---
title: Stellar classification
canonical_url: https://paxabyssi.com/wiki/Stellar_classification
markdown_url: https://paxabyssi.com/wiki/Stellar_classification.md
type: wiki-page
revision_id: 596
revision_view: stable
last_updated: 2026-09-28
license: CC BY-SA 4.0
license_url: https://creativecommons.org/licenses/by-sa/4.0/
science_status:
  - observed
  - sim
summary: How astronomers sort stars by their spectra. A letter (O, B, A, F, G, K, M, and L, T, Y for the coolest objects) and a number give the surface temperature; a Roman numeral gives the size and brightness. The Sun is a G2V star.
categories:
  - Stars
  - Stellar classification
  - Classification schemes
aliases:
  - Spectral classification
  - Spectral type
  - Spectral class
  - Stellar spectral type
  - Harvard classification
  - Morgan-Keenan classification
  - MK system
  - MKK system
  - Luminosity class
  - OBAFGKM
  - Stellar class
  - Star types
  - Star classification
infobox:
  type: star_class
  code: 56 sim stellar types; 32 galaxy-map display classes
  mass:
    unit: M_Sun
    value: 0.079 (M9V) to about 43 (O5V) on the main sequence
    source: observed
  name: Stellar classification
  image: File:Gaia_HR_diagram_ESA.jpg
  radius:
    unit: R_Sun
    value: 0.10 (M9V) to about 11 (O5V) on the main sequence
    source: observed
  caption: "Observation: the Hertzsprung-Russell diagram of about four million nearby stars measured by Gaia. Credit: ESA/Gaia/DPAC"
  subtypes: "[[Red dwarf]] (M), [[K-type main-sequence star]] (K), [[G-type main-sequence star]] (G), [[Red giant]], [[Supergiant]], [[Brown dwarf]] (L, T, Y)"
  bv_colour:
    unit: mag
    value: -0.32 (O5V) to 2.17 (M9V)
    source: observed
  luminosity:
    unit: L_Sun
    value: about 0.0003 (M9V) to about 350,000 (O5V) on the main sequence
    source: observed
  science_doc: The sim's stellar classification reference (56 types, XXX-YY-ZZ subtype codes)
  last_verified: 2026-09-27, writer B
  real_examples: The Sun (G2V), Sirius A (A1V), Rigel (B8Ia), Betelgeuse (M1-M2Ia-Iab), Proxima Centauri (M5.5Ve), Arcturus (K1.5III)
  physics_engine: Stellar parameter derivation and class assignment modules; 44 per-class physics engines
  share_of_stars: "Within 10 pc: M about 74%, K 11%, G 5%, F 2%, A 1%, white dwarfs 6% (derived from Reylé et al. 2021)"
  luminosity_class: 0 (hypergiants), Ia, Iab, Ib (supergiants), II (bright giants), III (giants), IV (subgiants), V (main sequence, dwarfs), VI (subdwarfs), VII (white dwarfs, rarely used)
  perceived_colour: From blue-white (O, B) through white (A, F) and faintly yellowish white (G) to pale orange (K) and orange (M). No star looks green or purple; to the eye most look nearly white
  absolute_magnitude_v:
    unit: mag
    value: -5.35 (O5V) to 19.4 (M9V)
    source: observed
  effective_temperature:
    unit: K
    value: about 2,350 (M9.5V) to about 41,000 (O5V) on the main sequence; about 250 (Y4) for the coolest brown dwarfs
    source: observed
  spectral_types_covered: O, B, A, F, G, K, M; L, T, Y (brown dwarfs); subclasses 0 to 9 (sometimes with decimals)
related:
  - https://paxabyssi.com/wiki/G-type_main-sequence_star.md
  - https://paxabyssi.com/wiki/K-type_main-sequence_star.md
  - https://paxabyssi.com/wiki/Red_dwarf.md
  - https://paxabyssi.com/wiki/Red_giant.md
  - https://paxabyssi.com/wiki/Brown_dwarf.md
  - https://paxabyssi.com/wiki/Supergiant.md
---

# Stellar classification

> Source: https://paxabyssi.com/wiki/Stellar_classification
>
> Licence: [CC BY-SA 4.0](https://creativecommons.org/licenses/by-sa/4.0/). Text by Pax Abyssi Wiki contributors; history at https://paxabyssi.com/wiki/Stellar_classification/history
>
> Revision 596, 28 September 2026

