{{Short description|none}} {{Summary style|date=May 2024}} '''Science in the ancient world''' encompasses the earliest [[history of science]] from the [[protoscience]] of [[prehistory]] and [[ancient history]] to [[late antiquity]]. In ancient times, culture and knowledge were passed through [[oral tradition]]. The [[History of writing|development of writing]] further enabled the preservation of knowledge and culture, allowing information to spread accurately. The earliest scientific traditions of the ancient world developed in the [[Ancient Near East]], with [[Ancient Egypt]] and [[Babylonia]] in [[Mesopotamia]]. Later traditions of science during [[classical antiquity]] were advanced in ancient [[Ancient Persia|Persia]], [[Ancient Greece|Greece]], [[Ancient Rome|Rome]], [[Ancient India|India]], [[Ancient China|China]], and [[Mesoamerican chronology|Mesoamerica]]. Aside from [[alchemy]] and [[astrology]] that waned in importance [[Science in the Age of Enlightenment|during the Age of Enlightenment]], civilizations of the ancient world laid the roots of modern sciences. ==Ancient Near East and North East Africa== ===Mesopotamia=== {{further|Babylonian mathematics|Babylonian medicine}} [[File:Letter Luenna Louvre AO4238.jpg|thumb|[[Mesopotamian]] clay tablet-letter from 2400 BC, [[Louvre]] (from King of [[Lagash]], found at [[Girsu]])]] Around 3500 BC, in [[Sumer]] (now [[Iraq]]), the [[Mesopotamia]]n people began preserving some observations of the [[cosmos]] with extremely thorough numerical data. ==== Mathematics ==== {{Main|Babylonian mathematics}} [[Pythagorean theorem]] has demonstrated evidence of ancient writing forms. It was recorded in the 18th century BC on the Mesopotamian [[cuneiform]] tablet known as [[Plimpton 322]]. The columns of numbers in the tablet generates several [[Pythagorean triple|Pythagorean triples]] such as {{math|(3, 4, 5)}} and {{math|(5, 12, 13)}}.{{Cite journal |date=2001-01-27 |title=Mathematics |url=http://doi.wiley.com/10.2307/3981737 |journal=Science News |volume=159 |issue=4 |pages=56 |doi=10.2307/3981737 |jstor=3981737|url-access=subscription }} ==== Astronomy ==== {{Main|Babylonian astronomy|Babylonian astrology}}{{More citations needed|section|date=May 2024}} Babylonian astronomy was "the first and highly successful attempt at giving a refined mathematical description of astronomical phenomena."{{Cite journal |date=1974-05-02 |title=Scientific astronomy in antiquity |url=https://royalsocietypublishing.org/doi/10.1098/rsta.1974.0007 |journal=Philosophical Transactions of the Royal Society of London. Series A, Mathematical and Physical Sciences |language=en |volume=276 |issue=1257 |pages=21–42 |doi=10.1098/rsta.1974.0007 |bibcode=1974RSPTA.276...21A |issn=0080-4614 |last1=Aaboe |first1=A. |url-access=subscription }} According to the historian [[Asger Aaboe]], "all subsequent varieties of scientific astronomy, in the [[Hellenistic astronomy|Hellenistic world]], [[Indian astronomy|in India]], [[Astronomy in the medieval Islamic world|in Islam]], and in [[European science in the Middle Ages#Western Europe|the West]]—if not indeed all subsequent endeavour in the [[exact sciences]]—depend upon Babylonian astronomy in decisive and fundamental ways".{{Cite journal |last=A. Aaboe |date=May 2, 1974 |title=Scientific Astronomy in Antiquity |journal=[[Philosophical Transactions of the Royal Society]] |volume=276 |issue=1257 |pages=21–42 |bibcode=1974RSPTA.276...21A |doi=10.1098/rsta.1974.0007 |jstor=74272 |s2cid=122508567}} [[Scribe]]s recorded observations of the cosmos such as the motions of the stars, the planets, and the Moon on [[clay tablet]]s. The cuneiform style of writing revealed that astronomers used mathematical calculations to observe the motions of the planets.{{Cite journal |date=2016 |title=The World's Oldest Writing |url=https://www.jstor.org/stable/43825139 |journal=Archaeology |volume=69 |issue=3 |pages=26–33 |issn=0003-8113 |jstor=43825139}} Astronomical periods identified by Mesopotamian scientists remain widely used in Western calendars: the [[Tropical year|solar year]] and the [[lunar month]]. Using data, Mesopotamians developed arithmetical methods to compute the changing length of daylight during the year, and to predict the [[Lunar phase|Lunar phases]] and planets along with eclipses of the [[Solar eclipse|Sun]] and [[lunar eclipse|Moon]]. Only a few astronomers' names are known, such as [[Kidinnu]], a [[Chaldea]]n astronomer and mathematician. Kiddinu's value for the solar year is in use for modern calendars. [[Hipparchus]] used this data to calculate the [[Axial precession|precession]] of the Earth's axis. Fifteen hundred years after Kiddinu, [[Al-Battani]] used the collected data and improved Hipparchus' value for the precession. Al-Batani's value, 54.5 [[arc-seconds]] per year, compares well with the current value of 49.8 arc-seconds per year (26,000 years for Earth's axis to round the circle of [[nutation]]). Astronomy and astrology were considered to be the same thing, as evidenced by the practice of this science{{clarify|date=January 2024}} in Babylonia by priests. Mesopotamian astronomy became more astrology-based later in the civilisation, studying the stars in terms of [[horoscope]]s and [[omen]]s.{{Cite web |title=Early Astronomy in the University of Michigan Collections {{!}} Babylonian and Greek Astronomy |url=https://early-astronomy.classics.lsa.umich.edu/ancient_intro.php |access-date=2024-10-24 |website=early-astronomy.classics.lsa.umich.edu |archive-date=2023-06-01 |archive-url=https://web.archive.org/web/20230601115941/https://early-astronomy.classics.lsa.umich.edu/ancient_intro.php |url-status=dead }} ==== Archaeology ==== Following the [[Late Bronze Age collapse]], the practice of various sciences continued in post–[[Iron Age]] Mesopotamia. For instance, in the nascent [[history of archaeology]], king [[Nabonidus]] of the [[Neo-Babylonian Empire]] was a pioneer in the [[Post-excavation analysis|analysis of artifacts]]. Foundation deposits of king [[Naram-Sin of Akkad|Naram-Sin]] of the [[Akkadian Empire]] dated circa 2200{{Nbsp}}BC were discovered and analyzed by Nabonidus around the 550{{Nbsp}}BC.{{cite book |last1=Silverberg |first1=Robert |title=Great Adventures in Archaeology |date=1997 |publisher=[[University of Nebraska Press]] |isbn=978-0-8032-9247-5 |page=viii |url=https://books.google.com/books?id=ic2za8bZeYAC&pg=PR8 |language=en}}{{cite book |last1=Kelly |first1=Robert L. |last2=Thomas |first2=David Hurst |title=Archaeology: Down to Earth |date=2013 |publisher=Cengage Learning |isbn=978-1-133-60864-6 |page=2 |url=https://books.google.com/books?id=LC0lzyqLi6gC&pg=PA2 |language=en |access-date=10 June 2020 |archive-date=22 December 2023 |archive-url=https://web.archive.org/web/20231222091630/https://books.google.com/books?id=LC0lzyqLi6gC&pg=PA2 |url-status=live }} These deposits belonged to the temples of [[Shamash]] the sun god and the warrior goddess [[Annunitum]] in [[Sippar]], and Naram-Sin's temple to the moon god in [[Harran]], which were restored by Nabonidus. Nabonidus was the first known figure in history to make an attempt at [[Chronological dating|dating archaeological artifacts]] found at excavated sites,{{cite web|last=Hirst|first=K. Kris|title=The History of Archaeology Part 1|url=https://www.thoughtco.com/the-first-archaeologists-167134|publisher=ThoughtCo.com|access-date=April 5, 2014|archive-date=19 November 2016|archive-url=https://web.archive.org/web/20161119023505/http://archaeology.about.com/cs/educationalresour/a/history1.htm|url-status=live}} though his estimates were inaccurate by hundreds of years. ===Egypt=== {{Main|Ancient Egyptian technology}} {{Further|Egyptian astronomy}} [[File:Megaliths Aswan Nubia museum.JPG|left|thumb|Megaliths from [[Nabta Playa]], constructed by Neolithic populations,{{cite book |last1=Ehret |first1=Christopher |url=https://books.google.com/books?id=Q5KjEAAAQBAJ |title=Ancient Africa: A Global History, to 300 CE |date=20 June 2023 |publisher=Princeton University Press |isbn=978-0-691-24409-9 |page=107 |language=en}} located in [[Aswan]], [[Upper Egypt]]. Excavations of the megalith structures were completed in 2008.