Results for 'A.I., Artificial Intelligence, NLP, Natural Language Processing, bias,'

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  1. The Bias Dilemma: The Ethics of Algorithmic Bias in Natural-Language Processing.Oisín Deery & Katherine Bailey - 2022 - Feminist Philosophy Quarterly 8 (3).
    Addressing biases in natural-language processing (NLP) systems presents an underappreciated ethical dilemma, which we think underlies recent debates about bias in NLP models. In brief, even if we could eliminate bias from language models or their outputs, we would thereby often withhold descriptively or ethically useful information, despite avoiding perpetuating or amplifying bias. Yet if we do not debias, we can perpetuate or amplify bias, even if we retain relevant descriptively or ethically useful information. Understanding this dilemma (...)
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  2. Operationalising Representation in Natural Language Processing.Jacqueline Harding - forthcoming - British Journal for the Philosophy of Science.
    Despite its centrality in the philosophy of cognitive science, there has been little prior philosophical work engaging with the notion of representation in contemporary NLP practice. This paper attempts to fill that lacuna: drawing on ideas from cognitive science, I introduce a framework for evaluating the representational claims made about components of neural NLP models, proposing three criteria with which to evaluate whether a component of a model represents a property and operationalising these criteria using probing classifiers, a popular analysis (...)
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  3.  22
    Addressing bias in artificial intelligence for public health surveillance.Lidia Flores, Seungjun Kim & Sean D. Young - 2024 - Journal of Medical Ethics 50 (3):190-194.
    Components of artificial intelligence (AI) for analysing social big data, such as natural language processing (NLP) algorithms, have improved the timeliness and robustness of health data. NLP techniques have been implemented to analyse large volumes of text from social media platforms to gain insights on disease symptoms, understand barriers to care and predict disease outbreaks. However, AI-based decisions may contain biases that could misrepresent populations, skew results or lead to errors. Bias, within the scope of this paper, (...)
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  4.  15
    Semantic Noise and Conceptual Stagnation in Natural Language Processing.Sonia de Jager - 2023 - Angelaki 28 (3):111-132.
    Semantic noise, the effect ensuing from the denotative and thus functional variability exhibited by different terms in different contexts, is a common concern in natural language processing (NLP). While unarguably problematic in specific applications (e.g., certain translation tasks), the main argument of this paper is that failing to observe this linguistic matter of fact as a generative effect rather than as an obstacle, leads to actual obstacles in instances where language model outputs are presented as neutral. Given (...)
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  5. Formalʹnye i neformalʹnye rassuzhdenii︠a︡.I. Sildmäe (ed.) - 1989 - Tartu: Tartuskiĭ gos. universitet.
     
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  6.  11
    Considerations for collecting data in Māori population for automatic detection of schizophrenia using natural language processing: a New Zealand experience.Randall Ratana, Hamid Sharifzadeh & Jamuna Krishnan - forthcoming - AI and Society:1-12.
    In this paper, we describe the challenges of collecting data in the Māori population for automatic detection of schizophrenia using natural language processing (NLP). Existing psychometric tools for detecting are wide ranging and do not meet the health needs of indigenous persons considered at risk of developing psychosis and/or schizophrenia. Automated methods using NLP have been developed to detect psychosis and schizophrenia but lack cultural nuance in their designs. Research incorporating the cultural aspects relevant to indigenous communities is (...)
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  7.  12
    Lessons learned building a legal inference dataset.Sungmi Park & Joshua I. James - forthcoming - Artificial Intelligence and Law:1-34.
    Legal inference is fundamental for building and verifying hypotheses in police investigations. In this study, we build a Natural Language Inference dataset in Korean for the legal domain, focusing on criminal court verdicts. We developed an adversarial hypothesis collection tool that can challenge the annotators and give us a deep understanding of the data, and a hypothesis network construction tool with visualized graphs to show a use case scenario of the developed model. The data is augmented using a (...)
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  8.  38
    Towards a decolonial I in AI: mapping the pervasive effects of artificial intelligence on the art ecosystem.Amir Baradaran - forthcoming - AI and Society:1-13.
