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FIGURE 2A–F in Reappraisal of Synagrops Günther, 1887 with rehabilitation and revision of Parascombrops Alcock, 1889 including description of seven new species and two new genera (Perciformes: Acropomatidae)
FIGURE 2A–F. Examples of cranial crests: A, Kaperangus microlepis n.gen., CAS 222834, SL 78.5 mm; B, Caraibops trispinosus n.gen., CAS 61040, 97.5 mm SL; C, Parascombrops ohei n. sp., BSKU 72614, holotype, 75 mm SL; D, Parascombrops argyreus, BPBM 23839, 118 mm SL; E, Parascombrops spinosus, USNM 395230, 95.5 mm SL; F, Parascombrops philippinensis, BMNH 1879.5.14.167, lectotype, 70 mm SL. Lower images with crests highlighted.
FIGURE 1A–E in Reappraisal of Synagrops Günther, 1887 with rehabilitation and revision of Parascombrops Alcock, 1889 including description of seven new species and two new genera (Perciformes: Acropomatidae)
FIGURE 1A–E. Skull and otolith morphology: A, basicranium of Synagrops japonicus, IOM 1773, showing strongly developed basioccipital fossae (bof) and posterior openings of the myodome (pom); B, basicranium of Apogonops anomalus, IOM uncatalogued, 33° S, 127° E, showing weakly developed basioccipital fossae (bof) and lacking posterior openings of the myodome; C, basicranium of Parascombrops philippinensis, IOM uncatalogued, Nha Trang Bay, showing absence of the basioccipital fossae and posterior openings of the myodome; D–E, examples of the two principle otolith morpho-types found in Acropomatidae: D, Synagrops; E, Parascombrops.
Same day implant bridge (SDIB) modified technique for full-arch implant fixed rehabilitation for a Kelly syndrome pa-tient with atrophic maxilla.
<p><span>Combined syndrome (CS) or also known as "anterior hyperfunction syndrome" was first described by Ellsworth Kelly in 1972 is a dental condition commonly seen in patients with a completely edentulous maxilla and a partially edentulous mandible with preserved anterior teeth, where five characteristic features of the syndrome can be seen: loss of bone from the anterior part of the maxillary crest, excessive growth of the maxillary tuberosities, papillary hyperplasia of the mucosa of the hard palate, extrusion of the lower anterior teeth and alveolar bone loss and ridge height beneath mandibular removable denture bases. This report describes an implant treatment of the edentulous maxilla using the ALL ON FOUR (AO4) technique and a partially edentulous mandible that was treated with the same post-extraction technique. The need for a multidisciplinary approach for the prevention and early treatment of this complex condition is emphasized.</span></p> <p><strong><span>Keywords:</span></strong><span>resorbed maxilla; hypertrophic bone; atrophic bone; Kelly syndrome; anterior </span></p>
Physical Activity Levels on Functional Outcomes and Quality of Life in Musculoskeletal Rehabilitation.
<p><span>Physical Activity Levels on Functional Outcomes and Quality of Life in Musculoskeletal Rehabilitation.</span></p>
Raw data for "Preclinical upper- limb neurorobotic platform to assess, rehabilitate and develop therapies"
<p>Source data for all figures. Tabulated data underlying the data points in all plots of each individual figure.</p>
An Exoskeleton System using a 3-UPU Spherical Parallel Manipulator for Rehabilitation in Stroke Patients
<p>One of the important branches of medical robotics is rehabilitation robotics. A 3-UPU spherical parallel manipulator is designed and controlled to perform wrist extension, flexion, radial deviation and ulnar deviation motions in stroke-affected patients. This exoskeleton robot produces spherical motion about a fixed center. In order to produce the rotational motion, the robot is designed based on certain geometric and structural conditions. Using the inverse kinematics solution the 3-UPU robot is controlled to perform rehabilitation task. The robot parts are manufactured using additive manufacturing technology. The manufacturing tolerance in universal joints have been identified. There is always a mystery behind the singularity of this robot, which describes the manner in which it will collapse in its home position. Thus, the robot is designed and developed in such a way that it can be effectively used at home position for hand rehabilitation.</p>
FIGURE 1 in Eimeria psittacarae n. sp. (Apicomplexa: Eimeiriidae) from white-eyed parakeets Psittacara leucophthalmus (Müller, 1776) (Psittaciformes: Psittacidae) kept for rehabilitation and reintroduction in the Parque Nacional da Serra dos Órgãos, Southeastern Brazil
FIGURE 1. Line drawing of a sporulated oocyst of Eimeria psittacarae n. sp., a new coccidium species recovered from the white-eyed parakeet Psittacara leucophthalmus. Scale-bar: 10µm.
