Results for ' component discrimination learning'

976 found
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  1.  36
    Pattern versus component discrimination learning with extended training.William J. Thomson & Romualdas Skvarcius - 1972 - Journal of Experimental Psychology 94 (2):233.
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  2.  21
    Acquisition and transfer in pattern-vs.-component discrimination learning.W. K. Estes & B. L. Hopkins - 1961 - Journal of Experimental Psychology 61 (4):322.
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  3.  27
    Transfer effects and response strategies in pattern-versus-component discrimination learning.Morton P. Friedman - 1966 - Journal of Experimental Psychology 71 (3):420.
  4.  16
    Discrimination learning and behavioral contrast as a function of component duration.James F. Dickson & Terry E. Zuehlke - 1973 - Bulletin of the Psychonomic Society 2 (5):268-270.
  5.  16
    Discrimination of stimuli having two critical components when one component varies more frequently than the other.Alvin J. North & Herbert B. Leedy - 1952 - Journal of Experimental Psychology 43 (6):400.
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  6. Beyond bias and discrimination: redefining the AI ethics principle of fairness in healthcare machine-learning algorithms.Benedetta Giovanola & Simona Tiribelli - 2023 - AI and Society 38 (2):549-563.
    The increasing implementation of and reliance on machine-learning (ML) algorithms to perform tasks, deliver services and make decisions in health and healthcare have made the need for fairness in ML, and more specifically in healthcare ML algorithms (HMLA), a very important and urgent task. However, while the debate on fairness in the ethics of artificial intelligence (AI) and in HMLA has grown significantly over the last decade, the very concept of fairness as an ethical value has not yet been (...)
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  7.  39
    Component and configurational learning in children.Michael D. Zeiler - 1964 - Journal of Experimental Psychology 68 (3):292.
  8.  34
    Motivation in learning: XI. An analysis of electric shock for correct responses into its avoidance and accelerating components.Karl F. Muenzinger, William O. Brown, Wayman J. Crow & Robert F. Powloski - 1952 - Journal of Experimental Psychology 43 (2):115.
  9.  51
    Prior familiarity with components enhances unconscious learning of relations.Ryan B. Scott & Zoltan Dienes - 2010 - Consciousness and Cognition 19 (1):413-418.
    The influence of prior familiarity with components on the implicit learning of relations was examined using artificial grammar learning. Prior to training on grammar strings, participants were familiarised with either the novel symbols used to construct the strings or with irrelevant geometric shapes. Participants familiarised with the relevant symbols showed greater accuracy when judging the correctness of new grammar strings. Familiarity with elemental components did not increase conscious awareness of the basis for discriminations but increased accuracy even in (...)
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  10.  54
    Hand Gesture recognition and classification by Discriminant and Principal Component Analysis using Machine Learning techniques.Sauvik Das Gupta, Souvik Kundu, Rick Pandey, Rahul Ghosh, Rajesh Bag & Abhishek Mallik - 2012 - In Zdravko Radman, The Hand. MIT Press.
  11.  53
    Social Appraisal and Social Referencing: Two Components of Affective Social Learning.Fabrice Clément & Daniel Dukes - 2017 - Emotion Review 9 (3):253-261.
    Social learning is likely to include affective processes: it is necessary for newcomers to discover what value to attach to objects, persons, and events in a given social environment. This learning relies largely on the evaluation of others’ emotional expressions. This study has two objectives. Firstly, we compare two closely related concepts that are employed to describe the use of another person’s appraisal to make sense of a given situation: social appraisal and social referencing. We contend that social (...)
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  12. Perceptual learning and the technology of expertise.Philip J. Kellman, Christine Massey, Zipora Roth, Timothy Burke, Joel Zucker, Amanda Saw, Katherine E. Aguero & Joseph A. Wise - 2008 - Pragmatics and Cognition 16 (2):356-405.
