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The Hindu calendar is based on a geocentric model of the Solar System.[1] A geocentric model describes the Solar System as seen by an observer on the surface of the Earth.
The Hindu calendar defines nine measures of time (Sanskrit: ऎञन; IAST:mÄna):[2]
- brÄhma mÄna
- divya mÄna
- pitraya mÄna
- prÄjÄpatya mÄna
- guror mÄna
- saura mÄna
- sÄvana mÄna
- candra mÄna
- nÄkᚣatra mÄna
Of these, only the last four are in active use[3] and are explained here.
Candra mÄna[edit | edit source]
The candra mÄna (Sanskrit: ŕ¤ŕ¤¨ŕĽŕ¤ŚŕĽŕ¤° ऎञन) of the Hindu calendar is defined based on the movement of the Moon around the Earth. The new moon (Sanskrit: ठऎञाञसŕĽŕ¤Ż, romanized: amÄvÄsya) and full moon (Sanskrit: पŕĽŕ¤°ŕĽŕ¤Łŕ¤żŕ¤Žŕ¤ž, romanized: pĹŤrášimÄ) are important markers in this calendar.
The candra mÄna of the Hindu calendar defines the following synodic calendar elements:
Pakᚣa[edit | edit source]
A pakᚣa (Sanskrit: पŕ¤ŕĽŕ¤ˇ) is the time taken by the Moon to move from a new moon to a full moon and vice versa. The waxing phase of the moon is known as the bright side (Sanskrit: जŕĽŕ¤ŕĽŕ¤˛ पŕ¤ŕĽŕ¤ˇ, romanized: Ĺukla pakᚣa) and the waning phase is known as the dark side (Sanskrit: ŕ¤ŕĽŕ¤ˇŕĽŕ¤Ł पŕ¤ŕĽŕ¤ˇ, romanized: kášášŁáša pakᚣa). During a pakᚣa, the Moon advances 180° with respect to the Earth-Sun axis.
CandramÄsa[edit | edit source]
A cÄndramÄsa (Sanskrit: ŕ¤ŕ¤¨ŕĽŕ¤ŚŕĽŕ¤°ŕ¤Žŕ¤žŕ¤¸) is the time taken by the moon to move from a new moon to the next new moon (as per the amÄnta [Sanskrit: ठऎञनŕĽŕ¤¤] tradition) or a full moon to the next full moon (as per the pĹŤrášimÄnta [Sanskrit: पŕĽŕ¤°ŕĽŕ¤Łŕ¤żŕ¤Žŕ¤žŕ¤¨ŕĽŕ¤¤] tradition).[4][note 1] In other words a cÄndramÄsa is the synodic period of the Moon, or two pakᚣas. During a cÄndramÄsa, the Moon advances 360° with respect to the Earth-Sun axis.
Candra mÄna varᚣa[edit | edit source]
A candra mÄna varᚣa or lunar year is made up of 12 consecutive candramÄsa.[5] These twelve candramÄsa are designated by unique names caitra, vaiĹÄkha, etc.[note 2]
In some instances an additional candramÄsa, known as an adhikamÄsa, is added to synchronise the candra mÄna varᚣa with the solar year or saura mÄna varᚣa.
Tithi[edit | edit source]
A tithi (Sanskrit: ति़ि) is the time taken by the Moon to advance 12° with respect to the Earth-Sun axis.[6] In other words a tithi is the time taken for the Moon's elongation (on the ecliptic plane) to increase by 12°. A tithi is one fifteenth of a pakᚣa and one thirtieth of a cÄndramÄsa. A tithi corresponds to the concept of a lunar day.
Tithi have Sanskrit numbers according by their position in the pakᚣa, i.e. prathama (first), dvitÄŤya (second) etc. The fifteenth, that is, the last tithi of a kášášŁáša pakᚣa is called amÄvÄsya (new moon) and the fifteenth tithi of a Ĺukla pakᚣa is called pĹŤrášimÄ (full moon).[7]
Saura mÄna[edit | edit source]
The saura mÄna (Sanskrit: सŕĽŕ¤° ऎञन) of the Hindu calendar is defined by the movement of the Earth around the Sun.[8] It contains sidereal (Sanskrit: निरयन; nirayana) and tropical (Sanskrit: सञयन; sÄyana) elements.
