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Archive · 2021-01-01

AI ethics on Friday, 1 January 2021

16 items published this day, across 1 categories.

Research (16)

RETRACTED: 6-month consequences of COVID-19 in patients discharged from hospital: a cohort study

OpenAlex 2037d ago

Artificial Intelligence and Management: The Automation–Augmentation Paradox

Taking three recent business books on artificial intelligence (AI) as a starting point, we explore the automation and augmentation concepts in the management domain. Whereas automation implies that machines take over a human task, augmentation means that humans collaborate closely with machines to perform a task. Taking a normative stance, the three books advise organizations to prioritize augmentation, which they relate to superior performance. Using a more comprehensive paradox theory perspect
OpenAlex 2037d ago Jobs & economy

A Review of Artificial Intelligence (AI) in Education from 2010 to 2020

This study provided a content analysis of studies aiming to disclose how artificial intelligence (AI) has been applied to the education sector and explore the potential research trends and challenges of AI in education. A total of 100 papers including 63 empirical papers (74 studies) and 37 analytic papers were selected from the education and educational research category of Social Sciences Citation Index database from 2010 to 2020. The content analysis showed that the research questions could b
OpenAlex 2037d ago Children & education

Application of Artificial Intelligence-Based Technologies in the Healthcare Industry: Opportunities and Challenges

This study examines the current state of artificial intelligence (AI)-based technology applications and their impact on the healthcare industry. In addition to a thorough review of the literature, this study analyzed several real-world examples of AI applications in healthcare. The results indicate that major hospitals are, at present, using AI-enabled systems to augment medical staff in patient diagnosis and treatment activities for a wide range of diseases. In addition, AI systems are making a
OpenAlex 2037d ago Healthcare

AI technologies for education: Recent research & future directions

From unique educational perspectives, this article reports a comprehensive review of selected empirical studies on artificial intelligence in education (AIEd) published in 1993–2020, as collected in the Web of Sciences database and selected AIEd-specialized journals. A total of 40 empirical studies met all selection criteria, and were fully reviewed using multiple methods, including selected bibliometrics, content analysis and categorical meta-trends analysis. This article reports the current st
OpenAlex 2037d ago Children & education

The Roadmap to 6G Security and Privacy

Although the fifth generation (5G) wireless networks are yet to be fully investigated, the visionaries of the 6th generation (6G) echo systems have already come into the discussion. Therefore, in order to consolidate and solidify the security and privacy in 6G networks, we survey how security may impact the envisioned 6G wireless systems, possible challenges with different 6G technologies, and the potential solutions. We provide our vision on 6G security and security key performance indicators (
OpenAlex 2037d ago PrivacyFinance, VC & PE

Big Data and AI Revolution in Precision Agriculture: Survey and Challenges

Sustainable agricultural development is a significant solution with fast population development through the use of information and communication (ICT) in precision agriculture, which produced new methods for making cultivation further productive, proficient, well-regulated while preserving the climate. Big data (machine learning, deep learning, etc.) is amongst the vital technologies of ICT employed in precision agriculture for their huge data analytical capabilities to abstract significant info
OpenAlex 2037d ago RegulationEnvironment

Data sovereignty: A review

New data-driven technologies yield benefits and potentials, but also confront different agents and stakeholders with challenges in retaining control over their data. Our goal in this study is to arrive at a clear picture of what is meant by data sovereignty in such problem settings. To this end, we review 341 publications and analyze the frequency of different notions such as data sovereignty, digital sovereignty, and cyber sovereignty. We go on to map agents they concern, in which context they
OpenAlex 2037d ago Military & securityAgents & autonomy

A Survey of Contrastive and Counterfactual Explanation Generation Methods for Explainable Artificial Intelligence

A number of algorithms in the field of artificial intelligence offer poorly interpretable decisions. To disclose the reasoning behind such algorithms, their output can be explained by means of so-called evidence-based (or factual) explanations. Alternatively, contrastive and counterfactual explanations justify why the output of the algorithms is not any different and how it could be changed, respectively. It is of crucial importance to bridge the gap between theoretical approaches to contrastive
OpenAlex 2037d ago Transparency

Harnessing the power of machine learning for carbon capture, utilisation, and storage (CCUS) – a state-of-the-art review

A review of the state-of-the-art applications of machine learning for CO 2 capture, transport, storage, and utilisation.
OpenAlex 2037d ago Environment

The Emerging Nano-Corporate Paradigm: Nanotechnology and the Transformation of Nature, Food and Agri-Food Systems

Nanotechnology represents the latest in a line of technological innovations set to transform agriculture and food production. From the farm to the table, nanotechnology research and development is being applied across the entire agri-food system. In this paper we outline the contours of what we call the nano-corporate food paradigm. We examine research and commercial applications of nanotechnology in the agriculture and food sectors, and showcase the ways in which the nano-corporate food paradig
OpenAlex 2037d ago

Artificial Intelligence for a Better Future

This open access book offers a novel conceptualization of the AI ethics debate by applying the discourse of innovation ecosystems to AI
OpenAlex 2037d ago

Machine learning applications in microbial ecology, human microbiome studies, and environmental monitoring

Advances in nucleic acid sequencing technology have enabled expansion of our ability to profile microbial diversity. These large datasets of taxonomic and functional diversity are key to better understanding microbial ecology. Machine learning has proven to be a useful approach for analyzing microbial community data and making predictions about outcomes including human and environmental health. Machine learning applied to microbial community profiles has been used to predict disease states in hu
OpenAlex 2037d ago HealthcareEnvironment

Special Issue Editorial: Artificial Intelligence in Organizations: Implications for Information Systems Research

Artificial intelligence (AI) technologies offer novel, distinctive opportunities and pose new significant challenges to organizations that set them apart from other forms of digital technologies. This article discusses the distinct effects of AI technologies in organizations, the tensions they raise and the opportunities they present for information systems (IS) research. We explore these opportunities in term of four business capabilities: automation, engagement, insight/decision making and inn
OpenAlex 2037d ago Jobs & economy

Explainable Reinforcement Learning Through a Causal Lens

Prominent theories in cognitive science propose that humans understand and represent the knowledge of the world through causal relationships. In making sense of the world, we build causal models in our mind to encode cause-effect relations of events and use these to explain why new events happen by referring to counterfactuals — things that did not happen. In this paper, we use causal models to derive causal explanations of the behaviour of model-free reinforcement learning agents. We present an
OpenAlex 2037d ago Agents & autonomyTransparency

Teaching Machine Learning in K–12 Classroom: Pedagogical and Technological Trajectories for Artificial Intelligence Education

Over the past decades, numerous practical applications of machine learning techniques have shown the potential of AI-driven and data-driven approaches in a large number of computing fields. Machine learning is increasingly included in computing curricula in higher education, and a quickly growing number of initiatives are expanding it in K-12 computing education, too. As machine learning enters K-12 computing education, understanding how intuition and agency in the context of such systems is dev
OpenAlex 2037d ago Children & education