Results for 'recognition accuracy'

970 found
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  1.  1
    Emotion-specific recognition biases and how they relate to emotion-specific recognition accuracy, family and child demographic factors, and social behaviour.Anushay Mazhar & Craig S. Bailey - forthcoming - Cognition and Emotion.
    The errors young children make when recognising others’ emotions may be systematic over-identification biases and may partially explain the challenges some have socially. These biases and associations may be differential by emotion. In a sample of 871 ethnically and racially diverse preschool-aged children (i.e. 33–68 months; 49% Hispanic/Latine, 52% Children of Colour), emotion recognition was assessed, and scores for accuracy and bias were calculated by emotion (i.e. anger, sad, happy, calm, and fear). Child and family characteristics and teacher-reported (...)
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  2.  29
    Relationship between recognition accuracy and order of reporting stimulus dimensions.Douglas H. Lawrence & David L. Laberge - 1956 - Journal of Experimental Psychology 51 (1):12.
  3.  26
    Single-letter recognition accuracy benefits and position information.A. H. C. Van Der Heijden, G. Wolters, E. Fleur & J. G. M. Hommels - 1992 - Bulletin of the Psychonomic Society 30 (2):101-104.
  4.  16
    Organization and recognition accuracy: The effect of context on blocked presentation.Robert M. Schwartz - 1975 - Bulletin of the Psychonomic Society 5 (4):329-330.
  5.  40
    Accuracy and quantity are poor measures of recall and recognition.Andrew R. Mayes, Rob van Eijk & Patricia L. Gooding - 1996 - Behavioral and Brain Sciences 19 (2):201-202.
    The value of accuracy and quantity as memory measures is assessed. It is argued that (1) accuracy does not measure correspondence (monitoring) because it ignores omissions and correct rejections, (2) quantity is confounded with monitoring in recall, and (3) in recognition, if targets and foils are unequal, both measures, even together, still ignore correct rejections.
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  6.  26
    Auditory-Induced Negative Emotions Increase Recognition Accuracy for Visual Scenes Under Conditions of High Visual Interference.Oliver Baumann - 2018 - Frontiers in Psychology 9.
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  7.  32
    Accuracy of recognition with alternatives before and after the stimulus.Douglas H. Lawrence & George R. Coles - 1954 - Journal of Experimental Psychology 47 (3):208.
  8.  22
    Accuracy of recognition memory for common sounds.David M. Lawrence & William P. Banks - 1973 - Bulletin of the Psychonomic Society 1 (5):298-300.
  9.  25
    Accuracy of recognition of subliminal auditory stimuli.Jane W. Coyne, H. E. King, J. Zubin & C. Landis - 1943 - Journal of Experimental Psychology 33 (6):508.
  10.  14
    Automatic recognition, elimination strategy and familiarity feeling: Cognitive processes predict accuracy from lineup identifications.Tania Wittwer, Colin G. Tredoux, Jacques Py, Alicia Nortje, Kate Kempen & Celine Launay - 2022 - Consciousness and Cognition 98 (C):103266.
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  11.  45
    Effect of picture-word transfer on accuracy and latency of recognition memory.Louise M. Arthur & Terry C. Daniel - 1974 - Journal of Experimental Psychology 103 (2):211.
  12.  25
    A decision model for accuracy and response latency in recognition memory.William E. Hockley & Bennet B. Murdock - 1987 - Psychological Review 94 (3):341-358.
  13.  27
    The effect of verbalization during observation of stimulus objects upon accuracy of recognition and recall.Kenneth H. Kurtz & Carl I. Hovland - 1953 - Journal of Experimental Psychology 45 (3):157.
  14.  14
    Recognition of English speech – using a deep learning algorithm.Shuyan Wang - 2023 - Journal of Intelligent Systems 32 (1).
    The accurate recognition of speech is beneficial to the fields of machine translation and intelligent human–computer interaction. After briefly introducing speech recognition algorithms, this study proposed to recognize speech with a recurrent neural network (RNN) and adopted the connectionist temporal classification (CTC) algorithm to align input speech sequences and output text sequences forcibly. Simulation experiments compared the RNN-CTC algorithm with the Gaussian mixture model–hidden Markov model and convolutional neural network-CTC algorithms. The results demonstrated that the more training samples (...)
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  15.  46
    Accurate Recognition and Simulation of 3D Visual Image of Aerobics Movement.Wenhua Fan & Hyun Joo Min - 2020 - Complexity 2020:1-11.
