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Institution

University of Lisbon

EducationLisbon, Lisboa, Portugal
About: University of Lisbon is a education organization based out in Lisbon, Lisboa, Portugal. It is known for research contribution in the topics: Population & Context (language use). The organization has 19122 authors who have published 48503 publications receiving 1102623 citations. The organization is also known as: Universidade de Lisboa & Lisbon University.


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Journal ArticleDOI
TL;DR: Gaia as discussed by the authors is a cornerstone mission in the science programme of the European Space Agency (ESA). The spacecraft construction was approved in 2006, following a study in which the original interferometric concept was changed to a direct-imaging approach.
Abstract: Gaia is a cornerstone mission in the science programme of the EuropeanSpace Agency (ESA). The spacecraft construction was approved in 2006, following a study in which the original interferometric concept was changed to a direct-imaging approach. Both the spacecraft and the payload were built by European industry. The involvement of the scientific community focusses on data processing for which the international Gaia Data Processing and Analysis Consortium (DPAC) was selected in 2007. Gaia was launched on 19 December 2013 and arrived at its operating point, the second Lagrange point of the Sun-Earth-Moon system, a few weeks later. The commissioning of the spacecraft and payload was completed on 19 July 2014. The nominal five-year mission started with four weeks of special, ecliptic-pole scanning and subsequently transferred into full-sky scanning mode. We recall the scientific goals of Gaia and give a description of the as-built spacecraft that is currently (mid-2016) being operated to achieve these goals. We pay special attention to the payload module, the performance of which is closely related to the scientific performance of the mission. We provide a summary of the commissioning activities and findings, followed by a description of the routine operational mode. We summarise scientific performance estimates on the basis of in-orbit operations. Several intermediate Gaia data releases are planned and the data can be retrieved from the Gaia Archive, which is available through the Gaia home page.

5,164 citations

Journal ArticleDOI
TL;DR: This research presents a meta-analysis of Anatomia e Istologia Patologica, a large quantity of which has never before been published in a peer-reviewed journal, which aims to provide real-time information about the immune system’s response to disease.

4,655 citations

Journal ArticleDOI
Christopher G. Goetz1, Barbara C. Tilley2, Stephanie R. Shaftman2, Glenn T. Stebbins1, Stanley Fahn3, Pablo Martinez-Martin, Werner Poewe4, Cristina Sampaio5, Matthew B. Stern6, Richard Dodel7, Bruno Dubois8, Robert G. Holloway9, Joseph Jankovic10, Jaime Kulisevsky11, Anthony E. Lang12, Andrew J. Lees13, Sue Leurgans1, Peter A. LeWitt14, David L. Nyenhuis15, C. Warren Olanow16, Olivier Rascol17, Anette Schrag13, Jeanne A. Teresi3, Jacobus J. van Hilten18, Nancy R. LaPelle19, Pinky Agarwal, Saima Athar, Yvette Bordelan, Helen Bronte-Stewart, Richard Camicioli, Kelvin L. Chou, Wendy Cole, Arif Dalvi, Holly Delgado, Alan Diamond, Jeremy P.R. Dick, John E. Duda, Rodger J. Elble, Carol Evans, V. G. H. Evidente, Hubert H. Fernandez, Susan H. Fox, Joseph H. Friedman, Robin D. Fross, David A. Gallagher, Deborah A. Hall, Neal Hermanowicz, Vanessa K. Hinson, Stacy Horn, Howard I. Hurtig, Un Jung Kang, Galit Kleiner-Fisman, Olga Klepitskaya, Katie Kompoliti, Eugene C. Lai, Maureen L. Leehey, Iracema Leroi, Kelly E. Lyons, Terry McClain, Steven W. Metzer, Janis M. Miyasaki, John C. Morgan, Martha Nance, Joanne Nemeth, Rajesh Pahwa, Sotirios A. Parashos, Jay S. Schneider, Kapil D. Sethi, Lisa M. Shulman, Andrew Siderowf, Monty Silverdale, Tanya Simuni, Mark Stacy, Robert Malcolm Stewart, Kelly L. Sullivan, David M. Swope, Pettaruse M. Wadia, Richard Walker, Ruth H. Walker, William J. Weiner, Jill Wiener, Jayne R. Wilkinson, Joanna M. Wojcieszek, Summer C. Wolfrath, Frederick Wooten, Allen Wu, Theresa A. Zesiewicz, Richard M. Zweig 
TL;DR: The combined clinimetric results of this study support the validity of the MDS‐UPDRS for rating PD.
Abstract: We present a clinimetric assessment of the Movement Disorder Society (MDS)-sponsored revision of the Unified Parkinson's Disease Rating Scale (MDS-UPDRS). The MDS-UDPRS Task Force revised and expanded the UPDRS using recommendations from a published critique. The MDS-UPDRS has four parts, namely, I: Non-motor Experiences of Daily Living; II: Motor Experiences of Daily Living; III: Motor Examination; IV: Motor Complications. Twenty questions are completed by the patient/caregiver. Item-specific instructions and an appendix of complementary additional scales are provided. Movement disorder specialists and study coordinators administered the UPDRS (55 items) and MDS-UPDRS (65 items) to 877 English speaking (78% non-Latino Caucasian) patients with Parkinson's disease from 39 sites. We compared the two scales using correlative techniques and factor analysis. The MDS-UPDRS showed high internal consistency (Cronbach's alpha = 0.79-0.93 across parts) and correlated with the original UPDRS (rho = 0.96). MDS-UPDRS across-part correlations ranged from 0.22 to 0.66. Reliable factor structures for each part were obtained (comparative fit index > 0.90 for each part), which support the use of sum scores for each part in preference to a total score of all parts. The combined clinimetric results of this study support the validity of the MDS-UPDRS for rating PD.

