Weber Touts Second Amendment Rights – The SandPaper

By Eric Englund | on July 29, 2020

New Jerseys 3rd Congressional District Independent candidate Martin Weber is vowing to preserve the spirit and legality of the Second Amendment. The seat is currently held by Democrat Andy Kim.

The Second Amendment needs to be defended for the law-abiding citizens, said Weber. When you look at many gun owners here in the 3rd District, you see people who are hunters and those who use them for sport and recreation.

The candidate does recognize the calls by advocates to ensure there are reasonable regulations and background checks.

I firmly believe that if you want to own a gun, you should be trained, certified and registered, Weber said as he calls for creating a program that has individuals complete a one-time certification course in which they learn how to properly handle and maintain their firearm. You have people out there who buy a gun and injure themselves, sometimes fatally, while trying to clean it.

He said there is a role for such groups as the National Rifle Association and even retired military and law enforcement personnel to properly train gun owners.

Weber will be speaking at a Second Amendment rally that is being organized by 2nd District Libertarian candidate Jesse Ehrnstrom on Saturday, Aug. 22, from 11 a.m. to 4 p.m. at 290 Route 72 in Barnegat Township. Others scheduled to speak include Second Amendment advocate Anthony Colandro and 4th District Libertarian candidate Michael Rufo.

For more information about the campaign, visit martinweberforcongress.com or Facebook at Martin Weber for Congress.

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An open letter to the National Rifle Association: Help us fight those jack-booted government thugs – Chicago Sun-Times

Dear NRA,

We need you.

For years you warned us that the right to bear arms was necessary to the security of a free State, to safeguard against tyrannical government, and to ward off jack-booted government thugs with the power to take away our constitutional rights, break in our doors, seize our guns, destroy our property, and even injure or kill us.

And for years we criticized you, thinking tyranny unlikely.

But we were wrong.

And now we need you and your well-regulated militia.

Unmarked troops in unmarked vans are preying on citizens who are exercising the right of the people peaceably to assemble and to petition the government for a redress of grievances.

As you yourselves have lamented, not too long ago, it was unthinkable for federal agents wearing Nazi bucket helmets and black storm trooper uniforms to attack law-abiding citizens.

And yet here we are. With that reality before us. Unable to protect ourselves from this violent oppressor.

For a few reasons.

For one thing, were a feeble bunch. So many of us vegan. So many of us anemic as a result. With the weak handshakes and infirm morals that follow. And although we typically struggle with even normal uses of force, were particularly sensitive to excessive uses of force, finding them generally disagreeable and upsetting to our constitution.

Should Sprouts or Whole Foods make available a fermented or probiotic-and-prebiotic-enriched use of force, wed happily reevaluate. But, in the interim, since your systems seem more iron-rich, we need you. To join us. To stand by our side. To be strong when we cant.

Second, were ill-equipped and unarmed. Our fanny packs and old-timey bicycles are poor counters to their M16s and MRAPs. And although were open to arming ourselves, it appears to be a non-starter, as one of us who tried showing up armed in Austin was murdered. In cold blood. In plain view of others.

And rather than being sadly eulogized for it as a victim of murder, he was instead criticized by the president of the Austin Police Association for having exercised his second amendment rights. In Texas. A state so aggressively pro-Second Amendment that it ranks at or near the top of nearly every statistical category involving firearms licensing and registration. Suggesting, perhaps, that were not as good as you are at bearing arms in a manner that is both non-self-endangering, and uninviting of criticism post-having-been-murdered.

And since youve repeatedly stated that to stop a bad guy with a gun, it takes a good guy with a gun, we need you. To join us. To stand by our side. To be our good guys with guns.

Last, we lack your relationships. Your political connections. The goodwill built from decades of campaign contributions. We, it appears, have fomented the opposite of goodwill, having repeatedly accused our elected representatives of corruption, bribery and despotic behaviour, accusations which, in hindsight, could perhaps have been more tactfully made. So we need you. To join us. To stand by our side. To be the mutual friend on this quarrelsome email intro whom we politely thank and move to bcc.

So please, NRA. Rise up. Be our strongmen. Our good guys. Our friends.

Because we need you.

Your brothers and sisters,

PortlandSeattleAustinOaklandLos Angeles

Pardis Parker is a stand-up comedian and the creator and star of Comedy Centrals Mideast Minute a fake news show that tries to convince Middle Easterners that everythings OK in the Middle East. You can find him online at pardisparker.com and @pardisparker.

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An open letter to the National Rifle Association: Help us fight those jack-booted government thugs - Chicago Sun-Times

Four MI Congressional races and a surge in absentee ballots: What we’re following this primary – Michigan Radio

In a year marked by a pandemic and a large social justice movement, many Michiganders will be heading to the polls on August 4 to cast votes in a wide array of primary campaigns and initiatives. Rather, many Michiganders - nearly two million of them - will be casting absentee ballots across the state in what is sure to be a primary unlike the state has seen before.

Here's a look at the four major primaries we're keeping an eye on, as well as how to ensure your ballot is counted in this unprecedented voting year.

3rd Congressional District: U.S. Representative

When U.S. Rep. Justin Amash announced in April he was launching a presidential exploratory committee, political Twitter was abuzz. He created a similar buzz last summer when he announced he was "declaring his independence" to focus on a current issue in the United States: the two-party system.

Amash announced in May he was ending his presidential bid because circumstances dont lend themselves to my success as a candidate for president this year, and earlier this month, via Twitter, appeared to confirm reports that he would not be seeking re-election for his Congressional seat. Amash has held the seat since 2011.

In the midst of all of this, numerous candidates have popped up in the 3rd Congressional District, which includes the city of Grand Rapids and Ionia, Barry, and Calhoun counties.The district has traditionally gone red in previous elections.

For the Democratic Party, five candidates announced they were running, but four did not make the ballot or have since withdrawn, leaving Hillary Scholten as the only candidate still in the running. Scholten worked for the Department of Justice under the Obama administration and then joined the Michigan Immigrant Rights Center as a staff attorney. Michigan Radio's Dustin Dwyer reported in 2019 that "only one other Democrat, Richard Vander Veen, has been elected to represent the Grand Rapids area in Congress in the past 100 years."

We know that the people of west Michigan care about the things I care about, Scholten said when she announced her run in 2019. Having accessible, affordable health care for all Americans, supporting our public schools and ending gun violence.

Under the Republican Party, eight candidates announced they were running, but only five have made it to the primary ballot.

Lynn Afendoulis currently serves District 73 of the Michigan House, and has since 2019. Afendoulis was a newspaper journalist before turning to a career in business. According to a statement on her website, Afendoulis is running because "West Michigan needs someone who will actively represent them and will work with President Trump to defend our borders, stand up to China, and protect the American Dream." You can learn more about her decision to run.

Thirty-one-year-old Peter Meijer, grandson of the late retail industry titan Fred Meijer, is also in the running on the Republican ticket.

We need to secure our borders. We need to bring our troops home from senseless wars," Meijer said when he announced his campaign in 2019. And we need health care to not bankrupt families and education should be within reach.

Last fall, the ACLU of Michigan filedformal complaint of discrimination against Meijer after hebarred "London-based act Drag Syndrome from performing at his venue, the Tanglefoot Building, during Grand Rapids annual ArtPrize event," according to reporting by Michigan Radio's Caroline Llanes.

Also running is Joe Farrington, a former school teacher and current bar owner from Ionia. In a debate between Republican candidates last winter, Farrington was the "only one who openly criticized President Trump during the debate, calling the tax cuts 'nonsense,' and saying he thinks the border wall is a bad idea. He also drew shouts after declaring himself 'pro-choice' during the debate," Dwyer reported.

I was the first candidate to file against Justin Amash, Tom Norton, of Sand Lake, said at the same debate. I filed because we werent being represented at all.

Norton is a former village president in Kent County and a former member of the Army National Guard.

Rounding out the candidates is Emily Rafi, who initially planned to run as a Democrat before switching to the Republican Party. Rafi is a business transaction attorney and has not held an office before. According to a statement on her website, "The Democratic Party ignores the will of the American people and is therefore un-Democratic, un-American and is not operating in our Nations best interest."

8th Congressional District: U.S. Representative

Current incumbent U.S. Rep. Elissa Slotkin (D) faces opposition from four Republican candidates in the 8th District, a district "drawn (and redrawn) to increasingly favor Republicans. GOP congressmen held the seat for nearly 20 years, and voters went for Trump in 2016. Then, in 2018, it flipped, booting out incumbent Mike Bishop and electing political newcomer Slotkin," according to Michigan Radio's political reporting project, The 8th. The 8th District includes Ingham County, Livingston County, and Oakland County.

Howell resident Mike Detmer first began campaigning for the state legislature before turning his sights on the congressional seat. According to reporting from Michigan Radio's Kate Wells, Detmer has "campaigned heavily on being a 'grassroots' candidate, appealing to conservative groups active on Facebook and showing up to a gun rights rally and a Livingston County meeting about creating a Second Amendment 'sanctuary.'

From Wells: AlanHoover, a Marine veteran who served in Iraq, is a vocal advocate for veterans issues and stresses his powerful personal story growing up in poverty. He refers to his military service frequently, and talks about the deep state he believes liberals are using to undermine the country.

Paul Junge is a former prosecutor and Lansing news anchor. According to 2019 FEC filings, Junge has raised approximately $273,000, the most of any candidate at the time.Ladies and gentlemen, we would all be good Repbulican votes. But well need financial resources to defeat Slotkin and the left wing, Junge told a crowd at a candidate forum in February.

Kristina Lyke is a family law attorney with a private practice in Lansing. On her website, Lyke explains that she's running because "our Constitutional rights are under attack by the radical left. Our current representative, Elissa Slotkin, is too obsessed with her hatred for the President to effectively represent our district."

For a more in depth look at the candidates, read more of Kate Wells's reporting on The 8th.

11th Congressional District: U.S. Representative

Current incumbment U.S. Rep.Haley Stevens (D) faces opposition from five Republican candidates in the 11th Congressional District, which includes portions of Oakland and Wayne counties. Stevens has served the district since 2019, following the retirement of Rep. David Trott (R).

Frank Acosta is running because "the current Democrat majority in the House of Representatives is leading this country off a cliff. Rather than legislate, they only produce media sound bites," according to a statement on his website. Acosta supports right-to-life initiatives, "intelligent immigration" and border securities, and the appointment of Constitutional originalist judges.

Kerry Bentivolio previously served as the representative for the 11th District from 2013 to 2015. He ran as a write-in candidate against Trott in 2014, losing by a large margin. Bentivolio also ran in 2018, but finished last in the primary. He was an educator for 15 years and served in the U.S. Army, both in Vietnam and Operation Iraqi Freedom. On his website, Bentivolio describes himself as a "constitutional conservative with libertarian leanings," and "believes in individual liberties and hopes to avoid careless foreign intervention."

On her website, Carmelita Greco describes herself as a mother, entrepreneur, and non-profit leader. In a statement on the site, Greco says she's running "because she understands that we need people in Washington who stand for the principles of lower taxes, less government and more freedom."

Eric Esshaki, a lawyer from Birmingham, announced his campaign in November."I think that we need to focus on health care, I think we need to focus on the economy, I think we need to focus on education. And quite frankly, at a higher level, I think we need to focus on having a discourse that's civil," Esshaki said in November. In April, Esshaki brought and won a suit against the State of Michigan to extend the filing deadline for candidates trying to get on the August primary ballot. Due to the COVID-19 crisis and Governor Gretchen Whitmer's stay-at-home order, candidates were unable to go door to door to get the necessary signatures.

Whittney Williams, a first-generation immigrant from Taiwan, announced her campaign in August 2019.Williams currently serves as the Director of Diversity for the 11th District Republican Committee. She's held that role since 2018.

13th Congressional District: U.S. Representative

Incumbent U.S. Rep. Rashida Tlaib (D) faces an uphill battle to re-election, facing opposition from Democratic candidate Brenda Jones, and three Republican primary candidates in the 13th Congressional District. The district covers portions of Wayne County, including portions of the city of Detroit.

Jonesis president of the Detroit City Council and announced her campaign in March of this year.Jones says what sets her apart from other candidates is her connection to the community she hopes to represent, Michigan Radio's Caroline Llanes reported. I've been on the ground doing this for the last 15 years. I've been a councilperson for 15 years, and a council president for the last two terms. And so I've been connecting with the people on the ground.

Jones held the seat for 35 days in 2018, when she won a special election following the resignation of Rep. John Conyers. Tlaib won the race for the full two-year term.