    This paper delves into the intricate relationship between Artificial Intelligence (AI) and the art ecosystem, emphasizing the need for a decolonizing approach in the face of AI's growing influence. It argues that the development of AI is not just a technological leap but also a significant cultural and societal moment, akin to the advent of moving images that Walter Benjamin famously analyzed. The paper examines how AI, particularly in its current oligarchical and corporate-driven form, perpetuates and magnifies the existing (...)
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  9.  15
    At the intersection of humanity and technology: a technofeminist intersectional critical discourse analysis of gender and race biases in the natural language processing model GPT-3.M. A. Palacios Barea, D. Boeren & J. F. Ferreira Goncalves - forthcoming - AI and Society:1-19.
    Algorithmic biases, or algorithmic unfairness, have been a topic of public and scientific scrutiny for the past years, as increasing evidence suggests the pervasive assimilation of human cognitive biases and stereotypes in such systems. This research is specifically concerned with analyzing the presence of discursive biases in the text generated by GPT-3, an NLPM which has been praised in recent years for resembling human language so closely that it is becoming difficult to differentiate between the human and the algorithm. (...)
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  10.  11
    A linguistic ontology of space for natural language processing.John A. Bateman, Joana Hois, Robert Ross & Thora Tenbrink - 2010 - Artificial Intelligence 174 (14):1027-1071.
  11.  26
    Understanding users’ responses to disclosed vs. undisclosed customer service chatbots: a mixed methods study.Margot J. van der Goot, Nathalie Koubayová & Eva A. van Reijmersdal - forthcoming - AI and Society:1-14.
    Due to huge advancements in natural language processing (NLP) and machine learning, chatbots are gaining significance in the field of customer service. For users, it may be hard to distinguish whether they are communicating with a human or a chatbot. This brings ethical issues, as users have the right to know who or what they are interacting with (European Commission in Regulatory framework proposal on artificial intelligence. https://digital-strategy.ec.europa.eu/en/policies/regulatory-framework-ai, 2022). One of the solutions is to include a disclosure (...)
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  12.  20
    Cyber-animism: the art of being alive in hybrid society.V. I. Arshinov, O. A. Grimov & V. V. Chekletsov - forthcoming - Philosophical Problems of IT and Cyberspace.
    The boundaries of social acceptance and models of convergence of human and non-human actors of digital reality are defined. The constructive creative possibilities of convergent processes in distributed neural networks are analyzed from the point of view of possible scenarios for building “friendly” human-dimensional symbioses of natural and artificial intelligence. A comprehensive analysis of new management challenges related to the development of cyber-physical and cybersocial systems is carried out. A model of social organizations and organizational behavior in the (...)
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  13.  6
    Processes, Beliefs, and Questions: Essays on Formal Semantics of Natural Language and Natural Language Processing.Stanley Peters & Esa Saarinen (eds.) - 1981 - Dordrecht, Netherland: Reidel.
    SECTION I In 1972, Donald Davison and Gilbert Hannan wrote in the introduction to the volume Semantics of Natural Language: "The success of linguistics in treating natural languages as formal ~yntactic systems has aroused the interest of a number of linguists in a parallel or related development of semantics. For the most part quite independently, many philosophers and logicians have recently been applying formal semantic methods to structures increasingly like natural languages. While differences in training, method (...)
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  14. Michael A. Arbib, The metaphorical brain 2: Neural networks and beyond.John A. Barnden - 1998 - Artificial Intelligence 101 (1-2):301-309.
    The book is thought-provoking and informative, wide in scope while also being technically detailed, and still relevant to modem AI [at least as of 1998, the time of writing this review, but probably also at the time of posting this entry here, 2023] even though it was published in 1989. This relevance lies mainly in the book’s advocacy of distributed computation at multiple levels of description, its combining of neural networks and other techniques, its emphasis on the interplay between action (...)
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  15.  46
    Exploring intellectual humility through the lens of artificial intelligence: Top terms, features and a predictive model.Ehsan Abedin, Marinus Ferreira, Ritsaart Reimann, Marc Cheong, Igor Grossmann & Mark Alfano - 2023 - Acta Psychologica 238 (103979).
