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1.
Nat Mach Intell ; 5(1): 58-70, 2023 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-37886259

RESUMO

Tracking an odour plume to locate its source under variable wind and plume statistics is a complex task. Flying insects routinely accomplish such tracking, often over long distances, in pursuit of food or mates. Several aspects of this remarkable behaviour and its underlying neural circuitry have been studied experimentally. Here we take a complementary in silico approach to develop an integrated understanding of their behaviour and neural computations. Specifically, we train artificial recurrent neural network agents using deep reinforcement learning to locate the source of simulated odour plumes that mimic features of plumes in a turbulent flow. Interestingly, the agents' emergent behaviours resemble those of flying insects, and the recurrent neural networks learn to compute task-relevant variables with distinct dynamic structures in population activity. Our analyses put forward a testable behavioural hypothesis for tracking plumes in changing wind direction, and we provide key intuitions for memory requirements and neural dynamics in odour plume tracking.

2.
J Pharm Bioallied Sci ; 15(Suppl 2): S1201-S1203, 2023 Jul.
Artigo em Inglês | MEDLINE | ID: mdl-37693978

RESUMO

Objectives: Current research was done to evaluate the effectiveness of 38% silver diamine fluoride (SDF) on carious lesions in deciduous teeth. Materials and Method: The study included kids who had at least one carious lesion in accordance to the International Caries Detection and Assessment System II. A 38% SDF (FAgamin, Tedequim Company, Córdoba, Argentina) solution was applied directly to the lesion on the deciduous teeth as per the manufacturer's instructions. A follow-up evaluation was performed after one, three, and six months. Clinical results were used to assess the efficacy of SDF. The obtained data were statistically evaluated. Result: When it came to halting dental caries in primary teeth, 38% SDF was 92% effective. Conclusion: In conclusion, 38% SDF can be used to effectively stop caries in primary teeth.

3.
Sci Data ; 9(1): 184, 2022 04 21.
Artigo em Inglês | MEDLINE | ID: mdl-35449141

RESUMO

Understanding the neural basis of human movement in naturalistic scenarios is critical for expanding neuroscience research beyond constrained laboratory paradigms. Here, we describe our Annotated Joints in Long-term Electrocorticography for 12 human participants (AJILE12) dataset, the largest human neurobehavioral dataset that is publicly available; the dataset was recorded opportunistically during passive clinical epilepsy monitoring. AJILE12 includes synchronized intracranial neural recordings and upper body pose trajectories across 55 semi-continuous days of naturalistic movements, along with relevant metadata, including thousands of wrist movement events and annotated behavioral states. Neural recordings are available at 500 Hz from at least 64 electrodes per participant, for a total of 1280 hours. Pose trajectories at 9 upper-body keypoints were estimated from 118 million video frames. To facilitate data exploration and reuse, we have shared AJILE12 on The DANDI Archive in the Neurodata Without Borders (NWB) data standard and developed a browser-based dashboard.


Assuntos
Eletrocorticografia , Movimento , Humanos , Software
4.
eNeuro ; 8(3)2021.
Artigo em Inglês | MEDLINE | ID: mdl-34031100

RESUMO

Motor behaviors are central to many functions and dysfunctions of the brain, and understanding their neural basis has consequently been a major focus in neuroscience. However, most studies of motor behaviors have been restricted to artificial, repetitive paradigms, far removed from natural movements performed "in the wild." Here, we leveraged recent advances in machine learning and computer vision to analyze intracranial recordings from 12 human subjects during thousands of spontaneous, unstructured arm reach movements, observed over several days for each subject. These naturalistic movements elicited cortical spectral power patterns consistent with findings from controlled paradigms, but with considerable neural variability across subjects and events. We modeled interevent variability using 10 behavioral and environmental features; the most important features explaining this variability were reach angle and day of recording. Our work is among the first studies connecting behavioral and neural variability across cortex in humans during unstructured movements and contributes to our understanding of long-term naturalistic behavior.


Assuntos
Braço , Eletrocorticografia , Encéfalo , Humanos , Movimento
5.
J Neurosci Methods ; 358: 109199, 2021 07 01.
Artigo em Inglês | MEDLINE | ID: mdl-33910024

RESUMO

BACKGROUND: Recent technological advances in brain recording and machine learning algorithms are enabling the study of neural activity underlying spontaneous human behaviors, beyond the confines of cued, repeated trials. However, analyzing such unstructured data lacking a priori experimental design remains a significant challenge, especially when the data is multi-modal and long-term. NEW METHOD: Here we describe an automated, behavior-first approach for analyzing simultaneously recorded long-term, naturalistic electrocorticography (ECoG) and behavior video data. We identify and characterize spontaneous human upper-limb movements by combining computer vision, discrete latent-variable modeling, and string pattern-matching on the video. RESULTS: Our pipeline discovers and annotates over 40,000 instances of naturalistic arm movements in long term (7-9 day) behavioral videos, across 12 subjects. Analysis of the simultaneously recorded brain data reveals neural signatures of movement that corroborate previous findings. Our pipeline produces large training datasets for brain-computer interfacing applications, and we show decoding results from a movement initiation detection task. COMPARISON WITH EXISTING METHODS: Spontaneous movements capture real-world neural and behavior variability that is missing from traditional cued tasks. Building beyond window-based movement detection metrics, our unsupervised discretization scheme produces a queryable pose representation, allowing localization of movements with finer temporal resolution. CONCLUSIONS: Our work addresses the unique analytic challenges of studying naturalistic human behaviors and contributes methods that may generalize to other neural recording modalities beyond ECoG. We publish our curated dataset and believe that it will be a valuable resource for future studies of naturalistic movements.


Assuntos
Interfaces Cérebro-Computador , Eletrocorticografia , Algoritmos , Encéfalo , Mapeamento Encefálico , Humanos , Movimento
6.
Indian J Sex Transm Dis AIDS ; 41(1): 30-34, 2020.
Artigo em Inglês | MEDLINE | ID: mdl-33062978

RESUMO

BACKGROUND AND OBJECTIVE: Child sexual abuse (CSA) is a global public health and human rights concern. Hence, the present study was conducted to assess childhood sexual abuse perception and experience among college students of Panchkula. METHODOLOGY: A self-administered anonymous questionnaire which assessed perception and experiences of childhood sexual abuse was given to a convenient sample of 1000 college students. Using descriptive statistics and Chi-square test, perception and the experience of childhood sexual abuse were calculated. RESULTS: The study showed that 18% (boys = 20%, girls = 16%) of the students were exposed to CSA, with boys more often affected than girls. The student's perception about abuse was not very clear. Myths and cultural beliefs justified abuse. CONCLUSION: Although preliminary in nature, the present findings are among the first to demonstrate the nature of CSA among students of Panchkula. Further, the study revealed that CSA manifests both as contact and noncontact forms. More boys than girls are exposed to most forms of abuse.

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