{{cite book |last1=Holl |first1=Augustin |title=General history of Africa, IX: General history of Africa revisited |pages=469, 705–722|url=https://unesdoc.unesco.org/ark:/48223/pf0000396045?posInSet=1&queryId=N-EXPLORE-612fe50c-9ec6-4256-8bd3-7b7ec50033a7}}]] Neolithic inhabitants constructed [[Nabta Playa]] megalithic structures, in [[Aswan]] located in [[Upper Egypt]].{{cite book |last1=Ehret |first1=Christopher |title=Ancient Africa: A Global History, to 300 CE |date=20 June 2023 |publisher=Princeton University Press |isbn=978-0-691-24410-5 |pages=107-110 |url=https://www.google.co.uk/books/edition/Ancient_Africa/S5KjEAAAQBAJ?hl=en&gbpv=1&dq=christopher+ehret+nabta+playa&printsec=frontcover |language=en}} These structures served to coordinate astronomical observations, religious practices and alignment with solar patterns and annual flooding cycles. These practices have been linked with the emergence of [[cosmology]] in Old Kingdom Egypt.{{cite book |last1=Ehret |first1=Christopher |title=Ancient Africa: A Global History, to 300 CE |date=20 June 2023 |publisher=Princeton University Press |isbn=978-0-691-24410-5 |pages=107-110 |url=https://www.google.co.uk/books/edition/Ancient_Africa/S5KjEAAAQBAJ?hl=en&gbpv=1&dq=christopher+ehret+nabta+playa&printsec=frontcover |language=en}} Archaeological evidence has suggested that the Ancient Egyptian counting system had origins in Sub-Saharan Africa.{{cite book |last1=Eglash |first1=Ron |title=African fractals : modern computing and indigenous design |date=1999 |publisher=Rutgers University Press |location=New Brunswick, N.J. |isbn=0813526140 |pages=89,141}} Also, fractal geometry designs which are widespread among Sub-Saharan African cultures are also found in Egyptian architecture and cosmological signs.{{cite journal |last1=Eglash, R. |title=Fractal Geometry in African Material Culture |journal=Symmetry: Culture and Science |date=1995 |volume=6-1 |pages=174–177}}The Ishango bone, according to scholar [[Alexander Marshack]], may have influenced the later development of mathematics in Egypt as, like some entries on the Ishango bone, Egyptian arithmetic also made use of multiplication by 2; this however, is disputed.Marshack, A. (1972). ''The Roots of Civilization: the Cognitive Beginning of Man's First Art, Symbol and Notation''. New York: McGraw-Hill. Significant advances in [[ancient Egypt]] included astronomy, mathematics, and medicine. Egypt was also a centre of [[Alchemy#Hellenistic Egypt|alchemical]] research for much of the Western world. ==== Architecture, engineering, and mathematics ==== {{Main|Ancient Egyptian architecture|Ancient Egyptian agriculture|Ancient Egyptian mathematics}} Ancient Egyptian [[geometry]] was a necessary outgrowth of [[surveying]] to preserve the layout and ownership of farmland, which was flooded annually by the [[Nile]]. The [[Pythagorean triple|3–4–5 right triangle]] and other rules of thumb served to represent rectilinear structures, including [[Ancient Egyptian architecture|architecture]] such as [[post and lintel]] structures. ==== Writing ==== {{Main|Egyptian hieroglyphs}} [[Egyptian hieroglyphs]] served as the basis for the [[Proto-Sinaitic script]], the ancestor of the [[Phoenician alphabet]] from which the later [[Hebrew alphabet|Hebrew]], [[Greek alphabet|Greek]], [[Latin alphabet|Latin]], [[Arabic alphabet|Arabic]], and [[Cyrillic script|Cyrillic]] alphabets were derived. The city of [[Alexandria]] retained preeminence with [[Library of Alexandria|its library]], which was damaged by fire when it fell under Roman rule,[[Plutarch]], ''Life of Caesar'' 49.3. being destroyed before 642.[[Abd al-Latif al-Baghdadi (medieval writer)|Abd-el-latif]] (1203): "the library which [[Amr ibn al-A'as|'Amr ibn al-'As]] burnt with the permission of '[[Umar]]."''Europe: A History'', p 139. Oxford: Oxford University Press 1996. {{ISBN|0-19-820171-0}} With it, a large amount of antique literature and knowledge was lost. ==== Medicine ==== {{Main|Ancient Egyptian medicine}} [[File:Papyrus Migraine Therapy.png|thumb|An Egyptian practice of treating [[migraine]] in ancient Egypt]] The [[Edwin Smith Papyrus]] is one of the first medical documents still extant, and perhaps the earliest document that attempts to describe and analyse the brain: it might be seen as the very beginnings of modern [[neuroscience]]. However, while ancient Egyptian medicine had some effective practices, it was not without its ineffective and sometimes harmful practices. Medical historians believe that ancient Egyptian pharmacology was largely ineffective.{{Cite web |date=2001 |editor-last=Whitelaw |editor-first=W. A. |title=Proceedings of the 10th Annual History of Medicine Days |url=http://www.hom.ucalgary.ca/Dayspapers2001.pdf |url-status=dead |archive-url=https://web.archive.org/web/20080407062556/http://www.hom.ucalgary.ca/Dayspapers2001.pdf |archive-date=April 7, 2008 |publisher=The University of Calgary}} Nevertheless, it applies the following components: examination, diagnosis, treatment and prognosis, to the treatment of disease,{{Cite encyclopedia |title=Edwin Smith papyrus |encyclopedia=[[Encyclopædia Britannica]] |url=https://www.britannica.com/topic/Edwin-Smith-papyrus |access-date=2024-05-03 |date=2016-03-17}} which display strong parallels to the basic [[empirical method]] of science and according to G. E. R. LloydLloyd, G. E. R. "The development of empirical research", in his ''Magic, Reason and Experience: Studies in the Origin and Development of Greek Science''. played a significant role in the development of this methodology. The [[Ebers papyrus]] (c. 1550 BC) also contains evidence of traditional [[empiricism]]. According to a paper published by Michael D. Parkins, 72% of 260 medical prescriptions in the Hearst Papyrus had no curative elements.{{Better source needed|reason=Med student paper; unclear peer review process|date=May 2024}} According to Parkins, sewage pharmacology first began in ancient Egypt and was continued through the Middle Ages. Practices such as applying cow dung to wounds, ear piercing and tattooing, and chronic ear infections were important factors in developing tetanus.{{Cite web| title=Tetanus | url=https://www.cdc.gov/vaccines/pubs/pinkbook/downloads/tetanus.pdf | archive-url=https://web.archive.org/web/20080306134607/http://www.cdc.gov/vaccines/pubs/pinkbook/downloads/tetanus.pdf | archive-date=2008-03-06}} Frank J. Snoek wrote that Egyptian medicine used fly specks, lizard blood, swine teeth, and other such remedies which he believes could have been harmful.{{Cite journal |last=Snoek |first=F. J. |date=1 August 2001 |title=The Mind Matters |journal=Diabetes Spectrum |volume=14 |issue=3 |pages=116–117 |doi=10.2337/diaspect.14.3.116 |doi-access=free}}{{Better source needed|reason=Editorial; passing mention; unclear peer review process|date=May 2024}} ===Ancient Nubia=== ====Medicine==== Nubian [[mummies]] studied in the 1990s revealed that Kush was a pioneer of [[History of antibiotics|early antibiotics]].{{Cite journal |author=Armelagos, George |date=2000 |title=Take Two Beers and Call Me in 1,600 Years: Use of Tetracycline by Nubians and Ancient Egyptians |url=https://digitallibrary.amnh.org/items/482bd90a-de71-49b3-9bbc-d8ff0ab974b3 |journal=Natural History |volume=109 |issue=5 |pages=50–3 |s2cid=89542474}} [[Tetracycline]] was being used by Nubians, based on bone remains between 350 AD and 550 AD. The antibiotic was in wide commercial use only in the mid 20th century. The theory states that earthen jars containing grain used for making beer contained the bacterium [[streptomyces]], which produced tetracycline. Although Nubians were not aware of tetracycline, they could have noticed that people fared better by drinking beer than just consuming the grain itself. According to Charlie Bamforth, a professor of biochemistry and brewing science at the University of California, Davis, "They must have consumed it because it was rather tastier than the grain from which it was derived."