Since she's been in office, Tlaib has been a vocal opponent of President Donald Trump and his administration. Prior to her election to the U.S. House, Tlaib was a member of the 6th and 12th districts of the Michigan House of Representatives. She's also beenendorsedby House Speaker Nancy Pelosi.

On the republican ticket, three candidates have emerged.David Dudenhoefer has served as thedistrict chair for the 13th Congressional District Republican Committee since 2013, according to his website.Alfred Lemmo is a retired mechanical engineer, who believes that "government has strayed far from what our Founding Fathers originally intended for the governments role in our lives," according to his website. Linda Sawyer, a nurse, is also running. According to her website, she doesn't feel that "Rashida respects everyone...especially Jewish people."She has previously served as a Wayne County Republican Committee member.

Absentee Voting

The COVID-19 pandemic has changed many things about the way Michiganders are living. Election day is no exception. Michigan's Secretary of State Office has seen an influx in absentee voting requests --up 350% compared to the same time ahead of the 2016 state primary -- and many voters will be heading to different polling locations in order to prevent the spread of COVID-19.

Michigan Secretary of State Jocelyn Benson is encouraging voters to return the ballots as soon as possible, preferably by dropping them off at your local clerk's office. She also is preparing voters to expect delayed election results following Tuesday's primary. For more information on your best bet for voting on Aug. 4, check out our guide.

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Four MI Congressional races and a surge in absentee ballots: What we're following this primary - Michigan Radio

Global Macrofiltration Market: Affected Analysis by COVID 19 on Industry with Leading Players like- Amiad Water Systems, Ascension Industries, Inc.,…

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Global Macrofiltration Market: Affected Analysis by COVID 19 on Industry with Leading Players like- Amiad Water Systems, Ascension Industries, Inc.,...

Sound Physicians’ Partner Hospitals Recognized as Top Facilities in the Country – Benzinga

TACOMA, Wash., July 30, 2020 /PRNewswire/ --Sound Physicians is honored to share that three of the top five hospitals on the Best Hospitals of America list are Sound Physicians' partners John Peter Smith Hospital Health Network (JPS) in Fort Worth, TX; Ascension Seton Northwest Hospital in Austin, TX; and Mercy HealthWest Hospital in Cincinnati, OH. The Best Hospitals of America list reflects a ranking system developed by the Lown Institute, in partnership with the Washington Monthly, using a new methodology that takes a fresh approach to assess our nation's hospital outcomes.

The Lown Institute, a nonpartisan health care think tank, created the Best Hospitals for America ranking using data drawn from the Lown Institute Hospitals Index that measures how well hospitals care for their patients and gauges the contributions hospitals make to the country and their communities. The Lown Institute Index shows how nearly 3,300 U.S. hospitals compare on 42 performance indicators; the measures fall under three categories:

"We strive to improve quality and lower the cost of care for patients in the communities we serve, and I am proud Sound partners with three of the top five hospitals in the country who are being acknowledged for the value they provide," said Robert Bessler, MD, Founder and CEO, Sound Physicians. "We believe it's a reflection on our deep investments in our people and processes that drive reproducible outcomes for our patients and hospital partners."

Sound provides both hospital medicine and physician advisory services at JPS, who tops the Best Hospital list, delivering care for over 50% of the patients. At Ascension Seton Northwest Hospital, Sound provides both hospital medicine and telemedicine services delivering care for over 90% of the patients. And at Mercy Health West Hospital, Sound provides hospital medicine services delivering care for 75% of the patients.

For the full ranking of more than 3,200 hospitals, see the Lown Institute Hospitals Index at http://www.LownHospitalsIndex.org.

About Sound Physicians

Sound Physicians is a leading healthcare organization with a proven track record of improving quality, satisfaction, and financial performance for its partners nationwide. Sound combines a high-performance model with engaged clinicians to drive predictable and repeatable improvements in quality and cost across the acute episode of care through emergency medicine, hospital medicine, critical care, anesthesia, telemedicine, physician advisory services, and value-based care.

This press release was issued through 24-7PressRelease.com. For further information, visit http://www.24-7pressrelease.com.

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Coronavirus in Baton Rouge: Louisiana’s biggest parish not far behind Orleans in number of cases – The Advocate

As the novel coronavirus continues its mid-summer surge across the state, East Baton Rouge Parish has closed in fast on Orleans Parish for the second-highest total number of diagnosed cases in Louisiana, new health data show.

In the spring, Orleans Parish was the epicenter of the viral pandemic. But, as cases have risen and different parts of the state have flashed with outbreaks, Orleans has slowly given ground to other parishes even as it slowly adds cases.

Next-door Jefferson Parish passed Orleans in early May and continues to have the most total cases in Louisiana.

Now, East Baton Rouge, which is Louisianas most populous parish, is not far behind Orleans though it remains thousands of cases behind Jefferson, state data show.

As store manager of a Taco Bell in Denham Springs, Shonda Brown spent most of thecoronavirus pandemic laboring nonstop as an essential worker

Thats a significant change from July 1, when East Baton Rouge was more than 2,500 cases behind Orleans' total. By Friday, the gap has narrowed to 359 cases, health data show.

Susan Hassig, a Tulane University epidemiologist whose research specialty includes infectious disease outbreaks, said that, with that kind of growth, it wont be long before East Baton Rouge Parish overtakes Orleans.

She suggested Orleans residents early experience with the virus and the sharp rise in cases exacerbated by Mardi Gras have had a lingering psychological impact that has affected peoples social distancing behavior and city restrictions, which have slowed new cases.

I think the New Orleanians, you know, got the pants scared off of them with that high early spike and everything else," she said. "And, yeah, theres some people that arent masking, but there are a lot of people who are staying home and the ones that are going out are generally being really careful when they are going out."

Mayor LaToya Cantrell also eased social distancing restrictions more slowly than the state in May and more quickly instituted mask requirements in June.

Hassig pointed out that the mayor also offered pretty strong messages about the threat of the virus and the need to maintain social distancing restrictions. Cantrell has also faced strong pushback from business leaders worried about the economic and tourism impact of continued restrictions.

Through Friday, East Baton Rouge Parish has had 9,393 cases of the novel coronavirus since the virus was first detected in the parish in mid-March. The parish added 224 new cases on Friday, the third consecutive day with more than 200 cases.

During July, the parish has had 12 days with more than 200 cases and hasn't had fewer than 103 cases per day, with the exception of two days when data weren't reported.

The sharp growth in new cases has far exceeded the worst peak in April. East Baton Rouge Parish broke 9,000 cases and the 12-parish capital area broke 20,000 cases on Thursday.

Meanwhile, the Baton Rouge region has three parishes outside East Baton Rouge Parish that have had more than 2,000 cases: Livingston at 2,212, Ascension at 2,175 and Tangipahoa at 2,692.

Statewide, 67% of all people who have tested positive for the virus have recovered.

In addition to East Baton Rouges rise, the latest case figures also speak in other ways to the changing geographic nature of the virus's spread.

Since the outbreak started, Ascension had remained ahead of Livingston in cases and deaths. But, on Monday, Livingston Parish finally overtook Ascension in total case numbers.

The parishes, two of the most populous suburban parishes in the Baton Rouge area, both broke 2,000 total cases the next day, and Livingston has since widened the gap with Ascension.

The rise in cases has come amid a major testing push that has nearly doubled the daily average number of completed tests in the region since July 1, an Advocate analysis shows.

The latest increases in cases have also affected a younger portion of the population than earlier in the outbreak. Those younger demographic groups are far less likely to suffer severe health consequences or death.

But the growth in cases has still brought new strains on the health system and other negative outcomes. Based on federal benchmarks, that suggests the rising numbers cant be attributed to more testing alone.

Meanwhile, deaths from the virus, which had remained at low levels for weeks with a handful or zero fatalities each day, may be starting an upward turn.

East Baton Rouge has had 18 deaths since Sunday, while the 12-parish region has had 39.

East Baton Rouge broke 300 deaths from COVID-19 this week and had 306 as of Friday, state health data show.

Deaths from the virus typically come weeks after cases are diagnosed and people are admitted to hospitals.

As of Friday, just 14% of all staffed intensive care unit beds in the state health region that includes much of the Baton Rouge area 31 out of 221 beds -- were still available for any medical need, state data show.

In early June, bed availability was running around 40% of total capacity.

Hassig said the virus has proven itself able to take advantage of opportunities and slowly and quietly build up a critical mass.

Part of it is that Baton Rouge had a long percolating build up to this point, and now its rearing its ugly head, she said.

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Citizen journalism and technology – Qrius

Advances in technology have enabled citizens withportable equipment to film and photograph significant events and incidents, often including police responses. Sometimes these peoplerecord and post incidents of police violence, and are commonly referred to as citizen journalists.

Filming or photographing incidentsallows issues of social injustice to be exposed to a larger audience. When it involves police violence, its typically coupled with calls for greater police accountability and justice for victims.

While recording of the police has increased, its evident that the limited empirical researchthat existshas yet to examine its long-term impact on policing, police-community relations, and accountability, particularly in relation to the policing of young people and other vulnerable social groups.

But citizen journalism doesshine a clear light on systemic discrimination and racism, the most high-profile recent example being the death of George Floyd in the United States. On 25 May, Minneapolis police officers arrested George Floyd, a 46-year-old black man, after a convenience store employee called 911, alleging Floyd had passed a counterfeit bank note. Shortly after the police arrived, Floyd was pinned beneath the knee of one of the police officers for almost eight minutes, pleading with them that he couldnt breathe.

This incident was captured by several citizen journalists. One was Darnella Frazier, a teenager from Minneapolis who recorded the incident and posted her video online. This allowed the entire world to see with their own eyes what had occurred. Darnella Fraziers lawyercommented:

If it wasnt for her bravery, presence of mind, and steady hand, and her willingness to post the video on Facebook and share her trauma with the world, all four of those police officers would still be on the streets, possibly terrorising other members of the community.

Aboriginal families in Australia who have been bereaved by the deaths in custody of family membershave said thatGeorge Floyds death should act as a poignant reminder of the systemic issues in Australia.

Shining a light on Australia, its evident that the relationship and trust levels between police officers and young people are often strained, linked to the legacies of over-policingin some communities.

Theres a wealth of critical criminological research in Australia that demonstrates interactions with the police have not been positive for many social groups. The over-regulation of particular groups of young people in public spaces by the police, such as young people from Indigenous communities, from culturally and linguistically diverse backgrounds, and young people experiencing homelessness continues.

As part of a larger project analysing citizen journalism, accountability, and young peoples experience of police, we can identify several examples of the violent interactions of police with both adults and young people. These have been made publicly accessible, usually by citizen journalists, via digital media platforms, including Facebook, Instagram and YouTube, and reported on by online media outletssuch as The Guardian, The Daily Mail and Sydney Morning Herald.

The most notable recent example involves the arrest of a teenager in the inner-Sydney suburb of Surry Hills. On 1 June, a Sydneypolice officer threw a 16-year-old Indigenous boy to the ground by kicking his feet from beneath him, causing him to land face-first on the ground; all evidence of this was captured via mobile phone footage and posted on social media.In the video of the incident, the young person can be heard sayingIll crack ya across the jaw, bro before the officer walked over to him to restrain him. After the video was released publicly, New South WalesPolice Commissioner Mick Fuller made a public statement that the police officer had a bad day, which served to almost defend and rationalise this type of behaviour within the police force.

Reflecting on this incident, Redfern Legal Centre solicitor Samantha Lee said:

Aboriginal young people in particular are disproportionately policed, not only in New South Wales, but across Australia.

When evaluating the presence of police misconduct in Australia, Lee asserted that young Indigenous people are very vulnerable and its time that this particular type of police practice is put to an end.

Recordings of violent interactions such as these can ultimately have an impact on police legitimacy. Despite this, New South WalesPolice Central Metropolitan Region Commander Mick Willing said he was wary of the current environment and global anti-police protests. He also said he was concerned about others who may use this footage to inflame it and turn it into something that its not.

While citizen journalists and some media outlets do act as watchdogsby exposing injustices, the lack of an independent complaints systems and apparatus to enable systems and individuals to be held to accountis an under-addressed issue in Australia.

Traditionally in Australia, police complaints have been dealt with internally either by senior police officers or by specific departments within the police, rather than an independent office. A further issue raised by academic research is that access to justice following a police assault or misconduct continues to represent an unmet legal need.