**Stellar classification** is the sorting of stars by their spectra, the patterns of dark lines that atoms and molecules in a star's atmosphere cut into its light. Each star gets a letter, O, B, A, F, G, K or M, running from the hottest to the coolest, with L, T and Y added for the still cooler [brown dwarfs](https://paxabyssi.com/wiki/Brown_dwarf.md); a number from 0 to 9 that divides each letter into finer steps; and a Roman numeral, the luminosity class, that says whether the star is a compact dwarf or a swollen giant. The Sun is a **G2V** star: a yellow-white, hydrogen-burning main-sequence star with a surface temperature of 5,772 K [1]. A spectral type sums up a star's temperature, size and stage of life in three characters, and it is the first thing astronomers look up about a star.

## The spectral sequence

### From Harvard's letters to temperatures

The letters come from the Harvard College Observatory, where in the 1890s Edward Pickering's team photographed and sorted the spectra of hundreds of thousands of stars. Annie Jump Cannon refined the system while classifying the southern sky [2], and the resulting Henry Draper Catalogue, published between 1918 and 1924, gave spectral types for 225,300 stars down to about ninth magnitude [3]. The letters were first assigned alphabetically by the strength of the hydrogen lines, then reordered into the sequence OBAFGKM once it became clear that the sequence was one of temperature. Cecilia Payne's 1925 thesis applied the new physics of atomic ionisation to show how temperature, rather than differences in composition, controls which lines a star shows [4].

Temperature matters because it decides which atoms are ionised and which molecules survive. In the hottest stars even helium loses an electron; in the coolest, molecules such as titanium oxide can form. The hallmarks of each class are these [5] [6]:

| Class | Surface temperature (main sequence) | Hallmark lines                                 | Example                      |
| ----- | ----------------------------------- | ---------------------------------------------- | ---------------------------- |
| O     | above about 31,500 K                | Ionised helium                                 | Zeta Ophiuchi                |
| B     | about 10,000 to 31,500 K            | Neutral helium; hydrogen strengthening         | Rigel, Spica                 |
| A     | about 7,300 to 10,000 K             | Hydrogen strongest                             | Sirius A, Vega               |
| F     | about 6,000 to 7,300 K              | Hydrogen weakening; ionised calcium and metals | Procyon A                    |
| G     | about 5,300 to 6,000 K              | Ionised calcium very strong; many metal lines  | The Sun, Alpha Centauri A    |
| K     | about 3,900 to 5,300 K              | Neutral metals; molecular bands appear         | Alpha Centauri B, Arcturus   |
| M     | about 2,350 to 3,900 K              | Titanium oxide bands                           | Proxima Centauri, Betelgeuse |

The boundaries in the table are the temperatures between the last subtype of one class and the first of the next in Eric Mamajek's compilation of main-sequence stars, which builds on Pecaut and Mamajek (2013) [7] [8]. Giants and supergiants of the same spectral type are slightly cooler.

### Beyond M

Surveys in the infrared found objects cooler than any M star. Class L was defined in 1999 from 2MASS discoveries, for objects around 1,300 to 2,300 K whose spectra show metal hydrides and alkali metals [9]. Class T, with strong methane absorption, followed [10], and the first Y dwarfs, below about 500 K, were found with the WISE satellite in 2011 [11]. Most L dwarfs and all T and Y dwarfs are brown dwarfs, objects too small to sustain hydrogen fusion.

Special classes cover stars whose chemistry, not temperature, sets their spectra: W for the hot, stripped Wolf-Rayet stars, C for carbon stars, S for giants rich in zirconium oxide, and D for white dwarfs.