    Intellectual humility (IH) is often conceived as the recognition of, and appropriate response to, your own intellectual limitations. As far as we are aware, only a handful of studies look at interventions to increase IH – e.g. through journalling – and no study so far explores the extent to which having high or low IH can be predicted. This paper uses machine learning and natural language processing techniques to develop a predictive model for IH and identify top terms (...)
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  16.  16
    Quantifying the genericness of trademarks using natural language processing: an introduction with suggested metrics.Cameron Shackell & Lance De Vine - 2022 - Artificial Intelligence and Law 30 (2):199-220.
    If a trademark becomes a generic term, it may be cancelled under trademark law, a process known as genericide. Typically, in genericide cases, consumer surveys are brought into evidence to establish a mark’s semantic status as generic or distinctive. Some drawbacks of surveys are cost, delay, small sample size, lack of reproducibility, and observer bias. Today, however, much discourse involving marks is online. As a potential complement to consumer surveys, therefore, we explore an artificial intelligence approach based chiefly on (...)
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  17.  12
    Експертна комп’ютерна оцінка знань.O. M. Terentiev & A. I. Kleshchov - 2018 - Гуманітарний Вісник Запорізької Державної Інженерної Академії 72:173-179.
    The urgency of the study of "stem-education" as a factor in the development of "smart-society" is that this kind of society is a continuation of information and "knowledge society", which is developing on the basis of smart technologies. The concept of smart society is at the heart of modern state -owned development programs of South Korea and Japan. In South Korea, the National Social Agency has developed a "Smart Society Strategy" that introduces the technological foundations of smart societies. The central (...)
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  18. Are we at the start of the artificial intelligence era in academic publishing?Quan-Hoang Vuong, Viet-Phuong La, Minh-Hoang Nguyen, Ruining Jin & Tam-Tri Le - 2023 - Science Editing 10 (2):1-7.
    Machine-based automation has long been a key factor in the modern era. However, lately, many people have been shocked by artificial intelligence (AI) applications, such as ChatGPT (OpenAI), that can perform tasks previously thought to be human-exclusive. With recent advances in natural language processing (NLP) technologies, AI can generate written content that is similar to human-made products, and this ability has a variety of applications. As the technology of large language models continues to progress by making (...)
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  19.  9
    Bias Dilemma.Oisín Deery & Katherine Bailey - 2022 - Feminist Philosophy Quarterly 8 (3/4).
    Addressing biases in natural-language processing (NLP) systems presents an underappreciated ethical dilemma, which we think underlies recent debates about bias in NLP models. In brief, even if we could eliminate bias from language models or their outputs, we would thereby often withhold descriptively or ethically useful information, despite avoiding perpetuating or amplifying bias. Yet if we do not debias, we can perpetuate or amplify bias, even if we retain relevant descriptively or ethically useful information. Understanding this dilemma (...)
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  20.  10
    Natural language processing analysis applied to COVID-19 open-text opinions using a distilBERT model for sentiment categorization.Mario Jojoa, Parvin Eftekhar, Behdin Nowrouzi-Kia & Begonya Garcia-Zapirain - forthcoming - AI and Society:1-8.
    COVID-19 is a disease that affects the quality of life in all aspects. However, the government policy applied in 2020 impacted the lifestyle of the whole world. In this sense, the study of sentiments of people in different countries is a very important task to face future challenges related to lockdown caused by a virus. To contribute to this objective, we have proposed a natural language processing model with the aim to detect positive and negative feelings in open-text (...)
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  21.  6
    Education Testing System by Artificial Intelligence.A. E. Ryabinin - forthcoming - Philosophical Problems of IT and Cyberspace (PhilIT&C).
    The article describes the possibilities of using and modifying existing machine learning technologies in the field of natural language processing for the purpose of designing a system for automatically generating control and test tasks (CTT). The reason for such studies was the limitations in generating theminimumrequired amount ofCTtomaintain student engagement in game-based learning formats, such as quizzes, and others. These limitations are associated with the lack of time resources among training professionals for manual generation of tests. The article (...)