While the judgment in Horvath v Australia clearly asserted that Australia is under an obligation to ensure that perpetrators of human rights violations, and specifically actions by police authorities, must be investigated and held to account through independent, effective and impartial investigations, little appears to have changed.

Alarmingly, citizen journalists continue to expose further cases with the incident in New South Wales occurring about six days after the recording of George Floyds death made global headlines.

Citizen journalists, investigative journalists and activists are crucial in ensuring that these realities of police-perpetrated violence are exposed. Yet, the advances in communications technologies to mobilise civic action are but one part of a much larger push for much-needed change to systems and practices that perpetuate discrimination and deny transparency, accountability and justiceto those most affected.

This article was first published on Monash Lens. Read the original article

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‘On our way to Mars’: NASA rover will look for signs of life – Associated Press

CAPE CANAVERAL, Fla. (AP) The biggest, most sophisticated Mars rover ever built a car-size vehicle bristling with cameras, microphones, drills and lasers blasted off for the red planet Thursday as part of an ambitious, long-range project to bring the first Martian rock samples back to Earth to be analyzed for evidence of ancient life.

NASAs Perseverance rode a mighty Atlas V rocket into a clear morning sky in the worlds third and final Mars launch of the summer. China and the United Arab Emirates got a head start last week, but all three missions should reach their destination in February after a journey of seven months and 300 million miles (480 million kilometers).

The plutonium-powered, six-wheeled rover will drill down and collect tiny geological specimens that will be brought home in about 2031 in a sort of interplanetary relay race involving multiple spacecraft and countries. The overall cost: more than $8 billion.

NASAs science mission chief, Thomas Zurbuchen, pronounced the launch the start of humanitys first round trip to another planet.

Oh, I loved it, punching a hole in the sky, right? Getting off the cosmic shore of our Earth, wading out there in the cosmic ocean, he said. Every time, it gets me.

In addition to potentially answering one of the most profound questions of science, religion and philosophy Is there or has there ever been life beyond Earth? the mission will yield lessons that could pave the way for the arrival of astronauts as early as the 2030s.

Theres a reason we call the robot Perseverance. Because going to Mars is hard, NASA Administrator Jim Bridenstine said just before liftoff. In this case, its harder than ever before because were doing it in the midst of a pandemic.

Shortly after liftoff, Perseverance unexpectedly went into safe mode, a sort of protective hibernation, after a temperature reading triggered an alarm. But deputy project manager Matt Wallace later said that the spacecraft appeared to be in good shape, with its temperatures back within proper limits, and that NASA will probably switch it back to its normal cruise state within a day or so.

Everything is pointing toward a healthy spacecraft ready to go to Mars and do its mission, he said.

NASAs deep-space tracking stations also had some difficulty locking onto signals from Perseverance early in the flight but eventually established a solid communication link, Wallace said.

The U.S., the only country to safely put a spacecraft on Mars, is seeking its ninth successful landing on the planet, which has proved to be the Bermuda Triangle of space exploration, with more than half of the worlds missions there burning up, crashing or otherwise ending in failure.

China is sending both a rover an orbiter. The UAE, a newcomer to outer space, has an orbiter en route.

Its the biggest stampede to Mars in spacefaring history. The opportunity to fly between Earth and Mars comes around only once every 26 months when the planets are on the same side of the sun and about as close as they can get.

The launch went off on time at 7:50 a.m. despite a 4.2-magnitude earthquake 20 minutes before liftoff that shook NASAs Jet Propulsion Laboratory in Southern California, which is overseeing the rover.

Launch controllers at Cape Canaveral wore masks and sat spaced apart because of the coronavirus outbreak, which kept hundreds of scientists and other team members away from Perseverances liftoff.

That was overwhelming. Overall, just wow! said Alex Mather, the 13-year-old Virginia schoolboy who proposed the name Perseverance in a NASA competition and watched the launch in person with his parents.

About an hour into the flight, controllers applauded, pumped their fists, exchanged air hugs and pantomimed high-fives when the rocket left Earths orbit and began hurtling toward Mars.

We have left the building. We are on our way to Mars, Perseverances chief engineer, Adam Steltzner, said from JPL.

If all goes well, the rover will descend to the Martian surface on Feb. 18, 2021, in what NASA calls seven minutes of terror, during which the craft will go from 12,000 mph (19,300 kph) to a complete stop. It is carrying 25 cameras and a pair of microphones that will enable Earthlings to vicariously tag along.

Perseverance will aim for Jezero Crater, a treacherous, unexplored expanse of boulders, cliffs, dunes and possibly rocks bearing the chemical signature of microbes from what was a lake more than 3 billion years ago. The rover will store half-ounce (15-gram) rock samples in dozens of super-sterilized titanium tubes.

It also will release a mini helicopter that will attempt the first powered flight on another planet, and test out other technology to prepare the way for future astronauts. That includes equipment for extracting oxygen from Mars thin carbon-dioxide atmosphere.

The plan is for NASA and the European Space Agency to launch a dune buggy in 2026 to fetch the rock samples, plus a rocket ship that will put the specimens into orbit around Mars. Then another spacecraft will capture the orbiting samples and bring them home.

Samples taken straight from Mars, not drawn from meteorites discovered on Earth, have long been considered the Holy Grail of Mars science, according to NASAs now-retired Mars czar, Scott Hubbard.

To definitively answer the life-beyond-Earth question, the samples must be analyzed by the best electron microscopes and other instruments, far too big to fit on a spacecraft, he said.

Ive wanted to know if there was life elsewhere in the universe since I was 9 years old. That was more than 60 years ago, Hubbard said from his Northern California cabin. But just maybe, Ill live to see the fingerprints of life come back from Mars in one of those rock samples.

___

The Associated Press Health and Science Department receives support from the Howard Hughes Medical Institutes Department of Science Education. The AP is solely responsible for all content.

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'On our way to Mars': NASA rover will look for signs of life - Associated Press

Jupiter And Its Giant Moon Dazzle In New Photos From NASAs Juno As It Marks 4 Years In Orbit – Forbes

The large white oval and jet stream in the northern latitudes of Jupiter, taken by NASA's Juno ... [+] spacecraft on perijove 28.

NASAs Juno spacecraft has sent back yet another batch of astonishing new images from Jupiterand some unique images of its moon Ganymede have also emerged.

These new images from its 28th flyby come as the solar-powered spacecraft celebrates four years in orbit around the gas giant planet, which has just come to opposition for us on Earth, along with fellow giant planet Saturn.

Jupiter as a crescent as Juno approached it at the weekend.

At Jupiter since July 5, 2016,Junohas been in an elliptical polar orbit that has it spend most of its time away from the planet.

Only every 53 days does it get close to Jupiter, but during its brief flyby it gets super-close to the planets cloud-tops to take some astonishing photos.

Each dip close to Jupiter is called aperijove, which is Greek for the extreme points in the orbit of one body around another.

Its in the few days after each perijove that Juno sends back its images via NASAs Deep Space Network.

However, NASA isnt actually responsible for most of the images we see coming from Juno at Jupiter; raw imagers from JunoCam are uploaded after each perijove and very soon freely available for citizen scientists to download and post-process into wonderful photos.

Detail on Jupiter from Juno's perijove 28 flyby on July 28, 2020.

Junos images have taught us so much about the dynamic nature of Jupiter's atmosphere in a level of detail that we haven't everseen before, especially when correlated with data from the infrared imager, magnetometer data, and with Earth-bound observations, said Kevin M. Gill, a software engineer at NASA-JPL, to me via email. Gill is one of the hardest working citizen scientists on the JunoCam. Most of the work is done when Im on lunch, abreak, or after hours, he said.

Jupiter as captured by Juno on July 28, 2020.

The public availability of Junos raw images have resulted in some incredible images including Jupiters racing stripes,its giant jet-stream,a classic Jupiter Marble portrait, anda churning Jupiter.

If you want to see more see Gills Twitter account and check-out the featured submissions page on the missions outreach website.

Jupiter's southern circumpolar cyclones, processed by citizen scientist Svetoslav Alexandrov.

Its unusual orbit enables it to take valuable scientific observations, though arguably its the wondrous images it sends back that have made it one of the most popular NASA missions yet.

The spacecrafts JunoCam shoots images as it spinsusing its basic two-megapixel, 58 field of view camera.

The first infrared images of Ganymede's northern frontier, taken by NASA's Juno spacecraft took on ... [+] Dec. 26, 2019.

Although Juno hasnt been able to study many of Jupiters 79 moons, NASA last week published images the probe managed to snap of its giant moon Ganymede. Bigger than the planet Mercury, Ganymede consists primarily of water ice and is the only moon in the solar system with its own magnetic field.

The imagestaken using Junos Jovian Infrared Auroral Mapper (JIRAM) instrument on December 26, 2019, but only published noware the first infrared images of the moons north pole.

The north pole of Ganymede can be seen in center of this annotated image taken by the JIRAM infrared ... [+] imager aboard NASA's Juno spacecraft on Dec. 26, 2019. The thick line is 0-degrees longitude.

Junos JIRAM was designed to capture the infrared light emerging from deep inside Jupiter, probing its weather down to 30 to 45 miles (50 to 70 kilometers) below Jupiters cloud tops. However, the instrument can also be used to study the moons Io, Europa, Ganymede, and Callisto.

Juno got to within 62,000 miles/100,000 kilometers of Ganymede and collected 300 infrared images of its surface.

Heres a wonderful time-lapse video from Gill that compiles images taken by JunoCam during Junes perijove 27 flyby of Jupiter:

The NASA spacecrafts scientific mission is to study Jupiters atmosphere and magnetosphere. It spends most of its time away from Jupiter taking measurements of the outer atmosphere and magnetosphere.

Juno is part of NASAs New Frontiers missions. It launched on August 5, 2011, on an Atlas V rocket, reached Jupiter in July 2016.

A fun, false-colorized Jupiter from a previous flyby, edited using Photoshop, created by citizen ... [+] scientists Gerald Eichstdt, Sen Doran and Rachel Tortorici.

Juno will complete its mission on July 30, 2021. While on its 35th and finalperijoveit will be purposely crashed into Jupiters atmosphere, where it will disintegrate.

However, Junos scientific discoveries will pave the way for the European Space Agencys JUpiter ICy moons Explorer (JUICE) mission, which from 2030 will spend over three years exploring Jupiters giant magnetosphere, turbulent atmosphere, and its moons Ganymede, Callisto and Europa.

Another view of Jupiter from Juno, taken earlier this week.

So whats most exciting to Junos citizen scientists? In addition to the obvious current choice, NASAs Perseverance Rover, I'm very excited about the Europa Clipper mission and the Dragonfly mission to Titan, said Gill. Allwillbe returning spectacular and unprecedented imagery of their respective targets.

Wishing you clear skies and wide eyes.

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Jupiter And Its Giant Moon Dazzle In New Photos From NASAs Juno As It Marks 4 Years In Orbit - Forbes

NASA’s Perseverance rover: Getting to Mars is easy, its the stopping that can kill you – Firstpost

The New York TimesJul 31, 2020 12:24:19 IST

When NASAs Perseverance rover arrives at Mars, mission managers will be watching, helpless to do anything. The $2.4 billion spacecraft will hit the top of the Martian atmosphere at more than 12,000 mph (19,312 kph) and then come to a complete stop seven minutes later.

That the one-ton (907 kg)rover will end up on Mars on the afternoon of 18 February is nearly certain (presuming it is able to launch before the middle of August, when the planet moves too far away from Earth). The spacecraft navigators will have put the robotic explorer on a collision course with the planet. The only question is whether Perseverance will be on the ground in one piece or smashed to bits.

NASA's Perseverance rover can be seen attached to a spin table during a test of its mass properties at the Kennedy Space Center in Florida. During the test, the rover was rotated clockwise and counterclockwise to determine its center of gravity. Image credit: NASA/JPL-Caltech

Spacecraft from Europe and the Soviet Union have made it all the way to the red planet, only to end up as expensive scorch marks on its dusty surface. But NASA has a good track record with Mars. It is the only space agency so far to pull off a successful mission on the surface of the red planet.

Perseverance is largely the same design as the Curiosity rover, which set down in 2012 and will have the same convoluted but now tried-and-true sky crane landing choreography.

When people look at it, it looks crazy, Adam Steltzner, a NASA engineer, said in a video that NASA produced leading up to Curiositys landing that described the components: heat shield, parachute, rocket engines and, finally, a hovering crane that lowered the rover to the surface.

Thats a very natural thing, Stelzner said. Sometimes when we look at it, it looks crazy. It is the result of reasoned, engineering thought. But it still looks crazy.

