Definition of planet
The definition of planet, since the word was coined by the ancient Greeks, has included within its scope a wide range of celestial bodies. Greek astronomers employed the term asteres planetai (ἀστέρες πλανῆται), "wandering stars", for star-like objects which apparently moved over the sky. Over the millennia, the term has included a variety of different objects, from the Sun and the Moon to satellites and asteroids.
In modern astronomy, there are two primary conceptions of a 'planet'. Disregarding the often inconsistent technical details, they are whether an astronomical body moves like a planet (that is, whether its orbit and relationship to other bodies are similar to those of the classical planets) or whether it looks like a planet (that is, whether it is round or has planetary geology). These may be characterized as the orbital definition and the geophysical definition.
The issue of a clear definition for planet came to a head in January 2005 with the discovery of the trans-Neptunian object Eris, a body more massive than the smallest then-accepted planet, Pluto. In its August 2006 response, the International Astronomical Union (IAU), recognised by astronomers as the world body responsible for resolving issues of nomenclature, released its decision on the matter during a meeting in Prague. This definition, which applies only to the Solar System (though exoplanets had been addressed in 2003), states that a planet is a body that orbits the Sun, is massive enough for its own gravity to make it round, and has " cleared its neighbourhood" of smaller objects approaching its orbit. Under this formalized definition, Pluto and other trans-Neptunian objects do not qualify as planets. The IAU's decision has not resolved all controversies, and while many astronomers have accepted it, some planetary scientists have rejected it outright, proposing a geophysical or similar definition instead.
While knowledge of the planets predates history and is common to most civilizations, the word planet dates back to ancient Greece. Most Greeks believed the Earth to be stationary and at the center of the universe in accordance with the geocentric model and that the objects in the sky, and indeed the sky itself, revolved around it (an exception was Aristarchus of Samos, who put forward an early version of heliocentrism). Greek astronomers employed the term asteres planetai (ἀστέρες πλανῆται), "wandering stars",   to describe those starlike lights in the heavens that moved over the course of the year, in contrast to the asteres aplaneis (ἀστέρες ἀπλανεῖς), the " fixed stars", which stayed motionless relative to one another. The five bodies currently called "planets" that were known to the Greeks were those visible to the naked eye: Mercury, Venus, Mars, Jupiter, and Saturn.
Graeco-Roman cosmology commonly considered seven planets, with the Sun and the Moon counted among them (as is the case in modern astrology); however, there is some ambiguity on that point, as many ancient astronomers distinguished the five star-like planets from the Sun and Moon. As the 19th-century German naturalist Alexander von Humboldt noted in his work Cosmos,
Of the seven cosmical bodies which, by their continually varying relative positions and distances apart, have ever since the remotest antiquity been distinguished from the "unwandering orbs" of the heaven of the "fixed stars", which to all sensible appearance preserve their relative positions and distances unchanged, five only—Mercury, Venus, Mars, Jupiter and Saturn—wear the appearance of stars—"cinque stellas errantes"—while the Sun and Moon, from the size of their disks, their importance to man, and the place assigned to them in mythological systems, were classed apart. 
In his Timaeus, written in roughly 360 BC, Plato mentions, "the Sun and Moon and five other stars, which are called the planets".  His student Aristotle makes a similar distinction in his On the Heavens: "The movements of the sun and moon are fewer than those of some of the planets".  In his Phaenomena, which set to verse an astronomical treatise written by the philosopher Eudoxus in roughly 350 BC,  the poet Aratus describes "those five other orbs, that intermingle with [the constellations] and wheel wandering on every side of the twelve figures of the Zodiac." 
In his Almagest written in the 2nd century, Ptolemy refers to "the Sun, Moon and five planets."  Hyginus explicitly mentions "the five stars which many have called wandering, and which the Greeks call Planeta."  Marcus Manilius, a Latin writer who lived during the time of Caesar Augustus and whose poem Astronomica is considered one of the principal texts for modern astrology, says, "Now the dodecatemory is divided into five parts, for so many are the stars called wanderers which with passing brightness shine in heaven." 
The single view of the seven planets is found in Cicero's Dream of Scipio, written sometime around 53 BC, where the spirit of Scipio Africanus proclaims, "Seven of these spheres contain the planets, one planet in each sphere, which all move contrary to the movement of heaven."  In his Natural History, written in 77 AD, Pliny the Elder refers to "the seven stars, which owing to their motion we call planets, though no stars wander less than they do."  Nonnus, the 5th century Greek poet, says in his Dionysiaca, "I have oracles of history on seven tablets, and the tablets bear the names of the seven planets." 
Medieval and Renaissance writers generally accepted the idea of seven planets. The standard medieval introduction to astronomy, Sacrobosco's De Sphaera, includes the Sun and Moon among the planets,  the more advanced Theorica planetarum presents the "theory of the seven planets,"  while the instructions to the Alfonsine Tables show how "to find by means of tables the mean motuses of the sun, moon, and the rest of the planets."  In his Confessio Amantis, 14th-century poet John Gower, referring to the planets' connection with the craft of alchemy, writes, "Of the planetes ben begonne/The gold is tilted to the Sonne/The Mone of Selver hath his part...", indicating that the Sun and the Moon were planets.  Even Nicolaus Copernicus, who rejected the geocentric model, was ambivalent concerning whether the Sun and Moon were planets. In his De Revolutionibus, Copernicus clearly separates "the sun, moon, planets and stars";  however, in his Dedication of the work to Pope Paul III, Copernicus refers to, "the motion of the sun and the moon... and of the five other planets." 
Eventually, when Copernicus's heliocentric model was accepted over the geocentric, Earth was placed among the planets and the Sun and Moon were reclassified, necessitating a conceptual revolution in the understanding of planets. As the historian of science Thomas Kuhn noted in his book, The Structure of Scientific Revolutions: 
The Copernicans who denied its traditional title 'planet' to the sun ... were changing the meaning of 'planet' so that it would continue to make useful distinctions in a world where all celestial bodies ... were seen differently from the way they had been seen before... Looking at the moon, the convert to Copernicanism ... says, 'I once took the moon to be (or saw the moon as) a planet, but I was mistaken.'
Copernicus obliquely refers to Earth as a planet in De Revolutionibus when he says, "Having thus assumed the motions which I ascribe to the Earth later on in the volume, by long and intense study I finally found that if the motions of the other planets are correlated with the orbiting of the earth..."  Galileo also asserts that Earth is a planet in the Dialogue Concerning the Two Chief World Systems: "[T]he Earth, no less than the moon or any other planet, is to be numbered among the natural bodies that move circularly." 
In 1781, the astronomer William Herschel was searching the sky for elusive stellar parallaxes, when he observed what he termed a comet in the constellation of Taurus. Unlike stars, which remained mere points of light even under high magnification, this object's size increased in proportion to the power used. That this strange object might have been a planet simply did not occur to Herschel; the five planets beyond Earth had been part of humanity's conception of the universe since antiquity. As the asteroids had yet to be discovered, comets were the only moving objects one expected to find in a telescope.  However, unlike a comet, this object's orbit was nearly circular and within the ecliptic plane. Before Herschel announced his discovery of his "comet", his colleague, British Astronomer Royal Nevil Maskelyne, wrote to him, saying, "I don't know what to call it. It is as likely to be a regular planet moving in an orbit nearly circular to the sun as a Comet moving in a very eccentric ellipsis. I have not yet seen any coma or tail to it."  The "comet" was also very far away, too far away for a mere comet to resolve itself. Eventually it was recognised as the seventh planet and named Uranus after the father of Saturn.
