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1,145 results for “REST”
BRAIN Journal-Isolating the Norepinephrine Pathway Comparing Lithium in Bipolar Patients to SSRIs in Depressive Patients-Figure 2. Resting state neuroimaging findings illustrating the action of Lithium following whole brain
<p>The axial, saggital, and coronal MRI activation maps illustrate increased delta frequency band neuronal activity in the 46 patients<br> diagnosed with Bipolar Affective Disorder compared to 32 female patients diagnosed with Major Depressive Disorder of Depressive<br> Episode. The Yellow/Orange shades indicate increased neuronal activity in the right Superior Frontal Gyrus (t=0.920, p=0.05060,<br> BA 6, MNI X=20, Y=0, Z=70) and in the right Cingulate Gyrus (t=0.0846, BA 24, MNI X= 5, Y=0, Z=51). Structural anatomy is<br> shown in grey scale (A – anterior; S – superior; P – posterior; L – left; R – right).</p>
BRAIN Journal-Electrophysiological Neuroimaging using sLORETA Comparing 100 Schizophrenia Patients to 48 Patients with Major Depression -Figure 2. Resting State neuroimaging findings illustrating the action of atypical antipsychotics on postsynaptic dopamine D2
<p>Contrastingly, the results of the one-hundred males and females diagnosed with<br> Schizophrenia compared to the thirty-two females diagnosed with Major Depressive Disorder or<br> Depressive Episodes. The one-hundred male and female Schizophrenia patients had an average age<br> of 32-years-old and a Standard Deviation of 11.8-years. Whereas, the Depressive Episode and<br> Major Depressive Disorder females had an average age of 50-years old and a Standard Deviation of<br> 11.7-years. The statistically significant neuroimaging results identified the Delta (1.5–6 Hz)<br> frequency band at the neuroanatomical location of the region of the Superior Frontal Gyrus<br> (p=0.007; t=2.08, BA 10, X=25, Y=55, Z=30) with greater neuronal oscillations and synchrony in<br> the one-hundred males and females diagnosed with Schizophrenia than the thirty-two females<br> diagnosed with Depressive Episodes and Major Depressive Disorder.</p>
BRAIN Journal-Electrophysiological Neuroimaging using sLORETA Comparing 12 Anorexia Nervosa Patients to 12 Controls-Figure 2: All axial slices of sLORETA imaging results of Resting State EEG Supra-Threshold Voxels in both the Parahippocampal (limbic) and Fusiform (temporal) Gyri illustrating decreased neuronal activity in the Anorexia Nervosa patients.
<p>Results from the sLORETA imaging indicates decreased neuronal activation within the Left<br> Fusiform Gyrus located in the Temporal lobe and Parrahippocampal gyrus, which is located in the<br> Limbic Lobe (Table 1). This correlates with other fMRI findings where patients with early onset<br> AN have exhibited reduced unilateral blood flow in the temporal lobe. The Parahippocampal and<br> Fusiform Gyri are centers that process emotions. Previous studies in which these regions have<br> shown activation involve women that have distorted perceptions of their bodies from a cognitive<br> perspective (Santel et al., 2006). It is apparent from our findings that the Fusiform Gyrus may play<br> a vital role in the processing of visual appearance of the human body. There is also a correlation<br> with the somatosensory limbic pathway in the limbic lobe, due to the similarity of function.</p>
BRAIN Journal-Electrophysiological Neuroimaging using sLORETA Comparing 12 Anorexia Nervosa Patients to 12 Controls-Figure 1: sLORETA imaging results of Resting State EEG Supra-Threshold Voxels in both the Parahippocampal (limbic) and Fusiform (temporal) Gyri illustrating decreased neuronal activity in the Anorexia Nervosa patients relative to Control participants
<p>The findings of the sLORETA analysis indicated that, the difference is statistically<br> significant (p=0.03) using a one-tailed t-test: Anorexia > Controls. The brains of the patients with<br> Anorexia Nervosa illustrated decreased neuronal activity in the Left Fusiform Gyrus and the Left<br> Parahippocampal Gyrus (p=0.03) in the resting-state brains when Anorexia Patients were sitting for<br> 3min, as compared to the Controls sitting for 3minutes.</p>
BRAIN Journal-Isolating the Norepinephrine Pathway Comparing Lithium in Bipolar Patients to SSRIs in Depressive Patients-Figure 1. Resting state neuroimaging findings illustrating the action of Lithium following whole brain
<p>The axial, saggital, and coronal MRI activation maps illustrate neuronal activity of 46 patients diagnosed with Bipolar Affective<br> Disorder compared to 16 male patients diagnosed with Major Depressive Disorder of Depressive Episode. The Yellow/Orange<br> shades indicate increased neuronal activity in the right Superior Temporal Gyrus (t=1.403, p=0.00780, BA 41, MNI X=45, Y= -35,<br> Z=10) with activation also in the Fusiform Gyrus (t=1.26, BA 20, MNI X= 45, Y= -35, Z=10), the Parahippocampal Gyrus (t=1.29,<br> BA 36, MNI X=45, Y= -35, Z=10). (b) Increased neuronal activity in the Cingulate Gyrus (t=1.06, BA 32, MNI X=45, Y= -35,<br> Z=10). Structural anatomy is shown in grey scale (A – anterior; S – superior; P – posterior; L – left; R – right).</p>