    Learning in educational settings most often emphasizes declarative and procedural knowledge. Studies of expertise, however, point to other, equally important components of learning, especially improvements produced by experience in the extraction of information: Perceptual learning. Here we describe research that combines principles of perceptual learning with computer technology to address persistent difficulties in mathematics learning. We report three experiments in which we developed and tested perceptual learning modules to address issues of structure extraction and (...)
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  13.  34
    A New Subject-Specific Discriminative and Multi-Scale Filter Bank Tangent Space Mapping Method for Recognition of Multiclass Motor Imagery.Fan Wu, Anmin Gong, Hongyun Li, Lei Zhao, Wei Zhang & Yunfa Fu - 2021 - Frontiers in Human Neuroscience 15.
    Objective: Tangent Space Mapping using the geometric structure of the covariance matrices is an effective method to recognize multiclass motor imagery. Compared with the traditional CSP method, the Riemann geometric method based on TSM takes into account the nonlinear information contained in the covariance matrix, and can extract more abundant and effective features. Moreover, the method is an unsupervised operation, which can reduce the time of feature extraction. However, EEG features induced by MI mental activities of different subjects are not (...)
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  14.  22
    Ecological heuristics for learning.Paul M. Bronstein - 2000 - Behavioral and Brain Sciences 23 (2):251-251.
    Domjan, Cusato & Villarreal's target article is reviewed in the context of historical difficulty for learning studies in discriminating between learned and unlearned components of behavior. The research surveyed in the target article meets the criterion of differentiating between some learned and the unlearned aspects of social behavior, with Pavlovian conditioning shown repeatedly as a route by which reproductive and aggressive behavior is modulated.
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  15.  21
    Diagnostic accuracy of multi-component spatial-temporal gait parameters in older adults with amnestic mild cognitive impairment.Shuyun Huang, Xiaobing Hou, Yajing Liu, Pan Shang, Jiali Luo, Zeping Lv, Weiping Zhang, Biqing Lin, Qiulan Huang, Shuai Tao, Yukai Wang, Chengguo Zhang, Lushi Chen, Suyue Pan & Haiqun Xie - 2022 - Frontiers in Human Neuroscience 16:911607.
    ObjectiveThis study aimed to develop a diagnostic model of multi-kinematic parameters for patients with amnestic mild cognitive impairment (aMCI).MethodIn this cross-sectional study, 94 older adults were included (33 cognitively normal, CN; and 61 aMCI). We conducted neuropsychological battery tests, such as global cognition and cognitive domains, and collected gait parameters by an inertial-sensor gait analysis system. Multivariable regression models were used to identify the potential diagnostic variables for aMCI. Receiver operating characteristic (ROC) curves were applied to assess the diagnostic accuracy (...)
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  16.  15
    A Recurrent Neural Network for Attenuating Non-cognitive Components of Pupil Dynamics.Sharath Koorathota, Kaveri Thakoor, Linbi Hong, Yaoli Mao, Patrick Adelman & Paul Sajda - 2021 - Frontiers in Psychology 12.
    There is increasing interest in how the pupil dynamics of the eye reflect underlying cognitive processes and brain states. Problematic, however, is that pupil changes can be due to non-cognitive factors, for example luminance changes in the environment, accommodation and movement. In this paper we consider how by modeling the response of the pupil in real-world environments we can capture the non-cognitive related changes and remove these to extract a residual signal which is a better index of cognition and performance. (...)
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  17.  12
    Identifying Alcohol Use Disorder With Resting State Functional Magnetic Resonance Imaging Data: A Comparison Among Machine Learning Classifiers.Victor M. Vergara, Flor A. Espinoza & Vince D. Calhoun - 2022 - Frontiers in Psychology 13.
    Alcohol use disorder is a burden to society creating social and health problems. Detection of AUD and its effects on the brain are difficult to assess. This problem is enhanced by the comorbid use of other substances such as nicotine that has been present in previous studies. Recent machine learning algorithms have raised the attention of researchers as a useful tool in studying and detecting AUD. This work uses AUD and controls samples free of any other substance use to (...)