Gravitationally induced irregularities in Uranus's observed orbit led eventually to the discovery of Neptune in 1846, and presumed irregularities in Neptune's orbit subsequently led to a search which did not find the perturbing object (it was later found to be a mathematical artefact caused by an overestimation of Neptune's mass) but did find Pluto in 1930. Initially believed to be roughly the mass of the Earth, observation gradually shrank Pluto's estimated mass until it was revealed to be a mere five hundredth as large; far too small to have influenced Neptune's orbit at all.  In 1989, Voyager 2 determined the irregularities to be due to an overestimation of Neptune's mass. 
When Copernicus placed Earth among the planets, he also placed the Moon in orbit around Earth, making the Moon the first natural satellite to be identified. When Galileo discovered his four satellites of Jupiter in 1610, they lent weight to Copernicus's argument, because if other planets could have satellites, then Earth could too. However, there remained some confusion as to whether these objects were "planets"; Galileo referred to them as "four planets flying around the star of Jupiter at unequal intervals and periods with wonderful swiftness."  Similarly, Christiaan Huygens, upon discovering Saturn's largest moon Titan in 1655, employed many terms to describe it, including "planeta" (planet), "stella" (star), "luna" (moon), and the more modern "satellite" (attendant).  Giovanni Cassini, in announcing his discovery of Saturn's moons Iapetus and Rhea in 1671 and 1672, described them as Nouvelles Planetes autour de Saturne ("New planets around Saturn").  However, when the "Journal de Scavans" reported Cassini's discovery of two new Saturnian moons in 1686, it referred to them strictly as "satellites", though sometimes Saturn as the "primary planet".  When William Herschel announced his discovery of two objects in orbit around Uranus in 1787, he referred to them as "satellites" and "secondary planets".  All subsequent reports of natural satellite discoveries used the term "satellite" exclusively,  though the 1868 book "Smith's Illustrated Astronomy" referred to satellites as "secondary planets". 
One of the unexpected results of William Herschel's discovery of Uranus was that it appeared to validate Bode's law, a mathematical function which generates the size of the semimajor axis of planetary orbits. Astronomers had considered the "law" a meaningless coincidence, but Uranus fell at very nearly the exact distance it predicted. Since Bode's law also predicted a body between Mars and Jupiter that at that point had not been observed, astronomers turned their attention to that region in the hope that it might be vindicated again. Finally, in 1801, astronomer Giuseppe Piazzi found a miniature new world, Ceres, lying at just the correct point in space. The object was hailed as a new planet. 
Then in 1802, Heinrich Olbers discovered Pallas, a second "planet" at roughly the same distance from the Sun as Ceres. That two planets could occupy the same orbit was an affront to centuries of thinking; even Shakespeare had ridiculed the idea ("Two stars keep not their motion in one sphere").  Even so, in 1804, another world, Juno, was discovered in a similar orbit.  In 1807, Olbers discovered a fourth object, Vesta, at a similar orbital distance.
Herschel suggested that these four worlds be given their own separate classification, asteroids (meaning "starlike" since they were too small for their disks to resolve and thus resembled stars), though most astronomers preferred to refer to them as planets.  This conception was entrenched by the fact that, due to the difficulty of distinguishing asteroids from yet-uncharted stars, those four remained the only asteroids known until 1845.   Science textbooks in 1828, after Herschel's death, still numbered the asteroids among the planets.  With the arrival of more refined star charts, the search for asteroids resumed, and a fifth and sixth were discovered by Karl Ludwig Hencke in 1845 and 1847.  By 1851 the number of asteroids had increased to 15, and a new method of classifying them, by affixing a number before their names in order of discovery, was adopted, inadvertently placing them in their own distinct category. Ceres became "(1) Ceres", Pallas became "(2) Pallas", and so on. By the 1860s, the number of known asteroids had increased to over a hundred, and observatories in Europe and the United States began referring to them collectively as " minor planets", or "small planets", though it took the first four asteroids longer to be grouped as such.  To this day, "minor planet" remains the official designation for all small bodies in orbit around the Sun, and each new discovery is numbered accordingly in the IAU's Minor Planet Catalogue. 
The long road from planethood to reconsideration undergone by Ceres is mirrored in the story of Pluto, which was named a planet soon after its discovery by Clyde Tombaugh in 1930. Uranus and Neptune had been declared planets based on their circular orbits, large masses and proximity to the ecliptic plane. None of these applied to Pluto, a tiny and icy world in a region of gas giants with an orbit that carried it high above the ecliptic and even inside that of Neptune. In 1978, astronomers discovered Pluto's largest moon, Charon, which allowed them to determine its mass. Pluto was found to be much tinier than anyone had expected: only one-sixth the mass of Earth's Moon. However, as far as anyone could yet tell, it was unique. Then, beginning in 1992, astronomers began to detect large numbers of icy bodies beyond the orbit of Neptune that were similar to Pluto in composition, size, and orbital characteristics. They concluded that they had discovered the long-hypothesised Kuiper belt (sometimes called the Edgeworth–Kuiper belt), a band of icy debris that is the source for "short-period" comets—those with orbital periods of up to 200 years. 
Pluto's orbit lay within this band and thus its planetary status was thrown into question. Many scientists concluded that tiny Pluto should be reclassified as a minor planet, just as Ceres had been a century earlier. Mike Brown of the California Institute of Technology suggested that a "planet" should be redefined as "any body in the Solar System that is more massive than the total mass of all of the other bodies in a similar orbit."  Those objects under that mass limit would become minor planets. In 1999, Brian G. Marsden of Harvard University's Minor Planet Center suggested that Pluto be given the minor planet number 10000 while still retaining its official position as a planet.   The prospect of Pluto's "demotion" created a public outcry, and in response the International Astronomical Union clarified that it was not at that time proposing to remove Pluto from the planet list.  
The discovery of several other trans-Neptunian objects, such as Quaoar and Sedna, continued to erode arguments that Pluto was exceptional from the rest of the trans-Neptunian population. On July 29, 2005, Mike Brown and his team announced the discovery of a trans-Neptunian object confirmed to be more massive than Pluto,  named Eris. 
In the immediate aftermath of the object's discovery, there was much discussion as to whether it could be termed a " tenth planet". NASA even put out a press release describing it as such.  However, acceptance of Eris as the tenth planet implicitly demanded a definition of planet that set Pluto as an arbitrary minimum size. Many astronomers, claiming that the definition of planet was of little scientific importance, preferred to recognise Pluto's historical identity as a planet by " grandfathering" it into the planet list. 
