Showing posts with label Islam Contribution. Show all posts
Showing posts with label Islam Contribution. Show all posts

Friday, March 14, 2008

The Renowned Scientists and Thinkers of Muslim Era

By Salahudin

A Glimpses of The Renowned Scientists and Thinkers of Muslim Era! "

ABU ABDULLAH AL-BATANI (858 - 929 A.D.)

Abu Abdallah Muhammad Ibn Jabir Ibn Sinan al-Battani al-Harrani was born around 858 A.D. in Harran, and according to one account, in Battan, a State of Harran. Battani was first educated by his father Jabir Ibn San'an al-Battani, who was also a well-known scientist. He then moved to Raqqa, situated on the bank of the Euphrates, where he received advanced education and later on flourished as a scholar. At the beginning of the 9th century, he migrated to Samarra, where he worked till the end of his life in 929 A.D. He was of Sabian origin, but was himself a Muslim.

Battani was a famous astronomer, mathematician and astrologer. He has been held as one of the greatest astronomists of Islam. He is responsible for a number of important discoveries in astronomy, which was the result of a long career of 42 years of research beginning at Raqqa when he was young. His well-known discovery is the remarkably accurate determination of the solar year as being 365 days, 5 hours, 46 minutes and 24 seconds, which is very close to the latest estimates. He found that the longitude of the sun's apogee had increased by 16o, 47' since Ptolemy. This implied the important discovery of the motion of the solar apsides and of a slow variation in the equation of time. He did not believe in the trapidation of the equinoxes, although Copernicus held it.

AL-Battani determined with remarkable accuracy the obliquity of the ecliptic, the length of the seasons and the true and mean orbit of the sun.

He proved, in sharp contrast to Ptolemy, the variation of the apparent angular diameter of the sun and the possibility of annular eclipses. He rectified several orbits of the moon and the planets and propounded a new and very ingenious theory to determine the conditions of visibility of the new moon. His excellent observations of lunar and solar eclipses were used by Dunthorne in 1749 to determine the secular acceleration of motion of the moon. He also provided very neat solutions by means of orthographic projection for some problems of spherical trigonometry.

In mathematics, he was the first to replace the use of Greek chords by sines, with a clear understanding of their superiority. He also developed the concept of cotangent and furnished their table in degrees.

He wrote a number of books on astronomy and trigonometry. His most famous book was his astronomical treatise with tables, which was translated into Latin in the l2th century and flourished as De scienta stellerum - De numeris stellerum et motibus. An old translation of this is available of the Vatican. His Zij was, in fact, more accurate than all others written by that time.

His treatise on astronomy was extremely influential in Europe till the Renaissance, with translations available in several languages. His original discoveries both in astronomy and trigonometry were of great consequence in the development of these sciences.


ABU RAIHAN AL-BIRUNI (973 - 1048 A.D.)

Abu Raihan Mohammad Ibn Ahmad al-Biruni was one of the well-known figures associated with the court of King Mahmood Ghaznavi, who was one of the famous Muslim kings of the 11th century A.D. Al-Biruni was a versatile scholar and scientist who had equal facility in physics, metaphysics, mathematics, geography and history. Born in the city of Kheva near "Ural" in 973 A.D ., he was a contemporary of the well-known physician Ibn Sina.

At an early age, the fame of his scholarship went around and when Sultan Mahmood Ghaznavi conquered his homeland, he took al-Biruni along with him in his journeys to India several times and thus he had the opportunity to travel all over India during a period of 20 years. He learnt Hindu philosophy, mathematics, geography and religion from the Pandits to whom he taught Greek and Arabic science and philosophy. He died in 1048 A.D. at the age of 75, after having spent 40 years in thus gathering knowledge and making his own original contributions to it.

He recorded observations of his travels through India in his well-known book Kitab al-Hind which gives a graphic account of the historical and social conditions of the sub-continent. At the end of this book he makes a mention of having translated two Sanskrit books into Arabic, one called Sakaya, which deals with the creation of things and their types, and the second, Patanjal dealing with what happens after the spirit leaves the body. His descriptions of India were so complete that even the Aein-i-Akbari written by Abu-al-Fadal during the reign of Akbar, 600 years later, owes a great deal to al-Biruni's book. He observed that the Indus valley must be considered as an ancient sea basin filled up with alluvials.

On his return from India, al-Biruni wrote his famous book Qanun-i Masoodi (al-Qanun al-Masudi, fi al-Hai'a wa al-Nujum), which he dedicated to Sultan Masood. The book discusses several theorems of astronomy, trigonometry, solar, lunar, and planetary motions and relative topics.

In another well-known book al-Athar al-Baqia, he has attempted a connected account of ancient history of nations and the related geographical knowledge. In this book, he has discussed the rotation of the earth and has given correct values of latitudes and longitudes of various places. He has also made considerable contribution to several aspects of physical and economic geography in this book.