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  18.  25
    An Empirical Evaluation of Supervised Learning Methods for Network Malware Identification Based on Feature Selection.C. Manzano, C. Meneses, P. Leger & H. Fukuda - 2022 - Complexity 2022:1-18.
    Malware is a sophisticated, malicious, and sometimes unidentifiable application on the network. The classifying network traffic method using machine learning shows to perform well in detecting malware. In the literature, it is reported that this good performance can depend on a reduced set of network features. This study presents an empirical evaluation of two statistical methods of reduction and selection of features in an Android network traffic dataset using six supervised algorithms: Naïve Bayes, support vector machine, multilayer perceptron neural (...)
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  19.  17
    Predicting discrimination learning from differential conditioning with amount of reinforcement as a variable.R. A. Champion & L. R. Smith - 1966 - Journal of Experimental Psychology 71 (4):529.
  20.  43
    Discrimination learning under various combinations of food and shock for "correct" and "incorrect" responses.George J. Wischner, Richard C. Hall & Harry Fowler - 1964 - Journal of Experimental Psychology 67 (1):48.
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  21.  14
    Feature Extraction of Broken Glass Cracks in Road Traffic Accident Site Based on Deep Learning.Shuai Liang - 2021 - Complexity 2021:1-12.
    This paper studies the feature extraction and middle-level expression of Convolutional Neural Network convolutional layer glass broken and cracked at the scene of road traffic accident. The image pyramid is constructed and used as the input of the CNN model, and the convolutional layer road traffic accident scene glass breakage and crack characteristics at each scale in the pyramid are extracted separately, and then the depth descriptors at different image scales are extracted. In order to improve the discriminative power of (...)
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  22.  35
    Probabilistic discrimination learning.W. K. Estes, C. J. Burke, R. C. Atkinson & J. P. Frankmann - 1957 - Journal of Experimental Psychology 54 (4):233.
  23.  29
    Verbal discrimination learning of items read in textual material.Eugene B. Zechmeister, Jack McKillip & Stan Pasko - 1973 - Journal of Experimental Psychology 101 (2):393.
  24.  27
    Discrimination learning as a function of reversal and nonreversal shifts.Roger T. Kelleher - 1956 - Journal of Experimental Psychology 51 (6):379.
  25.  27
    Conditional discrimination learning by pigeons: The role of training paradigms.David R. Thomas & Horace Goldberg - 1985 - Bulletin of the Psychonomic Society 23 (3):256-258.
  26.  49
    Identity From Variation: Representations of Faces Derived From Multiple Instances.A. Mike Burton, Robin S. S. Kramer, Kay L. Ritchie & Rob Jenkins - 2016 - Cognitive Science 40 (1):202-223.
    Research in face recognition has tended to focus on discriminating between individuals, or “telling people apart.” It has recently become clear that it is also necessary to understand how images of the same person can vary, or “telling people together.” Learning a new face, and tracking its representation as it changes from unfamiliar to familiar, involves an abstraction of the variability in different images of that person's face. Here, we present an application of principal components analysis computed across different (...)
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  27.  30
    Discrimination learning with an avoidance procedure.Seward A. Moot, Leonard P. Overby & Robert C. Bolles - 1974 - Bulletin of the Psychonomic Society 3 (2):129-130.
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  28.  22
    Verbal discrimination learning and retention as a function of performance or observation and ease of conceptualization of task materials.Melvin H. Marx, Kathleen Marx & Andrew L. Homer - 1980 - Bulletin of the Psychonomic Society 16 (2):135-136.
  29.  18
    Verbal discrimination learning theory and differential eyelid conditioning to related words at three interstimulus intervals.Louise C. Perry - 1976 - Bulletin of the Psychonomic Society 7 (3):299-302.
  30.  31
    Supplementary report: Discrimination learning in rats as a function of highly distributed trials.Dempsey F. Pennington & Robert Thompson - 1958 - Journal of Experimental Psychology 56 (1):94.
