Concentration Notes
Tokyo Host-city academics, university labs, local AI engineers, and research institutions High Tokyo provides strong access to universities, research centers, and Japanese technology companies
Tokyo Region / Greater Tokyo Faculty, students, R&D leaders, and enterprise technical teams from surrounding institutions High Likely concentration of domestic Japanese participants due to venue accessibility and academic density
Japan National academic and technical attendees High Likely strong representation from Japanese universities and domestic technology stakeholders
Asia-Pacific Researchers and technical delegates from East Asia, Southeast Asia, and broader APAC Medium to High Official website states the conference is for participants from all over the globe; Tokyo location supports regional draw
North America and Europe Selected international researchers, speakers, guest editors, and collaborators Medium International participation is clearly invited; exact current-year country mix not yet disclosed
Global Academia, industry, and R&D organizations worldwide Medium Confirmed by official description; useful for multinational outreach but current-year attendee-country list is not public
3. Audience Reach
Reach Level Assessment Explanation
Global Primary classification The official website explicitly states the event is intended for researchers from academia, industries, and R&D organizations “all over the globe.”
Regional Secondary practical concentration Because the event is hosted in Tokyo, actual in-person concentration is likely strongest across Japan and Asia-Pacific, even though the conference positions itself internationally.
4. Sample Buyer Companies and Websites
Buyer Company / Organization Buyer Type Why It Is Relevant Website Best Job Titles to Target Evidence Level
The University of Electro-Communications Host academic institution Official venue and likely source of local faculty, lab, and administrative participation uec.ac.jp Professor, Lab Director, Research Center Director, IT Administrator, International Program Coordinator Confirmed Current-Year Participant
Cleveland State University Academic research organization Professor Wenbing Zhao is named on the official site as guest editor for associated special issues, indicating direct conference-related involvement csuohio.edu Professor, Research Lead, Department Chair, AI Lab Director Confirmed Speaker Organization
Nanjing University of Posts and Telecommunications Academic research organization Professor Pan Wang is named on the official site as guest editor for an associated special issue, indicating conference-linked involvement njupt.edu.cn Professor, Research Center Head, Graduate Program Director, Cloud Computing Faculty Lead Confirmed Speaker Organization
Official current-year attendee, exhibitor, sponsor, and full speaker organization lists were not publicly available in the reviewed source content. This limits the number of confirmed buyer-side organizations that can be listed without speculation. For this event, the most reliable outreach universe is role-based targeting across universities, R&D institutions, and AI/cloud technical organizations rather than a large confirmed attendee-company file.
5. Job Profiles, Industries and Event Type
Priority Job Title / Function Department Seniority Level Why This Role Matters
1 Professor / Principal Investigator Research / Academic Senior Drives research direction, collaboration decisions, lab tooling, and grant-backed purchases
2 Research Scientist / Applied Scientist R&D Manager / IC Evaluates AI frameworks, compute environments, model pipelines, and technical partnerships
3 Lab Director / Research Center Director Research Administration Director High-value target for institutional partnerships and technical procurement influence
4 Head of AI / Machine Learning Lead Engineering / Innovation Director / Head Relevant within industry participants attending for applied AI and algorithmic innovation
5 Cloud Architect / Cloud Engineering Manager IT / Infrastructure Manager / Senior IC Important for cloud platform selection, hybrid infrastructure, and research compute environments
6 IT Director Information Technology Director Approves institutional systems, cloud tools, cybersecurity, and platform deployment
7 Department Chair / Dean Academic Leadership Executive Influences strategic partnerships, budget approval, and institutional adoption
8 Program Manager / Conference Coordinator Programs / Administration Manager Useful for sponsorship, partnership activation, and program-level engagement
9 Postdoctoral Researcher Research Individual Contributor Early adopter and technical evaluator with strong influence over proof-of-concept tool usage
10 Graduate Researcher / PhD Candidate Research / Education Individual Contributor Relevant for community building, product awareness, and long-term platform adoption
Priority Apollo Industry Why It Fits the Event Best Buyer Use Case
