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IJCLR 2026: International Joint Conference on Learning & Reasoning

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투고 마감일:
2026-05-31
통보일:
2026-07-20
개최일:
2026-09-16
개최지:
Valencia, Spain
개최 횟수:
6
조회: 13526   팔로우: 0   참가: 0
마감 카운트다운 배지 삽입
IJCLR
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회반 지수 (CP-I)

44.6 / 100
전체 5,693개 중 2,991위 · 상위 53%
학술적 인정 (35%) 데이터 없음 — 중립 기준값 50점으로 계산 —
투고 선별성 (20%) 데이터 없음 — 중립 기준값 50점으로 계산 —
개최 횟수 (20%)
52
커뮤니티 관심도 (10%)
13
공개 자료 충실도 (15%)
35

사용한 입력: 확인되는 개최 횟수: 6 · 지난 24개월 동안 이 페이지를 연 연구자: 5명

공개 자료에서 빠진 항목: 역대 게재율 (+4.5) · 역대 회차 (+3.0) · 최우수 논문 기록 (+2.3)
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신뢰도 45% — 점수 중 중립 기준값이 아니라 실제 관측된 데이터에 근거한 비율. 이 점수는 어떻게 계산되나 · 전체 순위 보기 · 알고리즘 버전 1.1 · 산출일 2026-10-05

논문 모집

IJCLR 2026 (International Joint Conference on Learning & Reasoning) is an academic conference held in Valencia, Spain on 2026-09-16. The paper submission deadline is 2026-05-31. Acceptance notifications are sent on 2026-07-20.

General Information: Submissions are invited for the 6th International Joint Conference on Learning and Reasoning to be held at Universitat Politècnica de València, Valencia, Spain, 16-18 September 2026. Since 2021, IJCLR has aimed at being the conference bringing together the international AI community that is interested in the research of integrating learning and reasoning for addressing many of the shortcomings of contemporary AI approaches, including the black-box nature and the brittleness of deep learning, and the difficulty to adapt knowledge representation models in the light of new data. The authors could submit their papers to the "Main Track" or "Recently Published Papers Track". Selected conference papers from these two tracks are also invited to submit a significantly revised and extended version of their paper to a post-conference special issue of the Machine Learning Journal (please see below). Submissions are solicited on all aspects of Learning and Reasoning and topics where machine learning is combined with machine reasoning or knowledge representation. Authors are invited to submit novel, high-quality work that has neither appeared in nor is under consideration for publication by other journals or conferences (except for the Recently Published Papers Track). Topics of interest for the Journal Track include, but are not limited to: Theory & foundations of logical & relational learning. Learning in various logical representations and formalisms, such as logic programming & answer set programming, first-order & higher-order logic, description logic & ontologies. Inductive methods for program synthesis or example-driven programming. Combining logic and functional program induction, meta-interpretative learning & predicate invention. Statistical Relational AI, including structure/parameter learning for probabilistic logic languages, relational probabilistic graphical models, kernel-based methods, neural-symbolic learning. Systems and techniques that integrate neural, statistical & symbolic learning. Systems and techniques addressing aspects of integrating learning, reasoning & optimization. Knowledge representation and reasoning in deep neural networks. Symbolic knowledge extraction from neural and statistical learning models. Neural-symbolic AI. Techniques that foster explainability & trustworthiness of AI models, including combinations of machine learning with constraints & satisfiability, explainable AI frameworks and reasoning about the behavior of machine learning models. Scaling-up logical & relational learning: parallel & distributed learning techniques, online learning and learning structured representations from data streams. Human-Like Computing, including Cognitive and AI aspects of perception, action and learning.
최종 수정: Dou Sun ()

관련 학회

관련 저널

CCF정식 명칭영향력 지수출판사ISSN
BJournal of Automated Reasoning0.8Springer0168-7433
AIEEE Transactions on Multimedia9.7IEEE1520-9210
CKnowledge-Based Systems7.2Elsevier0950-7051
BSoftware & Systems Modeling3.2Springer1619-1366
AIEEE Transactions on Computers3.8IEEE0018-9340
CFuture Generation Computer Systems5.9Elsevier0167-739X
CNeurocomputing6.5Elsevier0925-2312
CPattern Recognition Letters3.9Elsevier0167-8655
BPattern Recognition7.6Elsevier0031-3203
IEEE Access3.6IEEE2169-3536

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