    The structure of the deep artificial neural network is similar to the structure of the biological neural network, which can be well applied to the 3D visual image recognition of aerobics movements. A lot of results have been achieved by applying deep neural networks to the 3D visual image recognition of aerobics movements, but there are still many problems to be overcome. After analyzing the expression characteristics of the convolutional neural network model for the three-dimensional visual image characteristics (...)
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  16.  25
    Vocal emotion recognition in attention-deficit hyperactivity disorder: a meta-analysis.Rohanna C. Sells, Simon P. Liversedge & Georgia Chronaki - forthcoming - Cognition and Emotion.
    There is debate within the literature as to whether emotion dysregulation (ED) in Attention-Deficit Hyperactivity Disorder (ADHD) reflects deviant attentional mechanisms or atypical perceptual emotion processing. Previous reviews have reliably examined the nature of facial, but not vocal, emotion recognition accuracy in ADHD. The present meta-analysis quantified vocal emotion recognition (VER) accuracy scores in ADHD and controls using robust variance estimation, gathered from 21 published and unpublished papers. Additional moderator analyses were carried out to determine whether (...)
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  17.  28
    Effects of interpolated tasks on latency and accuracy of intramodal and cross-modal shape recognition by children.Susanna Miller - 1972 - Journal of Experimental Psychology 96 (1):170.
  18.  10
    The Recognition of Action Idea EEG with Deep Learning.Guoxia Zou - 2022 - Complexity 2022:1-13.
    The recognition in electroencephalogram of action idea is to identify what action people want to do by EEG. The significance of this project is to help people who have trouble in movement. Their action ideas are identified by EEG, and then robot hands can assist them to complete the action. This paper, with comparative experiments, used OpenBCI to collect EEG action ideas during static action and dynamic action and used the EEG recognition model Conv1D-GRU to training and (...) action, respectively. The experimental result shows that the brain wave action idea is easier to recognize in static state. The accuracy of brain wave action idea recognition in dynamic state is only 72.27%, and the accuracy of brain wave action idea recognition in static state is 99.98%. The experimental result confirms that the action idea will be of great help to people with mobility difficulties. (shrink)
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  19.  16
    Facial Emotion Recognition and Emotional Memory From the Ovarian-Hormone Perspective: A Systematic Review.Dali Gamsakhurdashvili, Martin I. Antov & Ursula Stockhorst - 2021 - Frontiers in Psychology 12.
    BackgroundWe review original papers on ovarian-hormone status in two areas of emotional processing: facial emotion recognition and emotional memory. Ovarian-hormone status is operationalized by the levels of the steroid sex hormones 17β-estradiol and progesterone, fluctuating over the natural menstrual cycle and suppressed under oral contraceptive use. We extend previous reviews addressing single areas of emotional processing. Moreover, we systematically examine the role of stimulus features such as emotion type or stimulus valence and aim at elucidating factors that reconcile the (...)
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  20.  13
    Sentence Context Differentially Modulates Contributions of Fundamental Frequency Contours to Word Recognition in Chinese-Speaking Children With and Without Dyslexia.Linjun Zhang, Yu Li, Hong Zhou, Yang Zhang & Hua Shu - 2020 - Frontiers in Psychology 11:598658.
    Previous work has shown that children with dyslexia are impaired in speech recognition in adverse listening conditions. Our study further examined how semantic context and fundamental frequency (F0) contours contribute to word recognition against interfering speech in dyslexic and non-dyslexic children. Thirty-two children with dyslexia and 35 chronological-age-matched control children were tested on the recognition of words in normal sentences versus wordlist sentences with natural versus flatF0contours against single-talker interference. The dyslexic children had overall poorer recognition (...)
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  21.  30
    Comparing theories of consciousness: Object position, not probe modality, reliably influences experience and accuracy in object recognition tasks.Simon Hviid Del Pin, Zuzanna Skóra, Kristian Sandberg, Morten Overgaard & Michał Wierzchoń - 2020 - Consciousness and Cognition 84:102990.
  22.  3
    Emotion specificity, coherence, and cultural variation in conceptualizations of positive emotions: a study of body sensations and emotion recognition.Zaiyao Zhang, Felicia K. Zerwas & Dacher Keltner - forthcoming - Cognition and Emotion.
    The present study examines the association between people’s interoceptive representation of physical sensations and the recognition of vocal and facial expressions of emotion. We used body maps to study the granularity of the interoceptive conceptualisation of 11 positive emotions (amusement, awe, compassion, contentment, desire, love, joy, interest, pride, relief, and triumph) and a new emotion recognition test (Emotion Expression Understanding Test) to assess the ability to recognise emotions from vocal and facial behaviour. Overall, we found evidence for distinct (...)