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  22.  10
    Analyzing Machine‐Learned Representations: A Natural Language Case Study.Ishita Dasgupta, Demi Guo, Samuel J. Gershman & Noah D. Goodman - 2020 - Cognitive Science 44 (12):e12925.
    As modern deep networks become more complex, and get closer to human‐like capabilities in certain domains, the question arises as to how the representations and decision rules they learn compare to the ones in humans. In this work, we study representations of sentences in one such artificial system for natural language processing. We first present a diagnostic test dataset to examine the degree of abstract composable structure represented. Analyzing performance on these diagnostic tests indicates a lack of (...)
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  23. Contesti in intelligenza artificiale: una fugace rassegna (Context in artificial intelligence: a fleeting overview).Varol Akman - 2002 - In Carlo Penco (ed.), La Svolta Contestuale. McGraw-Hill.
    The notion of context arises in assorted areas of artificial intelligence (AI), including knowledge representation, natural language processing, intelligent information retrieval, etc. Although the term ‘context’ is frequently employed in descriptions, explanations, and analyses of computer programs in these areas, its meaning is frequently left to the reader’s understanding. -/- My aim in this paper is to offer a swift review of context in AI. I will first identify the role of context in various fields of AI. (...)
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  24.  34
    Argumentation Mining.Manfred Stede & Jodi Schneider - 2018 - San Rafael, CA, USA: Morgan & Claypool.
    Argumentation mining is an application of natural language processing (NLP) that emerged a few years ago and has recently enjoyed considerable popularity, as demonstrated by a series of international workshops and by a rising number of publications at the major conferences and journals of the field. Its goals are to identify argumentation in text or dialogue; to construct representations of the constellation of claims, supporting and attacking moves (in different levels of detail); and to characterize the patterns of (...)
  25. Simulative reasoning, common-sense psychology and artificial intelligence.John A. Barnden - 1995 - In Martin Davies & Tony Stone (eds.), Mental Simulation: Evaluations and Applications. Blackwell. pp. 247--273.
    The notion of Simulative Reasoning in the study of propositional attitudes within Artificial Intelligence (AI) is strongly related to the Simulation Theory of mental ascription in Philosophy. Roughly speaking, when an AI system engages in Simulative Reasoning about a target agent, it reasons with that agent’s beliefs as temporary hypotheses of its own, thereby coming to conclusions about what the agent might conclude or might have concluded. The contrast is with non-simulative meta-reasoning, where the AI system reasons within a (...)
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  26.  17
    Natural language processing for legal document review: categorising deontic modalities in contracts.S. Georgette Graham, Hamidreza Soltani & Olufemi Isiaq - forthcoming - Artificial Intelligence and Law:1-22.
    The contract review process can be a costly and time-consuming task for lawyers and clients alike, requiring significant effort to identify and evaluate the legal implications of individual clauses. To address this challenge, we propose the use of natural language processing techniques, specifically text classification based on deontic tags, to streamline the process. Our research question is whether natural language processing techniques, specifically dense vector embeddings, can help semi-automate the contract review process and reduce time and (...)
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  27.  48
    The ethics of artificial intelligence, UNESCO and the African Ubuntu perspective.Dorine Eva van Norren - 2023 - Journal of Information, Communication and Ethics in Society 21 (1):112-128.
    PurposeThis paper aims to demonstrate the relevance of worldviews of the global south to debates of artificial intelligence, enhancing the human rights debate on artificial intelligence (AI) and critically reviewing the paper of UNESCO Commission on the Ethics of Scientific Knowledge and Technology (COMEST) that preceded the drafting of the UNESCO guidelines on AI. Different value systems may lead to different choices in programming and application of AI. Programming languages may acerbate existing biases as a people’s worldview is (...)
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  28.  10
    Philosophy, Language, and Artificial Intelligence: Resources for Processing Natural Language.J. Kulas, J. H. Fetzer & T. L. Rankin - 1988 - Springer.