FIGURE 2 in Eimeria psittacarae n. sp. (Apicomplexa: Eimeiriidae) from white-eyed parakeets Psittacara leucophthalmus (Müller, 1776) (Psittaciformes: Psittacidae) kept for rehabilitation and reintroduction in the Parque Nacional da Serra dos Órgãos, Southeastern Brazil
FIGURE 2. Photomicrographs (A–D) of sporulated oocysts of Eimeria psittacarae n. sp., a new coccidium species recovered from the white-eyed parakeet Psittacara leucophthalmus. Note the micropyle (m), polar granule (pg), inner (il) and outer (ol) layer of the delicate wall of an oocyst shriveled after a short time in saturated solution, Stieda body (sb), sub-stieda body (ssb), sporocyst residuum (sr), refractile body (rb) and the nucleus (n). Scale-bar: 10µm.
Validation of the pelvic attachment mechanism of NIMBLE, an ambulatory user support gait rehabilitation robot.
<p>Description of the project<br><span><span>NIMBLE project aims to design and validate a novel gait rehabilitation robot. The objective of the robot is to provide ambulatory, body-weight supported walking training assisting user's limbs and its center of mass. The NIMBLE robot is comprised by a robotic frame, a lower limb exoskeleton, and a exoskeleton-frame coupling mechatronics that allows to assist the user's center of mass.</span></span></p> <p>Description of the dataset<br><span><span>This dataset contains the results of an experiment conducted to assess the alteration on walking kinematics due to the mechatronic device coupling the frame and the exoskeleton.</span></span></p> <p>--------------------------<br>METHODOLOGY<br>--------------------------<br>1. Methodology<br>The walking kinematics were recorded and analyzed at slow (0.5 m/s) and normal (1 m/s) speeds under three different conditions: unrestricted walking, walking while wearing the Exo-H3 corset, and walking while wearing the Exo-H3 corset coupled to the robotic frame. Only the corset is worn, to isolate and evaluate the direct impact of the designed mechanism without the kinematic restrictions imposed by the exoskeleton. This approach ensures that the effects observed are solely attributable to the mechanism itself, avoiding any confounding influences from the exoskeleton. This approach allows the evaluation of the influence of the exoskeleton corset, as it is a required component to secure the user to the robotic frame, and a comparison of its impact with that of the robotic frame. For this purpose, joint angles and their maximum and minimum values and ranges of motion (ROM) are analyzed in both the sagittal and frontal planes, along with the step width and the displacement of the CoM in the vertical and horizontal directions.</p> <p>2. Software<br>Data were collected using Kinovea and then processed and analyzed using Matlab.</p> <p>--------------------------<br>FILES<br>--------------------------<br>1. Files <br>One ".m" file is included. For each subject (idX), three subfolders are found:<br>- Calib folder: it contains the initial position and angular value of the markers and angles analyzed.<br>- frontal folder: for both speeds and the three analyzed conditions (Unrestricted walking CL, wearing the corset CC, and attached to the robotic frame CML), it contains the raw data, filtered data, segmented data normalized by gait cycles, mean and standard deviation data of those segmented cycles, and normalized data using the initial value from Calib file, for every marker position in the frontal plane (ankle, knee, hip and center of mass). Also, segmented, mean and deviations are presented from angular values in the frontal plane (right and left hip abduction and pelvic list).