His other scientific contributions include the accurate determination of the densities of 18 different stones. He also wrote the Kitab-al-Saidana, which is an extensive materia medica that combines the then existing Arabic knowledge on the subject with the Indian medicine. His book the Kitab-al-Jamahir deals with the properties of various precious stones. He was also an astrologer and is reputed to have astonished people by the accuracy of his predictions. He gave a clear account of Hindu numerals, elaborating the principle of position. Summation of a geometric progression apropos of the chess game led to the number:

1616-1 = 18,44,6,744,073,709,551,619.

He developed a method for trisection of angle and other problems which cannot be solved with a ruler and a compass alone. Al-Biruni discussed, centuries before the rest of the world, the question whether the earth rotates around its axis or not. He was the fist to undertake experiments related to astronomical phenomena. His scientific method, taken together with that of other Muslim scientists, such as Ibn al-Haitham, laid down the early foundation of modern science. He ascertained that as compared with the speed of sound the speed of light is immense. He explained the working of natural springs and artesian wells by the hydrostatic principle of communicating vessels. His investigations included description of various monstrosities, including that known as "Siamese" twins. He observed that flowers have 3,4,5,6, or 18 petals, but never 7 or 9.

He wrote a number of books and treatises. Apart from Kitab-al-Hind (History and Geography of India), al-Qanun al-Masudi (Astronomy, Trigonometry), al-Athar al-Baqia (Ancient History and Geography), Kitab al-Saidana (Materia Medica) and Kitab al-Jamahir (Precious Stones) as mentioned above, his book al-Tafhim-li-Awail Sina'at at-Tanjim gives a summary of mathematics and astronomy.

He has been considered as one of the very greatest scientists of Islam, and, all considered, one of the greatest of all times. His critical spirit, love of truth, and scientific approach were combined with a sense of toleration.

His enthusiasm for knowledge may be judged from his claim that the phrase [- Allah is Omniscient does not justify ignorance. -]


ABUL WAFA MUHAMMAD AL-BUZJANI (940 - 997 A.D.)

Abul Wafa Muhammad Ibn Muhammad Ibn Yahya Ibn Ismail al-Buzjani was born in Buzjan, Nishapur in 940 A.D. He flourished as a great mathematician and astronomer at Baghdad and died in 997/998 A.D. He learnt mathematics in Baghdad. In 959 A.D. he migrated to Iraq and lived there till his death.

Abul Wafa's main contribution lies in several branches of mathematics, especially geometry and trigonometry. In geometry, his contribution comprises solution of geometrical problems with opening of the compass; construction of a square equivalent to other squares; regular polyhedra; construction of regular hectagon taking for its side half the side of the equilateral triangle inscribed in the same circle; constructions of parabola by points and geometrical solution of the equations:

[ x4 =a and x4 + ax3 = b ]

Abul Wafa's contribution to the development of trigonometry was extensive. He was the first to show the generality of the sine theorem relative to spherical triangles. He developed a new method of constructing sine tables, the value of sin 30' being correct to the eighth decimal place.

He also developed relations for sine (a + b) and the formula:

2sin2 - a/2 -= 1-cos a, and sin a = 2 sin - a/2 cos - a/2

In addition, he made a special study of the tangent and calculated a table of tangents. He introduced the secant and cosecant for the first time, knew the relations between the trigonometric lines, which are now used to define them, and undertook extensive studies on conics.

Apart from being a mathematician, Abul Wafa also contributed to astronomy. In this field he discussed different movements of the moon, and discovered 'variation'. He was also one of the last Arabic translators and commentators of Greek works.

He wrote a large number of books on mathematics and other subjects, most of which have been lost or exist in modified forms. His contribution includes Kitab 'Ilm al-Hisab, a practical book of arithmetic, al-Kitab al-Kamil (the Complete Book), Kitab al-Handsa (Applied Geometry). Apart from this, he wrote rich commentaries on Euclid, Diophantos and al-Khawarizmi, but all of these have been lost. His books now extant include Kitab 'Ilm al-Hisab, Kitab al-Handsa and Kitab al-Kamil.

His astronomical knowledge on the movements of the moon has been criticized in that, in the case of 'variation' the third inequality of the moon as he discussed was the second part of the 'evection'..

But, according to Sedat, what he discovered was the same that was discovered by Tycho Brache six centuries later. Nonetheless, his contribution to trigonometry was extremely significant in that he developed the knowledge on the tangent and introduced the secant and cosecant for the first time; in fact a sizable part of today's trigonometry can be traced back to him.


ABU AL-NASR AL-FARABI (870 - 950 A.D.)