While everything worked, the engineers got a chance to take a look at what could be improved this time around.

We dont usually get a chance to kind of redo or fix the mistakes we made last time, Allen Chen, who leads the Perseverance entry, descent and landing team for NASAs Jet Propulsion Laboratory, said in an interview.

For example, Curiosity actually landed too slowly, hitting the ground at 1.4 mph instead of the 1.7 mph that had been expected. That, by itself, was not a problem. A softer landing is gentler on the spacecraft.

But the engineers wanted to understand what had happened in order to make sure that the next landing that of Perseverance did not come down faster than intended.

It turns out that their calculation of the gravity of Mars was slightly wrong. In areas of the planet that possess less mass like the 96-mile-wide crater that Curiosity landed in the pull of gravity is a bit weaker.

We didnt have sufficient fidelity in our gravity modelling to understand that the gravity there was actually different than elsewhere on the planet, Chen said. So that was one thing that we fixed.

Another component that was tweaked was the parachute that is unfurled when the spacecraft is hurtling down at supersonic speeds.

A parachute failure in a prototype test of a future Mars landing system led Chens team to make sure they had not just gotten lucky with Curiosity. That gave us pause, he said.

The engineers are now confident of Perseverances parachute after supersonic tests of a strengthened design.

One major addition to Perseverance is what NASA calls terrain-relative navigation. A camera on the spacecraft will take pictures of the landscape and match them with its stored maps. It would then steer to what looks like the safest landing spot it can. I dont need the whole place to be flat and boring, Chen said. I just need parts of it that I can reach to be flat and boring.

Without this system, there would be more than a 1-in-5 chance that Perseverance would end up somewhere unfortunate damaged by a boulder, tipped over on a steep slope or surrounded by sand traps. That would be an unacceptably high risk for such a high-profile, expensive mission.

If it works, the same technology will be used when NASA sends a mission to pick up the rock samples that Perseverance will be collecting, part of the so-called Mars sample return. That spacecraft will carry enough fuel that it is able not only to avoid obstacles but also to fly to a specific location, landing within tens of yards of the target.

Still, next Feb. 18, the control room at the Jet Propulsion Laboratory is expected to be full of nervous engineers watching the telemetry coming back from Perseverance. That data will take minutes to travel millions of miles far too far and too slow for anyone at NASA to make last-second corrections.

Mars is not for the faint of heart, Chen said.

Kenneth Changc.2020 The New York Times Company

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NASAs fifth and finest Mars rover Perseverance lifts off successfully in spite of tremors, delays, COVID-19 lockdown

NASAs Perseverance rover on its way to become fifth rover on Mars its science objectives, instruments, the Ingenuity helicopter

NASA's Perseverance rover will bring Mars rocks to Earth: Our greatest interplanetary circus act

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NASA's Perseverance rover: Getting to Mars is easy, its the stopping that can kill you - Firstpost

Celtic and Rangers title race outcome predicted by betting supercomputer – Glasgow Times

CELTIC will make history with ten in a row as the Scottish Premiership season gets underway, according to betting firm unikrn's supercomputer calculations.

Brainboxes at the bookmaker have used a number of different markets and a prediction algorithm to determine the final table and it's good news for the Hoops' quest to make history.

Rangers find themselves in a familiar spot in second place with Aberdeen booked for another bronze medal to complete the top three.

At the bottom of the table, the number crunching doesn't bode well for Hamilton, who are predicted to finish at the bottom of the table, while St Mirrens fate will be decided in the play-offs.

The system is based on factoring a range of the most informative betting markets in terms of influencing the final outcome of the season including title winner, 'without the Old Firm', bottom 6 and bottom place.

A unikrn spokesperson said: "It might not come as much of a surprise that Celtic are booked for ten in a row and our calculations read well for Hoops fans ahead of the restart. Steven Gerrard's Rangers will be hoping to run them close, but the numbers suggest they're booked for second place again.

"Things are looking bleak for Hamilton, who will fight with St Mirren to avoid finishing last and earn a last-chance place in the play-offs."

Scottish Premiership Supercomputer from unikrn

1. Celtic (1/2) (title odds)

2. Rangers (7/4)

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3. Aberdeen (2/1) (winner without Celtic and Rangers)

4. Hibernian (7/2)

5. Motherwell (5/1)

6. Kilmarnock (14/1)

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7. Livingston (2/5) (to finish bottom 6)

8. St. Johnstone (1/2)

9. Dundee United (3/5)

10. Ross County (1/10)

---

11. St Mirren (7/4) (to finish bottom)

12. Hamilton (6/4)

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Celtic and Rangers title race outcome predicted by betting supercomputer - Glasgow Times

PEARC20 Plenary Introduces Five Upcoming NSF-Funded HPC Systems – HPCwire

Five new HPC systemsthree National Science Foundation-funded Capacity systems and two Innovative Prototype/Testbed systemswill be coming online through the end of 2021. John Towns, principal investigator (PI) for XSEDE, introduced panelists who described their upcoming systems at the PEARC20 virtual conference on July 29, 2020.

The systems are part of NSFs Advanced Computing Systems & Services: Adapting to the Rapid Evolution of Science and Engineering Research solicitation. The Capacity systems, which will support a range of computation and data analytics in science and engineering, are expected to be available for allocation via XSEDEs process for projects starting Oct 1, 2021. The Innovative platforms, which will deploy specialized hardware tailored for artificial intelligence, will be available for early user access in late 2021 followed by a production period as the platforms mature.

The Practice and Experience in Advanced Research Computing (PEARC) Conference Series is a community-driven effort built on the successes of the past, with the aim to grow and be more inclusive by involving additional local, regional, national, and international cyberinfrastructure and research computing partners spanning academia, government and industry. Sponsored by the ACM, the worlds largest educational and scientific computing society, PEARC20 is now taking place online through July 31.

This years theme, Catch the Wave, embodies the spirit of the communitys drive to stay on pace and in front of all the new waves in technology, analytics, and a globally connected and diverse workforce. Scientific discovery and innovation require a robust, innovative and resilient cyberinfrastructure to support the critical research required to address world challenges in climate change, population, health, energy and environment.

Anvil: Composable, Interactive, User-Focused

Anvil, the first of the three NSF Category I Capacity Systems, was introduced by principal investigator Carol Song, senior research scientist and director of Scientific Solutions with Research Computing at Purdue University. Song stressed the capabilities of the $9.9-million system in providing composability and interactivity to meet the increasing demand for computational resources, enable new computational paradigms, expand HPC to non-traditional research domains, and train the next generation of researchers and HPC workforce.

Its not just the CPU nodes or the GPU nodes, Song said. Its the entire ecosystem that focuses on getting more users onto the significant resources.

Partnering Purdue with Dell, DDN, and Nvidia, Anvil will feature:

The system, which will have a peak performance of 5.3 petaflops, will become operational by Sept. 30, 2021, with early-user access the previous summer. It will be 90% allocated through XSEDEs XRAC allocations system, with the remainder as discretionary allocation by Purdue.

Delta: The Mark of Change

Bill Gropp, director of the National Center for Supercomputing Applications, University of Illinois Urbana-Champaign, introduced the Category I Delta system. With more than 800 late-model Nvidia GPUs, the $10-million resource will be the largest GPU system by FLOPS in NSFs portfolio at launch.

Titled after the Greek letter, the name was chosen to indicate change, said Gropp, PI of the new resource. Theres a lot of change in the hardware and software and the way we make use of the systems. Delta is intended to help drive a broader adoption of GPU technology past the end of Dennard scaling.

Delta will feature:

Delta, like Anvil, will be 90% allocated through XSEDE, will start operations on Oct. 1, 2020.

Jetstream2: An Approaching Front in Cloud HPC

Jetstream2, the final new NSF Category I system, was introduced by PI David Hancock, director for advanced cyberinfrastructure at Indiana University. Building on the success of the Jetstream system, the new $10-million supercomputer will serve a similar role in interactive, configurable computing for research and education, thanks in part to agreements with Amazon, Google, and Microsoft to support cloud compatibility.

The configuration process for Jetstream2 is in its final phases and is still ongoing, Hancock said. But the new system will feature:

The system, which will combine cyberinfrastructure from Indiana University, Arizona State University, Cornell University, the Texas Advanced Computing Center, and the University of Hawaii, is planned to begin early operations in August 2021 and production by October 2021. Additional partners include the University of Arizona, Johns Hopkins University [Galaxy team], and UCAR [Unidata team]. The system vendor partner for the project will be Dell, Inc. Jetstream2 will be XSEDE-allocated.

Neocortex: The Next Leap Forward in Deep Learning

Paola Buitrago, director of Artificial Intelligence and Deep Learning at the Pittsburgh Supercomputing Center (PSC) at Carnegie Mellon University and the University of Pittsburgh, presented on the centers new NSF Category II system, Neocortex. Named for the brains center for higher functions, the new machine will serve as an experimental testbed of new technology to accelerate deep learning by orders of magnitude, similar to the sea change introduced by GPU technology in 2012.

Its innovative and its meant to be exploratory, PI Buitrago said. In particular we have one goal that we would like to scale this technology we aim to engage a wide audience and foster adoption of innovative technologies in deep learning.

The $5-million system will pair Cerebrass CS-1 and Hewlett Packard Enterprise (HPE) Superdome Flex technology to provide 800,000 AI-optimized cores with a uniquely quick interconnect. Neocortex will feature:

Neocortex will enter its early user program in the fall of 2020.

Voyager: Specialized Processors, Optimized Software for AI

Voyager, another $5-million NSF Category II system, was introduced by PI Amit Majumdar of the San Diego Supercomputer Center. Beginning with focused select projects in October 2021, the supercomputer will stress specialized processors for training and inference linked with a high-performance interconnect, x86 compute nodes, and a rich storage hierarchy.

We are most interested to see this as an experimental machine and see its impact and engagement of the user community, Majumdar said. So we will reach out to AI researchers from a wide variety of science, engineering and social sciences [fields], and there will be deep engagement with users.

Supermicro Inc. and SDSC will jointly deploy Voyager, featuring:

Specific early user applications intended for Voyager will include the use of machine learning to improve trigger, event reconstruction, and signal-to-background in high-energy physics; achieving quantum-modeling-level accuracy in molecular simulations in chemistry, biophysics, and material science; and satellite image analysis.

Voyager will follow a three-year testbed phase focused on select deep user engagement with a minimum of two years of XSEDE-allocation.

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PEARC20 Plenary Introduces Five Upcoming NSF-Funded HPC Systems - HPCwire

NIH Awards $6M to UConn Health Biological Computer Modeling Teams – HPCwire

July 28, 2020 Two UConn School of Medicine biological computer modeling groups at UConn Health have won a five-year award worth more than $6 million to continue and enhance their longstanding software resource, committed to supporting cellular biology research throughout the international scientific community.

The National Institute of General Medical Sciences at the National Institutes of Health awarded the funding toVirtual Cell (VCell)andCOPASIbased on their 20-year record of serving the research community as vital computational resources. The award assures the continued maintenance of both software tools and allows the teams to work together to support their tens of thousands of users.

COPASI is a computer program that shows how a system changes over time, and which factors might affect those changes. Originally designed for biochemistry, it is now used by researchers from many fields, from ecology to cell biology. COPASI has even been used for epidemiology: biochemist Pedro Mendes, one of the original designers of COPASI, is currently using the program to help UConn Health predict how many COVID-19 patients to expect in future weeks.

The components are molecules, but they could be people. COPASI allows you to define their dynamics, and how they interact, Mendes says.

VCell is a virtual environment that allows cell biologists to explore the spatial dimension of biochemistry in cells. It matters where a chemical reaction takes place, and how the products of that reaction might travel to a remote target; for example, a toxic molecule might be easily disarmed if it encounters a certain area of a particular cell in your kidney, but if it doesnt get there, it could stay toxic. VCell allows scientists to incorporate that kind of detail into a model, allowing scientists to simulate biochemical reactions coupled to diffusion and transport in the complex geometries of cells and tissues.

VCell also keeps a library of biological models in an openly accessible database, so researchers dont have to reinvent the wheel every time they want to model a specific biological process. And it has a dedicated supercomputer, housed at UConn Health, that researchers can access remotely to run their simulations if their own machines dont have enough computing power.

COPASI and VCell are both powerful tools on their own, but together they can do extraordinarily sophisticated things. For example, brain cells can be very long, with many fingerlike dendrites that connect with other brain cells. Researchers might use COPASI to develop a model of how such a brain cells chemistry changes over time, and then use the COPASI model inside of a VCell spatial model of a brain cell to see how the chemistry changes in different areas of the cell.