<br>- sagittal folder: for both speeds and the three analyzed conditions (Unrestricted walking CL, wearing the corset CC, and attached to the robotic frame CML), it contains the raw data, filtered data, segmented data normalized by gait cycles, mean and standard deviation data of those segmented cycles, and normalized data using the initial value from Calib file, for every marker position in the sagittal plane (hip, knee, ankle and toe tip). Also, segmented, mean and deviations are presented from angular values in the frontal plane (hip, knee and ankle flexo-extension).</p> <p>In addition, one average folder (media) includes average data for the statistical analysis. Signals subfolder includes all segmented data from the previous variables for every speed and conditions, joining the data from every subject in one table, a total of 50 samples (10 segmented cycles x 5 subjects). Value subfolder includes maximum, minimum and ranges of motion of angular variables. Every variable has 50 rows (10 segmented cycles x 5 subjects) and 3 columns (CL, CC, and CML conditions). Also mean step width is presented, as the distance between ankle markers in the frontal plane.</p> <p>--------------------------<br>OTHERS<br>--------------------------<br>1. Data dictionary<br>speed05: data collected at 0.5 m/s<br>speed1: data collected at 1 m/s<br>CL: Unrestricted walking condition<br>CC: Wearing the corset condition<br>CML: Attached to the robotic frame condition<br>R: right leg<br>L: left leg<br>x: horizontal direction<br>y: vertical direction<br>ANKLE, KNEE, HIP, COM: ankle, knee, hip, and virtual center of mass markers in the frontal plane.<br>HIP_lat, KNEE_lat, ANKLE_lat and TOE_lat: hip, knee, ankle, and toe tip markers in the sagittal plane.<br>Abd: hip abduction angle.<br>Hip_Angle, Knee_Angle, Ankle_Angle: hip, knee, and ankle flexo-extension angles.</p> <p>--------------------------<br>SPONSORSHIP INFORMATION AND GRANT IDs<br>--------------------------<br>1. Grant Information<br>This work is part of the R&D project PID2021-123657OB-C32, funded by MCIN/ AEI/10.13039/501100011033/ and by “ERDF A way of making Europe”.</p>
Association Between Vestibular Rehabilitation and Quality of Life in Adults with Persistent Postural-Perceptual Dizziness: A Cross-Sectional Study.
<p><span>Association Between Vestibular Rehabilitation and Quality of Life in Adults with Persistent Postural-Perceptual Dizziness: A Cross-Sectional Study.</span></p>
Predictive factors of inpatient rehabilitation stay and post-discharge care burden after joint replacement for hip and knee osteoarthritis: a retrospective study on 1,678 patients.
<p>Dataset of the study entitled "<span>Predictive factors of inpatient rehabilitation stay and post-discharge care burden after joint replacement for hip and knee osteoarthritis: a retrospective study on 1,678 patients"</span></p>
FIGURE 5 in Weeding the Nettles II: A delimitation of "Urtica dioica L." (Urticaceae) based on morphological and molecular data, including a rehabilitation of Urtica gracilis Ait.
FIGURE 5. Urtica gracilis subsp. incaica: (All from Schwarzer 14), A. Habit of young plant with predominantly male inflorescences, B. Ovate leaves of a young shoot (compare F), note the reddish flushed abaxial surface (left), C. Stem covered with setae with long, asymmetrically curved pluricellular base and numerous simple trichomes, D. Node densely covered with numerous setae, E. Achene, F. Rhizome with young shoots, G. Nodes with leaf pairs and female inflorescences (left) and male inflorescences (right).
FIGURE 1 in Weeding the Nettles II: A delimitation of "Urtica dioica L." (Urticaceae) based on morphological and molecular data, including a rehabilitation of Urtica gracilis Ait.