Abu Nasr Mohammad Ibn al-Farakh al-Farabi was born in a small village Wasij, near Farab in Turkistan in 259 A.H. (870 A.D.). His parents were originally of Persian descent, but his ancestors had migrated to Turkistan. Known as al-Phrarabius in Europe, Farabi was the son of a general. He completed his earlier education at Farab and Bukhara but, later on, he went to Baghdad for higher studies, where he studied and worked for a long time viz., from 901 A.D. to 942 A.D. During this period he acquired mastery over several languages as well as various branches of knowledge and technology. He lived through the reign of six Abbasid Caliphs. As a philosopher and scientist, he acquired great proficiency in various branches of learning and is reported to have been an expert in different languages.

Farabi traveled to many distant lands and studied for some time in Damascus and Egypt, but repeatedly came back to Baghdad, until he visited Saif al-Daula's court in Halab (Allepo). He became one of the constant companions of the King, and it was here at Halab that his fame spread far and wide. During his early years he was a Qadi (Judge), but later on the took up teaching as his profession. During the course of his career, he had suffered great hardships and at one time was the caretaker of a garden. He died a bachelor in Damascus in 339 A.H. /950 A.D. at the age of 80 years.

Farabi contributed considerably to science, philosophy, logic, sociology, medicine, mathematics and music. His major contributions seem to be in philosophy, logic and sociology and, of course, stands out as an Encyclopedist. As a philosopher, he may be classed as a Neoplatonist who tried to synthesize Platonism and Aristotelism with theology and he wrote such rich commentaries on Aristotle's physics, meteorology, logic, etc.

In addition to a large number of books on several other subjects embodying his original contribution, that he came to. be known as the 'Second Teacher' (al-Mou 'allim al-Thani) Aristotle being the First. One of the important contributions of Farabi was to make the study of logic more easy by dividing it into two categories viz., Takhayyul (idea) and Thubut (proof).

In sociology he wrote several books out of which Ara Ahl al-Madina al-Fadila became famous. His books on psychology and metaphysics were largely based on his own work. He also wrote a book on music, captioned Kitab al-Musiqa. He was a great expert in the art and science of music and invented several musical instruments, besides contributing to the knowledge of musical notes. It has been reported that he could play his instrument so well as to make people laugh or weep at will. In physics he demonstrated the existence of void.

Although many of his books have been lost, 117 are known, out of which 43 are on logic,11 on metaphysics, 7 on ethics, 7 on political science, 17 on music, medicine and sociology, while 11 are commentaries. Some of his more famous books include the book Fusus al-Hikam, which remained a text book of philosophy for several centuries at various centers of learning and is still taught at some of the institutions in the East. The book Kitab al-Ihsa al-Ulum discusses classification and fundamental principles of science in a unique and useful manner. The book Ara Ahl al-Madina al-Fadila 'The Model City' is a significant early contribution to sociology and political science.

Farabi exercised great influence on science and knowledge for several centuries. Unfortunately, the book Theology of Aristotle, as was available to him at that time, was regarded by him as genuine, although later on it turned out to be the work of some Neoplatonic writer. Despite this, he was regarded the Second Teacher in philosophy for centuries and his work, aimed at synthesis of philosophy and sufism, paved the way for Ibn Sina's work.


AL-FARGHANI (c. 860)

Abu'l-Abbas Ahmad ibn Muhammad ibn Kathir al-Farghani, born in Farghana, Transoxiana, was one of the most distinguished astronomers in the service of al-Mamun and his successors. He wrote "Elements of Astronomy" (Kitab fi al-Harakat al-Samawiya wa Jawami Ilm al-Nujum i.e. the book on celestial motion and thorough science of the stars), which was translated into Latin in the l2th century and exerted great influence upon European astronomy before Regiomontanus. He accepted Ptolemy's theory and value of the precession, but thought that it affected not only the stars but also the planets. He determined the diameter of the earth to be 6,500 miles, and found the greatest distances and also the diameters of the planets.

AL-Farghani's activities extended to engineering. According to Ibn Tughri Birdi, he supervised the construction of the Great Nilometer at al-Fustat (old Cairo). It was completed in 861, the year in which the Caliph al-Mutawakkil, who ordered the construction, died. But engineering was not al-Farghani's forte, as transpires from the following story narrated by Ibn Abi Usaybi'a.

Al-Mutawakkil had entrusted the two sons of Musa ibn Shakir, Muhammad and Ahmad, with supervising the digging of a canal named al-Ja'fari. They delegated the work to AL-Farghani, thus deliberately ignoring a better engineer, Sind ibn Ali, whom, out of professional jealousy, they had caused to be sent to Baghdad, away from al-Mutawakkil's court in Samarra. The canal was to run through the new city, al-Ja'fariyya, which al-Mutawakkil had built near Samarra on the Tigris and named after himself.

Al-Farghani committed a grave error, making the beginning of the canal deeper than the rest, so that not enough water would run through the length of the canal except when the Tigris was high. News of this angered the Caliph, and the two brothers were saved from severe punishment only by the gracious willingness of Sind ibn Ali to vouch for the correctness of al-Farghani's calculations, thus risking his own welfare and possibly his life.