## Luminosity classes

Two stars of the same temperature can differ in size by a factor of a thousand, and the spectrum shows which is which. A giant's atmosphere is thin and its surface gravity weak, so its absorption lines are narrower than those of a dwarf, whose denser gas broadens them. In 1943 William Morgan, Philip Keenan and Edith Kellman at Yerkes Observatory published the atlas that added this second dimension, now called the MK (or MKK) system [12] [5]:

| Class       | Meaning                                                          | Example                       |
| ----------- | ---------------------------------------------------------------- | ----------------------------- |
| 0 or Ia+    | Hypergiant                                                       | Rho Cassiopeiae               |
| Ia, Iab, Ib | Luminous, intermediate and less luminous supergiants             | Rigel (B8Ia), Betelgeuse      |
| II          | Bright giant                                                     |                               |
| III         | Giant                                                            | Arcturus (K1.5III), Aldebaran |
| IV          | Subgiant                                                         |                               |
| V           | Main-sequence star ("dwarf")                                     | The Sun (G2V)                 |
| VI          | Subdwarf                                                         |                               |
| VII         | White dwarf (rarely used; white dwarfs have their own D classes) |                               |

Classifiers add finer notes: "e" for emission lines, "p" for peculiar, and so on. The standard stars that define the classes are listed in catalogues such as the Perkins catalogue of cooler stars [13].

## The main sequence in numbers

Most stars spend most of their lives on the main sequence, fusing hydrogen in their cores, and along it spectral type is tied to mass, size and brightness. Representative values [7] [8]:

| Type | Temperature (K) | Mass (Sun = 1) | Radius (Sun = 1) | Luminosity (Sun = 1) | B-V colour | Absolute magnitude M_V |
| ---- | --------------- | -------------- | ---------------- | -------------------- | ---------- | ---------------------- |
| O5V  | 41,400          | 43             | 11.5             | about 350,000        | -0.32      | -5.35                  |
| B0V  | 31,400          | 17.7           | 7.2              | about 45,000         | -0.30      | -3.90                  |
| A0V  | 9,700           | 2.18           | 2.19             | 38                   | 0.00       | 0.99                   |
| F0V  | 7,220           | 1.61           | 1.73             | 7.2                  | 0.30       | 2.57                   |
| G2V  | 5,770           | 1.00           | 1.01             | 1.02                 | 0.65       | 4.80                   |
| K0V  | 5,270           | 0.88           | 0.81             | 0.46                 | 0.82       | 5.78                   |
| K5V  | 4,440           | 0.70           | 0.70             | 0.17                 | 1.15       | 7.28                   |
| M0V  | 3,850           | 0.57           | 0.59             | 0.069                | 1.42       | 8.80                   |
| M5V  | 3,060           | 0.162          | 0.196            | 0.0030               | 1.83       | 14.15                  |
| M9V  | 2,380           | 0.079          | 0.102            | 0.0003               | 2.17       | 19.40                  |

Luminosity rises steeply with mass: an O5 star is about 40 times the Sun's mass but hundreds of thousands of times as bright, and burns out in a few million years, while an M dwarf will outlive the present age of the universe many times over. The compiler notes that the mean masses are tentative, and the O5V row and the absolute magnitudes come from the online table rather than the 2013 paper [7].

## The Hertzsprung-Russell diagram

Plotting stars' temperature (or colour, or spectral type) against their luminosity gives the Hertzsprung-Russell diagram, in which the luminosity classes separate into bands: the main sequence running diagonally, the giants and supergiants above it, and the white dwarfs below. The European Space Agency's Gaia mission has measured distances to so many stars that its diagram of the solar neighbourhood shows these sequences with unprecedented sharpness, including fine structure within the main sequence and the white dwarf sequence [14].

![A dense scatter plot of millions of stars: a broad diagonal main sequence, a giant branch rising to the upper right, and a thin white dwarf sequence at lower left](https://media.paxabyssi.com/public/f2e6e8b1dc181cd36a7e43c27ac0ac579ac7e9252f7686ec9d68bf9dac86f341/2480.webp "Observation: Gaia's Hertzsprung-Russell diagram of about four million stars within 5,000 light years. Credit: ESA/Gaia/DPAC, CC BY-SA 3.0 IGO.")

*Figure 1.* Observation: Gaia's Hertzsprung-Russell diagram of about four million stars within 5,000 light years. Credit: ESA/Gaia/DPAC, CC BY-SA 3.0 IGO. Credit: ESA/Gaia/DPAC, CC BY-SA 3.0 IGO. Acknowledgement: Gaia Data Processing and Analysis Consortium (DPAC); Carine Babusiaux, IPAG, Université Grenoble Alpes, GEPI, Observatoire de Paris, France. Licence: CC BY-SA 3.0 IGO.

