People look at the stars. 

People look at the stars. 

Astrometry is a way to study the sky.
Long ago, people made star catalogues. These are lists of stars and their locations. An ancient Greek named Hipparchus made a list of 850 stars. Later, Ptolemy made a list of 1,022 stars. In the 1600s, Tycho Brahe used big tools to measure stars. He was much more accurate than those before him.
Today, we use tools in space. This helps us avoid the Earth's atmosphere. The atmosphere can blur our view. The Hipparcos satellite went into orbit in 1989. It measured over 118,000 stars. Then, the Gaia satellite launched in 2013. Gaia is 100 times more precise than Hipparcos. It can map one billion stars!

Astrometry is a special branch of astronomy. It focuses on making very precise measurements of stars and other objects in space.
How does this work in practice? Astronomers look for tiny changes in position. One way is by measuring stellar parallax. This happens when we see a star shift slightly because of Earth's motion. 
People have been making star catalogues for a very long time. Around 190 BC, a Greek astronomer named Hipparchus used older lists to discover Earth's precession. He also made a list of at least 850 stars. Later, Ptolemy included 1,022 stars in his work called the Almagest. In the 10th century, Abd al-Rahman al-Sufi described star colors and positions in his Book of Fixed Stars. The Egyptian mathematician Ibn Yunus used a large astrolabe to track the Sun. Later, the Danish astronomer Tycho Brahe used big instruments to get much better accuracy.
Modern astrometry has changed a lot with new technology. Friedrich Bessel is called the father of modern astrometry. In 1872, William Huggins used spectroscopy to measure how fast stars move. By the 1980s, new sensors called CCDs replaced old photographic plates. This made measurements much more precise and cheaper to do. The Hipparcos satellite launched in 1989 to work in space. It measured the positions of 118,218 stars during its four-year mission. In 2013, the Gaia satellite launched to improve this work even more. Gaia is 100 times more precise than Hipparcos and can map a billion stars.
Today, astrometry connects to many things we study. It helps us find new worlds orbiting other stars. It also helps us find dwarf planets like Quaoar and Sedna. 
Astrometry is a specialized branch of astronomy. It focuses on the precise measurement of the positions and movements of stars and other celestial bodies.
One primary mechanism used in astrometry is stellar parallax. This occurs when an observer sees a star shift its apparent position due to the motion of the Earth. Astronomers can also detect extrasolar planets using astrometric techniques. As a planet orbits its parent star, it pulls on that star through gravity. This causes the star to move in a tiny, measurable displacement around a mutual center of mass. 
Astrometry also plays a vital role in tracking near-Earth objects. Astronomers use large-area cameras to take photographs of the sky at specific intervals. By comparing these images, they can spot objects moving against the fixed background of distant stars. Once movement is detected, scientists compensate for the parallax caused by Earth's own motion. They then calculate the heliocentric distance, which is the distance from the Sun to the object. This process is critical for asteroid impact avoidance and discovering new worlds.
The history of astrometry is deeply tied to the development of star catalogues. Around 190 BC, the Greek astronomer Hipparchus compiled a catalogue of at least 850 stars. He used the work of predecessors like Timocharis and Aristillus to discover Earth's precession. Later, Ptolemy included 1,022 stars in his work, the Almagest. In the 10th century, Abd al-Rahman al-Sufi described star colors and magnitudes in his Book of Fixed Stars. By the 16th century, Tycho Brahe used large mural instruments to reach a precision of 15–35 arcseconds. 
Modern astrometry began to take shape with Friedrich Bessel, often called the father of modern astrometry. In 1807, he refined star catalogues, and later made the first measurement of stellar parallax. He measured 0.3 arcseconds for the binary star 61 Cygni. In the 1980s, charge-coupled devices, or CCDs, replaced older photographic plates. This technology reduced optical uncertainties to just one milliarcsecond. This shift made the field much more affordable and accessible to amateur astronomers.
Space-based missions have revolutionized the precision of these measurements. In 1989, the European Space Agency launched the Hipparcos satellite. It operated for four years and determined the positions and motions of 118,218 stars. The mission produced a Tycho catalog containing 1,058,332 stars. In 2013, the Gaia satellite was launched to improve upon this work. Gaia improved precision by a factor of 100 and enabled the mapping of one billion stars.
Today, astrometric data is used to study many complex cosmic phenomena. It helps astrophysicists constrain models of celestial mechanics. By measuring the velocities of pulsars, scientists can limit the perceived asymmetry of supernova explosions. Astrometry is also used to determine how dark matter is distributed throughout the galaxy. It even assists in keeping time on Earth. Coordinated Universal Time is synchronized to Earth's rotation through exact astronomical observations. Through these precise measurements, we continue to uncover the history and future of the Universe.
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