The discovery of Eris forced the IAU to act on a definition. In October 2005, a group of 19 IAU members, which had already been working on a definition since the discovery of Sedna in 2003, narrowed their choices to a shortlist of three, using approval voting. The definitions were:
- A planet is any object in orbit around the Sun with a diameter greater than 2000 km. (eleven votes in favour)
- A planet is any object in orbit around the Sun whose shape is stable due to its own gravity. (eight votes in favour)
- A planet is any object in orbit around the Sun that is dominant in its immediate neighbourhood. (six votes in favour)  
Since no consensus could be reached, the committee decided to put these three definitions to a wider vote at the IAU General Assembly meeting in Prague in August 2006,  and on August 24, the IAU put a final draft to a vote, which combined elements from two of the three proposals. It essentially created a medial classification between planet and rock (or, in the new parlance, small Solar System body), called dwarf planet and placed Pluto in it, along with Ceres and Eris.   The vote was passed, with 424 astronomers taking part in the ballot.   
(1) A " planet"1 is a celestial body that: (a) is in orbit around the Sun, (b) has sufficient mass for its self-gravity to overcome rigid body forces so that it assumes a hydrostatic equilibrium (nearly round) shape, and (c) has cleared the neighbourhood around its orbit.
(2) A "dwarf planet" is a celestial body that: (a) is in orbit around the Sun, (b) has sufficient mass for its self-gravity to overcome rigid body forces so that it assumes a hydrostatic equilibrium (nearly round) shape2, (c) has not cleared the neighbourhood around its orbit, and (d) is not a satellite.
(3) All other objects3, except satellites, orbiting the Sun shall be referred to collectively as "Small Solar System Bodies".
1 The eight planets are: Mercury, Venus, Earth, Mars, Jupiter, Saturn, Uranus, and Neptune.
2 An IAU process will be established to assign borderline objects into either "dwarf planet" and other categories.
3 These currently include most of the Solar System asteroids, most Trans-Neptunian Objects (TNOs), comets, and other small bodies.
The IAU further resolves:
Pluto is a "dwarf planet" by the above definition and is recognised as the prototype of a new category of trans-Neptunian objects.
The IAU also resolved that "planets and dwarf planets are two distinct classes of objects", meaning that dwarf planets, despite their name, would not be considered planets. 
On September 13, 2006, the IAU placed Eris, its moon Dysnomia, and Pluto into their Minor Planet Catalogue, giving them the official minor planet designations (134340) Pluto, (136199) Eris, and (136199) Eris I Dysnomia.  Other possible dwarf planets, such as 2003 EL61, 2005 FY9, Sedna and Quaoar, were left in temporary limbo until a formal decision could be reached regarding their status.
On June 11, 2008, the IAU executive committee announced the establishment of a subclass of dwarf planets comprising the aforementioned "new category of trans-Neptunian objects" to which Pluto is a prototype. This new class of objects, termed plutoids, would include Pluto, Eris and any other trans-Neptunian dwarf planets, but excluded Ceres. The IAU decided that those TNOs with an absolute magnitude brighter than +1 would be named by a joint commissions of the planetary and minor-planet naming committees, under the assumption that they were likely to be dwarf planets. To date, only two other TNOs, 2003 EL61 and 2005 FY9, have met the absolute magnitude requirement, while other possible dwarf planets, such as Sedna, Orcus and Quaoar, were named by the minor-planet committee alone.  On July 11, 2008, the Working Group on Planetary Nomenclature named 2005 FY9 Makemake,  and on September 17, 2008, they named 2003 EL61 Haumea. 
Among the most vocal proponents of the IAU's decided definition are Mike Brown, the discoverer of Eris; Steven Soter, professor of astrophysics at the American Museum of Natural History; and Neil deGrasse Tyson, director of the Hayden Planetarium.
In the early 2000s, when the Hayden Planetarium was undergoing a $100 million renovation, Tyson refused to refer to Pluto as the ninth planet at the planetarium.  He explained that he would rather group planets according to their commonalities rather than counting them. This decision resulted in Tyson receiving large amounts of hate mail, primarily from children.  In 2009, Tyson wrote a book detailing the demotion of Pluto.
In an article in the January 2007 issue of Scientific American, Soter cited the definition's incorporation of current theories of the formation and evolution of the Solar System; that as the earliest protoplanets emerged from the swirling dust of the protoplanetary disc, some bodies "won" the initial competition for limited material and, as they grew, their increased gravity meant that they accumulated more material, and thus grew larger, eventually outstripping the other bodies in the Solar System by a very wide margin. The asteroid belt, disturbed by the gravitational tug of nearby Jupiter, and the Kuiper belt, too widely spaced for its constituent objects to collect together before the end of the initial formation period, both failed to win the accretion competition.
When the numbers for the winning objects are compared to those of the losers, the contrast is striking; if Soter's concept that each planet occupies an "orbital zone" [b] is accepted, then the least orbitally dominant planet, Mars, is larger than all other collected material in its orbital zone by a factor of 5100. Ceres, the largest object in the asteroid belt, only accounts for one third of the material in its orbit; Pluto's ratio is even lower, at around 7 percent.  Mike Brown asserts that this massive difference in orbital dominance leaves "absolutely no room for doubt about which objects do and do not belong." 
Despite the IAU's declaration, a number of critics remain unconvinced. The definition is seen by some as arbitrary and confusing. A number of Pluto-as-planet proponents, in particular Alan Stern, head of NASA's New Horizons mission to Pluto, have circulated a petition among astronomers to alter the definition. Stern's claim is that, since less than 5 percent of astronomers voted for it, the decision was not representative of the entire astronomical community.   Even with this controversy excluded, however, there remain several ambiguities in the definition.
One of the main points at issue is the precise meaning of "cleared the neighbourhood around its orbit". Alan Stern objects that "it is impossible and contrived to put a dividing line between dwarf planets and planets",  and that since neither Earth, Mars, Jupiter, nor Neptune have entirely cleared their regions of debris, none could properly be considered planets under the IAU definition. [c]
Mike Brown counters these claims by saying that, far from not having cleared their orbits, the major planets completely control the orbits of the other bodies within their orbital zone. Jupiter may coexist with a large number of small bodies in its orbit (the Trojan asteroids), but these bodies only exist in Jupiter's orbit because they are in the sway of the planet's huge gravity. Similarly, Pluto may cross the orbit of Neptune, but Neptune long ago locked Pluto and its attendant Kuiper belt objects, called plutinos, into a 3:2 resonance, i.e., they orbit the Sun twice for every three Neptune orbits. The orbits of these objects are entirely dictated by Neptune's gravity, and thus, Neptune is gravitationally dominant. 
In October 2015, astronomer Jean-Luc Margot of the University of California Los Angeles proposed a metric for orbital zone clearance derived from whether an object can clear an orbital zone of extent 2√ of its Hill radius in a specific time scale. This metric places a clear dividing line between the dwarf planets and the planets of the solar system.  The calculation is based on the mass of the host star, the mass of the body, and the orbital period of the body. An Earth-mass body orbiting a solar-mass star clears its orbit at distances of up to 400 astronomical units from the star. A Mars-mass body at the orbit of Pluto clears its orbit. This metric, which leaves Pluto as a dwarf planet, applies to both the Solar System and to extrasolar systems. 
Some opponents of the definition have claimed that "clearing the neighbourhood" is an ambiguous concept. Mark Sykes, director of the Planetary Science Institute in Tucson, Arizona, and organiser of the petition, expressed this opinion to National Public Radio. He believes that the definition does not categorise a planet by composition or formation, but, effectively, by its location. He believes that a Mars-sized or larger object beyond the orbit of Pluto would not be considered a planet, because he believes that it would not have time to clear its orbit. 