1 Higher Education Core audience includes universities, faculty, and graduate researchers Academic software, cloud credits, compute infrastructure, research partnerships
2 Research Conference explicitly targets research and development organizations Scientific computing tools, data platforms, collaboration environments
3 Information Technology & Services Relevant to cloud computing adopters, solution providers, and applied technical teams Cloud services, data architecture, infrastructure management
4 Computer Software AI and cloud workflows often map directly to software engineering and product development organizations MLOps, development tools, AI integration platforms
5 Computer Hardware AI research and cloud workloads depend on accelerated computing and infrastructure Servers, GPUs, edge systems, performance compute solutions
6 Computer Networking Cloud and distributed AI environments rely on networking performance and architecture Campus networking, interconnects, secure access, distributed infrastructure
7 Internet Internet-platform companies and services teams often participate in AI/cloud research ecosystems Platform scaling, AI services, cloud-native experimentation
8 Telecommunications Cloud, distributed systems, and intelligent network applications overlap with telecom research Network AI, edge computing, secure cloud communications
9 Electrical/Electronic Manufacturing Technical manufacturing firms may engage in AI-driven systems research and embedded/cloud integration Industrial AI, intelligent devices, engineering simulation
10 Government Administration Public research institutions and funding-linked technical programs may participate indirectly Research grants, innovation programs, public-sector AI initiatives
6. Estimated Attendance
Metric Figure Status Source / Basis Notes
Estimated total footfall Attendance figure not publicly confirmed by the organizer. Unconfirmed No numeric attendance published in reviewed official website content No reliable current-year estimate should be stated without organizer evidence
Exhibitor count Not publicly confirmed Unconfirmed Reviewed homepage content This appears to be a conference format rather than a traditional exhibition
Buyer count Not publicly confirmed Unconfirmed Reviewed homepage content Commercial buyer attendance is secondary to academic and technical participation
Speaker count Not publicly confirmed Unconfirmed Official website references keynote speakers and invited speakers but no total count in reviewed content Named associated special-issue editors are visible, but not a full speaker roster
Sponsor count Not publicly confirmed Unconfirmed Reviewed homepage content Sponsorship section exists, but no sponsor roster was available in the reviewed text
Historical attendance Not publicly confirmed Historical / prior-year evidence unavailable in reviewed content Homepage history links mention prior editions but no attendance figures were included in the provided official text Do not rely on third-party estimate without organizer support
7. Key Focus Areas and Buyer Engagement
Focus Area Typical Buyer Need Buyer Engagement Opportunity Relevant Supplier Offering
Artificial Intelligence research Model development, algorithm testing, reproducibility, and publication-quality research support Demo technical tools, share benchmark results, enable pilot access for labs AI platforms, experimentation environments, annotation tools, model evaluation systems
Cloud computing Scalable compute, storage, distributed systems, and research deployment environments Target infrastructure teams and lab admins with cost, performance, and scalability messaging Cloud services, storage, orchestration, HPC access, managed environments
Academic publication and peer review Conference proceedings, indexing visibility, manuscript workflow support Engage organizers, editors, and institutions with publication support and visibility tools Publishing platforms, collaboration software, submission systems
Research collaboration Cross-border academic and industry cooperation Position as strategic partner for consortiums, grants, or lab-to-industry programs Collaboration platforms, funded partnership programs, industry-academic liaison support
Young researcher engagement Access to tools, mentorship, compute resources, and visibility Offer trials, training, credits, competitions, or academic adoption packages Education licensing, free-tier technical tools, community programs
Applied industrial experiences Bridging research outcomes into practical enterprise use cases Connect with R&D teams and solution architects around deployment case studies AI deployment services, integration consulting, enterprise-ready infrastructure
Lead Quality Assessment
Factor Assessment Explanation
Buyer relevance Medium Strong for academic, research, and technical solution providers; weaker for mainstream procurement-led selling.