Figure 2. (a) Representation of laser servo-driver for inverse kinematics analysis; (b) Representation of the lag angle, B, of the internal servomechanism (magnified version of the chin-rest).-Design of a Novel Servo-motorized Laser Device for Visual Pathways Diseases Therapy
<p>As the servo-driver will be attached in the chin-rest in a non-central area with respect to the<br> semispherical structure shown in Figure 1(a), it is necessary to calculate a lag angle, according to<br> the measurements from the chin-rest, see Figure 2(b). This was done using a hybrid formula based<br> on the law of cosines,</p>
Figure 1. (a) Part of the acrylic structure where the patient is enclosed to avoid external stimulus; (b) Chin rest, corresponding proportions and measurements.-Design of a Novel Servo-motorized Laser Device for Visual Pathways Diseases Therapy
<p>The device consists mainly of an acrylic semi-spherical structure (Figure 1(a)) where visual<br> stimuli will be shown, according to a pre-designed therapy. Four servomotors will drive the lasers,<br> two inside the structure (short distances drive the lasers, two inside the structure (short distance<br> therapies) and two outside (middle-long distance therapies). A chin-rest must be used to have a<br> better line of sight fixation. A webcam with infrared light will catch the Purkinje-Sanson images to<br> identify the sight line (Borah, 2006; Halswanter, 2011; Pambakian et al., 2000). LabVIEW software<br> is used to control the device, including an audio stimulus along with an image-processing pipeline.<br> Finally a microcontroller is used to control the servo movements, laser beams and buzzers.</p>
Employment data for the rest of the world
<p>This data set contains the underlying data for the following publication: ‘Towards a green energy economy? Tracking the employment effects of low-carbon technologies in the European Union’, Applied Energy’.</p> <p>This data set contains estimated employment figures for the ‘Rest of the World’ (RoW), as defined by the World Input–Output Database (<a href="http://www.wiod.org/home">http://www.wiod.org/home</a>). This is aggregate data for countries outside of the 27 EU Member States and 13 other major countries covered by the database.</p>
Figure 1 in Morphological examination of the resting egg structure of 3 cladoceran species [Ceriodaphnia quadrangula (O. F. Müller, 1785), Daphnia longispina (O. F. Müller, 1776), and D. magna Straus, 1820]
Figure 1. Resting egg photos of 3 species (Daphnia magna, D. longispina, Ceriodaphnia quadrangula). A) SEM photo of C. quadrangula, B) SEM photo of D. longispina, C) SEM photo of D. magna, D) light microscope photo of C. quadrangula, E) light microscope photo of D. longispina, F) light microscope photo of D. magna.
Text-fig. 3. Rhinoppioides quadrituberculatus MIKO gen. et sp. nov. Above: assumed fragments of legs as seen in body cavity of holotype (Aa – in dorsal view, Ab – in ventral view) and paratype (B, only dorsal view available). Below: speculative reconstruction of legs, assumed segments leg IV in above rows (numbers 1, 3, 5, 7, 12, 13, 14), assumed segments of leg I below (numbers 6, 9, 10). Rest of the segments assumed to belong to legs II and III. Only trochanters III (nr. 8) and IV (nr. 7, 12) undoubtedly belonging to the new species. Bars indicating 50 µm, numbers indicate identity of segments. in Oribatid Mite Fossils From Quaternary And Pre-Quaternary Sediments In Slovenian Caves I.Two New Genera And Two New Species Of The Family Oppiidae From The Early Pleistocene
Text-fig. 3. Rhinoppioides quadrituberculatus MIKO gen. et sp. nov. Above: assumed fragments of legs as seen in body cavity of holotype (Aa – in dorsal view, Ab – in ventral view) and paratype (B, only dorsal view available). Below: speculative reconstruction of legs, assumed segments leg IV in above rows (numbers 1, 3, 5, 7, 12, 13, 14), assumed segments of leg I below (numbers 6, 9, 10). Rest of the segments assumed to belong to legs II and III. Only trochanters III (nr. 8) and IV (nr. 7, 12) undoubtedly belonging to the new species. Bars indicating 50 µm, numbers indicate identity of segments.
The dataset of article "Early Detection of Cognitive Impairment in End-Stage Renal Disease Patients Undergoing Hemodialysis: Insights from Resting-State Functional Connectivity Analysis"
<p>This is a file as dataset of the article "Early Detection of Cognitive Impairment in End-Stage Renal Disease Patients Undergoing Hemodialysis: Insights from Resting-State Functional Connectivity Analysis".</p> <p>It includes fMRI brain imaging data of subjects included in the case group (ESRD group) and healthy control group (HC group).</p>
Linked collectors and determiners for: Taxonomic revision of Cylindera Westwood, 1831 subgenus Parmecus Motschulsky 1864 stat. rest., stat. nov. (Coleoptera: Carabidae: Cicindelinae) with the description of one new species from Yunnan Province, China.