FIGURE 1. Maximum likelihood tree based on the concatenated data set (ITS, trnL-F, trnS-trnG, psbA-trnH). Bayesian posterior probabilities are indicated above branches, while bootstrap support is indicated below. The first value (bold) refers to the bootstrap support under likelihood, and the second (italics) to the parsimony analysis.
FIGURE 4 in Weeding the Nettles II: A delimitation of "Urtica dioica L." (Urticaceae) based on morphological and molecular data, including a rehabilitation of Urtica gracilis Ait.
FIGURE 4. Urtica gracilis subsp. aquatica: (A, C, F: Schneider s.n., all others: Weigend 7478), A. Habit with mature inflorescences of both sexes, B. Node with mixed inflorescence, male flowers already shed, female branches with mature fruits, C. Young shoot with immature inflorescences, D. Node (section) with leaf pair with adaxial surface (above) and abaxial surface (below) and male inflorescences, E. Achene, F. Node of Schneider s.n. with narrower leaves and female inflorescenes, G. Stinging hair with long, curved pluricellular base.
FIGURE 3 in Weeding the Nettles II: A delimitation of "Urtica dioica L." (Urticaceae) based on morphological and molecular data, including a rehabilitation of Urtica gracilis Ait.
FIGURE 3. Urtica gracilis subsp. holosericea: (all Ahartt 13535), A. Habit with mixed/male inflorescences in the middle (left) and female inflorescences in the distal parts (right) of the shoot, B. Stem with countless simple trichomes and few erect stinging hairs, C. Mature fruit, D. Node (section) with leaf pair, adaxially, E. Node with leaf pair lateral/abaxial view.
FIGURE 2 in Weeding the Nettles II: A delimitation of "Urtica dioica L." (Urticaceae) based on morphological and molecular data, including a rehabilitation of Urtica gracilis Ait.
FIGURE 2. Urtica gracilis subsp. gracilis: (A–D, G: Weigend 9332), A. Habit, B. Node with stipules, C. Stem with scattered simple trichomes and few setae, D–E. Leaf shape variability, D. Narrow leaf pair from Weigend 9332, E. Broader leaves from Liston 1223, F. Ovate achene of U. dioica subsp. dioica for comparative purposes (Weigend 8102), G. Achene of U. gracilis subsp. gracilis.
FIGURE 6 in Weeding the Nettles II: A delimitation of "Urtica dioica L." (Urticaceae) based on morphological and molecular data, including a rehabilitation of Urtica gracilis Ait.
FIGURE 6. Urtica gracilis subsp. mollis: (D: Ricardi et al. 720, all others: Weigend 9356), A. Habit with mixed inflorescences below and female inflorescence above, B. Node (section) with leaf pair, C. Node from the lower part of the shoot with male flowers, D. Achene from Ricardi et al. 720, E. Stem with numerous long setae and simple trichomes, F. Achene from Weigend 9356.
Fig. 8 in Entwicklung Medizintechnik 2019 bis 2030 : stationäre Rehabilitation & stationäre Psychiatrie
Fig. 8. Known distribution of Onthophagus chevrolati, Onthophagus retusus, and Onthophagus aureofuscus in Mexico.
Fig. 5. Onthophagus howdeni. A in Entwicklung Medizintechnik 2019 bis 2030 : stationäre Rehabilitation & stationäre Psychiatrie
Fig. 5. Onthophagus howdeni. A) Illustration of female, B) Illustration of male, C) Female, dorsal habitus, D) Male, dorsal habitus.
Fig. 4. Onthophagus howdenorum. A in Entwicklung Medizintechnik 2019 bis 2030 : stationäre Rehabilitation & stationäre Psychiatrie
Fig. 4. Onthophagus howdenorum. A) Illustration of female, B) Illustration of male, C) Female, dorsal habitus, D) Male, dorsal habitus.
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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.