    This series will include monographs and collections of studies devoted to the investigation and exploration of knowledge, information and data-processing systems of all kinds, no matter whether human, (other) animal or machine. Its scope is intended to span the full range of interests from classical problems in the philosophy of mind and phi losophical psychology through issues in cognitive psychology and socio biology (concerning the mental capabilities of other species) to ideas related to artificial intelligence and computer science. While (...)
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  29.  17
    Word recognition as a first step towards natural language processing with artificial neural networks.Renate Deffner, Klaus Eder & Hans Geiger - 1990 - In G. Dorffner (ed.), Konnektionismus in Artificial Intelligence Und Kognitionsforschung. Berlin: Springer-Verlag. pp. 221--225.
  30.  5
    The Advent and Fall of a Vocabulary Learning Bias from Communicative Efficiency.David Carrera-Casado & Ramon Ferrer-I.-Cancho - 2021 - Biosemiotics 14 (2):345-375.
    Biosemiosis is a process of choice-making between simultaneously alternative options. It is well-known that, when sufficiently young children encounter a new word, they tend to interpret it as pointing to a meaning that does not have a word yet in their lexicon rather than to a meaning that already has a word attached. In previous research, the strategy was shown to be optimal from an information theoretic standpoint. In that framework, interpretation is hypothesized to be driven by the minimization of (...)
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  31.  19
    Computational semantics: an introduction to artificial intelligence and natural language comprehension.Eugene Charniak & Yorick Wilks (eds.) - 1976 - New York: distributors for the U.S.A. and Canada, Elsevier/North Holland.
    Linguistics. Artificial intelligence. Related fields. Computation.
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  32.  88
    Ai: Its Nature and Future.Margaret A. Boden - 2016 - Oxford University Press UK.
    The applications of Artificial Intelligence lie all around us; in our homes, schools and offices, in our cinemas, in art galleries and - not least - on the Internet. The results of Artificial Intelligence have been invaluable to biologists, psychologists, and linguists in helping to understand the processes of memory, learning, and language from a fresh angle.As a concept, Artificial Intelligence has fuelled and sharpened the philosophical debates concerning the nature of the mind, intelligence, and the (...)
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  33. Artificial Intelligence: A Philosophical Introduction.Jack Copeland - 1993 - Wiley-Blackwell.
    Presupposing no familiarity with the technical concepts of either philosophy or computing, this clear introduction reviews the progress made in AI since the inception of the field in 1956. Copeland goes on to analyze what those working in AI must achieve before they can claim to have built a thinking machine and appraises their prospects of succeeding. There are clear introductions to connectionism and to the language of thought hypothesis which weave together material from philosophy, artificial intelligence and (...)
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  34. Artificial Intelligence: A Philosophical Introduction.B. Jack Copeland - 1993 - Cambridge: Blackwell.
    Presupposing no familiarity with the technical concepts of either philosophy or computing, this clear introduction reviews the progress made in AI since the inception of the field in 1956. Copeland goes on to analyze what those working in AI must achieve before they can claim to have built a thinking machine and appraises their prospects of succeeding.There are clear introductions to connectionism and to the language of thought hypothesis which weave together material from philosophy, artificial intelligence and neuroscience. (...)
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  35.  9
    Predicting Personality and Psychological Distress Using Natural Language Processing: A Study Protocol.Jihee Jang, Seowon Yoon, Gaeun Son, Minjung Kang, Joon Yeon Choeh & Kee-Hong Choi - 2022 - Frontiers in Psychology 13.
    BackgroundSelf-report multiple choice questionnaires have been widely utilized to quantitatively measure one’s personality and psychological constructs. Despite several strengths, self-report multiple choice questionnaires have considerable limitations in nature. With the rise of machine learning and Natural language processing, researchers in the field of psychology are widely adopting NLP to assess psychological construct to predict human behaviors. However, there is a lack of connections between the work being performed in computer science and that of psychology due to small data (...)
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  36.  11
    Intelligence system of artificial vision for unmanned aerial vehicle.Shkuropat O. A., Shelehov I. V. & Myronenko M. A. - 2020 - Artificial Intelligence Scientific Journal 25 (4):53-58.