As had been correctly predicted by astrologers, however, al-Mutawakkil was murdered shortly before the error became apparent. The explanation given for Al Farghani's mistake is that being a theoretician rather than a practical engineer, he never successfully completed a construction.

The Fihrist of Ibn al-Nadim, written in 987, ascribes only two works to AL-Farghani : ( l) "The Book of Chapters, a summary of the Almagest" (Kitab al-Fusul, Ikhtiyar al-Majisti) and (2) "Book on the Construction of Sun-dials" (Kitab 'Amal al-Rukhamat).

The Jawami, or 'The Elements' as we shall call it, was Al-Farghani's best-known and most influential work. Abd al-Aziz al-Qabisi (d. 967) wrote a commentary on it, which is preserved in the Istanbul manuscript, Aya Sofya 4832, fols. 97v-114v. Two Latin translations followed in the l2th century. Jacob Anatoli produced a Hebrew translation of the book that served as a basis for a third Latin version, appearing in 1590, whereas Jacob Golius published a new Latin text together with the Arabic original in 1669. The influence of 'The Elements' on mediaeval Europe is clearly vindicated by the presence of innumerable Latin manuscripts in European libraries.

References to it in mediaeval writers are many, and there is no doubt that it was greatly responsible for spreading knowledge of Ptolemaic astronomy, at least until this role was taken over by Sacrobosco's Sphere. But even then, 'The Elements' of Al-Farghani continued to be used, and Sacrobosco's Sphere was evidently indebted to it. It was from 'The Elements' (in Gherard's translation) that Dante derived the astronomical knowledge displayed in the 'Vita nuova' and in the 'Convivio'.


ABU HAMID AL-GHAZAL-[Algazel] (1058-1128 A.D.)
[Sociology, Theology, Philosophy. ]

Abu Hamid Ibn Muhammad Ibn Muhammad al-Tusi al-Shafi'i al-Ghazali was born in 1058 A.D. in Khorasan, Iran. His father died while he was still very young but he had the opportunity of getting education in the prevalent curriculum at Nishapur and Baghdad. Soon he acquired a high standard of scholarship in religion and philosophy and was honored by his appointment as a Professor at the Nizamiyah University of Baghdad, which was recognized as one of the most reputed institutions of learning in the golden era of Muslim history.

After a few years, however, he gave up his academic pursuits and worldly interests and became a wandering ascetic. This. was a process (period) of mystical transformation. Later, he resumed his teaching duties, but again left these. An era of solitary life, devoted to contemplation and writing then ensued, which led to the author- ship of a number of everlasting hooks. He died in 1128 A.D. at Baghdad.

Ghazali's major contribution lies in religion, philosophy and sufism. A number of Muslim philosophers had been following and developing several viewpoints of Greek philosophy, including the Neoplatonic philosophy, and this was leading to conflict with several Islamic teachings. On the other hand, the movement of sufism was assuming such excessive proportions as to avoid observance of obligatory prayers and duties of Islam. Based on his unquestionable scholarship and personal mystical experience, Ghazali sought to rectify these trends, both in philosophy and sufism.

In philosophy, Ghazali upheld the approach of mathematics and exact sciences as essentially correct. However, he adopted the techniques of Aristotelian logic and the Neoplatonic procedures and employed these very tools to lay bare the flaws and lacunas of the then prevalent Neoplatonic philosophy arid to diminish the negative influences of Aristotelianism and excessive rationalism.

In contrast to some of the Muslim philosophers, e.g., Farabi, he portrayed the inability of reason to comprehend the absolute and the infinite. Reason could not transcend the finite and was limited to the observation of the relative. Also, several Muslim philosophers had held that the universe was finite in space but infinite in time. Ghazali argued that an infinite time was related to an infinite space. With his clarity of thought and force of argument, he was able to create a balance between religion and reason, and identified their respective spheres as being the infinite and the finite, respectively.

In religion, particularly mysticism, he cleansed the approach of sufism of its excesses and reestablished the authority of the orthodox religion. Yet, he stressed the importance of genuine sufism, which he maintained was the path to attain the absolute truth.

He was a prolific writer. His immortal books include Tuhafut al-Falasifa (The Incoherence of the Philosophers), Ihya al-'Ulum al-Islamia (The Rivival of the Religious Sciences), "The Beginning of Guidance and his Autobiography", "Deliverance from Error". Some of his works were translated into European languages in the Middle Ages. He also wrote a summary of astronomy.

Ghazali's influence was deep and everlasting. He is one of the greatest theologians of Islam. His theological doctrines penetrated Europe, influenced Jewish and Christian Scholasticism and several of his arguments seem to have been adopted by St. Thomas Aquinas in order to similarly reestablish the authority of orthodox Christian religion in the West. So forceful was his argument in the favor of religion that he was accused of damaging the cause of philosophy and, in the Muslim Spain, Ibn Rushd (Averros) wrote a rejoinder to his Tuhafut.


