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Protistan grazing impacts microbial communities and carbon cycling at deep-sea hydrothermal vents 期刊论文
Proceedings of the National Academy of Sciences, 2021
作者:  Sarah K. Hu;  Erica L. Herrera;  Amy R. Smith;  Maria G. Pachiadaki;  Virginia P. Edgcomb;  Sean P. Sylva;  Eric W. Chan;  Jeffrey S. Seewald;  Christopher R. German;  Julie A. Huber
收藏  |  浏览/下载:13/0  |  提交时间:2021/07/27
Imaging orbital ferromagnetism in a moiré Chern insulator 期刊论文
Science, 2021
作者:  C. L. Tschirhart;  M. Serlin;  H. Polshyn;  A. Shragai;  Z. Xia;  J. Zhu;  Y. Zhang;  K. Watanabe;  T. Taniguchi;  M. E. Huber;  A. F. Young
收藏  |  浏览/下载:13/0  |  提交时间:2021/06/24
Revealing x-ray and gamma ray temporal and spectral similarities in the GRB 190829A afterglow 期刊论文
Science, 2021
作者:  H.E.S.S. Collaboration;  H. Abdalla;  F. Aharonian;  F. Ait Benkhali;  E. O. Angüner;  C. Arcaro;  C. Armand;  T. Armstrong;  H. Ashkar;  M. Backes;  V. Baghmanyan;  V. Barbosa Martins;  A. Barnacka;  M. Barnard;  Y. Becherini;  D. Berge;  K. Bernlöhr;  B. Bi;  E. Bissaldi;  M. Böttcher;  C. Boisson;  J. Bolmont;  M. de Bony de Lavergne;  M. Breuhaus;  F. Brun;  P. Brun;  M. Bryan;  M. Büchele;  T. Bulik;  T. Bylund;  S. Caroff;  A. Carosi;  S. Casanova;  T. Chand;  S. Chandra;  A. Chen;  G. Cotter;  M. Curyło;  J. Damascene Mbarubucyeye;  I. D. Davids;  J. Davies;  C. Deil;  J. Devin;  L. Dirson;  A. Djannati-Ataï;  A. Dmytriiev;  A. Donath;  V. Doroshenko;  L. Dreyer;  C. Duffy;  J. Dyks;  K. Egberts;  F. Eichhorn;  S. Einecke;  G. Emery;  J.-P. Ernenwein;  K. Feijen;  S. Fegan;  A. Fiasson;  G. Fichet de Clairfontaine;  G. Fontaine;  S. Funk;  M. Füßling;  S. Gabici;  Y. A. Gallant;  G. Giavitto;  L. Giunti;  D. Glawion;  J. F. Glicenstein;  M.-H. Grondin;  J. Hahn;  M. Haupt;  G. Hermann;  J. A. Hinton;  W. Hofmann;  C. Hoischen;  T. L. Holch;  M. Holler;  M. Hörbe;  D. Horns;  D. Huber;  M. Jamrozy;  D. Jankowsky;  F. Jankowsky;  A. Jardin-Blicq;  V. Joshi;  I. Jung-Richardt;  E. Kasai;  M. A. Kastendieck;  K. Katarzyński;  U. Katz;  D. Khangulyan;  B. Khélifi;  S. Klepser;  W. Kluźniak;  Nu. Komin;  R. Konno;  K. Kosack;  D. Kostunin;  M. Kreter;  G. Lamanna;  A. Lemière;  M. Lemoine-Goumard;  J.-P. Lenain;  F. Leuschner;  C. Levy;  T. Lohse;  I. Lypova;  J. Mackey;  J. Majumdar;  D. Malyshev;  D. Malyshev;  V. Marandon;  P. Marchegiani;  A. Marcowith;  A. Mares;  G. Martí-Devesa;  R. Marx;  G. Maurin;  P. J. Meintjes;  M. Meyer;  A. Mitchell;  R. Moderski;  L. Mohrmann;  A. Montanari;  C. Moore;  P. Morris;  E. Moulin;  J. Muller;  T. Murach;  K. Nakashima;  A. Nayerhoda;  M. de Naurois;  H. Ndiyavala;  J. Niemiec;  L. Oakes;  P. O’Brien;  H. Odaka;  S. Ohm;  L. Olivera-Nieto;  E. de Ona Wilhelmi;  M. Ostrowski;  S. Panny;  M. Panter;  R. D. Parsons;  G. Peron;  B. Peyaud;  Q. Piel;  S. Pita;  V. Poireau;  A. Priyana Noel;  D. A. Prokhorov;  H. Prokoph;  G. Pühlhofer;  M. Punch;  A. Quirrenbach;  S. Raab;  R. Rauth;  P. Reichherzer;  A. Reimer;  O. Reimer;  Q. Remy;  M. Renaud;  F. Rieger;  L. Rinchiuso;  C. Romoli;  G. Rowell;  B. Rudak;  E. Ruiz-Velasco;  