{{Cite journal |last=Roach |first=John |date=17 May 2005 |title=Antibiotic Beer Gave Ancient Africans Health Buzz |journal=National Geographic |url=http://www.houblon.net/spip.php?article2100 |access-date=28 January 2021 |archive-date=7 February 2021 |archive-url=https://web.archive.org/web/20210207142106/http://www.houblon.net/spip.php?article2100 |url-status=dead }} === Mathematics === Based on engraved plans of Meroitic King [[Amanikhabali]]'s pyramids, Nubians had a sophisticated understanding of mathematics as they appreciated the harmonic ratio. The engraved plans are indicative of much to be revealed about Nubian mathematics.{{Cite book |last=Bianchi |first=Robert Steven |date=2004 |title=Daily Life of the Nubians |publisher=Greenwood |isbn=978-0-313-32501-4|p=230}} The [[Nubia|ancient Nubians]] also established a system of geometry which they used in creating early versions of [[sun clock]]s.{{Cite journal|title=Gnomons at Meroë and Early Trigonometry|first=Leo|last=Depuydt|date=1 January 1998|journal=The Journal of Egyptian Archaeology|volume=84|pages=171–180|doi=10.2307/3822211|jstor=3822211}}{{Cite web|url=https://archive.archaeology.org/online/news/nubia.html|title=Neolithic Skywatchers|date=27 May 1998|first=Andrew|last=Slayman|website=Archaeology Magazine Archive|access-date=17 April 2011|archive-url=https://web.archive.org/web/20110605234044/http://www.archaeology.org/online/news/nubia.html|archive-date=5 June 2011|url-status=live}} During the Meroitic period in Nubian history, the Nubians used a trigonometric methodology similar to the Egyptians.{{Cite book|url=https://books.google.com/books?id=vO5FCVIxz2YC&q=nubia&pg=PA744|title=A History of Ancient Mathematical Astronomy|last=Neugebauer|first=O.|date=2004-09-17|publisher=Springer Science & Business Media|isbn=978-3-540-06995-9|language=en}} ===Persia=== {{main|Science and technology in Iran}} {{Further|Science in the medieval Islamic world|Persian astronomy|Ancient Iranian medicine}}[[File:Nersi&Anahita.jpg|thumb|Scholar Nersi with [[Anahita]] in Persia]] In the [[Sasanian Empire]], great attention was given to mathematics and astronomy. The [[Academy of Gondishapur]] is a prominent example in this regard.{{Cite book |last1=Bailey |first1=Harold Walter |title=The Cambridge history of Iran |last2=Gray |first2=Basil |last3=Frye |first3=Richard Nelson |date=1975 |publisher=Cambridge university press |others=University of Cambridge |isbn=978-0-521-20093-6 |volume=4 |location=Cambridge, New York; Melbourne |pages=396}} Astronomical tables date to this period, and Sassanid observatories were later imitated by [[Astronomy in the medieval Islamic world|Muslim astronomers]] and astrologers of the [[Islamic Golden Age]]. In the mid-Sassanid era, an influx of knowledge came to Persia from the West in the form of views and traditions of Greece which, following the spread of Christianity, accompanied [[Syriac language]]. In the [[Early Middle Ages]], Persia became a stronghold of Islamic science. After the establishment of [[Umayyad Caliphate|Umayyad]] and [[Abbasid Caliphate|Abbasid]] states, many Iranian scholars were sent to the capitals of these Islamic dynasties. ==Greco-Roman world== {{main|Science in classical antiquity}}The legacy of [[classical antiquity]] included substantial advances in factual knowledge, especially in anatomy, zoology, botany, mineralogy, geography, mathematics and astronomy. Scholars advanced their awareness of the importance of certain scientific problems, especially those related to the problem of change and its causes.[[G. E. R. Lloyd]], ''Early Greek Science: Thales to Aristotle'', (New York: W. W. Norton, 1970), pp. 144-6. In the [[Hellenistic period]], scholars frequently employed the principles developed in earlier Greek thought: the application of mathematics and deliberate empirical research.Lloyd (1973), p. 177. === Scientific practices === {{Unsourced section|date=May 2024}}[[File:Sanzio 01 Plato Aristotle.jpg|thumb|[[Plato]] and [[Aristotle]] (''[[The School of Athens]]'', 1511)]]In classical antiquity, the inquiry into the workings of the universe took place both in investigations aimed at practical goals, such as calendar-making and medicine, and in abstract investigations known as [[natural philosophy]]. The ancient people who are considered the first scientists may have thought of themselves as "natural philosophers", as practitioners of a skilled profession, or as followers of a religious tradition. Scientific thought in classical antiquity became tangible beginning in the 6th century{{Nbsp}}BC in the [[pre-Socratic philosophy]] of [[Thales of Miletus|Thales]] and [[Pythagoras]]. Thales, the "father of science", was the first to postulate non-supernatural explanations for natural phenomena such as [[lightning]] and [[earthquake]]. Pythagoras founded the [[Pythagoreanism|Pythagorean school]], which investigated mathematics and was the first to postulate that the Earth is spherical.{{cite web | url=https://mathshistory.st-andrews.ac.uk/Biographies/Thales/#:~:text=Thales%20discovered%20how%20to%20obtain,shadow%20are%20equal%20in%20length.&text=Thales%20is%20said%20to%20have,Greeks%20the%20science%20of%20geometry. | title=Thales of Miletus - Biography }} In about 385{{Nbsp}}BC, [[Plato]] founded the [[Platonic Academy|Academy]]. [[Aristotle]], Plato's student, began the "scientific revolution" of the Hellenistic period culminating in the 3rd and 2nd centuries with scholars such as [[Eratosthenes]], [[Euclid]], [[Aristarchus of Samos]], [[Hipparchus]], and [[Archimedes]]. Plato and Aristotle's development of [[deductive reasoning]] was particularly useful to later scientific inquiry. === Architecture and engineering === {{Further |topic = Ancient Greece |1 = Ancient Greek architecture |l1 = Architecture |2 = Ancient Greek technology |l2 = Technology }} {{Further |topic = Ancient Rome |1 = Ancient Roman architecture |l1 = Architecture |2 = Ancient Roman technology |l2 = Technology |3 = Ancient Roman engineering |l3 = Engineering}} {{Empty section|date=May 2024}} === Astronomy === {{Main|Ancient Greek astronomy}} [[File:Antikythera mechanism.svg|thumb|Schematics of the [[Antikythera mechanism]]]] The level of achievement in Hellenistic astronomy and engineering is shown by the [[Antikythera mechanism]]. The astronomer [[Aristarchus of Samos]] was the first known person to propose a [[heliocentric model]] of the [[Solar System]], while the geographer [[Eratosthenes]] accurately calculated the [[circumference of the Earth]].{{Cite book |last=Russo |first=Lucio |title=The Forgotten Revolution |date=2004 |publisher=Springer |location=Berlin |pages=273–277 |author-link=Lucio Russo}} [[Hipparchus]] produced the first systematic [[star catalogue]]. === Mathematics === {{Main|Greek mathematics|Ancient Roman mathematics}} The mathematician [[Euclid]] laid down the foundations of [[mathematical rigour]] and introduced the concepts of definition, axiom, theorem and proof still in use today in his ''[[Euclid's Elements|Elements]]''.{{Cite book |last=Boyer |first=Carl B. |author-link=Carl Benjamin Boyer |url=https://archive.org/details/historyofmathema00boye |title=A History of Mathematics |publisher=John Wiley & Sons |year=1991 |isbn=0-471-54397-7 |edition=Second |chapter=Euclid of Alexandria |quote=The ''Elements'' of Euclid not only was the earliest major Greek mathematical work to come down to us, but also the most influential textbook of all times. [...] The first printed versions of the ''Elements'' appeared at Venice in 1482, one of the very earliest of mathematical books to be set in type; it has been estimated that since then at least a thousand editions have been published. Perhaps no book other than the Bible can boast so many editions, and certainly no mathematical work has had an influence comparable with that of Euclid's ''Elements''. |url-access=registration}} [[Archimedes]] is credited with using the [[method of exhaustion]] to calculate the area under the arc of a [[parabola]] with the [[Series (mathematics)|summation of an infinite series]], and gave a remarkably accurate [[Approximations of π|approximation of pi]].