Brown notes, however, that were the "clearing the neighbourhood" criterion to be abandoned, the number of planets in the Solar System could rise from eight to more than 50, with hundreds more potentially to be discovered. 
The IAU's definition mandates that planets be large enough for their own gravity to form them into a state of hydrostatic equilibrium; this means that they will reach a round, ellipsoidal shape. Up to a certain mass, an object can be irregular in shape, but beyond that point gravity begins to pull an object towards its own centre of mass until the object collapses into an ellipsoid. (None of the large objects of the Solar System are truly spherical. Many are spheroids, and several, such as the larger moons of Saturn and the dwarf planet Haumea, have been further distorted into ellipsoids by rapid rotation or tidal forces, but still in hydrostatic equilibrium. )
However, there is no precise point at which an object can be said to have reached hydrostatic equilibrium. As Soter noted in his article, "how are we to quantify the degree of roundness that distinguishes a planet? Does gravity dominate such a body if its shape deviates from a spheroid by 10 percent or by 1 percent? Nature provides no unoccupied gap between round and nonround shapes, so any boundary would be an arbitrary choice."  Furthermore, the point at which an object's mass compresses it into an ellipsoid varies depending on the chemical makeup of the object. Objects made of ices, [d] such as Enceladus and Miranda, assume that state more easily than those made of rock, such as Vesta and Pallas.  Heat energy, from gravitational collapse, impacts, tidal forces such as orbital resonances, or radioactive decay, also factors into whether an object will be ellipsoidal or not; Saturn's icy moon Mimas is ellipsoidal (though no longer in hydrostatic equilibrium), but Neptune's larger moon Proteus, which is similarly composed but colder because of its greater distance from the Sun, is irregular. In addition, the much larger Iapetus is ellipsoidal but does not have the dimensions expected for its current speed of rotation, indicating that it was once in hydrostatic equilibrium but no longer is,  and the same is true for Earth's moon.  
The definition specifically excludes satellites from the category of dwarf planet, though it does not directly define the term "satellite".  In the original draft proposal, an exception was made for Pluto and its largest satellite, Charon, which possess a barycenter outside the volume of either body. The initial proposal classified Pluto–Charon as a double planet, with the two objects orbiting the Sun in tandem. However, the final draft made clear that, even though they are similar in relative size, only Pluto would currently be classified as a dwarf planet. 
However, some have suggested that the Moon nonetheless deserves to be called a planet. In 1975, Isaac Asimov noted that the timing of the Moon's orbit is in tandem with the Earth's own orbit around the Sun—looking down on the ecliptic, the Moon never actually loops back on itself, and in essence it orbits the Sun in its own right. 
Also many moons, even those that do not orbit the Sun directly, often exhibit features in common with true planets. There are 19 moons in the Solar System that have achieved hydrostatic equilibrium and would be considered planets if only the physical parameters are considered. Both Jupiter's moon Ganymede and Saturn's moon Titan are larger than Mercury, and Titan even has a substantial atmosphere, thicker than the Earth's. Moons such as Io and Triton demonstrate obvious and ongoing geological activity, and Ganymede has a magnetic field. Just as stars in orbit around other stars are still referred to as stars, some astronomers argue that objects in orbit around planets that share all their characteristics could also be called planets.    Indeed, Mike Brown makes just such a claim in his dissection of the issue, saying: 
It is hard to make a consistent argument that a 400 km iceball should count as a planet because it might have interesting geology, while a 5000 km satellite with a massive atmosphere, methane lakes, and dramatic storms [Titan] shouldn't be put into the same category, whatever you call it.
However, he goes on to say that, "For most people, considering round satellites (including our Moon) 'planets' violates the idea of what a planet is." 
Alan Stern has argued that location should not matter and that only geophysical attributes should be taken into account in the definition of a planet, and proposes the term satellite planet for planetary-mass moons. 
The discovery since 1992 of extrasolar planets, or planet-sized objects around other stars (4,777 such planets in 3,534 planetary systems including 785 multiple planetary systems as of 1 July 2021),  has widened the debate on the nature of planethood in unexpected ways. Many of these planets are of considerable size, approaching the mass of small stars, while many newly discovered brown dwarfs are, conversely, small enough to be considered planets.  The material difference between a low-mass star and a large gas giant is not clear-cut; apart from size and relative temperature, there is little to separate a gas giant like Jupiter from its host star. Both have similar overall compositions: hydrogen and helium, with trace levels of heavier elements in their atmospheres. The generally accepted difference is one of formation; stars are said to have formed from the "top down", out of the gases in a nebula as they underwent gravitational collapse, and thus would be composed almost entirely of hydrogen and helium, while planets are said to have formed from the "bottom up", from the accretion of dust and gas in orbit around the young star, and thus should have cores of silicates or ices.  As yet it is uncertain whether gas giants possess such cores, though the Juno mission to Jupiter could resolve the issue. If it is indeed possible that a gas giant could form as a star does, then it raises the question of whether such an object should be considered an orbiting low-mass star rather than a planet.
Traditionally, the defining characteristic for starhood has been an object's ability to fuse hydrogen in its core. However, stars such as brown dwarfs have always challenged that distinction. Too small to commence sustained hydrogen-1 fusion, they have been granted star status on their ability to fuse deuterium. However, due to the relative rarity of that isotope, this process lasts only a tiny fraction of the star's lifetime, and hence most brown dwarfs would have ceased fusion long before their discovery.  Binary stars and other multiple-star formations are common, and many brown dwarfs orbit other stars. Therefore, since they do not produce energy through fusion, they could be described as planets. Indeed, astronomer Adam Burrows of the University of Arizona claims that "from the theoretical perspective, however different their modes of formation, extrasolar giant planets and brown dwarfs are essentially the same".  Burrows also claims that such stellar remnants as white dwarfs should not be considered stars,  a stance which would mean that an orbiting white dwarf, such as Sirius B, could be considered a planet. However, the current convention among astronomers is that any object massive enough to have possessed the capability to sustain atomic fusion during its lifetime and that is not a black hole should be considered a star. 
The confusion does not end with brown dwarfs. Maria Rosa Zapatario-Osorio et al. have discovered many objects in young star clusters of masses below that required to sustain fusion of any sort (currently calculated to be roughly 13 Jupiter masses).  These have been described as " free floating planets" because current theories of Solar System formation suggest that planets may be ejected from their star systems altogether if their orbits become unstable.  However, it is also possible that these "free floating planets" could have formed in the same manner as stars. 
In 2003, a working group of the IAU released a position statement  to establish a working definition as to what constitutes an extrasolar planet and what constitutes a brown dwarf. To date, it remains the only guidance offered by the IAU on this issue. The 2006 planet definition committee did not attempt to challenge it, or to incorporate it into their definition, claiming that the issue of defining a planet was already difficult to resolve without also considering extrasolar planets.  This working definition was amended by the IAU's Commission F2: Exoplanets and the Solar System in August 2018.  The official working definition of an exoplanet is now as follows:
- Objects with true masses below the limiting mass for thermonuclear fusion of deuterium (currently calculated to be 13 Jupiter masses for objects of solar metallicity) that orbit stars, brown dwarfs or stellar remnants and that have a mass ratio with the central object below the L4/L5 instability (M/Mcentral < 2/(25+√) are "planets" (no matter how they formed).