Researchers from all over the world use COPASI and VCell. Because of this NIH funding, the programs, and UConn Healths supercomputing facilities, are available to anyone who wants to use them and has an internet connection. Maintaining and improving such sophisticated computer models requires a whole team of cell biologists, physicists, programmers, and support staff. The grant will go a long way towards supporting this group and the physical infrastructure that makes biological modeling possible for researchers around the world.

Its very unusual for a single institution to have this confluence of expertise in a single area, says Les Loew, a professor of cell biology and Director of the Berlin Center for Cell Analysis and Modeling, who heads the VCell team.

Mendes adds: Both Les and I are pioneers in this field. We began working on simulation in the late 1980s, early 1990s. Its been a lifelong investment. So that working together and getting this grant is really satisfying.

Source: Kim Krieger,University of Connecticut

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NIH Awards $6M to UConn Health Biological Computer Modeling Teams - HPCwire

How Innovation & Regulation Have Changed the Nutrition Industry – Manufacturing.net

According to recentresearch,the global personalized nutrition market was valued at USD $5.59 billion in 2018 and is expected to reach an astounding USD 11.35 billion by the year 2026.

We continue to see anever-increasing trend toward healthier foods, made from ingredients found in nature that protect the planet and its inhabitants.And, as more and more consumers are selecting food based on their individual definitions of healthy, enter the age of personalized nutrition where science and technology can dictate what food is right for usnot only for weight management but, more importantly, to support our overall health and wellness.

That said, although much of this growth has been driven by an increase in consumer demand for health and wellness products. Historically, this hasnt always been the case.

Herbalife Nutrition, for 40 years, has been helping people live healthy lives through nutrition and weve seen numerous changes throughout that time. Changes that have been driven by consumer demand, or by legislation and regulation, or the implementation of innovation and technology. The purpose of these changes have been to improve consumer safety.

They have been embraced by the industry and pioneered by companies like Herbalife Nutrition who have taken a leadership role, making great investments in scientific development, technology, analytical science and manufacturing. Companies now have better and safer products and as the numbers show, have helped to increase consumer trust and use of nutritional products.

The 1980s was a decade that could be characterized as the birth of quality management, partially in response to unforeseen crises and partially because of developments in analyticial and manufacturing technology. While there was much support from consumers, the nutrition business being in its infancy, had few alternative nutrition options. .

At this time, regulations in the United States for foods, and what would later be called dietary supplements were much less comprehensive than today. Although there were regulations for approving food additives and for protecting consumers from adulterated and contaminated foods, many quality standards had not yet been developed.

On the manufacturing technology front, smart cameras were developed, and manufacturers began using machine vision systems to identify characters and dates, and conduct code verification.

In 1982, in an effort to protect consumers, the FDA issued tamper-resistant packing regulations to prevent poisonings, spurred by deaths from cyanide placed in Tylenol capsules. This was important regulation for all packaged consumer goods manufacturers, leading to the Federal Anti-Tampering Act, approved by Congress in 1983, making it a crime to tamper with packaged consumer products.

It wasnt until the 1990s that the industry saw some of the greatest advancements in helping build consumer awareness and education.

It wasnt until the Nutrition Labeling and Education Act was signed into law in 1990 that all packaged foods were required to bear nutrition labeling and all health claims for foods to be consistent with terms defined by the Secretary of Health and Human Services.

The law preempted some state requirements for food standards, nutrition labeling, and health claims and, for the first time, authorized some health claims for foods. As part of the act, food ingredient panel, serving sizes, and terms such as "low fat" and "light" were standardized.

In 1994, the Dietary Supplement Health and Education Act (DSHEA) established specific labeling requirements, provided a regulatory framework, and authorized FDA to promulgate good manufacturing practice regulations for the industry. This act defined "dietary supplements" and "dietary ingredients" and classified them as a subset of foods.

The act also established a commission to recommend how to regulate claims. Additionally, it confirmed that manufacturers and distributors of dietary supplements and dietary ingredients were prohibited from marketing products that were adulterated or misbranded. That meant that these firms were responsible for evaluating the safety and labeling of their products before marketing to ensure that they met all the requirements of DSHEA and FDA regulations.

Together with the passing of the Food and Drug Administration Modernization Act in 1997, we saw the birth of the nutrition industry as we know it today.

As the new millennium rolled around, the impact of the previous decades regulations helped build a foundation for consumer trust as companies continued to beef up their quality assurance processes. Government agencies continued to refine rules and regulations to help protect and educate.

It was not until 2006 that the industry would begin experiencing true change. On December 22, 2006, the President signed into law the Dietary Supplement and Nonprescription Drug Consumer Protection Act, which amended the Federal Food, Drug, and Cosmetic Act (FD&C Act). For the first time in US regulatory history, the Nutrition industry would be held accountable for safety surveillance and mandatory serious adverse event reporting to FDA (effective December 22, 2007).

In addition, the FDA issued in June 2007 the Dietary Supplement Current Good Manufacturing Practices (cGMP). In essence, the cGMP required that the proper controls be in place for dietary products during manufacturing, packaging, labeling, and holding operations. Large companies manufacturing and/or distributing dietary products, were expected to comply with the new regulations. And by 2009, all companies manufacturing and/or distributing dietary products, were required to comply.

These two major regulatory milestones would pave the way for industry to develop more comprehensive and standardized practices for ensuring consumer safety and product quality, both critical components for building consumer trust and regulatory parnterships for good stewardship.

Along with the industry, Hebalife Nutrition experienced great change during these years. Founded in 1980 to sell food and nutrition products, the company had a clear desire to lead the industry in quality, and eventually invested more than $300 million into scientific development, manufacturing facilities and technology, and by 2009 it established its second innovation and manufacturing facility, in Lake Forest, California.

The Company has made significant investments in technology, purchasing advanced testing equipment that was not currently being used by the industry, including a nuclear magnetic resonance (NMR), Mass spectrometry high performance liquid chromatography equipment (LCMS) , next-generation sequencing (NGS) equipment and other cutting edge technologies. The recent investment in these sequencing technologies has diversifyied the Companys Genomic/DNA laboratory to improve DNA analytical techniques for processed botanicals, including extracts, making itone of the only nutrition companies in the world to have its own comprehensive program to completely characterize botanical ingredients.

This most recent decade has been a wake-up call for those manufacturers who have not seized the opportunity to invest and improve their manufacturing processes, product claims and quality control systems. The FDA kicked off the decade in 2011 by introducing one of the most sweeping regulations, 21 CFR Part 117.

This regulation, also known as the Food Safety Modernization Act (FSMA), provided the FDA with new enforcement authorities related to food and food safety standards, also giving them the tools to hold imported foods to the same standards as domestic foods, and directing FDA to build an integrated national food safety system in partnership with state and local authorities.

But regulations and legislation alone are not the answer to improving food quality and food safety. It is imperative that companies, academia and government partner up for the greater good and the benefit of the consumer. Those who can, have an obligation to the industry and consumers to commit to scientific research, transparency and accountability.

Examples of such partnerships includeThe Research Alliance,a partnership with The University of Guelph, a comprehensive public research university in Canada and leader in food science investigation. The Research Alliance, of which Herbalife Nutrition is a founding member, is designed to develop new, mutually agreed standards for the industry, including:

I believe that companies who have committed great amounts of resources, including manpower and financial investment to these systems, have created an atmosphere of transparency and earned consumer trust, positioning themselves for the next decade as industry leaders.

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How Innovation & Regulation Have Changed the Nutrition Industry - Manufacturing.net

Clinical Nutritional Supplements Market Analysis With Key Players, Applications, Trends And Forecasts To 2027 – Connected Lifestyle

Clinical Nutritional Supplements Market

DataIntelo, 30-07-2020: The research report on the Clinical Nutritional Supplements Market is a deep analysis of the market. This is a latest report, covering the current COVID-19 impact on the market. The pandemic of Coronavirus (COVID-19) has affected every aspect of life globally. This has brought along several changes in market conditions. The rapidly changing market scenario and initial and future assessment of the impact is covered in the report. Experts have studied the historical data and compared it with the changing market situations. The report covers all the necessary information required by new entrants as well as the existing players to gain deeper insight.

Furthermore, the statistical survey in the report focuses on product specifications, costs, production capacities, marketing channels, and market players. Upstream raw materials, downstream demand analysis, and a list of end-user industries have been studied systematically, along with the suppliers in this market. The product flow and distribution channel have also been presented in this research report.

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Clinical Nutritional Supplements Market Analysis With Key Players, Applications, Trends And Forecasts To 2027 - Connected Lifestyle

Portuguese consulate for Macau and HK received 1,500 residence requests this year – Macau Business

The Consulate General of Portugal in Macau and Hong Kong has registered about 1,500 requests from people wanting to live in the country, Consul Paulo Cunha Alves announced today (Thursday).

The information was advanced during the webinar Invest in Portugal. Your Next Place, whose main mission was to attract investment and promote Portugal as an investment destination for citizens of Macau and Hong Kong.

Alves explained that in the first semester the number of people who applied to the Macau-based consulate for a criminal record was around 1,500.

The criminal record is one of the requirements for the gold visa and residency process in Portugal.

Total investment raised through gold visas increased 2.9 per cent in the first half, compared to the same period in 2019, to 383 million euros, according to accounts made by Lusa based on SEF statistics.

In the first six months of the year, the total investment resulting from the granting of a Residence Permit for Investment (ARI) amounted to 383 million euros, 2.9 per cent more in the first half of 2019.

In June, a company specializing in obtaining gold visas in Portugal told Lusa that requests for information from Hong Kong residents soared after Beijings announcement about the national security law imposed on the former British colony.

At the event, which had as one of the organizers the aicepPortugalGlobal Trade&Investment Agency(AICEP), Consul Paulo Cunha Alves also underlined the success of foreign investment in Portugal and which places the country on the radar of several companies in the world.

Alves also said that the Portuguese consulate will always be available to support investments through Hong Kong and Macau.

Meanwhile, the investment advisor at the Portuguese Embassy in Beijing, Patrcia Conceio, said that foreign investment is central to the countrys economy

It has a tremendous impact on all companies, he stressed.

In order to capture the attention of investors attending the online conference, Patrcia Conceio said that Portugal is the second safest country in the European Union, according to the index of security threats.

The fact that Portugal is part of the European Union and that it is a link to Portuguese-speaking countries gives potential investors access to a market of more than 700 million people, she emphasized.

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Portuguese consulate for Macau and HK received 1,500 residence requests this year - Macau Business

Astronomy – Wikipedia

Not to be confused with astrology, the pseudoscience.

Scientific study of celestial objects and phenomena

Astronomy (from Greek: ) is a natural science that studies celestial objects and phenomena. It uses mathematics, physics, and chemistry in order to explain their origin and evolution. Objects of interest include planets, moons, stars, nebulae, galaxies, and comets. Relevant phenomena include supernova explosions, gamma ray bursts, quasars, blazars, pulsars, and cosmic microwave background radiation. More generally, astronomy studies everything that originates outside Earth's atmosphere. Cosmology is a branch of astronomy. It studies the Universe as a whole.[1]

Astronomy is one of the oldest natural sciences. The early civilizations in recorded history made methodical observations of the night sky. These include the Babylonians, Greeks, Indians, Egyptians, Chinese, Maya, and many ancient indigenous peoples of the Americas. In the past, astronomy included disciplines as diverse as astrometry, celestial navigation, observational astronomy, and the making of calendars. Nowadays, professional astronomy is often said to be the same as astrophysics.[2]

Professional astronomy is split into observational and theoretical branches. Observational astronomy is focused on acquiring data from observations of astronomical objects. This data is then analyzed using basic principles of physics. Theoretical astronomy is oriented toward the development of computer or analytical models to describe astronomical objects and phenomena. These two fields complement each other. Theoretical astronomy seeks to explain observational results and observations are used to confirm theoretical results.

Astronomy is one of the few sciences in which amateurs play an active role. This is especially true for the discovery and observation of transient events. Amateur astronomers have helped with many important discoveries, such as finding new comets.