AL-IDRISI [Dreses] (1099 -1166 A.D.)
[ Geography (World Map, First Globe) ]

Abu Abdallah Muhammad Ibn Muhammad Ibn Abdallah Ibn Idris al-Qurtubi al-Hasani, was born in Ceuta, Spain, in 1099 A.D. He was educated in Cordova. Later he traveled far and wide in connection with his studies and then flourished at the Norman court in Palermo. The date of his death is controversial, being either 1166 or 1180 A.D.

Biographical notes on him are to be found rather rarely, and according to F. Pons Boigues the underlying reason is the fact that the Arab biographers considered al-Idrisi to be a renegade, since he had been associated with the court of a Christian king and written in praise of him, in his work. The circumstances which led him to settle in Sicily at the court of Roger II are not on record.

His major contribution lies in medicinal plants as presented in his several books, specially[b] Kitab al-Jami-li-Sifat Ashtat al-Nabatat. He studied and reviewed all the literature on the subject of medicinal plants and formed the opinion that very little original material had been added to this branch of knowledge since the early Greek work. He, therefore, collected plants and data not reported earlier and added this to the subject of botany, with special reference to medicinal plants. Thus, a large number of new drugs plants together with their evaluation became available to the medical practitioners. He has given the names of the drugs in six languages : Syriac, Greek, Persian, Hindi, Latin and Berber.

In addition to the above, he made original contributions to geography, especially as related to economics, physical factors and cultural aspects. He made a planishere in silver for King Roger II, and described the world in Al-Kitab al-Rujari (Roger's Book), also entitled Nuzhat al-Mushtaq fi Ikhtiraq al-A faq (The delight of him who desires to journey through the climates). This is practically a geographical encyclopedia of the time, containing information not only on Asia and Africa, but also Western countries.

Al-Idrisi, later on, also compiled another geographical encyclopedia, larger than the former entitled Rawd-Unnas wa-Nuzhat al-afs (Pleasure of men and delight of souls also known as Kitab al-Mamalik wa al Masalik. Apart from botany and geography, Idrisi also wrote on fauna, zoology and therapeutical aspects. His work was soon translated into Latin and, especially, his books on geography remained popular both in the East and the West for several centuries.


IBN AL-BAITAR (DIED 1248 A.D.)
[Pharmacy, Botany]

Abu Muhammad Abdallah Ibn Ahmad Ibn al-Baitar Dhiya al-Din al-Malaqi was one of the greatest scientists of Muslim Spain and was the greatest botanist and pharmacist of the Middle Ages. He was born in the Spanish city of Malaqa (Malaga) towards the end of the l2th century. He learned botany from Abu al-Abbas al-Nabati, a learned botanist, with whom he started collecting plants in and around Spain. In 1219 he left Spain on a plant-collecting expedition and traveled along the northern coast of Africa as far as Asia Minor. The exact modes of his travel (whether by land or sea) are not known, but the major stations he visited include Bugia, Qastantunia ( Constantinople), Tunis, Tripoli, Barqa and Adalia.

After 1224 he entered the service of al-Kamil, the Egyptian Governor, and was appointed chief herbalist. In 1227 al-Kamil extended his domination to Damascus, and Ibn al-Baitar accompanied him there which provided him an opportunity to collect plants in Syria. His researches on plants extended over a vast area including Arabia and Palestine, which he either visited or managed to collect plants from stations located there. He died in Damascus in 1248.

Ibn Baitar's major contribution, Kitab al-Jami fi al-Adwiya al-Mu frada, is one of the greatest botanical compilations dealing with medicinal plants in Arabic. It enjoyed a high status among botanists up to the l6th century and is a systematic work that embodies earlier works, with due criticism, and adds a great part of original contribution. The encyclopedia comprises some 1,400 different items, largely medicinal plants and vegetables, of which about 200 plants were not known earlier. The book refers to the work of some 150 authors mostly Arabic, and it also quotes about 20 early Greek scientists. It was translated into Latin and published in 1758.

His second monumental treatise Kitab al-Mughni fi al-Adwiya al-Mu frada is an encyclopedia of medicine. The drugs are listed in accordance with their therapeutical value. Thus, its 20 different chapters deal with the plants bearing significance to diseases of head, ear, eye, etc. On surgical issues he has frequently quoted the famous Muslim surgeon, Abul Qasim Zahravi. Besides Arabic, Baitar, has given Greek and Latin names of the plants, thus facilitating transfer of knowledge.

Ibn Baitar's contributions are characterized by observation, analysis and classification and have exerted a profound influence on Eastern as well as Western botany and medicine. Though the Jami was translated/published late in the western languages as mentioned above, yet many scientists had earlier studied various parts of the book and made several references to it.