{{Cite web |last1=O'Connor, J.J. |last2=Robertson, E.F. |date=February 1996 |title=A history of calculus |url=http://www-groups.dcs.st-and.ac.uk/~history/HistTopics/The_rise_of_calculus.html |access-date=2007-08-07 |publisher=[[University of St Andrews]]}} He is also known in [[physics]] for his studies on [[hydrostatics]] and the principle of the [[lever]]. === Medicine === {{Main|Ancient Greek medicine|Medicine in ancient Rome}} In medicine, [[Herophilos]] was the first to base his conclusions on the dissection of the human body and to describe the [[nervous system]]. [[Hippocrates]] and his followers were the first to describe many diseases and medical conditions. [[Galen]] performed many audacious operations—including brain and eye surgeries—that were not tried again for more than a millennia.{{cite book |author=[[Andreas Vesalius]] |url=http://vesalius.northwestern.edu/ |title=De humani corporis Fabrica, Libri VII |publisher=[[Johannes Oporinus]] |year=1543 |location=[[Basel]], [[Switzerland]] |language=la |access-date=7 August 2010 |archive-url=https://wayback.archive-it.org/6321/20160901184031/http://vesalius.northwestern.edu/ |archive-date=1 September 2016 |url-status=dead}} === Mineralogy === {{Importance section|date=October 2024}}[[File:Pliny the Elder.png|thumb|[[Pliny the Elder]]: an imaginative 19th-century portrait]][[Theophrastus]] wrote some of the earliest descriptions of plants and animals, establishing the first [[Taxonomy (biology)|taxonomy]] and looking at minerals in terms of their properties such as [[hardness]]. [[Pliny the Elder]] produced the encyclopedia ''[[Natural History (Pliny)|Natural HIstory]]'' in 77{{Nbsp}}AD. He accurately describes the [[octahedral]] shape of the [[diamond]]. His recognition of the importance of [[crystal]] shape is a precursor to modern [[crystallography]], while mentioning numerous other minerals presages [[mineralogy]]. He also recognises that other minerals have characteristic crystal shapes, but in one example, confuses the [[crystal habit]] with the work of [[Lapidary|lapidaries]]. He was also the first to recognise that [[amber]] was a fossilized resin from pine trees because he had seen samples with trapped insects within them. ==Indian subcontinent== {{main|Science and technology in ancient India|History of science and technology on the Indian subcontinent}} [[File:Iron Pillar, Delhi, May 2008.jpg|thumb|175px|Ancient India was an early leader in [[metallurgy]], as evidenced by the [[wrought iron]] [[Iron pillar of Delhi|Pillar of Delhi]].[http://home.iitk.ac.in/%7Ebala/journalpaper/journal/journalpaper_17.pdf ''On the Corrosion Resistance of the Delhi Iron Pillar''], R. Balasubramaniam, Corrosion Science, Volume 42 (2000) pp. 2103–2129.]] === Mathematics and engineering === {{Main|Indian mathematics}} Excavations at [[Harappa]], [[Mohenjo-daro]] and other sites of the [[Indus Valley Civilisation]] (IVC) have uncovered evidence of the use of "practical mathematics". The people of the IVC manufactured bricks whose dimensions were in the proportion 4:2:1, considered favourable for the stability of a brick structure. They used a standardised system of weights based on set ratios, with the unit weight equaling approximately {{Convert|28|g|oz|sigfig=1}}. They mass-produced weights in regular geometrical shapes, which included [[hexahedron|hexahedra]], [[barrel]]s, [[Cone|cones]], and [[Cylinder|cylinders]], thereby demonstrating knowledge of basic geometry.{{Cite book |last=Sergent |first=Bernard |title=Genèse de l'Inde |publisher=Payot |year=1997 |isbn=978-2-228-89116-5 |location=Paris |pages=113 |language=fr}} Inhabitants of the IVC also tried to standardise the measurement of length to a high degree of accuracy. They designed the Mohenjo-Daro ruler, whose unit of length ({{Convert|34|mm|in}}) was divided into ten equal parts. Bricks manufactured in ancient Mohenjo-Daro often had dimensions that were integral multiples of this unit of length.{{Cite journal |last=Coppa |first=A. |display-authors=etal |date=2006-04-06 |title=Early Neolithic tradition of dentistry: Flint tips were surprisingly effective for drilling tooth enamel in a prehistoric population |journal=Nature |volume=440 |issue=7085 |pages=755–6 |bibcode=2006Natur.440..755C |doi=10.1038/440755a |pmid=16598247 |s2cid=6787162}}{{Cite book |last=Bisht |first=R. S. |title=Harappan Civilization: A Contemporary Perspective |publisher=Oxford and IBH Publishing Co. |year=1982 |editor-last=Possehl, Gregory L. |location=New Delhi |pages=113–124 |chapter=Excavations at Banawali: 1974-77}} The main authors of classical Indian mathematics (400{{Nbsp}}AD to 1200{{Nbsp}}AD) were scholars like [[Mahāvīra (mathematician)|Mahaviracharya]], [[Aryabhata]], [[Brahmagupta]], and [[Bhāskara II]]. Indian mathematicians made early contributions to the study of the [[Decimal|decimal system]], [[0|zero]], [[Negative number|negative numbers]], [[arithmetic]], and [[algebra]]. [[Trigonometry]], having been introduced to ancient India through Greek works, was further advanced in India. The modern definitions of [[sine and cosine]] were developed in India. The [[Hindu–Arabic numeral system]] was developed in ancient India and spread to the later [[Islamic world]] to [[Al-Andalus]] where it was adopted (without the zero) by the French monk Gerbert of Aurillac, who would become [[Pope Sylvester II]]. Sylvester spread its usage throughout medieval Europe in the 11th century with the reintroduction of the Greco-Roman [[abacus]] calculating tool.{{citation |last=Seife |first=Charles |title=Zero: The Biography of a Dangerous Idea |title-link=Zero: The Biography of a Dangerous Idea |page=77 |year=2000 |location=New York |publisher=Penguin Books |bibcode=2000zbdi.book.....S |isbn=978-0-670-88457-5}} The [[Bakhshali manuscript]] features negative numbers; it was compiled at an uncertain date between 200 AD and as late as 600 AD,[[Teresi, Dick]]. (2002). ''Lost Discoveries: The Ancient Roots of Modern Science–from the Babylonians to the Mayas''. New York: Simon and Schuster, pp. 65–66. {{ISBN|0-684-83718-8}}. after which they were used with certainty by Indian mathematician [[Brahmagupta]].Needham, Joseph. (1986). ''Science and Civilisation in China: Volume 3; Mathematics and the Sciences of the Heavens and the Earth''. Taipei: Caves Books, Ltd, p. 90. {{ISBN|0-521-05801-5}}. === Medicine === {{Main|Ayurveda|Siddha medicine}} [[Mehrgarh]], a [[Neolithic]] IVC site, provides the earliest known evidence for ''[[in vivo]]'' drilling of human teeth, with recovered samples dated to 7000–5500 BC.{{Cite journal |last=Coppa |first=A. |display-authors=etal |date=6 April 2006 |title=Early Neolithic tradition of dentistry: Flint tips were surprisingly effective for drilling tooth enamel in a prehistoric population |journal=Nature |volume=440 |issue=7085 |pages=755–6 |bibcode=2006Natur.440..755C |doi=10.1038/440755a |pmid=16598247 |s2cid=6787162}} [[Ayurveda]] medicine traces its origins to the [[Atharvaveda]] and is connected to [[Hinduism]].Indian medicine has a long history. Its earliest concepts are set out in the sacred writings called the [[Veda|Vedas]], especially in the metrical passages of the [[Atharvaveda]], which may date as far back as the 2nd millennium BCE. According to a later writer, the system of medicine called Āyurveda was received by a certain [[Dhanvantari]] from [[Brahma]], and Dhanvantari was deified as the god of medicine. In later times, his status was gradually reduced until he was credited with having been an earthly king who died of snakebite. — Underwood & Rhodes (2008) The ''[[Sushruta Samhita]]'' of [[Sushruta]] appeared during the first millennium{{Nbsp}}BC.Dwivedi & Dwivedi (2007){{full citation needed|date=December 2021}}{{page needed|date=December 2021}} Ayurvedic practice was flourishing during the time of [[the Buddha]] (around 520{{Nbsp}}BC), and in this period ayurvedic practitioners were commonly using [[mercuric]]–[[Sulfur|sulphur]] medicines. An important ayurvedic practitioner of this period was [[Nagarjuna]]. During the regime of [[Chandragupta II]] (375–415 AD), ayurveda was part of mainstream Indian medical techniques, and continued to be so until the [[Colonial India|Colonial period]].