V. Sahakian;  S. Sailer;  H. Salzmann;  D. A. Sanchez;  A. Santangelo;  M. Sasaki;  M. Scalici;  J. Schäfer;  F. Schüssler;  H. M. Schutte;  U. Schwanke;  M. Seglar-Arroyo;  M. Senniappan;  A. S. Seyffert;  N. Shafi;  J. N. S. Shapopi;  K. Shiningayamwe;  R. Simoni;  A. Sinha;  H. Sol;  A. Specovius;  S. Spencer;  M. Spir-Jacob;  Ł. Stawarz;  L. Sun;  R. Steenkamp;  C. Stegmann;  S. Steinmassl;  C. Steppa;  T. Takahashi;  T. Tam;  T. Tavernier;  A. M. Taylor;  R. Terrier;  J. H. E. Thiersen;  D. Tiziani;  M. Tluczykont;  L. Tomankova;  M. Tsirou;  R. Tuffs;  Y. Uchiyama;  D. J. van der Walt;  C. van Eldik;  C. van Rensburg;  B. van Soelen;  G. Vasileiadis;  J. Veh;  C. Venter;  P. Vincent;  J. Vink;  H. J. Völk;  Z. Wadiasingh;  S. J. Wagner;  J. Watson;  F. Werner;  R. White;  A. Wierzcholska;  Yu Wun Wong;  A. Yusafzai;  M. Zacharias;  R. Zanin;  D. Zargaryan;  A. A. Zdziarski;  A. Zech;  S. J. Zhu;  J. Zorn;  S. Zouari;  N. Żywucka;  P. Evans;  K. Page
收藏  |  浏览/下载:38/0  |  提交时间:2021/06/15
Super-resolution lightwave tomography of electronic bands in quantum materials 期刊论文
Science, 2020
作者:  M. Borsch;  C. P. Schmid;  L. Weigl;  S. Schlauderer;  N. Hofmann;  C. Lange;  J. T. Steiner;  S. W. Koch;  R. Huber;  M. Kira
收藏  |  浏览/下载:7/0  |  提交时间:2020/12/07
Past climates inform our future 期刊论文
Science, 2020
作者:  Jessica E. Tierney;  Christopher J. Poulsen;  Isabel P. Montañez;  Tripti Bhattacharya;  Ran Feng;  Heather L. Ford;  Bärbel Hönisch;  Gordon N. Inglis;  Sierra V. Petersen;  Navjit Sagoo;  Clay R. Tabor;  Kaustubh Thirumalai;  Jiang Zhu;  Natalie J. Burls;  Gavin L. Foster;  Yves Goddéris;  Brian T. Huber;  Linda C. Ivany;  Sandra Kirtland Turner;  Daniel J. Lunt;  Jennifer C. McElwain;  Benjamin J. W. Mills;  Bette L. Otto-Bliesner;  Andy Ridgwell;  Yi Ge Zhang
收藏  |  浏览/下载:14/0  |  提交时间:2020/11/09
Daily Cropland Soil NOx Emissions Identified by TROPOMI and SMAP 期刊论文
Geophysical Research Letters, 2020
作者:  Daniel E. Huber;  Allison L. Steiner;  Eric A. Kort
收藏  |  浏览/下载:7/0  |  提交时间:2020/11/09
The enigma of Oligocene climate and global surface temperature evolution 期刊论文
Proceedings of the National Academy of Science, 2020
作者:  Charlotte L. O’Brien;  Matthew Huber;  Ellen Thomas;  Mark Pagani;  James R. Super;  Leanne E. Elder;  Pincelli M. Hull
收藏  |  浏览/下载:8/0  |  提交时间:2020/10/12
Monumental architecture at Aguada Fenix and the rise of Maya civilization 期刊论文
NATURE, 2020
作者:  Bedding, Timothy R.;  Murphy, Simon J.;  Hey, Daniel R.;  Huber, Daniel;  Li, Tanda;  Smalley, Barry;  Stello, Dennis;  White, Timothy R.;  Ball, Warrick H.;  Chaplin, William J.;  Colman, Isabel L.;  Fuller, Jim;  Gaidos, Eric;  Harbeck, Daniel R.;  Hermes, J. J.;  Holdsworth, Daniel L.;  Li, Gang;  Li, Yaguang;  Mann, Andrew W.;  Reese, Daniel R.;  Sekaran, Sanjay;  Yu, Jie;  Antoci, Victoria;  Bergmann, Christoph;  Brown, Timothy M.;  Howard, Andrew W.;  Ireland, Michael J.;  Isaacson, Howard;  Jenkins, Jon M.;  Kjeldsen, Hans;  McCully, Curtis;  Rabus, Markus;  Rains, Adam D.;  Ricker, George R.;  Tinney, Christopher G.;  Vanderspek, Roland K.
收藏  |  浏览/下载:30/0  |  提交时间:2020/07/03