ABU ALI HASAN IBN AL-HAITHAM (Alhazen) (965 - 1040 A.D.)
[Physics, Optics, Mathematics ]

Abu Ali Hasan Ibn al-Haitham was one of the most eminent physicists, whose contributions to optics and the scientific methods are outstanding. Known in the West as Alhazen, Ibn aI-Hautham was born in 965 A. D. in Basrah, and was educated in Basrah and Baghdad. Thereafter, he went to Egypt, where he was asked to find ways of controlling the flood of the Nile. Being unsuccessful in this, he feigned madness until the death of Caliph al-Hakim. He also traveled to Spain and, during this period, he had ample time for his scientific pursuits, which included optics, mathematics, physics, medicine and development of scientific methods on each of which he has left several outstanding books.

He made a thorough examination of the passage of light through various media and discovered the laws of refraction. He also carried out the first experiments on the dispersion of light into its constituent colors. His book Kitab-at-Manazir was translated into Latin in the Middle Ages, as also his book dealing with the colors of sunset. He dealt at length with the theory of various physical phenomena like shadows, eclipses, the rainbow, and speculated on the physical nature of light. He is the first to describe accurately the various parts of the eye and give a scientific explanation of the process of vision.

He also attempted to explain binocular vision, and gave a correct explanation of the apparent increase in size of the sun and the moon when near the horizon. He is known for the earliest use of the camera obscura. He contradicted Ptolemy's and Euclid's theory of vision that objects are seen by rays of light emanating from the eyes; according to him the rays originate in the object of vision and not in the eye. Through these extensive researches on optics, he has been considered as the father of modern optics.

The Latin translation of his main work, Kitab-at-Manazir, exerted a great influence upon Western science e.g. on the work of Roger Bacon and Kepler. It brought about a great progress in experimental methods. His research in catoptrics centered on spherical and parabolic mirrors and spherical aberration. He made the important observation that the radio between the angle of incidence and refraction does not remain constant and investigated the magnifying power of a lens. His catoptrics contain the important problem known as Alhazen's problem. It comprises drawing lines from two points in the plane of a circle meeting at a point on the circumference and making equal angles with the normal at that point. This leads to an equation of the fourth degree.

In his book Mizan al-Hikmah Ibn al-Haitham has discussed the density of the atmosphere and developed a relation between it and the height. He also studied atmospheric refraction. He discovered that the twilight only ceases or begins when the sun is 19o below the horizon and attempted to measure the height of the atmosphere on that basis. He has also discussed the theories of attraction between masses, and it seems that he was aware of the magnitude of acceleration due to gravity.

His contribution to mathematics and physics was extensive. In mathematics, he developed analytical geometry by establishing linkage between algebra and geometry. He studied the mechanics of motion of a body and was the first to maintain that a body moves perpetually unless an external force stops it or changes its direction of motion. This would seem equivalent to the first law of motion.

The list of his books runs to 200 or so, very few of which have survived. Even his monumental treatise on optics survived through its Latin translation. During the Middle Ages his books on cosmology were translated into Latin, Hebrew and other languages. He has also written on the subject of evolution a book that deserves serious attention even today.

In his writing, one can see a clear development of the scientific methods as developed and applied by the Muslims and comprising the systematic observation of physical phenomena and their linking together into a scientific theory. This was a major breakthrough in scientific methodology, as distinct from guess and gesture, and placed scientific pursuits on a sound foundation comprising systematic relationship between observation, hypothesis and verification. Ibn al-Haitham's influence on physical sciences in general, and optics in particular, has been held in high esteem and, in fact, it ushered in a new era in optical research, both in theory and practice.


IBN AL-NAFIS [Damishqui] ( 1213 - 1288 A.D.)

Ala-al-Din Abu al-Hasan Ali Ibn Abi al-Hazm al-Qarshi al-Damashqi al-Misri was born in 607 A.H. of Damascus. He was educated at the Medical College-cum-Hospital founded by Nur al-Din Zangi. In medicine his teacher was Muhazzab al-Din Abd al-Rahim. Apart from medicine, Ibn al-Nafis learnt jurisprudence, literature and theology. He thus became a renowned expert on Shafi'i School of Jurisprudence as well as a reputed physician.

After acquiring his expertise in medicine and jurisprudence, he moved to Cairo where he was appointed as the Principal at the famous Nasri Hospital. Here he imparted training to a large number of medical specialists, including Ibn al-Quff al-Masihi, the famous surgeon. He also served at the Mansuriya School at Cairo. When he died in 678 A. H. he donated his house, library and clinic to the Mansuriya Hospital.

His major contribution lies in medicine. His approach comprised writing detailed commentaries on early works, critically evaluating them and adding his own original contribution. His major original contribution of great significance was his discovery of the blood's circulatory system, which was re-discovered by modern science after a lapse of three centuries. He was the first to correctly describe the constitution of the lungs and gave a description of the bronchi and the interaction between the human body's vessels for air and blood. Also, he elaborated the function of the coronary arteries as feeding the cardiac muscle.