{{cn|date=October 2024}} === Astronomy === {{Main|Indian astronomy|Hindu astrology}} Early astronomy in India, as in other cultures, was intertwined with religion.The first textual mention of astronomical concepts comes from the [[Vedas]]. According to Sarma, "One finds in the [[Rigveda]] intelligent speculations about the genesis of the universe from nonexistence, the configuration of the universe, the spherical self-supporting Earth, and the year of 360 days divided into 12 equal parts of 30 days each with a periodical intercalary month."{{Cite web | title=Weather forecast and conditions for Frankendael, North Holland, Netherlands - The Weather Channel {{!}} weather.com | url=https://weather.com/en-IN/india/space/news/2020-10-05-world-space-week-ancient-astronomy-in-vedic-post-vedic-literature | access-date=2025-06-28 | website=weather.com}} Classical Indian astronomy documented in literature spans the [[Maurya Empire]] (with the ''[[Vedanga Jyotisha]]'') to the [[Vijayanagara Empire]] (with the [[Kerala school of astronomy and mathematics|Kerala school]]). Classical Indian astronomy can be said to begin in the 5th century. [[Aryabhata]] produced the ''[[Aryabhatiya]]'' and the lost ''Arya-siddhānta'', and [[Varāhamihira]] wrote the ''[[Pancha-siddhantika]]''. Indian astronomy and astrology are based upon [[sidereal astrology|sidereal]] calculations, though a [[Tropical astrology|tropical]] system was also used in a few cases.{{Cn|date=May 2024}} === Alchemy === {{Main|Rasayana}} {{see also|History of metallurgy in the Indian subcontinent}} Alchemy was popular in India.{{cite web | url=https://www.britannica.com/topic/alchemy/Indian-alchemy | title=Alchemy - Indian, Chemistry, Philosophies | Britannica }} Indian alchemist and philosopher [[Kaṇāda]] introduced the concept of ''anu'', which he defined as matter which could not be subdivided. This is analogous to the concept of the [[atom]] in modern science.{{Cite book |last=Singh |first=Bal Ram |title=Contemporary Views on Indian Civilization |date=2003 |publisher=World Association for Vedic Studies |isbn=978-0-9666386-1-5 |pages=388–399 |chapter=Use of Chemistry to Understand Vedic Knowledge |chapter-url=https://www.umassd.edu/media/umassdartmouth/center-for-indic-studies/workshop2009_speakerbrs2.pdf}} === Linguistics === {{Main|History of linguistics#India}} [[Linguistics]] (along with [[phonology]] and [[morphology (linguistics)|morphology]]) first arose among Indian grammarians studying [[Sanskrit]]. [[Hemachandra]] wrote [[Formal grammar|grammars]] of Sanskrit and [[Prakrit]]. His ''Siddha-Hema-Śabdanuśāśana'' included six Prakrit languages.{{cite web | url=https://archive.org/details/in.ernet.dli.2015.313378 | title=Shri Siddha Hemachandra Shabdanushashanam (Sanskrit Grammar) | date=1934 }} He produced the only known grammar of [[Apabhraṃśa]], illustrating it with the folk literature.{{Cite book |title=Encyclopaedia of Indian Literature: A-Devo |date=1987 |publisher=Sahitya Akademi |isbn=978-81-260-1803-1 |editor-last=Datta |editor-first=Amaresh |pages=15–16 |chapter=Aacharya Hemachandra Suri |chapter-url=https://books.google.com/books?id=ObFCT5_taSgC&pg=PA15}} [[Pāṇini]]'s Sanskrit grammar contains a particularly detailed description of Sanskrit morphology, phonology, and roots.{{Cite book |last=Cardona |first=George |title=Pāṇini: a survey of research |date=1997 |publisher=Motilal Banarsidass |isbn=978-81-208-1494-3 |edition=Reprint d. Aufl. 1976 |location=New Delhi}} ==China and East Asia== {{main|History of science and technology in China}} {{Further |topic=science and technology |1=List of inventions and discoveries of Neolithic China |l1=Neolithic |2=Science and technology of the Han dynasty |l2=Han dynasty |3=Science and technology of the Tang dynasty |l3=Tang dynasty |4=Science and technology of the Tang dynasty |l4=Song dynasty |5=Science and technology of the Yuan dynasty |l5=Yuan dynasty}} {{History of science and technology in China}} === Inventions === {{Main|List of Chinese inventions|Four Great Inventions}} {{See also|List of Chinese discoveries}} In his ''[[Science and Civilisation in China]]'', [[Joseph Needham]] outlined China's "Four Great Inventions" ([[papermaking]], [[compass]], [[printing]], and [[gunpowder]]). Needham highlighted the [[Han dynasty]] in particular as one of the most pivotal eras for Chinese sciences, noting the period's significant advancements in astronomy and calendar-making, the systematic documentation of living organisms in early forms of botany and zoology, and the [[philosophical skepticism]] and [[rationalism]] of the age embodied in works such as the ''[[Lunheng]]'' by [[Wang Chong]].[[Joseph Needham|Needham, Joseph]]. (1972). ''Science and Civilisation in China: Volume 1, Introductory Orientations''. London: Syndics of the Cambridge University Press, p. 111. {{ISBN|0-521-05799-X}}. Concurring with Needham, professors [[Jin Guantao]], Fan Hongye, and Liu Qingfeng emphasize the Han dynasty as a unique period for Chinese scientific advancements comparable to the medieval [[Song dynasty]]. They also write that the protoscientific ideas of [[Mohism]] developed during the [[Warring States period]] could have provided a definitive structure for Chinese science, but was hindered by [[Chinese theology]] and dynastic royal promotion of [[Confucianism]] and its literary classics.Jin, Guantao, Fan Hongye, and Liu Qingfeng. (1996). "Historical Changes in the Structure of Science and Technology (Part Two, a Commentary)" in ''Chinese Studies in the History and Philosophy of Science and Technology'', 165–184, edited by Fan Dainian and Robert S. Cohen, translated by Kathleen Dugan and Jiang Mingshan. Dordrecht: Kluwer Academic Publishers, pp. 178–179. {{ISBN|0-7923-3463-9}}. Needham and other [[Sinology|sinologists]] indicate that cultural factors prevented Chinese achievements from developing into what might be considered modern science, as the religious and philosophical framework of Chinese intellectuals hampered their efforts to rationalize the laws of nature. === Engineering === {{See also|Chinese architecture}} Greek astronomer [[Eratosthenes]] is the first known inventor of the [[armillary sphere]] in 255{{Nbsp}}BC. It is uncertain when the armillary sphere first appeared in China, though the Western Han astronomer Geng Shouchang was the first in China to add an [[equatorial ring]] to its design in 52{{Nbsp}}BC, with [[Jia Kui (scholar)|Jia Kui]] adding an ecliptic ring in 84{{Nbsp}}AD, followed by [[Zhang Heng]] adding the [[Astronomical rings|horizon and meridian rings]].Needham, Joseph (1986). ''Science and Civilization in China: Volume 3, Mathematics and the Sciences of the Heavens and the Earth''. Cambridge: Cambridge University Press. reprinted: Taipei: Caves Books, Ltd., p. 343; {{Cite book |last=de Crespigny |first=R. |title=A Biographical Dictionary of Later Han to the Three Kingdoms (23-220 CE) |publisher=[[Koninklijke Brill]] |year=2007 |page=1050 |isbn=978-90-04-15605-0}} Works by Zhang Heng were highly influential throughout later Chinese history. As a [[horologist]], Zhang demonstrated the movement of recorded stars and planets by being the first to apply the [[hydropower]] of [[Water wheel|water wheels]] and [[water clock]] timer for [[Power (physics)|automatically rotating]] the assembled rings of his [[armillary sphere]],Morton, W. Scott and Lewis, Charlton M. (2005). ''China: Its History and Culture''. New York: McGraw-Hill, Inc., p. 70; Loewe, Michael. (1968). ''Everyday Life in Early Imperial China during the Han Period 202 BC-AD 220''. London: B.T. Batsford Ltd.; New York: G.P. Putnam's Sons, p. 107. a model that would directly inspire the liquid [[escapement]] in [[astronomical clock]]works pioneered in the [[Tang dynasty]] by [[Yi Xing]] and used by [[Song dynasty]] scientist [[Su Song]] in building his [[chain drive]] and water-driven astronomical [[clock tower]].[[Joseph Needham|Needham, Joseph]] (1986). ''Science and Civilization in China: Volume 4, Physics and Physical Technology, Part 2: Mechanical Engineering''. Cambridge: Cambridge University Press. reprinted: Taipei: Caves Books, Ltd., pp. 30, 466, 532. Zhang was not the first in China to utilize the motive power of waterwheels, since they were used in [[ferrous metallurgy]] by [[Du Shi]] to operate the [[bellows]] of a [[blast furnace]] to make [[pig iron]], and the [[cupola furnace]] to make [[cast iron]].