## What colour are stars?

Stellar colours are subtler than the letters suggest. Folding model stellar spectra through the colour response of the human eye shows that there are no green or purple stars. M dwarfs look orange rather than red, the Sun seen from space is white with the faintest yellow tint, and the whitest stars are late F types [15]. To the naked eye most stars look white, because at low light levels the eye sees little colour.

(Image pending: A row of coloured discs from blue-white O and B stars through white A and F stars to pale yellow G, pale orange K and orange M stars, sized by radius)

*Figure 2.* Diagram: main-sequence stars from O5 to M9, coloured as the eye would see them from space.

## How common is each class?

The brightest stars in the sky are a poor guide, because luminous stars are seen from far away. A census of every star within 10 parsecs (about 33 light years) finds 249 M dwarfs, 38 K stars, 18 G stars, 8 F stars, 4 A stars and 20 white dwarfs, with no giants at all [16]. That is roughly three quarters M dwarfs, one in nine K dwarfs, one in twenty G stars like the Sun, and hardly any A, B or O stars. The RECONS census of the same volume gives nearly identical shares [17].

## In Pax Abyssi

Pax Abyssi sorts every star by the same two coordinates astronomers use. A star's class comes straight from its catalogue spectral type: the letter sets its colour family and the luminosity class sets its stage, so Arcturus, a K giant, is an "orange giant" and the Sun, a G2V star, a "yellow dwarf". The simulation's taxonomy has 56 entries: seven main-sequence classes named by colour, from blue (O) to red (M); 28 evolved classes, each colour as a subgiant, giant, supergiant and hypergiant; white dwarfs; the L, T and Y brown dwarfs; seven exotic classes (Wolf-Rayet, carbon, S-type, subdwarf, protostar, T Tauri and Herbig Ae/Be stars); four kinds of neutron star; three sizes of black hole; and three keys for multiple systems. Most classes have their own physics engine and three-level subtype codes, and the galaxy map draws them as 32 display classes.

The stars themselves are real. The game's catalogue holds 119,626 stars from the HYG database, corrected with XHIP spectral types and Gaia distances, and the 5,070 of them bright enough to see with the naked eye are drawn as the sky. Because luminous stars are seen from far away, the catalogue leans towards them: 33,053 K stars (most of them giants), 26,288 F, 23,382 G, 18,226 A, 11,102 B, 6,530 M and 326 O. Each of the 5,160 stars you can fly to, by picking it on the galaxy map, locking it and jumping, has a generated planetary system, and its class sets the odds. The base chance of planets runs from 0.15 for an O star through 0.55 for B, 0.80 for A, 0.87 for F, 0.90 for G and 0.92 for K to 0.95 for M, and then shifts with the star's metallicity, companions, age and luminosity class. The generated galaxy that fills in the rest of the Milky Way draws its stars from the true local mix, three quarters of them M dwarfs, and it arrives next.

### Star colour in the sky

Each star's colour starts from its measured B-V colour index, which is converted to a temperature [18] and then to the tint of a black body at that temperature. A star is drawn as two lobes of light: a bright core pulled 75% of the way to white, because the centre of a bright star clips to white in any real camera, inside a wider halo that carries the star's colour below the white point. That is why Betelgeuse reads orange and Rigel blue in their glow while their centres stay white. Because of the whitened core, a star point at the default setting is paler overall than its true black-body colour, much as the night sky looks to the eye; the halo's tint is pushed to 1.35 times the saturation of the black body so that the colour it does carry reads on a monitor. These are the points of the sky; the star you fly up to is drawn by a separate system (below). How much colour the sky shows is the player's choice: the **star colour** row in Esc > Options > SPACE is a ten-rung ladder from 1, the palest and the default, through 5, accentuated but believable, where every star wears at least its full black-body colour, to 10, deliberately too much.

### Stars up close

Fly to a star and its surface is drawn from its own data: temperature, granulation cell size, activity, starspot coverage, rotation, and a limb-darkening coefficient for its class. Convective F, G, K and M stars boil with granulation, while the radiative O, B and A stars wear calmer faces and tighter, bluer glows. Giants carry far fewer and larger cells, and supergiants only a handful across the whole disc.