  31.  20
    Discrimination learning in the T-maze based on the secondary reinforcing effects of shock termination.W. P. Bellingham, L. H. Storlien & R. J. Stebulis - 1975 - Bulletin of the Psychonomic Society 5 (4):327-328.
  32.  26
    Probabilistic discrimination learning in the pigeon.Charles P. Shimp - 1973 - Journal of Experimental Psychology 97 (3):292.
  33.  25
    Discrimination learning as a function of prior discrimination and nondifferential training.Kenneth O. Eck, Richard C. Noel & David R. Thomas - 1969 - Journal of Experimental Psychology 82 (1p1):156.
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  34.  28
    Verbal discrimination learning as a function of percentage occurrence of reinforcing information (% ORI) and varying presentation rates.William R. Gamboni, Gregory R. Gaustad & Buford E. Wilson - 1972 - Journal of Experimental Psychology 93 (2):256.
  35.  29
    Additivity of cues in discrimination learning of letter patterns.Thomas R. Trabasso - 1960 - Journal of Experimental Psychology 60 (2):83.
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  36.  18
    Discrimination learning as a function of pretraining reinforcement schedules.Harold W. Stevenson & Leo A. Pirojnikoff - 1958 - Journal of Experimental Psychology 56 (1):41.
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  37.  28
    Discrimination learning and transposition in children as a function of the nature of the reward.Glenn Terrell Jr & Wallace A. Kennedy - 1957 - Journal of Experimental Psychology 53 (4):257.
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  38.  18
    Discrimination learning as a function of varying pairs of sucrose rewards.Roger W. Black - 1965 - Journal of Experimental Psychology 70 (5):452.
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  39.  28
    Pronunciation effects in verbal discrimination learning.Larry Wilder, Joel R. Levin, Michael Kuskowski & Elizabeth S. Ghatala - 1974 - Journal of Experimental Psychology 103 (2):366.
  40.  25
    Selective sampling in discrimination learning.David L. La Berge & Adrienne Smith - 1957 - Journal of Experimental Psychology 54 (6):423.
  41.  40
    Discrimination learning in a verbal conditioning situation.Juliet Popper & Richard C. Atkinson - 1958 - Journal of Experimental Psychology 56 (1):21.
  42.  30
    Discrimination learning as a function of prior discrimination and nondifferential training: A replication.Kenneth O. Eck & David R. Thomas - 1970 - Journal of Experimental Psychology 83 (3p1):511.
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  43.  34
    Verbal discrimination learning: A distinction between frequency and "frequency-rule" effects.Hadassah Paul - 1972 - Journal of Experimental Psychology 94 (3):343.
  44.  41
    Human discrimination learning with simultaneous and successive presentation of stimuli.Henry B. Loess & Carl P. Duncan - 1952 - Journal of Experimental Psychology 44 (3):215.
  45.  25
    Primary stimulus generalization in discrimination learning as a function of number of trials and incidental cue differences.Leopold O. Walder - 1961 - Journal of Experimental Psychology 61 (2):178.
  46.  29
    Prediction of auditory discrimination learning and transposition from children's auditory ordering ability.Donald A. Riley, John P. McKee & Raymond W. Hadley - 1964 - Journal of Experimental Psychology 67 (4):324.
  47.  58
    Verbal discrimination learning as a function of associative strength between noun pair members.S. Viterbo McCarthy - 1973 - Journal of Experimental Psychology 97 (2):270.
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  48.  29
    Verbal discrimination learning for bilingual lists.Robert M. Yadrick & Donald H. Kausler - 1974 - Journal of Experimental Psychology 102 (5):899.
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  49.  50
    Analysis of discrimination learning by monkeys.Harry F. Harlow - 1950 - Journal of Experimental Psychology 40 (1):26.
  50.  26
    Verbal discrimination learning and two-category classification learning as a function of list length and pronunciation instructions.John J. Shaughnessy - 1973 - Journal of Experimental Psychology 100 (1):202.
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