Astronomy (from the Greek from astron, "star" and - -nomia from nomos, "law" or "culture") means "law of the stars" (or "culture of the stars" depending on the translation). Astronomy should not be confused with astrology, the belief system which claims that human affairs are correlated with the positions of celestial objects.[4] Although the two fields share a common origin, they are now entirely distinct.[5]

"Astronomy" and "astrophysics" are synonyms.[6][7][8] Based on strict dictionary definitions, "astronomy" refers to "the study of objects and matter outside the Earth's atmosphere and of their physical and chemical properties,"[9] while "astrophysics" refers to the branch of astronomy dealing with "the behavior, physical properties, and dynamic processes of celestial objects and phenomena".[10] In some cases, as in the introduction of the introductory textbook The Physical Universe by Frank Shu, "astronomy" may be used to describe the qualitative study of the subject, whereas "astrophysics" is used to describe the physics-oriented version of the subject.[11] However, since most modern astronomical research deals with subjects related to physics, modern astronomy could actually be called astrophysics.[6] Some fields, such as astrometry, are purely astronomy rather than also astrophysics. Various departments in which scientists carry out research on this subject may use "astronomy" and "astrophysics", partly depending on whether the department is historically affiliated with a physics department,[7] and many professional astronomers have physics rather than astronomy degrees.[8] Some titles of the leading scientific journals in this field include The Astronomical Journal, The Astrophysical Journal, and Astronomy & Astrophysics.

In early historic times, astronomy only consisted of the observation and predictions of the motions of objects visible to the naked eye. In some locations, early cultures assembled massive artifacts that possibly had some astronomical purpose. In addition to their ceremonial uses, these observatories could be employed to determine the seasons, an important factor in knowing when to plant crops and in understanding the length of the year.[12]

Before tools such as the telescope were invented, early study of the stars was conducted using the naked eye. As civilizations developed, most notably in Mesopotamia, Greece, Persia, India, China, Egypt, and Central America, astronomical observatories were assembled and ideas on the nature of the Universe began to develop. Most early astronomy consisted of mapping the positions of the stars and planets, a science now referred to as astrometry. From these observations, early ideas about the motions of the planets were formed, and the nature of the Sun, Moon and the Earth in the Universe were explored philosophically. The Earth was believed to be the center of the Universe with the Sun, the Moon and the stars rotating around it. This is known as the geocentric model of the Universe, or the Ptolemaic system, named after Ptolemy.[13]

A particularly important early development was the beginning of mathematical and scientific astronomy, which began among the Babylonians, who laid the foundations for the later astronomical traditions that developed in many other civilizations.[15] The Babylonians discovered that lunar eclipses recurred in a repeating cycle known as a saros.[16]

Following the Babylonians, significant advances in astronomy were made in ancient Greece and the Hellenistic world. Greek astronomy is characterized from the start by seeking a rational, physical explanation for celestial phenomena.[17] In the 3rd century BC, Aristarchus of Samos estimated the size and distance of the Moon and Sun, and he proposed a model of the Solar System where the Earth and planets rotated around the Sun, now called the heliocentric model.[18] In the 2nd century BC, Hipparchus discovered precession, calculated the size and distance of the Moon and invented the earliest known astronomical devices such as the astrolabe.[19] Hipparchus also created a comprehensive catalog of 1020 stars, and most of the constellations of the northern hemisphere derive from Greek astronomy.[20] The Antikythera mechanism (c. 15080 BC) was an early analog computer designed to calculate the location of the Sun, Moon, and planets for a given date. Technological artifacts of similar complexity did not reappear until the 14th century, when mechanical astronomical clocks appeared in Europe.[21]

Medieval Europe housed a number of important astronomers. Richard of Wallingford (12921336) made major contributions to astronomy and horology, including the invention of the first astronomical clock, the Rectangulus which allowed for the measurement of angles between planets and other astronomical bodies, as well as an equatorium called the Albion which could be used for astronomical calculations such as lunar, solar and planetary longitudes and could predict eclipses. Nicole Oresme (13201382) and Jean Buridan (13001361) first discussed evidence for the rotation of the Earth, furthermore, Buridan also developed the theory of impetus (predecessor of the modern scientific theory of inertia) which was able to show planets were capable of motion without the intervention of angels.[22] Georg von Peuerbach (14231461) and Regiomontanus (14361476) helped make astronomical progress instrumental to Copernicus's development of the heliocentric model decades later.

Astronomy flourished in the Islamic world and other parts of the world. This led to the emergence of the first astronomical observatories in the Muslim world by the early 9th century.[23][24][25] In 964, the Andromeda Galaxy, the largest galaxy in the Local Group, was described by the Persian Muslim astronomer Abd al-Rahman al-Sufi in his Book of Fixed Stars.[26] The SN 1006 supernova, the brightest apparent magnitude stellar event in recorded history, was observed by the Egyptian Arabic astronomer Ali ibn Ridwan and Chinese astronomers in 1006. Some of the prominent Islamic (mostly Persian and Arab) astronomers who made significant contributions to the science include Al-Battani, Thebit, Abd al-Rahman al-Sufi, Biruni, Ab Ishq Ibrhm al-Zarql, Al-Birjandi, and the astronomers of the Maragheh and Samarkand observatories. Astronomers during that time introduced many Arabic names now used for individual stars.[27][28] It is also believed that the ruins at Great Zimbabwe and Timbuktu[29] may have housed astronomical observatories.[30] Europeans had previously believed that there had been no astronomical observation in sub-Saharan Africa during the pre-colonial Middle Ages, but modern discoveries show otherwise.[31][32][33][34]

For over six centuries (from the recovery of ancient learning during the late Middle Ages into the Enlightenment), the Roman Catholic Church gave more financial and social support to the study of astronomy than probably all other institutions. Among the Church's motives was finding the date for Easter.[35]

During the Renaissance, Nicolaus Copernicus proposed a heliocentric model of the solar system. His work was defended by Galileo Galilei and expanded upon by Johannes Kepler. Kepler was the first to devise a system that correctly described the details of the motion of the planets around the Sun. However, Kepler did not succeed in formulating a theory behind the laws he wrote down.[36] It was Isaac Newton, with his invention of celestial dynamics and his law of gravitation, who finally explained the motions of the planets. Newton also developed the reflecting telescope.[37]

Improvements in the size and quality of the telescope led to further discoveries. The English astronomer John Flamsteed catalogued over 3000 stars,[38] More extensive star catalogues were produced by Nicolas Louis de Lacaille. The astronomer William Herschel made a detailed catalog of nebulosity and clusters, and in 1781 discovered the planet Uranus, the first new planet found.[39]

During the 1819th centuries, the study of the three-body problem by Leonhard Euler, Alexis Claude Clairaut, and Jean le Rond d'Alembert led to more accurate predictions about the motions of the Moon and planets. This work was further refined by Joseph-Louis Lagrange and Pierre Simon Laplace, allowing the masses of the planets and moons to be estimated from their perturbations.[40]

Significant advances in astronomy came about with the introduction of new technology, including the spectroscope and photography. Joseph von Fraunhofer discovered about 600 bands in the spectrum of the Sun in 181415, which, in 1859, Gustav Kirchhoff ascribed to the presence of different elements. Stars were proven to be similar to the Earth's own Sun, but with a wide range of temperatures, masses, and sizes.[27]

The existence of the Earth's galaxy, the Milky Way, as its own group of stars was only proved in the 20th century, along with the existence of "external" galaxies. The observed recession of those galaxies led to the discovery of the expansion of the Universe.[41] Theoretical astronomy led to speculations on the existence of objects such as black holes and neutron stars, which have been used to explain such observed phenomena as quasars, pulsars, blazars, and radio galaxies. Physical cosmology made huge advances during the 20th century. In the early 1900s the model of the Big Bang theory was formulated, heavily evidenced by cosmic microwave background radiation, Hubble's law, and the cosmological abundances of elements. Space telescopes have enabled measurements in parts of the electromagnetic spectrum normally blocked or blurred by the atmosphere.[citation needed] In February 2016, it was revealed that the LIGO project had detected evidence of gravitational waves in the previous September.[42][43]

The main source of information about celestial bodies and other objects is visible light, or more generally electromagnetic radiation.[44] Observational astronomy may be categorized according to the corresponding region of the electromagnetic spectrum on which the observations are made. Some parts of the spectrum can be observed from the Earth's surface, while other parts are only observable from either high altitudes or outside the Earth's atmosphere. Specific information on these subfields is given below.

Radio astronomy uses radiation with wavelengths greater than approximately one millimeter, outside the visible range.[45] Radio astronomy is different from most other forms of observational astronomy in that the observed radio waves can be treated as waves rather than as discrete photons. Hence, it is relatively easier to measure both the amplitude and phase of radio waves, whereas this is not as easily done at shorter wavelengths.[45]

Although some radio waves are emitted directly by astronomical objects, a product of thermal emission, most of the radio emission that is observed is the result of synchrotron radiation, which is produced when electrons orbit magnetic fields.[45] Additionally, a number of spectral lines produced by interstellar gas, notably the hydrogen spectral line at 21cm, are observable at radio wavelengths.[11][45]

A wide variety of other objects are observable at radio wavelengths, including supernovae, interstellar gas, pulsars, and active galactic nuclei.[11][45]

Infrared astronomy is founded on the detection and analysis of infrared radiation, wavelengths longer than red light and outside the range of our vision. The infrared spectrum is useful for studying objects that are too cold to radiate visible light, such as planets, circumstellar disks or nebulae whose light is blocked by dust. The longer wavelengths of infrared can penetrate clouds of dust that block visible light, allowing the observation of young stars embedded in molecular clouds and the cores of galaxies. Observations from the Wide-field Infrared Survey Explorer (WISE) have been particularly effective at unveiling numerous Galactic protostars and their host star clusters.[47][48]With the exception of infrared wavelengths close to visible light, such radiation is heavily absorbed by the atmosphere, or masked, as the atmosphere itself produces significant infrared emission. Consequently, infrared observatories have to be located in high, dry places on Earth or in space.[49] Some molecules radiate strongly in the infrared. This allows the study of the chemistry of space; more specifically it can detect water in comets.[50]

Historically, optical astronomy, also called visible light astronomy, is the oldest form of astronomy.[51] Images of observations were originally drawn by hand. In the late 19th century and most of the 20th century, images were made using photographic equipment. Modern images are made using digital detectors, particularly using charge-coupled devices (CCDs) and recorded on modern medium. Although visible light itself extends from approximately 4000 to 7000 (400 nm to 700nm),[51] that same equipment can be used to observe some near-ultraviolet and near-infrared radiation.

Ultraviolet astronomy employs ultraviolet wavelengths between approximately 100 and 3200 (10 to 320nm).[45] Light at those wavelengths is absorbed by the Earth's atmosphere, requiring observations at these wavelengths to be performed from the upper atmosphere or from space. Ultraviolet astronomy is best suited to the study of thermal radiation and spectral emission lines from hot blue stars (OB stars) that are very bright in this wave band. This includes the blue stars in other galaxies, which have been the targets of several ultraviolet surveys. Other objects commonly observed in ultraviolet light include planetary nebulae, supernova remnants, and active galactic nuclei.[45] However, as ultraviolet light is easily absorbed by interstellar dust, an adjustment of ultraviolet measurements is necessary.[45]

X-ray astronomy uses X-ray wavelengths. Typically, X-ray radiation is produced by synchrotron emission (the result of electrons orbiting magnetic field lines), thermal emission from thin gases above 107 (10million) kelvins, and thermal emission from thick gases above 107 Kelvin.[45] Since X-rays are absorbed by the Earth's atmosphere, all X-ray observations must be performed from high-altitude balloons, rockets, or X-ray astronomy satellites. Notable X-ray sources include X-ray binaries, pulsars, supernova remnants, elliptical galaxies, clusters of galaxies, and active galactic nuclei.[45]

Gamma ray astronomy observes astronomical objects at the shortest wavelengths of the electromagnetic spectrum. Gamma rays may be observed directly by satellites such as the Compton Gamma Ray Observatory or by specialized telescopes called atmospheric Cherenkov telescopes.[45] The Cherenkov telescopes do not detect the gamma rays directly but instead detect the flashes of visible light produced when gamma rays are absorbed by the Earth's atmosphere.[52]

Most gamma-ray emitting sources are actually gamma-ray bursts, objects which only produce gamma radiation for a few milliseconds to thousands of seconds before fading away. Only 10% of gamma-ray sources are non-transient sources. These steady gamma-ray emitters include pulsars, neutron stars, and black hole candidates such as active galactic nuclei.[45]

In addition to electromagnetic radiation, a few other events originating from great distances may be observed from the Earth.