Archaeologists have traditionally thought that the development of Maya civilization was gradual, assuming that small villages began to emerge during the Middle Preclassic period (1000-350 bc  dates are calibrated throughout) along with the use of ceramics and the adoption of sedentism(1). Recent finds of early ceremonial complexes are beginning to challenge this model. Here we describe an airborne lidar survey and excavations of the previously unknown site of Aguada Fenix (Tabasco, Mexico) with an artificial plateau, which measures 1,400 m in length and 10 to 15 m in height and has 9 causeways radiating out from it. We dated this construction to between 1000 and 800 bc using a Bayesian analysis of radiocarbon dates. To our knowledge, this is the oldest monumental construction ever found in the Maya area and the largest in the entire pre-Hispanic history of the region. Although the site exhibits some similarities to the earlier Olmec centre of San Lorenzo, the community of Aguada Fenix probably did not have marked social inequality comparable to that of San Lorenzo. Aguada Fenix and other ceremonial complexes of the same period suggest the importance of communal work in the initial development of Maya civilization.


Lidar survey of the Maya lowlands uncovers the monumental site of Aguada Fenix, which dates to around 1000-800 bc and points to the role of communal construction in the development of Maya civilization.


  
Interannual Variability of the Outflow of Weddell Sea Bottom Water 期刊论文
GEOPHYSICAL RESEARCH LETTERS, 2020, 47 (4)
作者:  Gordon, Arnold L.;  Huber, Bruce A.;  Abrahamsen, E. Povl
收藏  |  浏览/下载:3/0  |  提交时间:2020/07/02
Video-based AI for beat-to-beat assessment of cardiac function 期刊论文
NATURE, 2020, 580 (7802) : 252-+
作者:  Pleguezuelos-Manzano, Cayetano;  Puschhof, Jens;  Huber, Axel Rosendahl;  van Hoeck, Arne;  Wood, Henry M.;  Nomburg, Jason;  Gurjao, Carino;  Manders, Freek;  Dalmasso, Guillaume;  Stege, Paul B.;  Paganelli, Fernanda L.;  Geurts, Maarten H.;  Beumer, Joep;  Mizutani, Tomohiro;  Miao, Yi;  van der Linden, Reinier;  van der Elst, Stefan;  Garcia, K. Christopher;  Top, Janetta;  Willems, Rob J. L.;  Giannakis, Marios;  Bonnet, Richard;  Quirke, Phil;  Meyerson, Matthew;  Cuppen, Edwin;  van Boxtel, Ruben;  Clevers, Hans
收藏  |  浏览/下载:117/0  |  提交时间:2020/07/03

A video-based deep learning algorithm-EchoNet-Dynamic-accurately identifies subtle changes in ejection fraction and classifies heart failure with reduced ejection fraction using information from multiple cardiac cycles.


Accurate assessment of cardiac function is crucial for the diagnosis of cardiovascular disease(1), screening for cardiotoxicity(2) and decisions regarding the clinical management of patients with a critical illness(3). However, human assessment of cardiac function focuses on a limited sampling of cardiac cycles and has considerable inter-observer variability despite years of training(4,5). Here, to overcome this challenge, we present a video-based deep learning algorithm-EchoNet-Dynamic-that surpasses the performance of human experts in the critical tasks of segmenting the left ventricle, estimating ejection fraction and assessing cardiomyopathy. Trained on echocardiogram videos, our model accurately segments the left ventricle with a Dice similarity coefficient of 0.92, predicts ejection fraction with a mean absolute error of 4.1% and reliably classifies heart failure with reduced ejection fraction (area under the curve of 0.97). In an external dataset from another healthcare system, EchoNet-Dynamic predicts the ejection fraction with a mean absolute error of 6.0% and classifies heart failure with reduced ejection fraction with an area under the curve of 0.96. Prospective evaluation with repeated human measurements confirms that the model has variance that is comparable to or less than that of human experts. By leveraging information across multiple cardiac cycles, our model can rapidly identify subtle changes in ejection fraction, is more reproducible than human evaluation and lays the foundation for precise diagnosis of cardiovascular disease in real time. As a resource to promote further innovation, we also make publicly available a large dataset of 10,030 annotated echocardiogram videos.