4,589 citations

Journal ArticleDOI
TL;DR: The basic ideas of PCA are introduced, discussing what it can and cannot do, and some variants of the technique have been developed that are tailored to various different data types and structures.
Abstract: Large datasets are increasingly common and are often difficult to interpret. Principal component analysis (PCA) is a technique for reducing the dimensionality of such datasets, increasing interpretability but at the same time minimizing information loss. It does so by creating new uncorrelated variables that successively maximize variance. Finding such new variables, the principal components, reduces to solving an eigenvalue/eigenvector problem, and the new variables are defined by the dataset at hand, not a priori , hence making PCA an adaptive data analysis technique. It is adaptive in another sense too, since variants of the technique have been developed that are tailored to various different data types and structures. This article will begin by introducing the basic ideas of PCA, discussing what it can and cannot do. It will then describe some variants of PCA and their application.

4,289 citations

Journal ArticleDOI
TL;DR: The content of these European Society of Cardiology (ESC) Guidelines has been published for personal and educational use only and no commercial use is authorized.
Abstract: Supplementary Table 9, column 'Edoxaban', row 'eGFR category', '95 mL/min' (page 15). The cell should be coloured green instead of yellow. It should also read "60 mg"instead of "60 mg (use with caution in 'supranormal' renal function)."In the above-indicated cell, a footnote has also been added to state: "Edoxaban should be used in patients with high creatinine clearance only after a careful evaluation of the individual thromboembolic and bleeding risk."Supplementary Table 9, column 'Edoxaban', row 'Dose reduction in selected patients' (page 16). The cell should read "Edoxaban 60 mg reduced to 30 mg once daily if any of the following: creatinine clearance 15-50 mL/min, body weight <60 kg, concomitant use of dronedarone, erythromycin, ciclosporine or ketokonazole"instead of "Edoxaban 60 mg reduced to 30 mg once daily, and edoxaban 30 mg reduced to 15mg once daily, if any of the following: creatinine clearance of 30-50 mL/min, body weight <60 kg, concomitant us of verapamil or quinidine or dronedarone."

4,285 citations


Authors

Showing all 19716 results

NameH-indexPapersCitations
Joao Seixas1531538115070
A. Gomes1501862113951
Marco Costa1461458105096
António Amorim136147796519
Osamu Jinnouchi13588586104
P. Verdier133111183862
Andy Haas132109687742
Wendy Taylor131125289457
Steve McMahon13087878763
Timothy Andeen129106977593
Heather Gray12996680970
Filipe Veloso12888775496
Nuno Filipe Castro12896076945
Oliver Stelzer-Chilton128114179154
Isabel Marian Trigger12897477594
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Performance
Metrics
No. of papers from the Institution in previous years
YearPapers
2023247
2022828
20214,521
20204,517
20193,810
20183,617