In neutrino astronomy, astronomers use heavily shielded underground facilities such as SAGE, GALLEX, and Kamioka II/III for the detection of neutrinos. The vast majority of the neutrinos streaming through the Earth originate from the Sun, but 24 neutrinos were also detected from supernova 1987A.[45] Cosmic rays, which consist of very high energy particles (atomic nuclei) that can decay or be absorbed when they enter the Earth's atmosphere, result in a cascade of secondary particles which can be detected by current observatories.[53] Some future neutrino detectors may also be sensitive to the particles produced when cosmic rays hit the Earth's atmosphere.[45]

Gravitational-wave astronomy is an emerging field of astronomy that employs gravitational-wave detectors to collect observational data about distant massive objects. A few observatories have been constructed, such as the Laser Interferometer Gravitational Observatory LIGO. LIGO made its first detection on 14 September 2015, observing gravitational waves from a binary black hole.[54] A second gravitational wave was detected on 26 December 2015 and additional observations should continue but gravitational waves require extremely sensitive instruments.[55][56]

The combination of observations made using electromagnetic radiation, neutrinos or gravitational waves and other complementary information, is known as multi-messenger astronomy.[57][58]

One of the oldest fields in astronomy, and in all of science, is the measurement of the positions of celestial objects. Historically, accurate knowledge of the positions of the Sun, Moon, planets and stars has been essential in celestial navigation (the use of celestial objects to guide navigation) and in the making of calendars.

Careful measurement of the positions of the planets has led to a solid understanding of gravitational perturbations, and an ability to determine past and future positions of the planets with great accuracy, a field known as celestial mechanics. More recently the tracking of near-Earth objects will allow for predictions of close encounters or potential collisions of the Earth with those objects.[59]

The measurement of stellar parallax of nearby stars provides a fundamental baseline in the cosmic distance ladder that is used to measure the scale of the Universe. Parallax measurements of nearby stars provide an absolute baseline for the properties of more distant stars, as their properties can be compared. Measurements of the radial velocity and proper motion of stars allows astronomers to plot the movement of these systems through the Milky Way galaxy. Astrometric results are the basis used to calculate the distribution of speculated dark matter in the galaxy.[60]

During the 1990s, the measurement of the stellar wobble of nearby stars was used to detect large extrasolar planets orbiting those stars.[61]

Theoretical astronomers use several tools including analytical models and computational numerical simulations; each has its particular advantages. Analytical models of a process are better for giving broader insight into the heart of what is going on. Numerical models reveal the existence of phenomena and effects otherwise unobserved.[62][63]

Theorists in astronomy endeavor to create theoretical models and from the results predict observational consequences of those models. The observation of a phenomenon predicted by a model allows astronomers to select between several alternate or conflicting models as the one best able to describe the phenomena.

Theorists also try to generate or modify models to take into account new data. In the case of an inconsistency between the data and model's results, the general tendency is to try to make minimal modifications to the model so that it produces results that fit the data. In some cases, a large amount of inconsistent data over time may lead to total abandonment of a model.

Phenomena modeled by theoretical astronomers include: stellar dynamics and evolution; galaxy formation; large-scale distribution of matter in the Universe; origin of cosmic rays; general relativity and physical cosmology, including string cosmology and astroparticle physics. Astrophysical relativity serves as a tool to gauge the properties of large scale structures for which gravitation plays a significant role in physical phenomena investigated and as the basis for black hole (astro)physics and the study of gravitational waves.

Some widely accepted and studied theories and models in astronomy, now included in the Lambda-CDM model are the Big Bang, dark matter and fundamental theories of physics.

A few examples of this process:

Along with Cosmic inflation, dark matter and dark energy are the current leading topics in astronomy,[64] as their discovery and controversy originated during the study of the galaxies.

Astrophysics is the branch of astronomy that employs the principles of physics and chemistry "to ascertain the nature of the astronomical objects, rather than their positions or motions in space".[65][66] Among the objects studied are the Sun, other stars, galaxies, extrasolar planets, the interstellar medium and the cosmic microwave background.[67][68] Their emissions are examined across all parts of the electromagnetic spectrum, and the properties examined include luminosity, density, temperature, and chemical composition. Because astrophysics is a very broad subject, astrophysicists typically apply many disciplines of physics, including mechanics, electromagnetism, statistical mechanics, thermodynamics, quantum mechanics, relativity, nuclear and particle physics, and atomic and molecular physics.

In practice, modern astronomical research often involves a substantial amount of work in the realms of theoretical and observational physics. Some areas of study for astrophysicists include their attempts to determine the properties of dark matter, dark energy, and black holes; whether or not time travel is possible, wormholes can form, or the multiverse exists; and the origin and ultimate fate of the universe.[67] Topics also studied by theoretical astrophysicists include Solar System formation and evolution; stellar dynamics and evolution; galaxy formation and evolution; magnetohydrodynamics; large-scale structure of matter in the universe; origin of cosmic rays; general relativity and physical cosmology, including string cosmology and astroparticle physics.

Astrochemistry is the study of the abundance and reactions of molecules in the Universe, and their interaction with radiation.[69] The discipline is an overlap of astronomy and chemistry. The word "astrochemistry" may be applied to both the Solar System and the interstellar medium. The study of the abundance of elements and isotope ratios in Solar System objects, such as meteorites, is also called cosmochemistry, while the study of interstellar atoms and molecules and their interaction with radiation is sometimes called molecular astrophysics. The formation, atomic and chemical composition, evolution and fate of molecular gas clouds is of special interest, because it is from these clouds that solar systems form.

Studies in this field contribute to the understanding of the formation of the Solar System, Earth's origin and geology, abiogenesis, and the origin of climate and oceans.

Astrobiology is an interdisciplinary scientific field concerned with the origins, early evolution, distribution, and future of life in the universe. Astrobiology considers the question of whether extraterrestrial life exists, and how humans can detect it if it does.[70] The term exobiology is similar.[71]

Astrobiology makes use of molecular biology, biophysics, biochemistry, chemistry, astronomy, physical cosmology, exoplanetology and geology to investigate the possibility of life on other worlds and help recognize biospheres that might be different from that on Earth.[72] The origin and early evolution of life is an inseparable part of the discipline of astrobiology.[73] Astrobiology concerns itself with interpretation of existing scientific data, and although speculation is entertained to give context, astrobiology concerns itself primarily with hypotheses that fit firmly into existing scientific theories.

This interdisciplinary field encompasses research on the origin of planetary systems, origins of organic compounds in space, rock-water-carbon interactions, abiogenesis on Earth, planetary habitability, research on biosignatures for life detection, and studies on the potential for life to adapt to challenges on Earth and in outer space.[74][75][76]

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Cosmology (from the Greek (kosmos) "world, universe" and (logos) "word, study" or literally "logic") could be considered the study of the Universe as a whole.

Observations of the large-scale structure of the Universe, a branch known as physical cosmology, have provided a deep understanding of the formation and evolution of the cosmos. Fundamental to modern cosmology is the well-accepted theory of the Big Bang, wherein our Universe began at a single point in time, and thereafter expanded over the course of 13.8 billion years[77] to its present condition.[78] The concept of the Big Bang can be traced back to the discovery of the microwave background radiation in 1965.[78]

In the course of this expansion, the Universe underwent several evolutionary stages. In the very early moments, it is theorized that the Universe experienced a very rapid cosmic inflation, which homogenized the starting conditions. Thereafter, nucleosynthesis produced the elemental abundance of the early Universe.[78] (See also nucleocosmochronology.)

When the first neutral atoms formed from a sea of primordial ions, space became transparent to radiation, releasing the energy viewed today as the microwave background radiation. The expanding Universe then underwent a Dark Age due to the lack of stellar energy sources.[79]

A hierarchical structure of matter began to form from minute variations in the mass density of space. Matter accumulated in the densest regions, forming clouds of gas and the earliest stars, the Population III stars. These massive stars triggered the reionization process and are believed to have created many of the heavy elements in the early Universe, which, through nuclear decay, create lighter elements, allowing the cycle of nucleosynthesis to continue longer.[80]

Gravitational aggregations clustered into filaments, leaving voids in the gaps. Gradually, organizations of gas and dust merged to form the first primitive galaxies. Over time, these pulled in more matter, and were often organized into groups and clusters of galaxies, then into larger-scale superclusters.[81]

Various fields of physics are crucial to studying the universe. Interdisciplinary studies involve the fields of quantum mechanics, particle physics, plasma physics, condensed matter physics, statistical mechanics, optics, and nuclear physics.

Fundamental to the structure of the Universe is the existence of dark matter and dark energy. These are now thought to be its dominant components, forming 96% of the mass of the Universe. For this reason, much effort is expended in trying to understand the physics of these components.[82]

The study of objects outside our galaxy is a branch of astronomy concerned with the formation and evolution of Galaxies, their morphology (description) and classification, the observation of active galaxies, and at a larger scale, the groups and clusters of galaxies. Finally, the latter is important for the understanding of the large-scale structure of the cosmos.

Most galaxies are organized into distinct shapes that allow for classification schemes. They are commonly divided into spiral, elliptical and Irregular galaxies.[83]

As the name suggests, an elliptical galaxy has the cross-sectional shape of an ellipse. The stars move along random orbits with no preferred direction. These galaxies contain little or no interstellar dust, few star-forming regions, and older stars. Elliptical galaxies are more commonly found at the core of galactic clusters, and may have been formed through mergers of large galaxies.

A spiral galaxy is organized into a flat, rotating disk, usually with a prominent bulge or bar at the center, and trailing bright arms that spiral outward. The arms are dusty regions of star formation within which massive young stars produce a blue tint. Spiral galaxies are typically surrounded by a halo of older stars. Both the Milky Way and one of our nearest galaxy neighbors, the Andromeda Galaxy, are spiral galaxies.

Irregular galaxies are chaotic in appearance, and are neither spiral nor elliptical. About a quarter of all galaxies are irregular, and the peculiar shapes of such galaxies may be the result of gravitational interaction.

An active galaxy is a formation that emits a significant amount of its energy from a source other than its stars, dust and gas. It is powered by a compact region at the core, thought to be a super-massive black hole that is emitting radiation from in-falling material.

A radio galaxy is an active galaxy that is very luminous in the radio portion of the spectrum, and is emitting immense plumes or lobes of gas. Active galaxies that emit shorter frequency, high-energy radiation include Seyfert galaxies, Quasars, and Blazars. Quasars are believed to be the most consistently luminous objects in the known universe.[84]

The large-scale structure of the cosmos is represented by groups and clusters of galaxies. This structure is organized into a hierarchy of groupings, with the largest being the superclusters. The collective matter is formed into filaments and walls, leaving large voids between.[85]

The Solar System orbits within the Milky Way, a barred spiral galaxy that is a prominent member of the Local Group of galaxies. It is a rotating mass of gas, dust, stars and other objects, held together by mutual gravitational attraction. As the Earth is located within the dusty outer arms, there are large portions of the Milky Way that are obscured from view.

In the center of the Milky Way is the core, a bar-shaped bulge with what is believed to be a supermassive black hole at its center. This is surrounded by four primary arms that spiral from the core. This is a region of active star formation that contains many younger, population I stars. The disk is surrounded by a spheroid halo of older, population II stars, as well as relatively dense concentrations of stars known as globular clusters.[86]

Between the stars lies the interstellar medium, a region of sparse matter. In the densest regions, molecular clouds of molecular hydrogen and other elements create star-forming regions. These begin as a compact pre-stellar core or dark nebulae, which concentrate and collapse (in volumes determined by the Jeans length) to form compact protostars.[87]

As the more massive stars appear, they transform the cloud into an H II region (ionized atomic hydrogen) of glowing gas and plasma. The stellar wind and supernova explosions from these stars eventually cause the cloud to disperse, often leaving behind one or more young open clusters of stars. These clusters gradually disperse, and the stars join the population of the Milky Way.[88]

Kinematic studies of matter in the Milky Way and other galaxies have demonstrated that there is more mass than can be accounted for by visible matter. A dark matter halo appears to dominate the mass, although the nature of this dark matter remains undetermined.[89]

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Astronomy - Wikipedia

astronomy | Definition & Facts | Britannica

Astronomy, science that encompasses the study of all extraterrestrial objects and phenomena. Until the invention of the telescope and the discovery of the laws of motion and gravity in the 17th century, astronomy was primarily concerned with noting and predicting the positions of the Sun, Moon, and planets, originally for calendrical and astrological purposes and later for navigational uses and scientific interest. The catalog of objects now studied is much broader and includes, in order of increasing distance, the solar system, the stars that make up the Milky Way Galaxy, and other, more distant galaxies. With the advent of scientific space probes, Earth also has come to be studied as one of the planets, though its more-detailed investigation remains the domain of the Earth sciences.