- The minimum mass/size required for an extrasolar object to be considered a planet should be the same as that used in our Solar System.
The IAU noted that this definition could be expected to evolve as knowledge improves.
This definition makes location, rather than formation or composition, the determining characteristic for planethood. A free-floating object with a mass below 13 Jupiter masses is a "sub-brown dwarf", whereas such an object in orbit around a fusing star is a planet, even if, in all other respects, the two objects may be identical. Further, in 2010, a paper published by Burrows, David S. Spiegel and John A. Milsom called into question the 13-Jupiter-mass criterion, showing that a brown dwarf of three times solar metallicity could fuse deuterium at as low as 11 Jupiter masses. 
Also, the 13 Jupiter-mass cutoff does not have precise physical significance. Deuterium fusion can occur in some objects with mass below that cutoff. The amount of deuterium fused depends to some extent on the composition of the object.  As of 2011 the Extrasolar Planets Encyclopaedia included objects up to 25 Jupiter masses, saying, "The fact that there is no special feature around 13 MJup in the observed mass spectrum reinforces the choice to forget this mass limit".  As of 2016 this limit was increased to 60 Jupiter masses  based on a study of mass–density relationships.  The Exoplanet Data Explorer includes objects up to 24 Jupiter masses with the advisory: "The 13 Jupiter-mass distinction by the IAU Working Group is physically unmotivated for planets with rocky cores, and observationally problematic due to the sin i ambiguity."  The NASA Exoplanet Archive includes objects with a mass (or minimum mass) equal to or less than 30 Jupiter masses. 
Another criterion for separating planets and brown dwarfs, rather than deuterium burning, formation process or location, is whether the core pressure is dominated by coulomb pressure or electron degeneracy pressure.  
One study suggests that objects above 10 MJup formed through gravitational instability and not core accretion and therefore should not be thought of as planets. 
The ambiguity inherent in the IAU's definition was highlighted in December 2005, when the Spitzer Space Telescope observed Cha 110913-773444 (above), only eight times Jupiter's mass with what appears to be the beginnings of its own planetary system. Were this object found in orbit around another star, it would have been termed a planet. 
In September 2006, the Hubble Space Telescope imaged CHXR 73 b (left), an object orbiting a young companion star at a distance of roughly 200 AU. At 12 Jovian masses, CHXR 73 b is just under the threshold for deuterium fusion, and thus technically a planet; however, its vast distance from its parent star suggests it could not have formed inside the small star's protoplanetary disc, and therefore must have formed, as stars do, from gravitational collapse. 
In 2012, Philippe Delorme, of the Institute of Planetology and Astrophysics of Grenoble in France announced the discovery of CFBDSIR 2149-0403; an independently moving 4-7 Jupiter-mass object that likely forms part of the AB Doradus moving group, less than 100 light years from Earth. Although it shares its spectrum with a spectral class T brown dwarf, Delorme speculates that it may be a planet. 
In October 2013, astronomers led by Dr. Michael Liu of the University of Hawaii discovered PSO J318.5-22, a solitary free-floating L dwarf estimated to possess only 6.5 times the mass of Jupiter, making it the least massive sub-brown dwarf yet discovered. 
In 2019, astronomers at the Calar Alto Observatory in Spain identified GJ3512b, a gas giant about half the mass of Jupiter orbiting around the red dwarf star GJ3512 in 204 days. Such a large gas giant around such a small star at such a wide orbit is highly unlikely to have formed via accretion, and is more likely to have formed by fragmentation of the disc, similar to a star. 
Finally, from a purely linguistic point of view, there is the dichotomy that the IAU created between 'planet' and 'dwarf planet'. The term 'dwarf planet' arguably contains two words, a noun (planet) and an adjective (dwarf). Thus, the term could suggest that a dwarf planet is a type of planet, even though the IAU explicitly defines a dwarf planet as not so being. By this formulation therefore, 'dwarf planet' and ' minor planet' are best considered compound nouns. Benjamin Zimmer of Language Log summarised the confusion: "The fact that the IAU would like us to think of dwarf planets as distinct from 'real' planets lumps the lexical item 'dwarf planet' in with such oddities as ' Welsh rabbit' (not really a rabbit) and ' Rocky Mountain oysters' (not really oysters)."  As Dava Sobel, the historian and popular science writer who participated in the IAU's initial decision in October 2006, noted in an interview with National Public Radio, "A dwarf planet is not a planet, and in astronomy, there are dwarf stars, which are stars, and dwarf galaxies, which are galaxies, so it's a term no one can love, dwarf planet."  Mike Brown noted in an interview with the Smithsonian that "Most of the people in the dynamical camp really did not want the word 'dwarf planet', but that was forced through by the pro-Pluto camp. So you're left with this ridiculous baggage of dwarf planets not being planets." 
Conversely, astronomer Robert Cumming of the Stockholm Observatory notes that, "The name 'minor planet' [has] been more or less synonymous with 'asteroid' for a very long time. So it seems to me pretty insane to complain about any ambiguity or risk for confusion with the introduction of 'dwarf planet'." 
|Look up planet in Wiktionary, the free dictionary.|
- Geophysical definition of planet
- IAU definition of planet
- List of gravitationally rounded objects of the Solar System
- List of former planets
- Natural kind
- Planetar (astronomy)
- Planets in astrology
- Rogue planet
- Sub-brown dwarf
- Timeline of discovery of Solar System planets and their moons
- ^ Defined as the region occupied by two bodies whose orbits cross a common distance from the Sun, if their orbital periods differ less than an order of magnitude. In other words, if two bodies occupy the same distance from the Sun at one point in their orbits, and those orbits are of similar size, rather than, as a comet's would be, extending for several times the other's distance, then they are in the same orbital zone. 
- ^ In 2002, in collaboration with dynamicist Harold Levison, Stern wrote, "we define an überplanet as a planetary body in orbit around a star that is dynamically important enough to have cleared its neighboring planetesimals ... And we define an unterplanet as one that has not been able to do so," and then a few paragraphs later, "our Solar System clearly contains 8 überplanets and a far larger number of unterplanets, the largest of which are Pluto and Ceres."  While this may appear to contradict Stern's objections, Stern noted in an interview with Smithsonian Air and Space that, unlike the IAU's definition, his definition still allows unterplanets to be planets: "I do think from a dynamical standpoint, there are planets that really matter in the architecture of the solar system, and those that don't. They're both planets. Just as you can have wet and dry planets, or life-bearing and non-life-bearing planets, you can have dynamically important planets and dynamically unimportant planets." 
- ^ The density of an object is a rough guide to its composition: the lower the density, the higher the fraction of ices, and the lower the fraction of rock. The n denser objects, Vesta and Juno, are composed almost entirely of rock with very little ice, and have a density close to the Moon's, while the less dense, such as Proteus and Enceladus, are composed mainly of ice.  
- "Definition of planet". Merriam-Webster OnLine. Retrieved 2007-07-23.
- "Words For Our Modern Age: Especially words derived from Latin and Greek sources". Wordsources.info. Retrieved 2007-07-23.