Sidereal elements[edit | edit source]
A saura mÄna varᚣa or sidereal year is the time taken by the Sun to orbit the Earth once and return to the starting point with respect to the fixed stars. The starting point is taken to be the position of the Sun when it is in opposition to Spica (Sanskrit: ŕ¤ŕ¤żŕ¤¤ŕĽŕ¤°ŕ¤ž, romanized: citrÄ).[9][note 3].[11]
A rÄĹi (Sanskrit: रञजि) is a 30° arc of the orbit of the Sun around the Earth[12] (i.e an arc of the ecliptic). Starting in the vicinity of Zeta Piscium (IAST: revatÄŤ), the twelve (i.e. 360° divided by 30°) rÄĹi are designated meᚣa (Sanskrit: ऎŕĽŕ¤ˇ), vášášŁabha (Sanskrit: ाŕĽŕ¤ˇŕ¤) etc. A sauramÄsa (Sanskrit: सŕĽŕ¤°ŕ¤Žŕ¤žŕ¤¸) is the time taken by the Sun to traverse a rÄĹi.[4] SauramÄsa get their names from the corresponding rÄĹi. sauramÄsa corresponds to the concept of a month. The moment in time when the Sun enters a rÄĹi is known as a saáš kramaáša (Sanskrit: सŕ¤ŕĽŕ¤ŕĽŕ¤°ŕ¤Žŕ¤Ł) or saáš krÄnti (Sanskrit: सŕ¤ŕĽŕ¤ŕĽŕ¤°ŕ¤žŕ¤¨ŕĽŕ¤¤ŕ¤ż).
Tropical elements[edit | edit source]
These time periods are defined based on the solstices (Sanskrit: ठयन; IAST: ayana) and equinoxes (Sanskrit: ािडŕĽŕ¤ľŕ¤¤ŕĽ; IAST: viᚣuvat).[13]
The time taken by the Sun to move from the winter solstice to the summer solstice is known as northward movement (Sanskrit: ŕ¤ŕ¤¤ŕĽŕ¤¤ŕ¤°ŕ¤žŕ¤Żŕ¤Ł, romanized: uttarÄyaáša) and time taken by the Sun to move from the summer solstice to the winter solstice is called southward movement Sanskrit: ऌŕ¤ŕĽŕ¤ˇŕ¤żŕ¤Łŕ¤žŕ¤Żŕ¤¨, romanized: dakᚣiášÄyana. Due to the axial tilt of the Earth, the Sun appears to move towards the north from the Tropic of Capricorn to the Tropic of Cancer during uttarÄyaáša, and towards the south from the tropic of Cancer to the tropic of Capricorn during dakᚣiášÄyana.[note 4]
The time taken by the Sun to move from the spring equinox (ecliptic longitude 0°) to the autumnal equinox (ecliptic longitude 180°) is known as devayÄna (Sanskrit: ऌŕĽŕ¤ľŕ¤Żŕ¤žŕ¤¨). The time taken by the Sun to move from the autumnal equinox to the spring equinox is designated as pitášyÄáša (Sanskrit: पितŕĽŕ¤Żŕ¤žŕ¤Ł). Due to the axial tilt of the Earth, the Sun appears to be in the north celestial sphere during devayÄna and the south celestial sphere during pitášyÄáša. In Hindu tradition, the north celestial sphere is consecrated to the gods (deva) and the south celestial sphere is consecrated to the ancestors (pitáš). DevayÄna and pitášyÄáša are not in active calendric use any longer but do form the basis for pitášpakᚣa.
A áštu (Sanskrit: ŕ¤ŕ¤¤ŕĽ)[note 5] is the time taken by the Sun to move sixty degrees on its orbit around the Earth.[note 6] áštu corresponds to the concept of a season.