[[Joseph Needham|Needham, Joseph]] (1986). ''Science and Civilization in China: Volume 4, Physics and Physical Technology, Part 2: Mechanical Engineering''. Cambridge: Cambridge University Press. reprinted: Taipei: Caves Books, Ltd., p. 370; Wagner, Donald B. (2001). ''The State and the Iron Industry in Han China''. Copenhagen: Nordic Institute of Asian Studies Publishing; pp. 75–76. {{ISBN|87-87062-83-6}}. Zhang invented a [[seismometer]] device with an [[inverted pendulum]] that detected the [[cardinal direction]] of [[Seismology|distant earthquakes]].[[Joseph Needham|Needham, Joseph]] (1986). ''Science and Civilization in China: Volume 4, Physics and Physical Technology, Part 2: Mechanical Engineering''. Cambridge: Cambridge University Press. reprinted: Taipei: Caves Books, Ltd., p. 30; Huang, Ray (1997). ''China: A Macro History''. Revised edition. New York: An East Gate Book, M. E. SHARPE Inc., p. 64. {{ISBN|9781563247316}}; Wright, David Curtis (2001) ''The History of China''. Westport: Greenwood Press, p. 66. It is unclear if Zhang invented or simply improved the designs of the [[odometer]] cart for measuring traveled distances and the non-magnetic [[south-pointing chariot]] that used [[Differential (mechanical device)|differential gears]] to constantly point southward [[History of navigation|for navigation]],{{cite book |last=Yan |first=Hong-sen |title=Reconstruction Designs of Lost Ancient Chinese Machinery |year=2007 |isbn=978-1-4020-6459-3 |series=History of Mechanism and Machine Science |volume=3 |page=128 |doi=10.1007/978-1-4020-6460-9}}; [[Joseph Needham|Needham, Joseph]] (1986). ''Science and Civilization in China: Volume 4, Physics and Physical Technology, Part 2: Mechanical Engineering''. Cambridge: Cambridge University Press. reprinted: Taipei: Caves Books, Ltd., pp. 40, 281–283; Balchin, Jon. (2003). ''Science: 100 Scientists Who Changed the World''. New York: Enchanted Lion Books, p. 27. {{ISBN|1-59270-017-9}}. though [[Three Kingdoms]] era engineer [[Ma Jun (mechanical engineer)|Ma Jun]] created a successful model of the chariot.[[Joseph Needham|Needham, Joseph]] (1986). ''Science and Civilization in China: Volume 4, Physics and Physical Technology, Part 2: Mechanical Engineering''. Cambridge: Cambridge University Press. reprinted: Taipei: Caves Books, Ltd., p. 40. The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110{{Nbsp}}BC and separately by the Greeks (either [[Archimedes]] in the 3rd century{{Nbsp}}BC or [[Hero of Alexandria]] in the 1st century{{Nbsp}}AD).[[Joseph Needham|Needham, Joseph]] (1986). ''Science and Civilization in China: Volume 4, Physics and Physical Technology, Part 2: Mechanical Engineering''. Cambridge: Cambridge University Press. reprinted: Taipei: Caves Books, Ltd., pp. 281–283 === Cartography === {{Main|Cartography of China}} [[File:Western Han Mawangdui Silk Map.JPG|thumb|An early [[Western Han]] (202 BC – AD 9) [[Mawangdui silk texts|silk]] [[History of cartography|map]] found in tomb 3 of [[Mawangdui]], depicting the Kingdom of [[Changsha Kingdom|Changsha]] and Kingdom of [[Nanyue]] in [[southern China]] (note: the south direction is oriented at the top)]] In cartography, [[Qin dynasty|Qin]] maps dating to the 4th century{{Nbsp}}BC have been discovered and the [[Jin dynasty (266–420)#Western Jin (266–316)|Western Jin dynasty]] official [[Pei Xiu]] is the first known Chinese cartographer to have used a geometric [[grid reference]] that allowed for measurements on a [[Scale (map)|graduated scale]] and for [[Topography|topographical]] [[elevation]],{{cite journal|doi=10.1080/03085699308592766|title=The Qin maps: A clue to later Chinese cartographic development|journal=Imago Mundi|volume=45|pages=90, 97|year=1993|last1=Hsu|first1=Mei-Ling}} though this might have been based on a rectangular grid system in maps made by Zhang Heng that are now lost.{{cite journal|doi=10.1017/S0305741000011346|title=Chinese Maps: An Exhibition at the British Library|journal=The China Quarterly|volume=58|page=359|year=1974|last1=Nelson|first1=Howard|s2cid=154338508 }}; [[Rafe de Crespigny|de Crespigny, Rafe]]. (2007). ''A Biographical Dictionary of Later Han to the Three Kingdoms (23–220 AD)''. Leiden: Koninklijke Brill, p. 1050. {{ISBN|90-04-15605-4}}; Needham, Joseph. (1986). ''Science and Civilisation in China: Volume 3; Mathematics and the Sciences of the Heavens and the Earth''. Taipei: Caves Books, Ltd, pp. 106–107, 538–540. {{ISBN|0-521-05801-5}}. === Mathematics === {{Main|Chinese mathematics}} In regards to mathematics, ''[[The Nine Chapters on the Mathematical Art]]'', compiled in its entirety by 179 AD during the Eastern Han, is perhaps also the first text to utilize [[Negative number|negative numbers]]. These were symbolized by [[counting rods]] in a slanted position, while red rods symbolizing negative numbers versus black rods that symbolize [[positive numbers]] may date back to the Western Han period.Needham, Joseph. (1986). ''Science and Civilisation in China: Volume 3; Mathematics and the Sciences of the Heavens and the Earth''. Taipei: Caves Books, Ltd, pp. 89–91. {{ISBN|0-521-05801-5}}. Zhang Heng approximated [[pi]] as 3.162 using the [[square root]] of 10 (with an 8:5 ratio of the volume of a cube to an inscribed sphere),{{cite book |last=Yan |first=Hong-sen |title=Reconstruction Designs of Lost Ancient Chinese Machinery |year=2007 |isbn=978-1-4020-6459-3 |series=History of Mechanism and Machine Science |volume=3 |page=128 |doi=10.1007/978-1-4020-6460-9}}; {{cite book |last1=Berggren |first1=Lennart |title=Pi: A Source Book |last2=Borwein |first2=Jonathan |last3=Borwein |first3=Peter |year=2004 |isbn=978-1-4419-1915-1 |page=27 |doi=10.1007/978-1-4757-4217-6}}; [[Rafe de Crespigny|de Crespigny, Rafe]]. (2007). ''A Biographical Dictionary of Later Han to the Three Kingdoms (23–220 AD)''. Leiden: Koninklijke Brill, p. 1050. {{ISBN|90-04-15605-4}}. though this was less accurate than the earlier [[Liu Xin (scholar)|Liu Xin]] who calculated it as 3.154 using an unknown method.{{cite book |last1=Arndt |first1=Jörg |title=Pi — Unleashed |last2=Haenel |first2=Christoph |publisher=Springer-Verlag |year=2001 |isbn=978-3-540-66572-4 |location=Berlin, Heidelberg |pages=177–176 |doi=10.1007/978-3-642-56735-3 |s2cid=46515097}}; Needham, Joseph. (1986). ''Science and Civilisation in China: Volume 3; Mathematics and the Sciences of the Heavens and the Earth''. Taipei: Caves Books, Ltd, pp. 99–100. {{ISBN|0-521-05801-5}}. Zhang's calculation was improved upon by Three Kingdoms–era mathematician Liu Heng in his 263 AD commentary on ''[[The Nine Chapters on the Mathematical Art]]'', providing a [[Liu Hui's π algorithm|pi algorithm]] with a value of 3.14159,Needham, Joseph. (1986). ''Science and Civilisation in China: Volume 3; Mathematics and the Sciences of the Heavens and the Earth''. Taipei: Caves Books, Ltd, pp. 100–101. {{ISBN|0-521-05801-5}}. while [[Liu Song dynasty|Liu Song]] and [[Southern Qi]]–era mathematician [[Zu Chongzhi]] reached a [[Milü|value of 3.141592]], the most accurate figure Chinese would achieve before exposure to Western mathematics.{{cite book |last1=Berggren |first1=Lennart |title=Pi: A Source Book |last2=Borwein |first2=Jonathan |last3=Borwein |first3=Peter |year=2004 |isbn=978-1-4419-1915-1 |pages=20, 24–26 |doi=10.1007/978-1-4757-4217-6}} === Astronomy === {{Main|Chinese astronomy|Chinese calendar}} {{multiple image | align = right | image1 = Lacquered Wood Suitcase, Tomb of Marquis Yi of Zeng (10167825784).jpg | width1 = 150 | image2 = Constellations on the Suitcase Lid (10167849164).jpg | width2 = 150 | footer = A [[lacquerware|lacquered]] wooden suitcase from the [[Tomb of Marquis Yi of Zeng]], dated to [[Chinese calendar|the first]] [[lunar month]] of 433 BC, decorated with a [[Chinese star map|star map]] depicting the [[twenty-eight mansions]] among [[Chinese constellations|constellations]] in [[Chinese astronomy]] }}Early Chinese astronomy provides an example of the exhaustive documentation of the natural world and observable universe that often preoccupied [[Scholar-official|Chinese scholars]]. Chinese star names are mentioned in [[oracle bone inscriptions]] of the [[Shang dynasty]].