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Efficient context-aware computing: a systematic model for dynamic working memory updates in context-aware computing

delete2024-06-12
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OA
AI
M
Mumtaz Ali *
A
Arshad Muhammad
I
Ijaz Uddin
M
Muhammad Binsawad
A
Abdullah Bin Sawad
O
Osama Sohaib *
DOI:10.7717/peerj-cs.2129delete
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Abstract

Abstract

En 中文
The expanding computer landscape leads us toward ubiquitous computing, in which smart gadgets seamlessly provide intelligent services anytime, anywhere. Smartphones and other smart devices with multiple sensors are at the vanguard of this paradigm, enabling context-aware computing. Similar setups are also known as smart spaces. Context-aware systems, primarily deployed on mobile and other resource-constrained wearable devices, use a variety of implementation approaches. Rule-based reasoning, noted for its simplicity, is based on a collection of assertions in working memory and a set of rules that regulate decision-making. However, controlling working memory capacity efficiently is a key challenge, particularly in the context of resource-constrained systems. The paper's main focus lies in addressing the dynamic working memory challenge in memory-constrained devices by introducing a systematic method for content removal. The initiative intends to improve the creation of intelligent systems for resource-constrained devices, optimize memory utilization, and enhance context-aware computing.
Keywords:
Smart spaces
Context-aware systems
Rule-based reasoning
Working memory
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Journal

PeerJ Computer Science cover
PeerJ Computer Science
IF:
2.5
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3.4K
Citations:
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K
King Abdulaziz University
Scholars:
2.0W
Papers: 1.9W
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U
university of technology sydney
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A
American University of Ras Al Khaimah
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218
Papers: 260
Citations: 372
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