The six áštu of the year are known as
- ĹiĹira áštu (winter)
- Vasanta áštu (spring)
- Grčᚣma áštu (summer)
- VarášŁÄ áštu the monsoon season, beginning at summer solstice
- Ĺarada áštu (autumn)
- Hemanta áštu (pre-winter)
NÄkᚣatra mÄna[edit | edit source]
NÄkᚣatra mÄna (Sanskrit: नञŕ¤ŕĽŕ¤ˇŕ¤¤ŕĽŕ¤° ऎञन) is defined with respect to the fixed stars, so all elements are sidereal in nature.
A dina (Sanskrit: ऌिन) is the time taken by the celestial sphere to complete one sidereal rotation around the Earth.[17][note 7] In reality, this movement is caused by the diurnal rotation of the Earth on its axis. This definition is not used in practice but is required for defining the following smaller units of time. Ä dina is ~4 minutes short of 24 hours.
A ghaášikÄ (Sanskrit: ŕ¤ŕ¤ŕ¤żŕ¤ŕ¤ž) or nÄá¸ÄŤ (Sanskrit: नञथŕĽ) is one sixtieth of a nakᚣatra dina, or just under 24 minutes.
A vighaášikÄ (Sanskrit: ािŕ¤ŕ¤ŕ¤żŕ¤ŕ¤ž) or vinÄá¸ÄŤ (Sanskrit: ािनञथŕĽ) is one sixtieth of a ghaášikÄ, or just under 24 seconds.
A prÄáša (Sanskrit: पŕĽŕ¤°ŕ¤žŕ¤Ł) or asu (Sanskrit: ठसŕĽ) is one sixth of a vighaášikÄ, or just under four seconds.[18]
SÄvana mÄna[edit | edit source]
SÄvana mÄna (Sanskrit: सञान ऎञन) of the Hindu calendar defines civil time.
A dina (Sanskrit: ऌिन) is the time between two succeeding sunrises.[19] dina corresponds to the concept of a solar day. The length of a dina varies with daytime length.
nakᚣatra[edit | edit source]
Apart from the four mÄna explained above, the concept of nakᚣatra is an important characteristic of the Hindu calendar. This term has multiple meanings:[20]
- A nakᚣatra (Sanskrit: नŕ¤ŕĽŕ¤ˇŕ¤¤ŕĽŕ¤°) is a star.
- A nakᚣatra is an asterism. One of the stars in the asterism is designated as its principal star (Sanskrit: यŕĽŕ¤ŕ¤¤ŕ¤žŕ¤°ŕ¤ž; IAST:yogatÄrÄ). There are twenty eight such nakᚣatra and they are individually named. The name of a nakᚣatra and its yogatÄrÄ are identical. For example, revatÄŤ is an asterism whose principal star is revatÄŤ (Zeta Piscium).
- A nakᚣatra is a 13° 20' arc of the ecliptic.[6] There are twenty seven such nakᚣatra (i.e. 360° divided by 13° 20'). Starting in the vicinity of revatÄŤ (Zeta Piscium), they are named aĹvinÄŤ, bharaášÄŤ etc.[note 8] These names are identical to the names of the asterisms that are located within the respective arc segments. For example, revatÄŤ refers to both an asterism and the arc segment within which the asterism is located.
- In calendric terms, a nakᚣatra is the time taken by the Moon to traverse a nakᚣatra (as defined in point 3).[citation needed] Hence, nakᚣatra is a sidereal element (unlike the tithi which it is similar to) and corresponds to the concept of a day.
Combining the different measures of time[edit | edit source]
The four mÄna explained above are used in combination in the Hindu calendar.
adhikamÄsa
As seen above, both the cÄndra mÄna and saura mÄna of the calendar define a varᚣa comprising twelve mÄsa, but the duration of the varᚣa differ; the cÄndra mÄna varᚣa is shorter than the saura mÄna varᚣa by about eleven sÄvana dina. As a result, unless explicitly synchronised, these two parts of the calendar will diverge over time, as the cÄndra mÄna varᚣa will keep "falling behind" the saura mÄna varᚣa.