{{Citation |last1=Sun |first1=X. |title=The Chinese Sky During the Han: Constellating Stars and Society |page=16 |year=1997 |publisher=[[Koninklijke Brill]] |bibcode=1997csdh.book.....S |isbn=90-04-10737-1 |last2=Kistemaker |first2=J.}} Lists of stars along the [[ecliptic]] in the Chinese [[Twenty-Eight Mansions]] were provided on [[lacquerware]] of the 433{{Nbsp}}BC [[Tomb of Marquis Yi of Zeng]] and in the ''[[Lüshi Chunqiu]]'' encyclopedia of [[Qin (state)|Qin]] statesman [[Lü Buwei]], but it was not until the Han dynasty that full [[star catalogue]]s were published that listed all stars in the observable celestial sphere.{{Citation |last1=Sun |first1=X. |title=The Chinese Sky During the Han: Constellating Stars and Society |pages=16–19 |year=1997 |publisher=[[Koninklijke Brill]] |bibcode=1997csdh.book.....S |isbn=90-04-10737-1 |last2=Kistemaker |first2=J.}} The [[Mawangdui Silk Texts]], interred within a [[Western Han]] tomb in 168{{Nbsp}}BC, provide writings and ink illustrations of [[Chinese star maps]] showing [[Chinese constellations]] as well as [[comet]]s.Loewe, Michael. (1994). ''Divination, Mythology and Monarchy in Han China''. Cambridge, New York, and Melbourne: Cambridge University Press, p. 61. {{ISBN|0-521-45466-2}}. The Warring States–era astronomers [[Shi Shen]] and [[Gan De]] are traditionally thought to have published star catalogues in the 4th century BC,{{Citation |last=Cullen |first=C. |title=Joseph Needham on Chinese Astronomy |journal=[[Past & Present (journal)|Past & Present]] |issue=87 |pages=46ff |year=1980 |doi=10.1093/past/87.1.39}} but it was the star catalogue of [[Sima Qian]] (145–86 BC) in his "Book of Celestial Offices" ({{Lang|zh|天官書}}; {{Lang|zh-Latn|Tianguan shu}}) in the ''[[Records of the Grand Historian]]'' that provided the model for all later Chinese star catalogues.{{Citation |last1=Sun |first1=X. |title=The Chinese Sky During the Han: Constellating Stars and Society |pages=18–22 |year=1997 |publisher=[[Koninklijke Brill]] |bibcode=1997csdh.book.....S |isbn=90-04-10737-1 |last2=Kistemaker |first2=J.}} Chinese constellations were later adopted in medieval Korean astronomy and Japanese astronomy.{{Cite book |last=Kanas |first=N. |title=Star Maps: History, Artistry, and Cartography |publisher=[[Springer (publisher)|Springer]] / Praxis Publishing |year=2007 |isbn=978-0-387-71668-8 |pages=40−41}} Building upon the star catalogue of Sima Qian that featured 90 constellations,{{Cite book |last=Kanas |first=N. |title=Star Maps: History, Artistry, and Cartography |publisher=[[Springer (publisher)|Springer]] / Praxis Publishing |year=2007 |isbn=978-0-387-71668-8 |page=23}} the star catalogue of Zhang Heng published in 120{{Nbsp}}AD featured 124 constellations.{{Cite book |last=de Crespigny |first=R. |title=A Biographical Dictionary of Later Han to the Three Kingdoms (23-220 CE) |publisher=[[Koninklijke Brill]] |year=2007 |isbn=978-90-04-15605-0 |page=1050}} Nascent scientific ideas were established during the late [[Zhou dynasty]] and proliferated in the Han dynasty. Much like the earlier Aristotle in Greece, Wang Chong accurately described the [[water cycle]] of Earth but was dismissed by his contemporaries.Needham, Joseph. (1986). ''Science and Civilisation in China: Volume 3; Mathematics and the Sciences of the Heavens and the Earth''. Taipei: Caves Books, Ltd, p. 468 {{ISBN|0-521-05801-5}}. However, Wang (similar to the Roman [[Lucretius]]) inaccurately criticized the then-mainstream Han Chinese hypotheses that the Sun and Moon are spherical and that the Moon is illuminated by the reflection of sunlight—the correct hypotheses being advocated by astronomer and music theorist [[Jing Fang]] and expanded upon by the polymath scientist and inventor [[Zhang Heng]].Needham, Joseph. (1986). ''Science and Civilisation in China: Volume 3; Mathematics and the Sciences of the Heavens and the Earth''. Taipei: Caves Books, Ltd, pp. 227, 411–414. {{ISBN|0-521-05801-5}}. Zhang theorized that the [[celestial sphere]] was round and structured like an egg with the Earth as its yolk, a [[geocentric model]] that was largely accepted in the contemporary Greco-Roman world. Huang, Ray (1997). ''China: A Macro History''. Revised edition. New York: An East Gate Book, M. E. SHARPE Inc., p. 64. {{ISBN|9781563247316}}; Balchin, Jon. (2003). ''Science: 100 Scientists Who Changed the World''. New York: Enchanted Lion Books, p. 27. {{ISBN|1-59270-017-9}}. === Writing and linguistics === Analytical approaches were also applied to writing itself. Though the ''[[Erya]]'' of the Warring States period provides a basic dictionary, the first analytical [[Chinese dictionary]] to explain and dissect the [[Logogram|logographic]] Chinese written characters, with 9,353 characters listed and categorized by [[Chinese character radicals|radicals]], was the ''[[Shuowen Jiezi]]'' composed by the [[Eastern Han]] [[Philology|philologist]] and politician [[Xu Shen]].{{citation |last=Shaughnessy |first=Edward L. |title=Visible Language: Inventions of Writing in the Ancient Middle East and Beyond |page=217 |year=2010 |editor=Christopher Woods |chapter=The Beginnings of Writing in China |edition= |location=Chicago |publisher=The [[Institute for the Study of Ancient Cultures|Oriental Institute]] of the [[University of Chicago]] |isbn=978-1-885923-76-9}} === Medicine === {{Main|Traditional Asian medicine|Traditional Chinese medicine|Chinese herbology}}{{See also|Chinese alchemy}} A seminal work of traditional Chinese medicine was the ''[[Huangdi Neijing]]'' (''Yellow Emperor's Inner Canon'') compiled between the 3rd and 2nd centuries{{Nbsp}}BC, which viewed the human body's organs and tissues (''[[zangfu]]'') through the lens of the metaphysical [[Wuxing (Chinese philosophy)|five phases]] and [[yin and yang]]. The ''Huangdi Neijing'' also stated a belief in two circulatory channels of ''[[qi]]'' vital energy.Csikszentmihalyi, Mark. (2006). ''Readings in Han Chinese Thought''. Indianapolis and Cambridge: Hackett Publishing Company, Inc., pp. 181–182. {{ISBN|0-87220-710-2}}. Physicians of the Han dynasty believed that [[pulse diagnosis]] could be used to determine which organs in the body emitted ''qi'' energy, and therefore the ailments suffered by patients.Hsu, Elisabeth. (2001). "Pulse diagnostics in the Western Han: how mai and qi determine bing," in ''Innovations in Chinese Medicine'', 51–92. Edited by Elisabeth Hsu. Cambridge, New York, Oakleigh, Madrid, and Cape Town: Cambridge University Press, p. 75. {{ISBN|0-521-80068-4}}. The ''Huangdi Neijing'' is the first known Chinese text to describe the use of [[acupuncture]], while golden acupuncture needles have been discovered in the tomb of [[Liu Sheng, Prince of Zhongshan]] (d. 113 BC) and stone-carved artworks of the Eastern Han period depict the practice.Omura, Yoshiaki. (2003). ''Acupuncture Medicine: Its Historical and Clinical Background''. Mineola: Dover Publications, Inc., pp. 15, 19–22. {{ISBN|0-486-42850-8}}. The ''Huangdi Neijing'' is also the first known text to describe [[diabetes]] and link it to the excessive consumption of sweet and fatty foods.Medvei, Victor Cornelius. (1993). ''The History of Clinical Endocrinology: A Comprehensive Account of Endocrinology from Earliest Times to the Present Day''. New York: Pantheon Publishing Group Inc., p. 49. {{ISBN|1-85070-427-9}}. [[File:Qigong taiji meditation.jpg|thumb|upright|The physical exercise chart; a [[Mawangdui Silk Texts|painting on silk]] depicting [[calisthenics]]; unearthed in 1973 in [[Hunan]], China, from the 2nd-century BC Western Han burial site of [[Mawangdui]], Tomb Number 3]] In surgery, Han texts offered practical advice for certain procedures such as [[clinical lancing]] of [[abscess]]es.Hsu, Elisabeth. (2001). "Pulse diagnostics in the Western Han: how mai and qi determine bing," in ''Innovations in Chinese Medicine'', 51–92. Edited by Elisabeth Hsu. Cambridge, New York, Oakleigh, Madrid, and Cape Town: Cambridge University Press, pp. 28–29. {{ISBN|0-521-80068-4}}. The first known physician in China to describe the use [[anesthesia]] for patients undergoing surgery was the Eastern Han physician [[Hua Tuo]], who utilized his knowledge of Chinese herbology based in the ''Huangdi Neijing'' to create an ointment that [[History of wound care|healed surgical wounds within a month]].