    The article considers the method of factor cluster analysis which allows automatically retrain the onboard recognition system of an unmanned aerial system. The task of informational synthesis of an on-board system for identifying frames is solved within the information-extreme intellectual technology of data analysis, based on maxi- mizing the informational ability of the system during machine learning. Based on the functional approach to modeling cognitive processes inherent to humans during forming and making classification decisions, it was proposed a categorical model (...)
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  37.  6
    Review of Natural Language Processing in R.A. Wilson and F.C. Keil (Eds.), The MIT Encyclopedia of the Cognitive Sciences☆☆MIT Press, Cambridge, MA, 1999. CD-ROM. Price US$ 149.95. ISBN 0-262-73124-X. 1312 pages. Price US$ 149.95 (Cloth). ISBN 0-262-23200-6. [REVIEW]Bonnie Jean Dorr - 2001 - Artificial Intelligence 130 (2):185-189.
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  38.  68
    Artificial intelligence with American values and Chinese characteristics: a comparative analysis of American and Chinese governmental AI policies.Emmie Hine & Luciano Floridi - 2024 - AI and Society 39 (1):257-278.
    As China and the United States strive to be the primary global leader in AI, their visions are coming into conflict. This is frequently painted as a fundamental clash of civilisations, with evidence based primarily around each country’s current political system and present geopolitical tensions. However, such a narrow view claims to extrapolate into the future from an analysis of a momentary situation, ignoring a wealth of historical factors that influence each country’s prevailing philosophy of technology and thus their overarching (...)
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  39.  39
    Artificial Intelligence, Language, and the Study of Knowledge*,†.Ira Goldstein & Seymour Papert - 1977 - Cognitive Science 1 (1):84-123.
    This paper studies the relationship of Artificial Intelligence to the study of language and the representation of the underlying knowledge which supports the comprehension process. It develops the view that intelligence is based on the ability to use large amounts of diverse kinds of knowledge in procedural ways, rather than on the possession of a few general and uniform principles. The paper also provides a unifying thread to a variety of recent approaches to natural language comprehension. (...)
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  40.  13
    Emerging Technologies of Natural Language-Enabled Chatbots: A Review and Trend Forecast Using Intelligent Ontology Extraction and Patent Analytics.Min-Hua Chao, Amy J. C. Trappey & Chun-Ting Wu - 2021 - Complexity 2021:1-26.
    Natural language processing is a critical part of the digital transformation. NLP enables user-friendly interactions between machine and human by making computers understand human languages. Intelligent chatbot is an essential application of NLP to allow understanding of users’ utterance and responding in understandable sentences for specific applications simulating human-to-human conversations and interactions for problem solving or Q&As. This research studies emerging technologies for NLP-enabled intelligent chatbot development using a systematic patent analytic approach. Some intelligent text-mining techniques are applied, (...)
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  41.  23
    Natural Code of Subjective Experience.Ilya A. Surov - 2022 - Biosemiotics 15 (1):109-139.
    The paper introduces mathematical encoding for subjective experience and meaning in natural cognition. The code is based on a quantum-theoretic qubit structure supplementing classical bit with circular dimension, functioning as a process-causal template for representation of contexts relative to the basis decision. The qubit state space is demarcated in categories of emotional experience of animals and humans. Features of the resulting spherical map align with major theoreties in cognitive and emotion science, modeling of natural language, and semiotics, (...)
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  42.  20
    Meaning, Form and the Limits of Natural Language Processing.Jan Segessenmann, Jan Juhani Steinmann & Oliver Dürr - 2023 - Philosophy, Theology and the Sciences 10 (1):42-72.
    This article engages the anthropological assumptions underlying the apprehensions and promises associated with language in artificial intelligence (AI). First, we present the contours of two rivalling paradigms for assessing artificial language generation: a holistic-enactivist theory of language and an informational theory of language. We then introduce two language generation models – one presently in use and one more speculative: Firstly, the transformer architecture as used in current large language models, such as the (...)
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  43.  28
    Processual Thinking in the Ontological and Epistemological context of Quantum Mechanics.Vladimir I. Arshinov & Vladimir G. Budanov - 2019 - Russian Journal of Philosophical Sciences 62 (7):21-36.