- Alexander von Humboldt (1849). Cosmos: A Sketch of a Physical Description of the Universe. digitised 2006. H.G. Bohn. p. 297. ISBN 978-0-8018-5503-0. Retrieved 2007-07-23.
- "Timaeus by Plato". The Internet Classics. Retrieved 2007-02-22.
- "On the Heavens by Aristotle, Translated by J. L. Stocks, volume II". University of Adelaide Library. 2004. Retrieved 2007-02-24.
- "Phaenomena Book I — ARATUS of SOLI". Archived from the original on September 1, 2005. Retrieved 2007-06-16.
- A. W. & G. R. Mair (translators). "ARATUS, PHAENOMENA". theoi.com. Retrieved 2007-06-16.
- R. Gatesby Taliaterro (trans.) (1952). The Almagest by Ptolemy. University of Chicago Press. p. 270.
- theoi.com. "Astra Planeta". Retrieved 2007-02-25.
- GP Goold (trans.) (1977). Marcus Manilius: Astronomica. Harvard University Press. p. 141.
- Cicero (1996). "The Dream of Scipio". Roman Philosophy. Richard Hooker (translator). Archived from the original on 2007-07-03. Retrieved 2007-06-16.
- IH Rackham (1938). Natural History vol 1. William Heinemann Ltd. p. 177, viii.
- Sacrobosco, "On the Sphere", in Edward Grant, ed. A Source Book in Medieval Science, (Cambridge: Harvard University Press, 1974), p. 450. "every planet except the sun has an epicycle."
- Anonymous, "The Theory of the Planets," in Edward Grant, ed. A Source Book in Medieval Science, (Cambridge: Harvard University Press, 1974), p. 452.
- John of Saxony, "Extracts from the Alfonsine Tables and Rules for their use", in Edward Grant, ed. A Source Book in Medieval Science, (Cambridge: Harvard University Press, 1974), p. 466.
- P. Heather (1943). "The Seven Planets". Folklore. 54 (3): 338–361. doi: 10.1080/0015587x.1943.9717687.
- Edward Rosen (trans.). "The text of Nicholas Copernicus' De Revolutionibus (On the Revolutions), 1543 C.E." Calendars Through the Ages. Retrieved 2007-02-28.
- Nicolaus Copernicus. "Dedication of the Revolutions of the Heavenly Bodies to Pope Paul III". The Harvard Classics. 1909–14. Retrieved 2007-02-23.
- Thomas S. Kuhn, (1962) The Structure of Scientific Revolutions, 1st. ed., (Chicago: University of Chicago Press), pp. 115, 128–9.
- "Dialogue Concerning the Two Chief World Systems". Calendars Through the Ages. Retrieved 2008-06-14.
- Croswell, Ken (1999). Planet Quest: The Epic Discovery of Alien Solar Systems. Oxford University Press. pp. 48, 66. ISBN 978-0-19-288083-3.
- Patrick Moore (1981). William Herschel: Astronomer and Musician of 19 New King Street, Bath. PME Erwood. p. 8. ISBN 978-0-907322-06-1.
- Ken Croswell (1993). "Hopes Fade in hunt for Planet X". Retrieved 2007-11-04.
- Galileo Galilei (1989). Siderius Nuncius. Albert van Helden. University of Chicago Press. p. 26.
- Christiani Hugenii (Christiaan Huygens) (1659). Systema Saturnium: Sive de Causis Miradorum Saturni Phaenomenon, et comite ejus Planeta Novo. Adriani Vlacq. pp. 1–50.
- Giovanni Cassini (1673). Decouverte de deux Nouvelles Planetes autour de Saturne. Sabastien Mabre-Craniusy. pp. 6–14.
- Cassini, G. D. (1686–1692). "An Extract of the Journal Des Scavans. Of April 22 st. N. 1686. Giving an Account of Two New Satellites of Saturn, Discovered Lately by Mr. Cassini at the Royal Observatory at Paris". Philosophical Transactions of the Royal Society of London. 16 (179–191): 79–85. Bibcode: 1686RSPT...16...79C. doi: 10.1098/rstl.1686.0013. JSTOR 101844.
- William Herschel (1787). An Account of the Discovery of Two Satellites Around the Georgian Planet. Read at the Royal Society. J. Nichols. pp. 1–4.
- See primary citations in Timeline of discovery of Solar System planets and their moons
- Smith, Asa (1868).
Smith's Illustrated Astronomy. Nichols & Hall. p.
secondary planet Herschel.
- Hilton, James L. "When did asteroids become minor planets?" (PDF). U.S. Naval Observatory. Retrieved 2006-05-25.
- William Shakespeare (1979). King Henry the Fourth Part One in The Globe Illustrated Shakespeare: The Complete Works Annotated. Granercy Books. p. 559.
- "The Planet Hygea". spaceweather.com. 1849. Retrieved 2008-06-24.
- Cooper, Keith (June 2007). "Call the Police! The story behind the discovery of the asteroids". Astronomy Now. 21 (6): 60–61.
- "The MPC Orbit (MPCORB) Database". Retrieved 2007-10-15.
- Weissman, Paul R. (1995). "The Kuiper Belt". Annual Review of Astronomy and Astrophysics. 33: 327–357. Bibcode: 1995ARA&A..33..327W. doi: 10.1146/annurev.aa.33.090195.001551.
- Brown, Mike. "A World on the Edge". NASA Solar System Exploration. Archived from the original on 2006-04-27. Retrieved 2006-05-25.
- "Is Pluto a giant comet?". Central Bureau for Astronomical Telegrams. Retrieved 2011-07-03.
- Kenneth Chang (2006-09-15). "Xena becomes Eris – Pluto reduced to a number". New York Times. Retrieved 2008-06-18.
- "The Status of Pluto:A clarification". International Astronomical Union, Press release. 1999. Archived from the original on 2006-09-23. Retrieved 2006-05-25. Copy kept Archived 2008-10-05 at the Wayback Machine at the Argonne National Laboratory.
- Witzgall, Bonnie B. (1999). "Saving Planet Pluto". Amateur Astronomer article. Archived from the original on 2006-10-16. Retrieved 2006-05-25.
- Brown, Mike (2006). "The discovery of 2003 UB313, the 10th planet". California Institute of Technology. Retrieved 2006-05-25.
- M. E. Brown; C. A. Trujillo; D. L. Rabinowitz (2005). "DISCOVERY OF A PLANETARY-SIZED OBJECT IN THE SCATTERED KUIPER BELT" (PDF). The American Astronomical Society. Retrieved 2006-08-15.
- "NASA-Funded Scientists Discover Tenth Planet". Jet Propulsion Laboratory. 2005. Retrieved 2007-02-22.
- Bonnie Buratti (2005). "Topic — First Mission to Pluto and the Kuiper Belt; "From Darkness to Light: The Exploration of the Planet Pluto"". Jet Propulsion Laboratory. Retrieved 2007-02-22.
- McKee, Maggie (2006). "Xena reignites a planet-sized debate". NewScientistSpace. Retrieved 2006-05-25.
- Croswell, Ken (2006). "The Tenth Planet's First Anniversary". Retrieved 2006-05-25.
- "Planet Definition". IAU. 2006. Archived from the original on 2006-08-26. Retrieved 2006-08-14.