[[Rafe de Crespigny|de Crespigny, Rafe]]. (2007). ''A Biographical Dictionary of Later Han to the Three Kingdoms (23–220 AD)''. Leiden: Koninklijke Brill, p. 332. {{ISBN|90-04-15605-4}}. One of his surgical procedures was [[Intact dilation and extraction|the removal]] of a dead [[fetus]] from the womb of a woman whom he diagnosed and cured of her ailments. Hua's contemporary physician and pharmacologist [[Zhang Zhongjing]] preserved much of the medical knowledge known in China by the Eastern Han period in his major work ''[[Shanghan Lun]]'' (''Treatise on Cold Injury and Miscellaneous Disorders'') as well as the ''[[Jingui Yaolüe]]'' (''Essential Medical Treasures of the Golden Chamber '').[[Rafe de Crespigny|de Crespigny, Rafe]]. (2007). ''A Biographical Dictionary of Later Han to the Three Kingdoms (23–220 AD)''. Leiden: Koninklijke Brill, p. 1055. {{ISBN|90-04-15605-4}}. Outside the major canon of Chinese medicine established during the Han period, modern archaeology has revealed previous Chinese discoveries in medicine. The [[Shuihudi Qin bamboo texts]], dated to the 3rd century{{Nbsp}}BC, provide some of the earliest known descriptions of the symptoms of [[leprosy]] (predating the Roman author [[Aulus Cornelius Celsus]] and perhaps also the Indian ''[[Sushruta Samhita]]'', the oldest version of which is indeterminable).{{cite journal | last1 = McLeod | first1 = Katrina C. D. | last2 = Yates | first2 = Robin D. S. |author2-link=Robin D. S. Yates | year = 1981 | title = Forms of Ch'in Law: An Annotated Translation of The Feng-chen shih | journal = [[Harvard Journal of Asiatic Studies]] | volume = 41 | issue = 1| pages = 152–153 & footnote 147 | doi =10.2307/2719003 | jstor = 2719003 }} The [[Mawangdui]] silk texts of the 2nd century BC provide illustrated diagrams with textual captions for exercises in [[calisthenics]].Loewe, Michael. (1994). ''Divination, Mythology and Monarchy in Han China''. Cambridge, New York, and Melbourne: Cambridge University Press, p. 65. {{ISBN|0-521-45466-2}}. ==Pre-Columbian Mesoamerica== {{further|Ancient American engineering|6=Maya architecture|7=Maya medicine|8=Aztec medicine|10=Aztec architecture}} === Writing === {{Main|Zapotec script|Olmec hieroglyphs|Maya script}} During the [[Mesoamerican chronology|Middle Formative Period]] (c.{{Nbsp}}900{{Nbsp}}BC{{Nbsp}}– c.{{Nbsp}}300{{Nbsp}}BC) of [[Pre-Columbian Mesoamerica]], either the script of the [[Zapotec civilization]] or the script of the [[Olmec civilization]] (with the [[Cascajal Block]] being perhaps the earliest evidence) represent the earliest full writing systems of the Americas.{{citation |last=Palka |first=Joel W. |title=Visible Language: Inventions of Writing in the Ancient Middle East and Beyond |page=226 |year=2010 |editor=Christopher Woods |chapter=The Development of Maya Writing |edition= |location=Chicago |publisher=The [[Institute for the Study of Ancient Cultures|Oriental Institute]] of the [[University of Chicago]] |isbn=978-1-885923-76-9}} The Maya script, developed by the [[Maya civilization]] between 400–200{{Nbsp}}BC during its [[Preclassic Maya|Preclassic period]], was rooted in [[Epi-Olmec script|the Olmec]] and Zapotec writing systems, and became widespread in use by 100{{Nbsp}}BC.{{citation|last=Palka|first=Joel W.|chapter=The Development of Maya Writing|title=Visible Language: Inventions of Writing in the Ancient Middle East and Beyond|editor=Christopher Woods|publisher=The [[Institute for the Study of Ancient Cultures|Oriental Institute]] of the [[University of Chicago]]|year=2010|isbn=978-1-885923-76-9|edition=|location=Chicago|pages=226–227}} The [[Classic Maya language]] was built on the shared heritage of the Olmecs by developing the most sophisticated systems of writing, astronomy, calendrical science, and mathematics among urbanized Mesoamerican peoples.{{Cite web |title=Mesoamerican civilization {{!}} History, Olmec, & Maya {{!}} Britannica |url=https://www.britannica.com/topic/Mesoamerican-civilization |access-date=2024-10-24 |website=www.britannica.com |language=en}} === Mathematics === {{Main|Maya numerals}} The Maya developed a [[positional numeral system]] with a [[Vigesimal|base of 20]] that included the use of [[zero]] for constructing their calendars, with individual symbolic characters for numbers 1 through 19.{{Cite web |title=Numerals and numeral systems {{!}} Examples & Symbols {{!}} Britannica |url=https://www.britannica.com/science/numeral |access-date=2024-10-24 |website=www.britannica.com |language=en}}{{citation |last=Palka |first=Joel W. |title=Visible Language: Inventions of Writing in the Ancient Middle East and Beyond |page=227 |year=2010 |editor=Christopher Woods |chapter=The Development of Maya Writing |edition= |location=Chicago |publisher=The [[Institute for the Study of Ancient Cultures|Oriental Institute]] of the [[University of Chicago]] |isbn=978-1-885923-76-9}} === Astronomy === {{Main|Maya astronomy|Maya calendar|Mesoamerican calendars}} [[File:La Mojarra Estela 1 (Escritura superior).jpg|thumb|upright|Detail showing columns of glyphs from a portion of the 2nd century AD [[La Mojarra Stela 1]] (found near [[La Mojarra]], [[Veracruz]], Mexico); the left column gives a [[Mesoamerican Long Count calendar|Long Count]] [[Mesoamerican calendars|calendar date]] of 8.5.16.9.7, or 156 AD. The other columns visible are glyphs from the [[Epi-Olmec script]].]]The Zapotec created the first known astronomical calendar in Mesoamerica, though this was possibly under heavy influence by the Olmecs.{{cite book |last=Price |first=T. Douglas |title=Images of the Past |author2=Gary M. Feinman |publisher=McGraw-Hill |year=2005 |isbn=0-07-286311-0 |edition=Fourth |location=New York}} p. 321 Maya writing contains easily discernible calendar dates in the form of [[Logogram|logograms]] representing numbers, [[Coefficient|coefficients]], and calendar periods amounting to 20 days (within 360-day years) and even 20 years for tracking social, religious, political, and economic events. {{Clear}} ==References== {{Reflist}} ==Bibliography== *'''The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).The odometer cart, depicted in Eastern Han art, was most likely invented in Western Han China by [[Luoxia Hong]] around 110 BC and separately by the Greeks (either [[Archimedes]] in the 3rd century BC or [[Hero of Alexandria]] in the 1st century AD).'''{{Cite journal |last1=Nasser |first1=Mona |last2=Tibi |first2=Aida |last3=Savage-Smith |first3=Emilie |date=1 February 2009 |title=Ibn Sina's Canon of Medicine: 11th century rules for assessing the effects of drugs |journal=Journal of the Royal Society of Medicine |volume=102 |issue=2 |pages=78–80 |doi=10.1258/jrsm.2008.08k040 |pmc=2642865 |pmid=19208873}} *[[Joseph Needham|Needham, Joseph]], ''Science and Civilization in China'', volume 1. (Cambridge University Press, 1954) * Pedersen, Olaf. ''Early Physics and Astronomy: A Historical Introduction''. 2nd edition. Cambridge: Cambridge University Press, 1993. *Sardar, Marika. “Astronomy and Astrology in the Medieval Islamic World.” ''Metmuseum.org'', https://www.metmuseum.org/toah/hd/astr/hd_astr.htm. *{{Cite journal |last=Tibi |first=Selma |date=April 2006 |title=Al-Razi and Islamic medicine in the 9th century |journal=Journal of the Royal Society of Medicine |volume=99 |issue=4 |pages=206–207 |doi=10.1177/014107680609900425 |pmc=1420785 |pmid=16574977}} *{{Cite journal |last=Upton |first=Joseph M. |date=1933 |title=A Manuscript of 'The Book of the Fixed Stars' by ʿAbd Ar-Raḥmān Aṣ-Ṣūfī |journal=Metropolitan Museum Studies |volume=4 |issue=2 |pages=179–197 |doi=10.2307/1522800 |jstor=1522800}} {{History of science}} [[Category:Ancient science| ]]