The six pictures below are one close-up view, the star filling the frame, forced to six temperatures. They were taken under the GAME sun palette, which paints stars the way films and games do. The default, SCIENTIFIC, gives every part of the surface the true colour of a black body at its own temperature, seen through the CIE 1931 standard observer, and there the same six stars are far paler: the Sun white, cool stars peach and orange, hot stars pale blue. The **sun palette** row sits in Esc > Options > SPACE under SUN, with a third choice, VIVID, that turns the game colours up further.

![A blue star filling the frame, its face mottled in pale and deep blue, with bright rays around the limb](https://media.paxabyssi.com/public/1ede899c9bd9b64a00e8b1683cf547ea376b360782c28209a134cb25a8d89816/900.webp "B · 20,000 K: a hot blue-white star, painted a deeper blue than the eye would see.")

B · 20,000 K: a hot blue-white star, painted a deeper blue than the eye would see. Credit: Pax Abyssi.

![A pale blue-white star filling the frame, its face veined with brighter lines, glowing white at the limb](https://media.paxabyssi.com/public/db611451020c261e55287e988f78764bce60ca29626b4ce5566457ba4f72f3f6/900.webp "A · 9,000 K: a white star with a cool blue cast, the colour of Vega and Sirius.")

A · 9,000 K: a white star with a cool blue cast, the colour of Vega and Sirius. Credit: Pax Abyssi.

![A near-white star filling the frame, its face softly mottled in cream and grey, with pale rays around it](https://media.paxabyssi.com/public/ed558df8c76ed3002d601240409fcfa87bdb15f08d9c7403d6194e8685f0374e/900.webp "F · 6,800 K: the whitest class to the eye, drawn near white with a trace of cream.")

F · 6,800 K: the whitest class to the eye, drawn near white with a trace of cream. Credit: Pax Abyssi.

![A golden star filling the frame, its surface a churning mosaic of orange and yellow cells](https://media.paxabyssi.com/public/43d68b04cf52b133acdd973942b9e1df0d87a6c9c4e523c9ba5064db916828bc/900.webp "G · 5,772 K: the Sun's own temperature, painted gold here; the scientific palette draws it white.")

G · 5,772 K: the Sun's own temperature, painted gold here; the scientific palette draws it white. Credit: Pax Abyssi.

![An orange star filling the frame, its face streaked with dark lanes between bright cells](https://media.paxabyssi.com/public/5be7f65e3c25f8aaf1fa7a18b1f413e2b892dc4c6757c364e83e0fa3117b78c3/900.webp "K · 4,500 K: an orange dwarf with large, high-contrast cells.")

K · 4,500 K: an orange dwarf with large, high-contrast cells. Credit: Pax Abyssi.

![A deep red star filling the frame, its face broken into large dark and bright patches](https://media.paxabyssi.com/public/052685c81d4eb55715589826a537bdce27e6c8f668beae28d35605db8a7de13d/900.webp "M · 3,200 K: a mid-M red dwarf, drawn deep red; to the eye it would look orange.")

M · 3,200 K: a mid-M red dwarf, drawn deep red; to the eye it would look orange. Credit: Pax Abyssi.

*Figure 3.* In Pax Abyssi: one close-up view forced to six temperatures, under the GAME sun palette. Under the default SCIENTIFIC palette the same stars are far paler.

## See also

- [Red dwarf](https://paxabyssi.com/wiki/Red_dwarf.md)
- [K-type main-sequence star](https://paxabyssi.com/wiki/K-type_main-sequence_star.md)
- [G-type main-sequence star](https://paxabyssi.com/wiki/G-type_main-sequence_star.md)
- [Red giant](https://paxabyssi.com/wiki/Red_giant.md)
- [Supergiant](https://paxabyssi.com/wiki/Supergiant.md)
- [Brown dwarf](https://paxabyssi.com/wiki/Brown_dwarf.md)
- [White dwarf](https://paxabyssi.com/wiki/White_dwarf.md)
- [Neutron star](https://paxabyssi.com/wiki/Neutron_star.md)
- [Star catalogue](https://paxabyssi.com/wiki/Star_catalogue.md)