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  23.  16
    Gesture Recognition by Ensemble Extreme Learning Machine Based on Surface Electromyography Signals.Fulai Peng, Cai Chen, Danyang Lv, Ningling Zhang, Xingwei Wang, Xikun Zhang & Zhiyong Wang - 2022 - Frontiers in Human Neuroscience 16:911204.
    In the recent years, gesture recognition based on the surface electromyography (sEMG) signals has been extensively studied. However, the accuracy and stability of gesture recognition through traditional machine learning algorithms are still insufficient to some actual application scenarios. To enhance this situation, this paper proposed a method combining feature selection and ensemble extreme learning machine (EELM) to improve the recognition performance based on sEMG signals. First, the input sEMG signals are preprocessed and 16 features are then (...)
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  24.  29
    Gender Differences in the Recognition of Vocal Emotions.Adi Lausen & Annekathrin Schacht - 2018 - Frontiers in Psychology 9:359771.
    The conflicting findings from the few studies conducted with regard to gender differences in the recognition of vocal expressions of emotion have left the exact nature of these differences unclear. Several investigators have argued that a comprehensive understanding of gender differences in vocal emotion recognition can only be achieved by replicating these studies while accounting for influential factors such as stimulus type, gender-balanced samples, number of encoders, decoders, and emotional categories. This study aimed to account for these factors (...)
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  25.  15
    Deep ChaosNet for Action Recognition in Videos.Huafeng Chen, Maosheng Zhang, Zhengming Gao & Yunhong Zhao - 2021 - Complexity 2021:1-5.
    Current methods of chaos-based action recognition in videos are limited to the artificial feature causing the low recognition accuracy. In this paper, we improve ChaosNet to the deep neural network and apply it to action recognition. First, we extend ChaosNet to deep ChaosNet for extracting action features. Then, we send the features to the low-level LSTM encoder and high-level LSTM encoder for obtaining low-level coding output and high-level coding results, respectively. The agent is a behavior recognizer (...)
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  26.  19
    One Size Does Not Fit All: Examining the Effects of Working Memory Capacity on Spoken Word Recognition in Older Adults Using Eye Tracking.Gal Nitsan, Karen Banai & Boaz M. Ben-David - 2022 - Frontiers in Psychology 13.
    Difficulties understanding speech form one of the most prevalent complaints among older adults. Successful speech perception depends on top-down linguistic and cognitive processes that interact with the bottom-up sensory processing of the incoming acoustic information. The relative roles of these processes in age-related difficulties in speech perception, especially when listening conditions are not ideal, are still unclear. In the current study, we asked whether older adults with a larger working memory capacity process speech more efficiently than peers with lower capacity (...)
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  27.  88
    Spanish Emotion Recognition Method Based on Cross-Cultural Perspective.Lin Liang & Shasha Wang - 2022 - Frontiers in Psychology 13.
    Linguistic communication is an important part of the cross-cultural perspective, and linguistic textual emotion recognition is a key massage in interpersonal communication. Spanish is the second largest language system in the world. The purpose of this paper is to identify the emotional features in Spanish texts. The improved BiLSTM framework is proposed. We select three widely used Spanish dictionaries as the datasets for our experiments, and then we finally obtain text sentiment classification results through text preprocessing, text emotion feature (...)
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  28.  16
    LASSO-Based Pattern Recognition for Replenished Items With Graded Responses in Multidimensional Computerized Adaptive Testing.Jianan Sun, Ziwen Ye, Lu Ren & Jingwen Li - 2022 - Frontiers in Psychology 13.
    As a branch of statistical latent variable modeling, multidimensional item response theory plays an important role in psychometrics. Multidimensional graded response model is a key model for the development of multidimensional computerized adaptive testing with graded-response data and multiple traits. This paper explores how to automatically identify the item-trait patterns of replenished items based on the MGRM in MCAT. The problem is solved by developing an exploratory pattern recognition method for graded-response items based on the least absolute shrinkage and (...)
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  29.  23
    Image Recognition Technology in Texture Identification of Marine Sediment Sonar Image.Chao Sun, Li Wang, Nan Wang & Shaohua Jin - 2021 - Complexity 2021:1-8.