In order to synchronise these two parts of the calendar, an additional cÄndramÄsa is introduced into some cÄndra mÄna varᚣa.[note 9] Such a cÄndramÄsa is referred to as adhikamÄsa (Sanskrit: ठधिŕ¤ŕ¤Žŕ¤žŕ¤¸). A adhikamÄsa takes its name from the name of the cÄndramÄsa which follows, viz. adhika ÄĹvina precedes ÄĹvina.
Most times every cÄndramÄsa witnesses a saáš kramaáša. If a cÄndramÄsa does not witness a saáš kramaáša, that cÄndramÄsa is designated as a adhikamÄsa thus resulting in the cÄndra mÄna varᚣa "catching up" with the saura mÄna varᚣa. This happens approximately once every two and a half (solar) years.
dina and tithi
As seen above, both the cÄndra mÄna and sÄvana mÄna of the calendar define the concept of a day as tithi and dina respectively. dina are not named and are not used for calendric purposes. The tithi takes precedence instead.[4][note 10]
Human life is regulated by the rising of the Sun and not by the movement of the Moon through a 12° arc. Hence, the position of the Moon at sunrise is used to determine the tithi prevailing at sunrise. This tithi is then associated with the entire sÄvana dina.
To illustrate: consider the Gregorian date 18th Sep 2021. Instead of referring to it as "2nd dina of kanyÄ masa" Hindus will refer to it as " bhÄdrapada mÄsa, Ĺukla pakᚣa, dvitiyÄ tithi", which is the tithi prevailing at sunrise on that sÄvana dina. Even though the Moon moves into the trayodaĹÄŤ arc soon after sunrise (at 6:54AM), that entire sÄvana dina is considered to be dvÄdaĹÄŤ tithi.
adhika tithi and kᚣaya tithi
It is possible that two consecutive sunrises may have the same tithi, i.e. the Moon continues to remain within the same 12° arc across two consecutive sunrises. In such a case, two consecutive sÄvana dina will be associated with the same tithi. The tithi associated with the second sÄvana dina is referred to as a adhika (Sanskrit: ठधिŕ¤) (additional) tithi.
It is also possible that an entire tithi elapses between two sunrises, i.e. the Moon traverses a 12° arc in between two sunrises (it enters the arc after one sunrise and exits the arc before the next sunrise). In this such a case, neither sÄvana dina will be associated with this tithi, i.e. this tithi will be skipped over in the calendar. Such a tithi is referred to as a kᚣaya (Sanskrit: ŕ¤ŕĽŕ¤ˇŕ¤Ż) (waste) tithi.
Subdivisions of a sÄvana dina
Above that a nakᚣatra dina is divided into ghaášikÄ (of 24 modern minutes each) and vighaášikÄ (of 24 modern seconds each). These same units are used to subdivide a savana dina using sunrise as the starting point, i.e. the first 24 minutes after sunrise constitute the first ghaášikÄ, the next 24 minutes the second ghaášikÄ and so on.
pitášpakᚣa
pitášpakᚣa (Sanskrit: पितŕĽŕ¤Şŕ¤ŕĽŕ¤ˇ) is a pakᚣa during which the Sun crosses the equator and transitions overhead the southern hemisphere, i.e. the autumnal equinox occurs within pitášpakᚣa.[note 11]
bhÄdrapada mÄsa kášášŁáša pakᚣa is identified with pitášpakᚣa. This identification is not always correct. For instance, in the Gregorian year 2020, bhÄdrapada mÄsa kášášŁáša pakᚣa ended with the new moon on 17 September while autumnal equinox occurred five days later, on 22 September.
Notes[edit | edit source]
- â All examples in this article assume the amÄnta tradition.
- â These names are derived from the nakᚣatra in which the Moon is positioned at the time of full moon.