## References

1. Prša, A. et al. (2016). Nominal Values for Selected Solar and Planetary Quantities: IAU 2015 Resolution B3. The Astronomical Journal 152, 41. <https://doi.org/10.3847/0004-6256/152/2/41>
2. Pickering, E. C. and Cannon, A. J. (1897). Spectra of bright southern stars. The Astrophysical Journal 6, 349. <https://doi.org/10.1086/140407>
3. Cannon, A. J. and Pickering, E. C.. Henry Draper Catalogue and Extension (Annals of Harvard College Observatory 91 to 100), VizieR III/135A. <https://vizier.cds.unistra.fr/viz-bin/VizieR?-source=III/135A>
4. Struve, O. (1926). Review: Stellar Atmospheres. A Contribution to the Study of High Temperature Ionization in the Reversing Layers of Stars, by Cecilia H. Payne. The Astrophysical Journal 64, 204. <https://doi.org/10.1086/143003>
5. Morgan, W. W. and Keenan, P. C. (1973). Spectral Classification. Annual Review of Astronomy and Astrophysics 11, 29-50. <https://doi.org/10.1146/annurev.aa.11.090173.000333>
6. Gray, R. O. and Corbally, C. J. (2009). Stellar Spectral Classification. Princeton University Press. <https://doi.org/10.1515/9781400833368>
7. Mamajek, E. E.. A Modern Mean Dwarf Stellar Color and Effective Temperature Sequence (version 2022.04.16). <https://www.pas.rochester.edu/~emamajek/EEM_dwarf_UBVIJHK_colors_Teff.txt>
8. Pecaut, M. J. and Mamajek, E. E. (2013). Intrinsic Colors, Temperatures, and Bolometric Corrections of Pre-main-sequence Stars. The Astrophysical Journal Supplement Series 208, 9. <https://doi.org/10.1088/0067-0049/208/1/9>
9. Kirkpatrick, J. D. et al. (1999). Dwarfs Cooler than "M": The Definition of Spectral Type "L" Using Discoveries from the 2 Micron All-Sky Survey (2MASS). The Astrophysical Journal 519, 802-833. <https://doi.org/10.1086/307414>
10. Kirkpatrick, J. D. (2005). New Spectral Types L and T. Annual Review of Astronomy and Astrophysics 43, 195-245. <https://doi.org/10.1146/annurev.astro.42.053102.134017>
11. Cushing, M. C. et al. (2011). The Discovery of Y Dwarfs Using Data from the Wide-field Infrared Survey Explorer (WISE). The Astrophysical Journal 743, 50. <https://doi.org/10.1088/0004-637X/743/1/50>
12. Morgan, W. W., Keenan, P. C. and Kellman, E. (1943). An Atlas of Stellar Spectra, with an Outline of Spectral Classification. University of Chicago Press.
13. Keenan, P. C. and McNeil, R. C. (1989). The Perkins catalog of revised MK types for the cooler stars. The Astrophysical Journal Supplement Series 71, 245. <https://doi.org/10.1086/191373>
14. Gaia Collaboration et al. (2018). Gaia Data Release 2: Observational Hertzsprung-Russell diagrams. Astronomy & Astrophysics 616, A10. <https://doi.org/10.1051/0004-6361/201832843>
15. Harre, J. V. and Heller, R. (2021). Digital color codes of stars. Astronomische Nachrichten 342, 578-587. <https://doi.org/10.1002/asna.202113868>
16. Reylé, C. et al. (2021). The 10 parsec sample in the Gaia era. Astronomy & Astrophysics 650, A201. <https://doi.org/10.1051/0004-6361/202140985>
17. Henry, T. J. et al. (2018). The Solar Neighborhood XLIV: RECONS Discoveries within 10 parsecs. The Astronomical Journal 155, 265. <https://doi.org/10.3847/1538-3881/aac262>
18. Ballesteros, F. J. (2012). New insights into black bodies. EPL (Europhysics Letters) 97, 34008. <https://doi.org/10.1209/0295-5075/97/34008>