    Through the recognition of ocean sediment sonar images, the texture in the image can be classified, which provides an important basis for the classification of ocean sediment. Aiming at the problems of low efficiency, waste of human resources, and low accuracy in the traditional manual side-scan sonar image discrimination, this paper studies the application of image recognition technology in sonar image substrate texture discrimination, which is popular in many fields. At the same time, considering the scale complexity, (...)
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  30.  16
    A separable convolutional neural network-based fast recognition method for AR-P300.Chunzhao He, Yulin Du & Xincan Zhao - 2022 - Frontiers in Human Neuroscience 16:986928.
    Augmented reality-based brain–computer interface (AR–BCI) has a low signal-to-noise ratio (SNR) and high real-time requirements. Classical machine learning algorithms that improve the recognition accuracy through multiple averaging significantly affect the information transfer rate (ITR) of the AR–SSVEP system. In this study, a fast recognition method based on a separable convolutional neural network (SepCNN) was developed for an AR-based P300 component (AR–P300). SepCNN achieved single extraction of AR–P300 features and improved the recognition speed. A nine-target AR–P300 single-stimulus (...)
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  31.  20
    Posture Recognition and Behavior Tracking in Swimming Motion Images under Computer Machine Vision.Zheng Zhang, Cong Huang, Fei Zhong, Bote Qi & Binghong Gao - 2021 - Complexity 2021:1-9.
    This study is to explore the gesture recognition and behavior tracking in swimming motion images under computer machine vision and to expand the application of moving target detection and tracking algorithms based on computer machine vision in this field. The objectives are realized by moving target detection and tracking, Gaussian mixture model, optimized correlation filtering algorithm, and Camshift tracking algorithm. Firstly, the Gaussian algorithm is introduced into target tracking and detection to reduce the filtering loss and make the acquired (...)
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  32.  13
    Enterprise Strategic Management From the Perspective of Business Ecosystem Construction Based on Multimodal Emotion Recognition.Wei Bi, Yongzhen Xie, Zheng Dong & Hongshen Li - 2022 - Frontiers in Psychology 13.
    Emotion recognition is an important part of building an intelligent human-computer interaction system and plays an important role in human-computer interaction. Often, people express their feelings through a variety of symbols, such as words and facial expressions. A business ecosystem is an economic community based on interacting organizations and individuals. Over time, they develop their capabilities and roles together and tend to develop themselves in the direction of one or more central enterprises. This paper aims to study a multimodal (...)
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  33.  10
    Recognition of Consumer Preference by Analysis and Classification EEG Signals.Mashael Aldayel, Mourad Ykhlef & Abeer Al-Nafjan - 2021 - Frontiers in Human Neuroscience 14.
    Neuromarketing has gained attention to bridge the gap between conventional marketing studies and electroencephalography -based brain-computer interface research. It determines what customers actually want through preference prediction. The performance of EEG-based preference detection systems depends on a suitable selection of feature extraction techniques and machine learning algorithms. In this study, We examined preference detection of neuromarketing dataset using different feature combinations of EEG indices and different algorithms for feature extraction and classification. For EEG feature extraction, we employed discrete wavelet transform (...)
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  34.  12
    Early blindness modulates haptic object recognition.Fabrizio Leo, Monica Gori & Alessandra Sciutti - 2022 - Frontiers in Human Neuroscience 16:941593.
    Haptic object recognition is usually an efficient process although slower and less accurate than its visual counterpart. The early loss of vision imposes a greater reliance on haptic perception for recognition compared to the sighted. Therefore, we may expect that congenitally blind persons could recognize objects through touch more quickly and accurately than late blind or sighted people. However, the literature provided mixed results. Furthermore, most of the studies on haptic object recognition focused on performance, devoting little (...)
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  35. How landmark suitability shapes recognition memory signals for objects in the medial temporal lobes.S. Kohler C. Martin, J. Wright & Jacqueline Anne Sullivan - 2018 - NeuroImage 166:425-436.
    A role of perirhinal cortex (PrC) in recognition memory for objects has been well established. Contributions of parahippocampal cortex (PhC) to this function, while documented, remain less well understood. Here, we used fMRI to examine whether the organization of item-based recognition memory signals across these two structures is shaped by object category, independent of any difference in representing episodic context. Guided by research suggesting that PhC plays a critical role in processing landmarks, we focused on three categories of (...)
     
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  36. Capture of 3D Human Motion Pose in Virtual Reality Based on Video Recognition.Qiang Fu, Xingui Zhang, Jinxiu Xu & Haimin Zhang - 2020 - Complexity 2020:1-17.