    The problem of commensurability/incommensurability of different cultural codes is a key problem of modern civilizational development. This is the problem of the search for communicative unity in the world of cultural and biological diversity, which has to be protected, and the search for the cohesion of different Umwelten, of semiotically-defined artificial and natural environments, of ecological and cognitive niches, taking into account that each of them has their own identity and uniqueness. The purpose of the article is to (...)
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  44.  23
    Neuroscience, Artificial Intelligence, and Human Nature: Theological and Philosophical Reflections.Ian G. Barbour - 1999 - Zygon 34 (3):361-398.
    I develop a multilevel, holistic view of persons, emphasizing embodiment, emotions, consciousness, and the social self. In successive sections I draw from six sources: 1. Theology. The biblical understanding of the unitary, embodied, social self gave way in classical Christianity to a body‐soul dualism, but it has been recovered by many recent theologians. 2. Neuroscience. Research has shown the localization of mental functions in regions of the brain, the interaction of cognition and emotion, and the importance of social interaction in (...)
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  45.  65
    Plagiarism in the age of massive Generative Pre-trained Transformers (GPT-3).Nassim Dehouche - 2021 - Ethics in Science and Environmental Politics 21:17-23.
    As if 2020 was not a peculiar enough year, its fifth month saw the relatively quiet publication of a preprint describing the most powerful natural language processing (NLP) system to date—GPT-3 (Generative Pre-trained Transformer-3)—created by the Silicon Valley research firm OpenAI. Though the software implementation of GPT-3 is still in its initial beta release phase, and its full capabilities are still unknown as of the time of this writing, it has been shown that this artificial intelligence can (...)
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  46.  9
    Development and research of a genetic method for the analysis and determination of the location of power grid objects.Fedorchenko I., Oliinyk A., Korniienko S. & Kharchenko A. - 2020 - Artificial Intelligence Scientific Journal 25 (1):20-42.
    The problem of combinatorial optimization is considered in relation to the choice of the location of the location of power supplies when solving the problem of the development of urban distribution networks of power supply. Two methods have been developed for placing power supplies and assigning consumers to them to solve this problem. The first developed method consists in placing power supplies of the same standard sizes, and the second - of different standard sizes. The fundamental difference between the created (...)
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  47.  31
    Belief Fusion: Aggregating Pedigreed Belief States.Maynard-Reid I. I. Pedrito & Shoham Yoav - 2001 - Journal of Logic, Language and Information 10 (2):183-209.
    We introduce a new operator – belief fusion– which aggregates the beliefs of two agents, each informed by a subset of sources ranked by reliability. In the process we definepedigreed belief states, which enrich standard belief states with the source of each piece of information. We note that the fusion operator satisfies the invariants of idempotence, associativity, and commutativity. As a result, it can be iterated without difficulty. We also define belief diffusion; whereas fusion generally produces a belief state with (...)
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  48.  11
    Cognitive Science: An Introduction.Neil A. Stillings - 1995 - MIT Press.
    Cognitive Science is a single-source undergraduate text that broadly surveys the theories and empirical results of cognitive science within a consistent computational perspective. In addition to covering the individual contributions of psychology, philosophy, linguistics, and artificial intelligence to cognitive science, the book has been revised to introduce the connectionist approach as well as the classical symbolic approach and adds a new chapter on cognitively related advances in neuroscience. Cognitive science is a rapidly evolving field that is characterized by considerable (...)
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  49.  17
    Editorial note.I. A. Macdonald - 1986 - Philosophical Papers 15 (1):1-2.
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    Why language clouds our ascription of understanding, intention and consciousness.Susan A. J. Stuart - forthcoming - Phenomenology and the Cognitive Sciences:1-22.
    The grammatical manipulation and production of language is a great deceiver. We have become habituated to accept the use of well-constructed language to indicate intelligence, understanding and, consequently, intention, whether conscious or unconscious. But we are not always right to do so, and certainly not in the case of large language models (LLMs) like ChapGPT, GPT-4, LLaMA, and Google Bard. This is a perennial problem, but when one understands why it occurs, it ceases to be surprising that (...)
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