- "IAU General Assembly Newspaper" (PDF). 2006-08-24. Retrieved 2007-03-03.
- "The Final IAU Resolution on the Definition of "Planet" Ready for Voting". IAU (News Release — IAU0602). 2006-08-24. Retrieved 2007-03-02.
- Robert Roy Britt (2006). "Pluto demoted in highly controversial definition". Space.com. Retrieved 2006-08-24.
- "IAU 2006 General Assembly: Resolutions 5 and 6" (PDF). IAU. 2006-08-24. Retrieved 2009-06-23.
- "IAU 2006 General Assembly: Result of the IAU Resolution votes" (Press release). International Astronomical Union (News Release — IAU0603). 2006-08-24. Retrieved 2007-12-31. ( orig link Archived 2007-01-03 at the Wayback Machine)
- Central Bureau for Astronomical Telegrams, International Astronomical Union (2006). "Circular No. 8747". Retrieved 2011-07-03. web.archive
- "Plutoid chosen as name for Solar System objects like Pluto". Paris: International Astronomical Union (News Release — IAU0804). 2008-06-11. Archived from the original on 2008-06-13. Retrieved 2008-06-11.
- "Dwarf Planets and their Systems". Working Group for Planetary System Nomenclature (WGPSN). 2008-07-11. Retrieved 2008-07-13.
- "USGS Gazetteer of Planetary Nomenclature". Retrieved 2008-09-17.
- Space.com (2001). Astronomer Responds to Pluto-Not-a-Planet Claim
- The Colbert Report, August 17, 2006
- Steven Soter (2006-08-16). "What is a Planet?". The Astronomical Journal. 132 (6): 2513–2519. arXiv: astro-ph/0608359. Bibcode: 2006AJ....132.2513S. doi: 10.1086/508861. S2CID 14676169.
- Michael E. Brown (2006). "The Eight Planets". Caltech. Retrieved 2007-02-21.
- Robert Roy Britt (2006). "Pluto: Down But Maybe Not Out". Space.com. Retrieved 2006-08-24.
- Paul Rincon (2006-08-25). "Pluto vote 'hijacked' in revolt". BBC News. Retrieved 2007-02-28.
- Jean-Luc Margot (2015). "A Quantitative Criterion For Defining Planets". The Astronomical Journal. 150 (6): 185. arXiv: 1507.06300. Bibcode: 2015AJ....150..185M. doi: 10.1088/0004-6256/150/6/185. S2CID 51684830.
- Mark, Sykes (2006-09-08). "Astronomers Prepare to Fight Pluto Demotion" (RealPlayer). Retrieved 2006-10-04.
- Mike Brown. "The Dwarf Planets". Retrieved 2007-08-04.
- Brown, Michael E. "2003EL61". California Institute of Technology. Retrieved 2006-05-25.
- Thomas, P. C. (July 2010). "Sizes, shapes, and derived properties of the saturnian satellites after the Cassini nominal mission" (PDF). Icarus. 208 (1): 395–401. Bibcode: 2010Icar..208..395T. doi: 10.1016/j.icarus.2010.01.025.
- Garrick-Bethell et al. (2014) "The tidal-rotational shape of the Moon and evidence for polar wander", Nature 512, 181–184.
- M. Bursa, Secular Love Numbers and Hydrostatic Equilibrium of Planets, Earth, Moon, and Planets, volume 31, issue 2, pp. 135-140, October 1984
- Asimov, Isaac (1975). Just Mooning Around, In: Of time and space, and other things. Avon.
- Marc W. Buie (March 2005). "Definition of a Planet". Southwest Research Institute. Retrieved 2008-07-07.
- "IAU Snobbery". NASA Watch (not a NASA Website). June 15, 2008. Retrieved 2008-07-05.
- Serge Brunier (2000). Solar System Voyage. Cambridge University Press. pp. 160–165. ISBN 978-0-521-80724-1.
- "Should Large Moons Be Called 'Satellite Planets'?". News.discovery.com. 2010-05-14. Retrieved 2011-11-04.
- Schneider, J. (10 September 2011). "Interactive Extra-solar Planets Catalog". The Extrasolar Planets Encyclopedia. Retrieved 2012-07-13.
- "IAU General Assembly: Definition of Planet debate". 2006. Archived from the original on 2012-07-13. Retrieved 2006-09-24.
- G. Wuchterl (2004). "Giant planet formation". Institut für Astronomie der Universität Wien. 67 (1–3): 51–65. Bibcode: 1994EM&P...67...51W. doi: 10.1007/BF00613290. S2CID 119772190.
- Basri, Gibor (2000). "Observations of Brown Dwarfs". Annual Review of Astronomy and Astrophysics. 38: 485–519. Bibcode: 2000ARA&A..38..485B. doi: 10.1146/annurev.astro.38.1.485.
- Burrows, Adam; Hubbard, W. B.; Lunine, J.; Leibert, James (2001). "The Theory of Brown Dwarfs and Extrasolar Giant Planets". Reviews of Modern Physics. 73 (3): 719–765. arXiv: astro-ph/0103383. Bibcode: 2001RvMP...73..719B. doi: 10.1103/RevModPhys.73.719. S2CID 204927572.
- Croswell p. 119
- Croswell, Ken (1999). Planet Quest: The Epic Discovery of Alien Solar Systems. Oxford University Press. p. 119. ISBN 978-0-19-288083-3.
- Zapatero M. R. Osorio; V. J. S. Béjar; E. L. Martín; R. Rebolo; D. Barrado y Navascués; C. A. L. Bailer-Jones; R. Mundt (2000). "Discovery of Young, Isolated Planetary Mass Objects in the Sigma Orionis Star Cluster". Division of Geological and Planetary Sciences, California Institute of Technology. 290 (5489): 103–107. Bibcode: 2000Sci...290..103Z. doi: 10.1126/science.290.5489.103. PMID 11021788.
- Lissauer, J. J. (1987). "Timescales for Planetary Accretion and the Structure of the Protoplanetary disk". Icarus. 69 (2): 249–265. Bibcode: 1987Icar...69..249L. doi: 10.1016/0019-1035(87)90104-7. hdl: 2060/19870013947.
- "Rogue planet find makes astronomers ponder theory". Reuters. 2000-10-06. Retrieved 2006-05-25.
- "Working Group on Extrasolar Planets (WGESP) of the International Astronomical Union". IAU. 2001. Archived from the original on 2006-09-16. Retrieved 2006-05-25.
- "General Sessions & Public Talks". International Astronomical Union. 2006. Archived from the original on 2008-12-08. Retrieved 2008-11-28.
- "Official Working Definition of an Exoplanet". IAU position statement. Retrieved 29 November 2020.
- David S. Spiegel; Adam Burrows; John A. Milsom (2010). "The Deuterium-Burning Mass Limit for Brown Dwarfs and Giant Planets". The Astrophysical Journal. 727 (1): 57. arXiv: 1008.5150. Bibcode: 2011ApJ...727...57S. doi: 10.1088/0004-637X/727/1/57. S2CID 118513110.