    Motion pose capture technology can effectively solve the problem of difficulty in defining character motion in the process of 3D animation production and greatly reduce the workload of character motion control, thereby improving the efficiency of animation development and the fidelity of character motion. Motion gesture capture technology is widely used in virtual reality systems, virtual training grounds, and real-time tracking of the motion trajectories of general objects. This paper proposes an attitude estimation algorithm adapted to be embedded. The previous (...)
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  37.  14
    Trainability of novel person recognition based on brief exposure to form and motion cues.Kylie Ann Steel, Rachel A. Robbins & Patti Nijhuis - 2022 - Frontiers in Psychology 13.
    Fast and accurate recognition of teammates is crucial in contexts as varied as fast-moving sports, the military, and law enforcement engagements; misrecognition can result in lost scoring opportunities in sport or friendly fire in combat contexts. Initial studies on teammate recognition in sport suggests that athletes are adept at this perceptual ability but still susceptible to errors. The purpose of the current proof-of-concept study was to explore the trainability of teammate recognition from very brief exposure to vision (...)
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  38.  20
    Face recognition algorithm based on stack denoising and self-encoding LBP.Mohd Dilshad Ansari, Mudassir Khan & Yanjing Lu - 2022 - Journal of Intelligent Systems 31 (1):501-510.
    To optimize the weak robustness of traditional face recognition algorithms, the classification accuracy rate is not high, the operation speed is slower, so a face recognition algorithm based on local binary pattern and stacked autoencoder is proposed. The advantage of LBP texture structure feature of the face image as the initial feature of sparse autoencoder learning, use the unified mode LBP operator to extract the histogram of the blocked face image, connect to form the LBP features of (...)
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  39.  13
    Classification and Recognition of Fish Farming by Extraction New Features to Control the Economic Aquatic Product.Yizhuo Zhang, Fengwei Zhang, Jinxiang Cheng & Huan Zhao - 2021 - Complexity 2021:1-9.
    With the rapid emergence of the technology of deep learning, it was successfully used in different fields such as the aquatic product. New opportunities in addition to challenges can be created according to this change for helping data processing in the smart fish farm. This study focuses on deep learning applications and how to support different activities in aquatic like identification of the fish, species classification, feeding decision, behavior analysis, estimation size, and prediction of water quality. Power and performance of (...)
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  40.  15
    Clinical Recognition of Sensory Ataxia and Cerebellar Ataxia.Qing Zhang, Xihui Zhou, Yajun Li, Xiaodong Yang & Qammer H. Abbasi - 2021 - Frontiers in Human Neuroscience 15.
    Ataxia is a kind of external characteristics when the human body has poor coordination and balance disorder, it often indicates diseases in certain parts of the body. Many internal factors may causing ataxia; currently, observed external characteristics, combined with Doctor’s personal clinical experience play main roles in diagnosing ataxia. In this situation, different kinds of diseases may be confused, leading to the delay in treatment and recovery. Modern high precision medical instruments would provide better accuracy but the economic cost (...)
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  41.  22
    Automatic Facial Expression Recognition in Standardized and Non-standardized Emotional Expressions.Theresa Küntzler, T. Tim A. Höfling & Georg W. Alpers - 2021 - Frontiers in Psychology 12:627561.
    Emotional facial expressions can inform researchers about an individual's emotional state. Recent technological advances open up new avenues to automatic Facial Expression Recognition (FER). Based on machine learning, such technology can tremendously increase the amount of processed data. FER is now easily accessible and has been validated for the classification of standardized prototypical facial expressions. However, applicability to more naturalistic facial expressions still remains uncertain. Hence, we test and compare performance of three different FER systems (Azure Face API, Microsoft; (...)
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  42.  12
    Human Posture Recognition and Estimation Method Based on 3D Multiview Basketball Sports Dataset.Xuhui Song & Linyuan Fan - 2021 - Complexity 2021:1-10.
    In traditional 3D reconstruction methods, using a single view to predict the 3D structure of an object is a very difficult task. This research mainly discusses human pose recognition and estimation based on 3D multiview basketball sports dataset. The convolutional neural network framework used in this research is VGG11, and the basketball dataset Image Net is used for pretraining. This research uses some modules of the VGG11 network. For different feature fusion methods, different modules of the VGG11 network are (...)
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  43.  78
    Vehicle Type Recognition Algorithm Based on Improved Network in Network.Erxi Zhu, Min Xu & De Chang Pi - 2021 - Complexity 2021:1-10.