## Infobox (star class)

| Field | Value |
| --- | --- |
| Code | 56 sim stellar types; 32 galaxy-map display classes |
| Mass | 0.079 (M9V) to about 43 (O5V) on the main sequence M_Sun |
| Name | Stellar classification |
| Image | File:Gaia_HR_diagram_ESA.jpg |
| Radius | 0.10 (M9V) to about 11 (O5V) on the main sequence R_Sun |
| Caption | Observation: the Hertzsprung-Russell diagram of about four million nearby stars measured by Gaia. Credit: ESA/Gaia/DPAC |
| Subtypes | [[Red dwarf]] (M), [[K-type main-sequence star]] (K), [[G-type main-sequence star]] (G), [[Red giant]], [[Supergiant]], [[Brown dwarf]] (L, T, Y) |
| Bv colour | -0.32 (O5V) to 2.17 (M9V) mag |
| Luminosity | about 0.0003 (M9V) to about 350,000 (O5V) on the main sequence L_Sun |
| Science doc | The sim's stellar classification reference (56 types, XXX-YY-ZZ subtype codes) |
| Last verified | 2026-09-27, writer B |
| Real examples | The Sun (G2V), Sirius A (A1V), Rigel (B8Ia), Betelgeuse (M1-M2Ia-Iab), Proxima Centauri (M5.5Ve), Arcturus (K1.5III) |
| Physics engine | Stellar parameter derivation and class assignment modules; 44 per-class physics engines |
| Share of stars | Within 10 pc: M about 74%, K 11%, G 5%, F 2%, A 1%, white dwarfs 6% (derived from Reylé et al. 2021) |
| Luminosity class | 0 (hypergiants), Ia, Iab, Ib (supergiants), II (bright giants), III (giants), IV (subgiants), V (main sequence, dwarfs), VI (subdwarfs), VII (white dwarfs, rarely used) |
| Perceived colour | From blue-white (O, B) through white (A, F) and faintly yellowish white (G) to pale orange (K) and orange (M). No star looks green or purple; to the eye most look nearly white |
| Absolute magnitude v | -5.35 (O5V) to 19.4 (M9V) mag |
| Effective temperature | about 2,350 (M9.5V) to about 41,000 (O5V) on the main sequence; about 250 (Y4) for the coolest brown dwarfs K |
| Spectral types covered | O, B, A, F, G, K, M; L, T, Y (brown dwarfs); subclasses 0 to 9 (sometimes with decimals) |

## Related pages

- [G-type main-sequence star](https://paxabyssi.com/wiki/G-type_main-sequence_star.md): A hydrogen-burning star of spectral class G, like the Sun, with a surface temperature of about 5,300 to 6,000 K and roughly 0.9 to 1.1 times the Sun's mass. Often called yellow dwarfs, they look white with a faint warm tint from space and shine steadily for about ten billion years.
- [K-type main-sequence star](https://paxabyssi.com/wiki/K-type_main-sequence_star.md): A hydrogen-burning star of spectral class K, between about 0.6 and 0.9 times the Sun's mass, with a surface temperature of about 3,900 to 5,300 K. Often called orange dwarfs, they outnumber Sun-like stars two to one, live for tens of billions of years, and are among the best places to look for habitable planets.
- [Red dwarf](https://paxabyssi.com/wiki/Red_dwarf.md): A small, cool, faint main-sequence star of spectral class M, between about 8% and 60% of the Sun's mass. Red dwarfs are about three quarters of all stars, live for trillions of years, flare violently when young, and host many of the nearest known rocky planets.
- [Red giant](https://paxabyssi.com/wiki/Red_giant.md): A star in a late stage of life that has run out of hydrogen in its core and swollen to tens or hundreds of times the Sun's size, with a cool, orange-red surface. Stars from about 0.8 to 8 solar masses pass through this stage; the Sun will, in about seven and a half billion years.
- [Brown dwarf](https://paxabyssi.com/wiki/Brown_dwarf.md): An object between a planet and a star, roughly 13 to 75 times Jupiter's mass, too light to sustain hydrogen fusion. Brown dwarfs glow with the heat of their formation and cool for ever, passing through the spectral classes L, T and Y; there is about one for every four stars.
- [Supergiant](https://paxabyssi.com/wiki/Supergiant.md): A massive star in a late stage of life, tens of thousands to hundreds of thousands of times as luminous as the Sun, of luminosity class I. Red supergiants such as Betelgeuse are among the largest stars known; blue ones such as Rigel are among the brightest. Most end as supernovae within a few million years of forming.

Categories: [Stars](https://paxabyssi.com/wiki/Category:Stars.md), [Stellar classification](https://paxabyssi.com/wiki/Category:Stellar_classification.md), [Classification schemes](https://paxabyssi.com/wiki/Category:Classification_schemes.md)