- â Not everyone is in agreement with this definition. Mercier argues that Ketkar has interpreted a Sanskrit source in a way that is different from other authorities. Yet, this definition is widely used to create Hindu almanacs or paĂącÄáš ga).[10]
- â The Surya Siddhantha defines uttarÄyaáša and dakᚣiášÄyana using rÄĹi instead of the equinoxes and solstices.[14] That definition assumed a coincidence of the winter solstice and makara saáš kramaáša. As a result of the precesstion of the equinoxes, that coincidence no longer exists thus making that definition incorrect. To illustrate, as per the Surya Siddhantha definition, the period from winter solstice (Dec 21) to makara saáš kramaáša (Jan 14) is considered part of dakᚣiášÄyana but the Sun is moving towards the north during this period.
- â The Surya Siddhanta defines áštu in terms of various rÄĹi[15] assuming that makara saáš kramaáša coincides with the winter solstice.[16] Due to the precession of the equinoxes, that assumption is no longer true and hence those definitions of áštu are no longer accurate.
- â Since a rÄĹi is a 30° arc of the ecliptic, a áštu can be considered as the time taken by the Sun to transit through two rÄĹi.
- â A sidereal rotation is defined with respect to the fixed stars, i.e. at the end of a sidereal rotation all the fixed stars are back in their starting position.
- â abhijit is an asterism for which there is no corresponding arc segment.
- â This is a common calendric technique and is known as intercalation
- â As a result, almost all Hindu festivals are defined in cÄndra mÄna terms. Hence these annual festivals do not repeat on the same day on any solar calendar (neither saurana mÄna nor Gregorian).
- â Since the south celestial sphere is consecrated to the ancestors (IAST:pitáš), Hindus perform special religious rites in honour of their ancestors during pitášpakᚣa.
References[edit | edit source]
- â Burgess 1935, p. 285 (XII. 32)
- â Burgess 1935, p. 310 (XIV. 1)
- â Burgess 1935, p. 310 (XIV. 2)
- â 4.0 4.1 4.2 Burgess 1935, p. 8
- â Burgess 1935, p. 7 (I. 13)
- â 6.0 6.1 Burgess 1935, p. 104 (II. 64)
- â Burgess 1935, p. 106
- â "Satapatha-brahmana Verse 8.7.3.10 [Sanskrit text]". www.wisdomlib.org. 18 September 2021. Retrieved 8 December 2022.
- â Ketkar 1923. pp. 34â35
- â Mercier (2018). pp. 74â75
- â Burgess 1935, p. 230
- â Burgess 1935, p. 16 (I. 28)
- â Tilak 1955, pp. 20â31
- â Burgess 1935, p. 313 (XIV. 9)
- â Burgess 1935, p. 313 (XIV. 10)
- â Burgess 1935, p. 207
- â Burgess 1935, p. 314 (XIV. 15)
- â Burgess 1935, p. 5 (I. 11)
- â Burgess 1935, p. 319 (XIV. 18)
- â Burgess 1935, pp. 202â250
Bibliography[edit | edit source]
- Burgess, Ebenezer (1935). Gangooly, Phanidarlal (ed.). Translation of the Surya Siddhanta â a text-book of Hindu astronomy (PDF). University of Calcutta.
- Ketkar, Venkatesh Bapuji (1923). "Indian and Foreign Chronology". Journal of the Asiatic Society of Bombay. Issue 75, Part 1 of Journal: Extra number. British Indian Press.
{{cite journal}}:|volume=has extra text (help) - Mercier, Raymond (2018). Astronomical Computations for the History of Indian Astronomy. New Delhi: Munshiram Manoharlal Publishers Pvt. Ltd. ISBN 978-81-215-1177-3.
- Tilak, Bal Gangadhar (1955). The Orion or Researches into the Antiquity of the Vedas (PDF). Tilak Bros.
External links[edit | edit source]
- Ahargana - The Astronomy of the Hindu Calendar Explains the various calendric elements of the Hindu calendar by means of astronomical simulations created using Stellarium.
- drikPanchang, an online Hindu almanac (IAST: paĂącÄáš ga).
- Stellarium, the astronomy software that was used to create the animations featured in this article.