Natural history specimen data linked to collectors and determiners held within, "Taxonomic revision of Cylindera Westwood, 1831 subgenus Parmecus Motschulsky 1864 stat. rest., stat. nov. (Coleoptera: Carabidae: Cicindelinae) with the description of one new species from Yunnan Province, China". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/aa3da0bc-3736-490e-ad9c-3e5f8f4524e1">https://bionomia.net/dataset/aa3da0bc-3736-490e-ad9c-3e5f8f4524e1</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/aa3da0bc-3736-490e-ad9c-3e5f8f4524e1">https://gbif.org/dataset/aa3da0bc-3736-490e-ad9c-3e5f8f4524e1</a>. Formatted as a Frictionless Data package.
Linked collectors and determiners for: Revision of Pygoda Amyot & Serville, 1843 stat. rest. (Heteroptera: Pentatomidae: Edessinae) with description of four new species.
Natural history specimen data linked to collectors and determiners held within, "Revision of Pygoda Amyot & Serville, 1843 stat. rest. (Heteroptera: Pentatomidae: Edessinae) with description of four new species". Claims or attributions were made on Bionomia by volunteer Scribes, <a href="https://bionomia.net/dataset/9ec1478c-2bdc-43d3-9317-6e38503f1d51">https://bionomia.net/dataset/9ec1478c-2bdc-43d3-9317-6e38503f1d51</a> using specimen data from the dataset aggregated by the Global Biodiversity Information Facility, <a href="https://gbif.org/dataset/9ec1478c-2bdc-43d3-9317-6e38503f1d51">https://gbif.org/dataset/9ec1478c-2bdc-43d3-9317-6e38503f1d51</a>. Formatted as a Frictionless Data package.
Preliminary displacement analyses over Surfside Florida KMZ file pointing to REST URL
<p><em><strong>Preliminary displacement analyses over Surfside Florida. KMZ file pointing to REST URL. The file can be opened in Google Earth Pro and will allow overlaying displacement results with Google's temporal optical imagery catalog. Contains modified Copernicus Sentinel-1 data. Persistent Scatterers Interferometry (PSI) was performed using SARscape v5.6.</strong></em></p>
FIG. 8 in Les restes animaux en contexte funéraire dans l'Alsace du premier Moyen Âge et ses marges géographiques
FIG. 8. – Vues internes de coquilles d'oeufs examinées au microscope électronique à balayage x300. Clichés A. Barreau, Ingénieur du Microscope Électronique à Balayage (Facultés des Sciences et Techniques, Université de Nantes).
FIG. 6 in Les restes animaux en contexte funéraire dans l'Alsace du premier Moyen Âge et ses marges géographiques
FIG. 6. – Matzentheim « Bodengewann », oeufs de la tombe 24. Clichés I. Dechanez-Clerc (Pôle d'Archéologie Interdépartemental Rhénan).
FIG. 3 in Les restes animaux en contexte funéraire dans l'Alsace du premier Moyen Âge et ses marges géographiques
FIG. 3. – Amulettes. Illfurth « Buergelen »: A, tombes 98 et 319, vertèbres de poisson perforées; B, tombe 79, piquant d'oursin fossile; C, tombe 318, ammonite pyritisée; D, tombe 107, Cypraea pantherina; E, tombe 79, talus de castor en vues dorsale, à gauche, et médiale, à droite. Hégenheim « 45 rue de Hésingue ». (Clichés I. Dechanez-Clerc, Pôle d'Archéologie Interdépartemental Rhénan et Olivier Putelat).
FIG. 10 in Les restes animaux en contexte funéraire dans l'Alsace du premier Moyen Âge et ses marges géographiques
FIG. 10. – Aire de répartition des dépôts alimentaires animaux au haut Moyen Âge d'après I. Mittermeier (1986). L'Alsace est localisée par une ellipse grisée.
FIG. 5 in Les restes animaux en contexte funéraire dans l'Alsace du premier Moyen Âge et ses marges géographiques
FIG. 5. – Mise en perspective diachronique de la pratique des dépôts alimentaires animaux sur la rive gauche du Rhin supérieur et ses marges géographiques, d'après la chronologie normalisée du mobilier funéraire mérovingien entre Manche et Lorraine (d'après Legoux et al. 2004). Sites 10, 12, 14, 19, 23, 24, 25, 32.
FIG. 7 in Les restes animaux en contexte funéraire dans l'Alsace du premier Moyen Âge et ses marges géographiques
FIG. 7. – Diagramme de répartition de différentes coquilles d'oeufs mises au jour dans des groupes funéraires alsaciens. OEufs de Matzentheim (MATZ), d'Osthouse (OST), d'Illfurth-Buergelen (ILL-B, à gauche) et d'Ittenheim (ILS, au centre).
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.