    Vehicle type recognition algorithms are broadly used in intelligent transportation, but the accuracy of the algorithms cannot meet the requirements of production application. For the high efficiency of the multilayer perceptive layer of Network in Network, the nonlinear features of local receptive field images can be extracted. Global average pooling can avoid the network from overfitting, and small convolution kernel can decrease the dimensionality of the feature map, as well as downregulate the number of model training parameters. On (...)
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  44.  13
    Deep Learning Image Feature Recognition Algorithm for Judgment on the Rationality of Landscape Planning and Design.Bin Hu - 2021 - Complexity 2021:1-15.
    This paper uses an improved deep learning algorithm to judge the rationality of the design of landscape image feature recognition. The preprocessing of the image is proposed to enhance the data. The deficiencies in landscape feature extraction are further addressed based on the new model. Then, the two-stage training method of the model is used to solve the problems of long training time and convergence difficulties in deep learning. Innovative methods for zoning and segmentation training of landscape pattern features (...)
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  45.  15
    Ukrainian dactyl alphabet gesture recognition using convolutional neural networks with 3d convolutions.Kondratiuk S. S. - 2019 - Artificial Intelligence Scientific Journal 24 (1-2):94-100.
    The technology, which is implemented with cross platform tools, is proposed for modeling of gesture units of sign language, animation between states of gesture units with a combination of gestures. Implemented technology simulates sequence of gestures using virtual spatial hand model and performs recognition of dactyl items from camera input using trained on collected training dataset set convolutional neural network, based on the MobileNetv3 architecture, and with the optimal configuration of layers and network parameters. On the collected test dataset (...)
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  46.  43
    When facial recognition does not ‘recognise’: erroneous identifications and resulting liabilities.Vera Lúcia Raposo - forthcoming - AI and Society:1-13.
    Facial recognition is an artificial intelligence-based technology that, like many other forms of artificial intelligence, suffers from an accuracy deficit. This paper focuses on one particular use of facial recognition, namely identification, both as authentication and as recognition. Despite technological advances, facial recognition technology can still produce erroneous identifications. This paper addresses algorithmic identification failures from an upstream perspective by identifying the main causes of misidentifications (in particular, the probabilistic character of this technology, its ‘black (...)
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  47.  19
    Letter-Like Shape Recognition in Preschool Children: Does Graphomotor Knowledge Contribute?Lola Seyll & Alain Content - 2022 - Frontiers in Psychology 12.
    Based on evidence that learning new characters through handwriting leads to better recognition than learning through typing, some authors proposed that the graphic motor plans acquired through handwriting contribute to recognition. More recently two alternative explanations have been put forward. First, the advantage of handwriting could be due to the perceptual variability that it provides during learning. Second, a recent study suggests that detailed visual analysis might be the source of the advantage of handwriting over typing. Indeed, in (...)
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  48.  23
    Feature Guided CNN for Baby’s Facial Expression Recognition.Qing Lin, Ruili He & Peihe Jiang - 2020 - Complexity 2020:1-10.
    State-of-the-art facial expression methods outperform human beings, especially, thanks to the success of convolutional neural networks. However, most of the existing works focus mainly on analyzing an adult’s face and ignore the important problems: how can we recognize facial expression from a baby’s face image and how difficult is it? In this paper, we first introduce a new face image database, named BabyExp, which contains 12,000 images from babies younger than two years old, and each image is with one of (...)
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  49.  58
    Cues for self-recognition in point-light displays of actions performed in synchrony with music.Vassilis Sevdalis & Peter E. Keller - 2010 - Consciousness and Cognition 19 (2):617-626.
    Self–other discrimination was investigated with point-light displays in which actions were presented with or without additional auditory information. Participants first executed different actions in time with music. In two subsequent experiments, they watched point-light displays of their own or another participant’s recorded actions, and were asked to identify the agent . Manipulations were applied to the visual information and to the auditory information . Results indicate that self-recognition was better than chance in all conditions and was highest when observing (...)
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  50.  13
    Dance Movement Recognition Based on Feature Expression and Attribute Mining.Xianfeng Zhai - 2021 - Complexity 2021:1-12.
    There are complex posture changes in dance movements, which lead to the low accuracy of dance movement recognition. And none of the current motion recognition uses the dancer’s attributes. The attribute feature of dancer is the important high-level semantic information in the action recognition. Therefore, a dance movement recognition algorithm based on feature expression and attribute mining is designed to learn the complicated and changeable dancer movements. Firstly, the original image information is compressed by the (...)
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