- Schneider, J.; Dedieu, C.; Le Sidaner, P.; Savalle, R.; Zolotukhin, I. (2011). "Defining and cataloging exoplanets: The exoplanet.eu database". Astronomy & Astrophysics. 532 (79): A79. arXiv: 1106.0586. Bibcode: 2011A&A...532A..79S. doi: 10.1051/0004-6361/201116713. S2CID 55994657.
- Exoplanets versus brown dwarfs: the CoRoT view and the future, Jean Schneider, 4 Apr 2016
- Hatzes Heike Rauer, Artie P. (2015). "A Definition for Giant Planets Based on the Mass-Density Relationship". The Astrophysical Journal. 810 (2): L25. arXiv: 1506.05097. Bibcode: 2015ApJ...810L..25H. doi: 10.1088/2041-8205/810/2/L25. S2CID 119111221.
- Wright, J. T.; et al. (2010). "The Exoplanet Orbit Database". arXiv: 1012.5676v1 [ astro-ph.SR].
- Exoplanet Criteria for Inclusion in the Archive, NASA Exoplanet Archive
- Basri, Gibor; Brown, Michael E. (2006). "Planetesimals To Brown Dwarfs: What is a Planet?". Annu. Rev. Earth Planet. Sci. 34: 193–216. arXiv: astro-ph/0608417. Bibcode: 2006AREPS..34..193B. doi: 10.1146/annurev.earth.34.031405.125058. S2CID 119338327.
- Boss, Alan P.; Basri, Gibor; Kumar, Shiv S.; Liebert, James; Martín, Eduardo L.; Reipurth, Bo; Zinnecker, Hans (2003). "Nomenclature: Brown Dwarfs, Gas Giant Planets, and ?". Brown Dwarfs. 211: 529. Bibcode: 2003IAUS..211..529B.
- Evidence of an Upper Bound on the Masses of Planets and its Implications for Giant Planet Formation, Kevin C. Schlaufman, 18 Jan 2018. The Astrophysical Journal, Volume 853, Number 1, 2018 January 22, http://iopscience.iop.org/article/10.3847/1538-4357/aa961c/meta
- Clavin, Whitney (2005). "A Planet With Planets? Spitzer Finds Cosmic Oddball". Spitzer Science Center. Retrieved 2006-05-25.
- "Planet or failed star? Hubble photographs one of the smallest stellar companions ever seen". ESA Hubble page. 2006. Retrieved 2007-02-23.
- P. Delorme; J. Gagn´e; L. Malo; C. Reyl´e; E. Artigau; L. Albert; T. Forveille; X. Delfosse; F. Allard; D. Homeier (2012). "CFBDSIR2149-0403: a 4-7 Jupiter-mass free-floating planet in the young moving group AB Doradus?". Astronomy & Astrophysics. 548: A26. arXiv: 1210.0305. Bibcode: 2012A&A...548A..26D. doi: 10.1051/0004-6361/201219984. S2CID 50935950.
- Liu, Michael C.; Magnier, Eugene A.; Deacon, Niall R.; Allers, Katelyn N.; Dupuy, Trent J.; Kotson, Michael C.; Aller, Kimberly M.; Burgett, W. S.; Chambers, K. C.; Draper, P. W.; Hodapp, K. W.; Jedicke, R.; Kudritzki, R.-P.; Metcalfe, N.; Morgan, J. S.; Kaiser, N.; Price, P. A.; Tonry, J. L.; Wainscoat, R. J. (2013-10-01). "The Extremely Red, Young L Dwarf PSO J318-22: A Free-Floating Planetary-Mass Analog to Directly Imaged Young Gas-Giant Planets". Astrophysical Journal Letters. 777 (2): L20. arXiv: 1310.0457. Bibcode: 2013ApJ...777L..20L. doi: 10.1088/2041-8205/777/2/L20. S2CID 54007072.
- Andrew Norton (September 27, 2019). "Exoplanet discovery blurs the line between large planets and small stars". phys.org. Retrieved 2020-03-13.
- Zimmer, Benjamin. "New planetary definition a "linguistic catastrophe"!". Language Log. Retrieved 2006-10-04.
- "A Travel Guide to the Solar System". National Public Radio. 2006. Archived from the original on 2006-11-07. Retrieved 2006-11-18.
- "Pluto's Planethood: What Now?". Air and Space. 2006. Archived from the original on 2013-01-01. Retrieved 2007-08-21.
- Soter, Steven (2006-08-16). "What is a Planet?". The Astronomical Journal. 132 (6): 2513–2519. arXiv: astro-ph/0608359. Bibcode: 2006AJ....132.2513S. doi: 10.1086/508861. S2CID 14676169. submitted to The Astronomical Journal, 16 August 2006
- Stern, S. Alan; Levison, Harold F. (2002). "Regarding the criteria for planethood and proposed planetary classification schemes" (PDF). Highlights of Astronomy. 12: 205–213, as presented at the XXIVth General Assembly of the IAU–2000 [Manchester, UK, 7–18 August 2000]. Bibcode: 2002HiA....12..205S. doi: 10.1017/S1539299600013289.
- Righter, Kevin; Drake, Michael J. (1997). "A magma ocean on Vesta: Core formation and petrogenesis of eucrites and diogenites". Meteoritics & Planetary Science. 32 (6): 929–944. Bibcode: 1997M&PS...32..929R. doi: 10.1111/j.1945-5100.1997.tb01582.x.
- Johanna Torppa; Mikko Kaasalainen; Tadeusz Michałowski; Tomasz Kwiatkowski; Agnieszka Kryszczyńska; Peter Denchev; Richard Kowalski (2003). "Shapes and rotational properties of thirty asteroids from photometric data" (PDF). Astronomical Observatory, Adam Mickiewicz University. Retrieved 2006-05-25.
- What is a planet? -Steven Soter
- Why Planets will never be defined: Robert Roy Britt on the outcome of the IAU's decision
- Nunberg, G. (2006-08-28). "Dwarfing Pluto". NPR. Retrieved 2007-04-13. An examination of the redefinition of Pluto from a linguistic perspective.
- The Pluto Files by Neil deGrasse Tyson The Rise and Fall of America's Favorite Planet
- Q&A New planets proposal Wednesday, 16 August 2006, 13:36 GMT 14:36 UK
- David Jewitt's Kuiper Belt page- Pluto
- Dan Green's webpage: What is a planet?
- What is a Planet? Debate Forces New Definition
- The Flap Over Pluto
- "You Call That a Planet?: How astronomers decide whether a celestial body measures up."
- David Darling. The Universal Book of Astronomy, from the Andromeda Galaxy to the Zone of Avoidance. 2003. John Wiley & Sons Canada ( ISBN 0-471-26569-1), p. 394
- Collins Dictionary of Astronomy, 2nd ed. 2000. HarperCollins Publishers ( ISBN 0-00-710297-6), p. 312-4.
- Catalogue of Planetary Objects. Version 2006.0 O.V. Zakhozhay, V.A. Zakhozhay, Yu.N. Krugly, 2006
- The New Proposal, Resolution 5, 6 and 7 2006-08-22
- IAU 2006 General Assembly: video-records of the discussion and of the final vote on the Planet definition.
- Boyle, Alan, The Case for Pluto The Case for Pluto Book by MSNBC Science Editor and author of "Cosmic Log"
- Croswell, Dr. Ken "Pluto Question" Pluto Question