The most voluminous of his books is Al-Shamil fi al-Tibb, which was designed to be an encyclopedia comprising 300 volumes, but it could not be completed due to his death. The manuscript is available at Damascus. His book on ophthalmology is largely an original contribution and is also extant. However, his book that became most famous was Mujaz al-Qanun and a number of commentaries were written on this. His own commentaries include one on Hippocrates' book. He wrote several volumes on Ibn Sina's Qanun, that are still extant. Likewise he wrote a commentary on Hunayn Ibn Ishaq's book. Another famous book embodying his original contribution was on the effects of diet on health, entitled Kitab al-Mukhtar fi al-Aghdhiya.

Ibn Al-Nafis' works integrated the then existing medical knowledge and enriched it, thus exerting great influence on the development of medical science, both in the East and the West. However, only one of his books was translated into Latin at early stages and, therefore, a part of his work remained unknown to Europe for a long time.


IBN KHALDUN (1382-1395 A.D.)

Abd al-Rahman Ibn Mohammad is generally known as Ibn Khaldun after a remote ancestor. His parents, originally Yemenite Arabs, had settled in Spain, but after the fall of Seville, had migrated to Tunisia. He was born in Tunisia in 1332 A.D., where he received his early education and where, still in his teens, he entered the service of the Egyptian ruler Sultan Barquq. His thirst for advanced know- ledge and a better academic setting soon made him leave this service and migrate to Fez. This was followed by a long period of unrest marked by contemporary political rivalries affecting his career.

This turbulent period also included a three year refuge in a small village Qalat Ibn Salama in Algeria, which provided him with the opportunity to write Muqaddimah, the first volume of his world history that won him an immortal place among historians, sociologists and philosophers. The uncertainty of his career still continued, with Egypt becoming his final abode where he spent his last 24 years. Here he lived a life of fame and respect, marked by his appointment as the Chief Malakite Judge and lecturing at the AL-Azhar University, but envy caused his removal from his high judicial office as many as five times.

Ibn Khaldun's chief contribution lies in philosophy of history and sociology. He sought to write a world history preambled by a first volume aimed at an analysis of historical events. This volume, commonly known as Muqaddimah or 'Prolegomena', was based on Ibn Khaldun's unique approach and original contribution and became a masterpiece in literature on philosophy of history and sociology. The chief concern of this monumental work was to identify psychological, economic, environmental and social facts that contribute to the advancement of human civilization and the currents of history.

In this context, he analyzed the dynamics of group relationships and showed how group-feelings, al-'Asabiyya, give rise to the ascent of a new civilization and political power and how, later on, its diffusion into a more general civilization invites the advent of a still new 'Asabiyya in its pristine form. He identified an almost rhythmic repetition of rise and fall in human civilization, and analyzed factors contributing to it. His contribution to history is marked by the fact that, unlike most earlier writers interpreting history largely in a political context, he emphasized environmental, sociological, psychological and economic factors governing the apparent events. This revolutionized the science of history and also laid the foundation of Umraniyat (Sociology).

Apart from the Muqaddimah that became an important independent book even during the lifetime of the author, the other volumes of his world history Kitab al-I'bar deal with the history of Arabs, contemporary Muslim rulers, contemporary European rulers, ancient history of Arabs, Jews, Greeks, Romans, Persians, etc., Islamic History, Egyptian history and North-African history, especially that of Berbers and tribes living in the adjoining areas. The last volume deals largely with the events of his own life and is known as Al-Tasrif. This was also written in a scientific manner and initiated a new analytical tradition in the art of writing autobiography A book on mathematics written by him is not extant.

Ibn Khaldun's influence on the subject of history, philosophy of history, sociology, political science and education has remained paramount ever since his life. His books have been translated into many languages, both in the East and the West, and have inspired subsequent development of these sciences. For instance, Prof. Gum Ploughs and Kolosio consider Muqaddimah as superior in scholarship to Machiavelli's[b] The Prince written a century later, as the former bases the diagnosis more on cultural, sociological, economic and psychological factors.

Source: Ummah

Thursday, December 20, 2007

Muslim Contributions to Science, Philosophy, and the Arts

by Huma Ahmad

In the modern world Islam is seen as many things, but rarely is it viewed as a source of inspiration and enlightenment. Though it is a force of enlightenment and it is not only verses of the Qur’an that testify to that fact, but also the great body of scholarship produced during the Middle Ages. While Europe was in the midst of darkness, it was the Muslims, spurred on by the light of their new Deen who picked up the torch of scholarship and science. It was the Muslims who preserved the knowledge of antiquity, elaborated upon it, and finally, passed it on to Europe.

Although every peoples earn what they do and pass on, it is important for us to learn about and appreciate the contributions of the Islamic civilization by the early Muslims. Colonialism, the institution of the Western educational model, along with Eurocentrism often portrays Islam as backwards, incompatible with science and technology and anti-educational. Muslim school children never learn of their glorious past and often the only thing passed on to them is the inferiority complex of the generation before them. From the past we can learn from our mistakes and use the analysis of those great examples before us as role models to enrich us in the future.