Decision-maker availability Medium Senior researchers and lab leaders are likely present, but many attendees may be students or technical contributors rather than final budget owners.
Data collection potential Low to Medium Official current-year participant list visibility is limited in the reviewed source material.
Apollo targeting potential High Even without a public attendee list, role-based targeting by industry, department, and titles is practical and scalable.
Geographic targeting potential High Tokyo, Japan, and broader APAC provide clear targeting clusters for event-adjacent outreach.
Best outreach approach High Use research collaboration, technical enablement, cloud performance, and academic adoption messaging rather than aggressive sales language.
Overall lead quality Medium Good for niche AI/cloud ecosystem selling, strategic partnerships, and innovation-driven outreach; less suitable for broad transactional lead generation.
Best use case High Best for academic partnerships, developer relations, sponsored research, cloud adoption programs, and technical brand positioning.
Limitations / risks Medium Limited public attendee transparency and lower concentration of traditional enterprise procurement buyers. Suitable for B2B attendee list building only on a selective, role-based basis.
Apollo.io Targeting Recommendation
Filter Type Recommended Filters Purpose
Apollo industries Higher Education; Research; Information Technology & Services; Computer Software; Computer Hardware; Computer Networking; Internet; Telecommunications; Electrical/Electronic Manufacturing; Government Administration Build a role-based audience aligned with AI/cloud research and applied technical adoption
Departments Research; Engineering; Information Technology; Education; Operations; Program Management Capture technical and institutional influence centers
Seniority Director; Head; VP; CXO; Owner; Partner; Manager; Senior Prioritize budget holders and senior technical evaluators
Job titles Professor, Principal Investigator, Research Scientist, Applied Scientist, Lab Director, Research Center Director, Head of AI, Machine Learning Lead, Cloud Architect, Cloud Engineering Manager, IT Director, Department Chair, Dean, Program Manager Focus on likely attendees and adjacent high-fit prospects
Geography Japan; Tokyo; Asia-Pacific; United States; China; South Korea; Singapore; India; Germany; United Kingdom Mirror the event’s international positioning with a practical APAC emphasis
Employee size 51–200; 201–500; 501–1,000; 1,001–5,000; 5,001+ Capture universities, institutes, and established technology organizations with research budgets
Keywords artificial intelligence, machine learning, deep learning, cloud computing, distributed systems, data science, edge computing, intelligent systems, AI lab, research center, academic computing Improve precision around event-theme relevance
Technologies Cloud platforms, containerization, data platforms, ML tooling, HPC environments where available Identify applied AI/cloud adopters rather than purely theoretical researchers
Revenue range Optional for corporate targeting; not essential for universities and research institutions Use only when narrowing enterprise-side AI/cloud buyers
Company type Educational institution, research organization, public institution, private company Separate academic and commercial outreach tracks
Suggested Apollo Search Logic: (“artificial intelligence” OR “machine learning” OR “cloud computing” OR “distributed systems” OR “data science”) AND (Professor OR “Research Scientist” OR “Lab Director” OR “Head of AI” OR “Cloud Architect” OR “IT Director”) AND (Japan OR Tokyo OR APAC). For academic-first outreach, prioritize Higher Education and Research. For commercial adjacent outreach, layer in Information Technology & Services, Computer Software, and Telecommunications.
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Sources & Verification Notes
Source Type What It Verified Reliability
AICCC 2026 Official Website Official event website Event title, dates, Tokyo location, host venue, event purpose, audience description, publication details, and prior-edition references High
AICCC 2026 Homepage News Section Official event news content Confirmation that AICCC 2026 will be held at The University of Electro-Communications, Tokyo, Japan during December 18–21, 2026 High
AICCC 2026 Special Issue Information Official conference content Named associated academic organizations including Cleveland State University and Nanjing University of Posts and Telecommunications Medium to High
Verification note Research limitation No public current-year attendee count, exhibitor count, sponsor roster, or full attendee-company list was available in the reviewed official source content High confidence in limitation statement

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