窪蹋勛圖厙

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Wide view of the universe
One of the first images taken by the Vera C. Rubin Observatory. 窪蹋勛圖厙 faculty, students and staff played a critical role in bringing Rubin online. Photo: NSFDOE Vera C. Rubin Observatory

A new era of astronomy and astrophysics began Monday when the first images captured by the NSFDOE were released, demonstrating the extraordinary capabilities of the new telescope and the worlds largest digital camera.

Officials in Washington, D.C., unveiled large, ultra-high-definition images and videos, as well as discoveries of thousands of new asteroids. Astronomers and researchers around the world watched along at viewing parties, including at the 窪蹋勛圖厙s Planetarium.

An image from the Rubin Observatory that reveals the clouds of gas and dust that comprise the Trifid nebula (top) and the Lagoon nebula, which are several thousand light-years away from Earth. Photo: NSFDOE Vera C. Rubin Observatory

The images offer a preview of the most comprehensive census of the solar system scientists have ever conducted, and a peek into the exponential increase in discoveries and understanding of the cosmos this new telescope will make possible.

The 窪蹋勛圖厙 was one of the founding members of Rubins ambitious undertaking and will play a key role in making sense of the discoveries. 窪蹋勛圖厙 scientists and engineers were critical in advocating for the project, designing the observatory and developing the software that will analyze the petabytes of data from Rubins telescope, including the asteroid discovery algorithms.

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窪蹋勛圖厙 faculty recognized early on that dreaming big about Rubins capabilities and leading the scientific charge would shape our knowledge of the solar system and propel innovation in data science not only in astrophysics but also across disciplines,” said 窪蹋勛圖厙 Provost Tricia R. Serio. “We often talk about the impact the 窪蹋勛圖厙 is making here and around the world. This project will take us far into space and give us information about the very origins of the universe and set the stage for future discoveries we can’t even imagine today.”

From its peak in the Chilean Andes, Rubins Simonyi Survey Telescope will scan the sky with its 8.4-meter mirror and enormous 3,200-megapixel camera, the largest digital camera in the world. The telescopes sight path, the pace and frequency of observations and the vast field of vision required a new type of discovery algorithm to reliably make sense of the troves of data collected. Scientists and researchers at the 窪蹋勛圖厙 worked across disciplines to evolve data science and computer science to meet Rubins demands.

In 2017, the 窪蹋勛圖厙 with founding support from the Charles and Lisa Simonyi Fund for Arts and Sciences established the , or DiRAC. The Institute, part of the , aims to be an interdisciplinary hub to address fundamental questions about the origins and evolution of the universe. Leaders recognized that the future of astrophysics relied on using software as the chief instrument for this exploration. Combined with the 窪蹋勛圖厙s and the deep connections to the Pacific Northwests tech community, DiRAC has developed a global reputation for working toward new discoveries.

As the Rubin sets out on a 10-year mission to conduct the Legacy Survey of Space and Time (LSST), software created at the 窪蹋勛圖厙 will be pivotal as scientists advance understanding of the cosmos and the origins of the solar system. 窪蹋勛圖厙’s faculty, students and staff have played key roles in the construction of this new facility They’ve also been pivotal in developing the algorithms that keep the telescope image sharp and creating the codes for mapping the solar system and discovering the most energetic and rarest phenomena in what astrophysicists call the 窪蹋勛圖厙’s , a professor of astronomy, is the director of the federally-funded Rubin Construction Project.泭

Unlike other telescopes which tend to focus and zoom in on a few objects of interest Rubin is alone in the capability to quickly and repeatedly map the entire visible sky.泭

Rubin has the unprecedented capacity to capture the cosmos, said , a professor of astronomy and director of 窪蹋勛圖厙s . Hes also the co-principal investigator of the supported LSST Interdisciplinary Network for Collaboration and Computing (LINCC) Frameworks program to develop state-of-the-art analysis techniques capable of meeting Rubins scale and complexity.

Rubin will deliver the largest map the universe ever made: tens of billions of galaxies, billions of stars and millions of new small bodies in our own solar system. Its a data analysis endeavor of epic proportions, Connolly said.泭

For each object Rubin observes, there will be much more than a static image, the technology will produce a thousand-frame movie: trillions of measurements of billions of objects, said , a research associate professor and the science lead of Rubins time-domain software team.

With these data, scientists will better understand the universe, chronicle its evolution, and delve into science ranging from dangerous asteroids to the mysteries of dark energy, Bellm said.

For example, the 窪蹋勛圖厙s team helped create simulation software to predict Rubins discoveries. The research found that the telescope will map more than 5 million main-belt asteroids, 127,000 near-Earth objects, 109,000 Trojan asteroids that share Jupiters orbit, 37,000 trans-Neptunian objects and about 2,000 Centaurs, or orbit-crossing objects.泭

These objects, revealed in color and in more detail than was previously possible, help tell the story of the solar systems origins, said , a professor of astronomy and the principal investigator of 窪蹋勛圖厙s Rubin team.

Juric said that Rubin will help answer some fundamental questions: How did the planets form? Is there an unknown planet hiding in the outskirts of our solar system? Did comets bring water to the Earth? Or asteroids? And are there any that could still collide with us today?

The first look we share today is a glimpse into the transformational capacity Rubin will bring to answer questions like these, Juric said.

The work to support the Rubin Observatory hasnt been limited to 窪蹋勛圖厙 faculty. Numerous 窪蹋勛圖厙 undergraduate and doctoral students have played contributing roles, authoring important journal articles, developing simulation software and writing complex computer codes.泭

Exposure to the LSST has helped prepare students to succeed post graduation, whether applying for work in industry or moving onto advanced academic degrees.

Developing cloud-based analytics platforms, or building pipelines to process large amounts of imaging data, are skills that allow one to do not just cutting-edge astronomy but also any other data-intensive problem, said Steven Stetzler, who recently completed doctoral work at 窪蹋勛圖厙 and now holds a postdoctoral appointment at NASAs Jet Propulsion Laboratory.

For more information, contact Juric at mjuric@uw.edu or James Davenport at jrad@uw.edu.泭