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Astronomy is the study of objects and phenomena beyond Earth. Astronomers study objects as close as the Moon and the rest of the solar system through the stars of the Milky Way Galaxy and out to distant galaxies billions of light-years away.

Since the late 19th century, astronomy has expanded to include astrophysics, the application of physical and chemical knowledge to an understanding of the nature of celestial objects and the physical processes that control their formation, evolution, and emission of radiation. In addition, the gases and dust particles around and between the stars have become the subjects of much research. Study of the nuclear reactions that provide the energy radiated by stars has shown how the diversity of atoms found in nature can be derived from a universe that, following the first few minutes of its existence, consisted only of hydrogen, helium, and a trace of lithium. Concerned with phenomena on the largest scale is cosmology, the study of the evolution of the universe. Astrophysics has transformed cosmology from a purely speculative activity to a modern science capable of predictions that can be tested.

Its great advances notwithstanding, astronomy is still subject to a major constraint: it is inherently an observational rather than an experimental science. Almost all measurements must be performed at great distances from the objects of interest, with no control over such quantities as their temperature, pressure, or chemical composition. There are a few exceptions to this limitationnamely, meteorites (most of which are from the asteroid belt, though some are from the Moon or Mars), rock and soil samples brought back from the Moon, samples of comet and asteroid dust returned by robotic spacecraft, and interplanetary dust particles collected in or above the stratosphere. These can be examined with laboratory techniques to provide information that cannot be obtained in any other way. In the future, space missions may return surface materials from Mars, or other objects, but much of astronomy appears otherwise confined to Earth-based observations augmented by observations from orbiting satellites and long-range space probes and supplemented by theory.

A central undertaking in astronomy is the determination of distances. Without a knowledge of astronomical distances, the size of an observed object in space would remain nothing more than an angular diameter and the brightness of a star could not be converted into its true radiated power, or luminosity. Astronomical distance measurement began with a knowledge of Earths diameter, which provided a base for triangulation. Within the inner solar system, some distances can now be better determined through the timing of radar reflections or, in the case of the Moon, through laser ranging. For the outer planets, triangulation is still used. Beyond the solar system, distances to the closest stars are determined through triangulation, in which the diameter of Earths orbit serves as the baseline and shifts in stellar parallax are the measured quantities. Stellar distances are commonly expressed by astronomers in parsecs (pc), kiloparsecs, or megaparsecs. (1 pc = 3.086 1018 cm, or about 3.26 light-years [1.92 1013 miles].) Distances can be measured out to around a kiloparsec by trigonometric parallax (see star: Determining stellar distances). The accuracy of measurements made from Earths surface is limited by atmospheric effects, but measurements made from the Hipparcos satellite in the 1990s extended the scale to stars as far as 650 parsecs, with an accuracy of about a thousandth of an arc second. The Gaia satellite is expected to measure stars as far away as 10 kiloparsecs to an accuracy of 20 percent. Less-direct measurements must be used for more-distant stars and for galaxies.

Two general methods for determining galactic distances are described here. In the first, a clearly identifiable type of star is used as a reference standard because its luminosity has been well determined. This requires observation of such stars that are close enough to Earth that their distances and luminosities have been reliably measured. Such a star is termed a standard candle. Examples are Cepheid variables, whose brightness varies periodically in well-documented ways, and certain types of supernova explosions that have enormous brilliance and can thus be seen out to very great distances. Once the luminosities of such nearer standard candles have been calibrated, the distance to a farther standard candle can be calculated from its calibrated luminosity and its actual measured intensity. (The measured intensity [I] is related to the luminosity [L] and distance [d] by the formula I = L/4d2.) A standard candle can be identified by means of its spectrum or the pattern of regular variations in brightness. (Corrections may have to be made for the absorption of starlight by interstellar gas and dust over great distances.) This method forms the basis of measurements of distances to the closest galaxies.

The second method for galactic distance measurements makes use of the observation that the distances to galaxies generally correlate with the speeds with which those galaxies are receding from Earth (as determined from the Doppler shift in the wavelengths of their emitted light). This correlation is expressed in the Hubble law: velocity = H distance, in which H denotes Hubbles constant, which must be determined from observations of the rate at which the galaxies are receding. There is widespread agreement that H lies between 67 and 73 kilometres per second per megaparsec (km/sec/Mpc). H has been used to determine distances to remote galaxies in which standard candles have not been found. (For additional discussion of the recession of galaxies, the Hubble law, and galactic distance determination, see physical science: Astronomy.)

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astronomy | Definition & Facts | Britannica

Astronomy for Beginners | Night Sky Facts, FAQs …

Ali Matinfar captured this image of stargazers under the Milky Way from the Mesr Desert in Iran. Ali Matinfar / Online Photo Gallery

Did the astronomy bug bite you while you were out last night? Feeling inspired to learn about the wonders of the sky, the solar system, and all the science behind them? Let this page serve as your guide to astronomy for beginners.

Check out what's up in the night sky this week. Get advice for buying your first telescope. And find the best coverage youll find online of upcoming celestial events such as eclipses and meteor showers.

The best guide to astronomy for beginners is the night sky. All you really need to do to get started is look up preferably at night! You'll find an amazing treasure chest of astronomical wonders, even if you don't have a telescope.

Our most popular (and free) offering, "This Week's Sky at a Glance," guides you to the naked-eye sky, highlighting the major constellations and planets viewable in the evening sky, with occasional dips into deep-sky territory. (Download the free app for iTunes or Android.)

If you'd rather listen while under the stars, download our monthly astronomy podcast and take it with you when you venture out tonight for a guided tour to the night sky.

Or do your own sleuthing with our interactive sky chart.

If there are any major celestial events, such as comets, eclipses, or meteor showers, you'll find all the latest information (including instructions on where to look and detailed sky charts) in our observing news section.

Even though you don't need to know the Greek names of the constellations or understand the nature of black holes in order to relish the night sky, you might want to anyway. We provide a rich supply of information and resources on astronomy for beginners.

You'll also find a growing supply of answers to frequently-asked astronomy questions, be they related to the hobby or science of astronomy.

The naked-eye sky is full of astronomical treasures, and it gets even better with a little magnification. But don't feel you have to go out and buy a high-power telescope right away. Often the best first telescope is a pair of binoculars. Binoculars can give you the wide-field view that's essential to really learning your way around the night sky. Find out more about choosing and using binoculars here.

Once you're ready for a telescope, we have more than a few words of advice! You'll want to check out two digestible articles on the topic of choosing your first telescope: "What to Know Before Buying a Telescope" and "How to Choose a Telescope." You might also be interested in our video guides to choosing, using, and equipping your telescope.

Once you're ready to take on deep-sky challenges, such as spotting faint galaxies and fuzzy nebulae, prepare for a dive into deep celestial seas with Sky & Telescope's Deep-Sky Observing Collection.

And if you're looking to get started in astrophotography, be sure to check out our free Astrophotography Primer. Enter your email to download the ebook for free, plus receive our weekly e-newsletter with the latest astronomy news.

Astronomy can be an enlightening solitary activity, but it can also be fun to have company and advice from seasoned experts. Discover astronomy clubs and other organizations near you or find local astronomy-related events in our events calendar. (Or if you're already involved, submit your own club or event.)

Also, keep up with the Sky & Telescope community online at Facebook, Twitter, or Instagram.

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Astronomy for Beginners | Night Sky Facts, FAQs ...

What is Astronomy? Definition & History | Space

Humans have long gazed toward the heavens, searching to put meaning and order to the universe around them. Although the movement of constellations patterns imprinted on the night sky were the easiest to track, other celestial events such as eclipses and the motion of planets were also charted and predicted.

Definition of astronomy: Astronomy is the study of the sun, moon, stars, planets, comets, gas, galaxies, gas, dust and other non-Earthly bodies and phenomena. In curriculum for K-4 students, NASA defines astronomy as simple "the study of stars, planets and space." Astronomy and astrology were historically associated, but astrology is not a science and is no longer recognized as having anything to do with astronomy. Below we discuss the history of astronomy and related fields of study, including cosmology.

Historically, astronomy has focused on observations of heavenly bodies. It is a close cousin to astrophysics. Succinctly put, astrophysics involves the study of the physics of astronomy and concentrates on the behavior, properties and motion of objects out there. However, modern astronomy includes many elements of the motions and characteristics of these bodies, and the two terms are often used interchangeably today.

Modern astronomers tend to fall into two fields: the theoretical and the observational.

Unlike most other fields of science, astronomers are unable to observe a system entirely from birth to death; the lifetime of worlds, stars, and galaxies span millions to billions of years. Instead, astronomers must rely on snapshots of bodies in various stages of evolution to determine how they formed, evolved and died. Thus, theoretical and observational astronomy tend to blend together, as theoretical scientists use the information actually collected to create simulations, while the observations serve to confirm the models or to indicate the need for tweaking them.

Astronomy is broken down into a number of subfields, allowing scientists to specialize in particular objects and phenomena.

Planetary astronomers (also called planetary scientists) focus on the growth, evolution, and death of planets. While most study the worlds inside the solar system, some use the growing body of evidence about planets around other stars to hypothesize what they might be like. According to the University College London, planetary science "is a cross-discipline field including aspects of astronomy, atmospheric science, geology, space physics, biology and chemistry."

Stellar astronomers turn their eyes to the stars, including the black holes, nebulae, white dwarfs and supernova that survive stellar deaths. The University of California, Los Angeles, says, "The focus of stellar astronomy is on the physical and chemical processes that occur in the universe."

Solar astronomers spend their time analyzing a single star our sun. According to NASA, "The quantity and quality of light from the sun varies on time scales from milli-seconds to billions of years." Understanding those changes can help scientists recognize how Earth is affected. The sun also helps us to understand how other stars work, as it is the only star close enough to reveal details about its surface.

Galactic astronomers study our galaxy, the Milky Way, while extragalactic astronomers peer outside of it to determine how these collections of stars form, change, and die. The University of Wisconsin-Madison says, "Establishing patterns in the distribution, composition, and physical conditions of stars and gas traces the history of our evolving home galaxy."

Cosmologists focus on the universe in its entirety, from its violent birth in the Big Bang to its present evolution, all the way to its eventual death. Astronomy is often (not always) about very concrete, observable things, whereas cosmology typically involves large-scale properties of the universe and esoteric, invisible and sometimes purely theoretical things like string theory, dark matter and dark energy, and the notion of multiple universes.

Astronomical observers rely on different wavelengths of the electromagnetic spectrum (from radio waves to visible light and on up to X-rays and gamma-rays) to study the wide span of objects in the universe. The first telescopes focused on simple optical studies of what could be seen with the naked eye, and many telescopes continue that today. [Celestial Photos: Hubble Space Telescope's Latest Cosmic Views]

But as light waves become more or less energetic, they move faster or slower. Different telescopes are necessary to study the various wavelengths. More energetic radiation, with shorter wavelengths, appears in the form of ultraviolet, X-ray, and gamma-ray wavelengths, while less energetic objects emit longer-wavelength infrared and radio waves.

Astrometry, the most ancient branch of astronomy, is the measure of the sun, moon and planets. The precise calculations of these motions allows astronomers in other fields to model the birth and evolution of planets and stars, and to predict events such as eclipses meteor showers, and the appearance of comets. According to the Planetary Society, "Astrometry is the oldest method used to detect extrasolar planets," though it remains a difficult process.

Early astronomers noticed patterns in the sky and attempted to organize them in order to track and predict their motion. Known as constellations, these patterns helped people of the past to measure the seasons. The movement of the stars and other heavenly bodies was tracked around the world, but was prevalent in China, Egypt, Greece, Mesopotamia, Central America and India.

The image of an astronomer is a lone soul at a telescope during all hours of the night. In reality, most hard-core astronomy today is done with observations made at remote telescopes on the ground or in space that are controlled by computers, with astronomers studying computer-generated data and images.

Since the advent of photography, and particularly digital photography, astronomers have provided amazing pictures of space that not only inform science but enthrall the public. [All-Time Great Galaxy Photos]

Astronomers and spaceflight programs also contribute to the study of our own planet, when missions primed at looking outward (or travelling to the moon and beyond) look back and snap great pictures of Earth from space.

Follow Nola Taylor Redd at @NolaTRedd, Facebook, or Google+. Follow us at @Spacedotcom, Facebook or Google+.

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What is Astronomy? Definition & History | Space