In the seventh century A.D., the prophet Muhammad (SAW) was sent to the people of Arabia. Within a decade of his death the Muslims had conquered all of the Arabian peninsula. Within a century, Islam had spread from Al-Andalus in Spain to the borders of China. Islam unified science, theology, and philosophy. Muslims were commanded to study, seek knowledge, and learn and benefit from others' experiences by Allah (SWT) in the holy Quran and by the prophet Muhammad (SAW) in the Sunnah. It was this that inspired the Muslims to great heights in sciences, medicine, mathematics, astronomy, chemistry, philosophy, art and architecture.

Muslim scholars began obtaining Greek treatises and started their study and translation into Arabic a few centuries after the Hijrah (622 A.D.) They critically analyzed, collated, corrected and supplemented substantially the Greek science and philosophy. After this period began what is known as the Golden Age of Islam, which lasted for over two centuries. It is here we find many of the great scientists of Islam who literally left behind hundreds and thousands of books on the various branches of science.

Abu Ali al-Hussain Ibn Abdallah Ibn Sina, universally known as Avicinna (980-1037), alone wrote 246 books, including Kitab-al Shifa (The Book of Healing) consisting of 20 volumes and Al- Qanun fit Tibb (The Canons of Medicine). The Qanun was the chief guide for medical science in the West from the twelfth to the seventeenth century. Dr. William Osler, who wrote The Evolution of Modern Science, remarks "The Qanun has remained a medical Bible for a longer period than any other work". Containing over a million words, it surveyed the entire medical knowledge available from ancient and Muslim sources, and including his own original contributions.

Ibn Sina's original contributions included such advances such as recognition of the contagious nature of phtisis and tuberculosis; distribution of diseases by water and soil and the interaction between psychology and health. Also, the book described over 760 drugs and became the most authentic of its era. Ibn Sina was also the first to describe meningitis and made rich contributions to anatomy, gynaecology and child health.

This interest in medicine went back to the time of the Prophet (SAW), who once said that there existed a cure for every disease. With this spirit there were hospitals and clinics built all over the Muslim world, the earliest built in 707 by Caliph Walid ibn Abd a-Malik in Damascus. Muslims made many advances such as the idea of circulation of blood and quarantine and the foundation of the first apothecary shops and the earliest school of pharmacy.

Hunayn ibn Ishaq, a philosopher and physician made advances in Medicine, Physics, Mathematics, Astronomy Veterinary Science, and Ophthalmology. He was the head of the famous school of translators founded by Caliph Mamun at Baghdad and wrote the first systematic text book on opthamology.

Abu Bakr Muhammad ibn Zakariya al-Razi (865-925 AD), known as Rhazes, was one of the most prolific Muslim doctors and probably second only to Ibn Sina in his accomplishments. He was born at Ray, Iran and became a student of Hunayn ibn Ishaq and later a student of Ali ibn Rabban. He wrote over 200 books, including Kitab al-Mansuri, ten volumes on Greek medicine, and al-Hawi, an encyclopedia of medicine in 20 volumes. In al-Hawi, he included each medical subject's information available from Greek and Arab sources and then added his own remarks based on his experience and views. He classified substances as vegetable, animal or mineral while other alchemists divided them into "bodies", "souls" and "spirits".

Al-Razi was first placed in charge of the first Royal Hospital at Ray, from where he soon moved to a similar position in Baghdad where he remained the head of its famous Muqtadari Hospital for a long time. He found a treatment for kidney and bladder stones, and explained the nature of various infectious diseases. He also conducted research on smallpox and measles and was the first to introduce the use of alcohol for medical purposes. A unique feature to his medical system was that he greatly favored cure through correct and regulated food intake. This was combined with his emphasis on the influence of psychological factors on health. He also tried proposed remedies first on animals in order to evaluate their effects and side effects. He was also an expert surgeon and the first to use opium for anesthesia.

Another great physician who soon followed was al-Razi was Abul Qasim al-Zahrawi (963-1013 AD) who is known as Albucasis to the West. A famous surgeon in his time, at the court of Caliph al- Hakam II, students and patients flocked to him from the Muslim world and Europe. He wrote the medical encyclopedia al-Tasrif li man ajaz an-il-talif, which contained 30 sections of surgical knowledge and illustrations of 200 surgical instruments, most of which he designed himself. The Encyclopedia was not only a standard for physicians, but even five centuries later it was being used as the standard textbook on surgery in universities in Europe. He also performed many delicate operations such as Cesareans and was also the first to use silk thread for stitching wounds.

Al-Idrisi was born in Cordova, Spain in 1099. His major contribution was in medicinal plants which he described in many books, such as Kitab al-Jami-li-Sifat Ashtat al-Nabatat. He collected plans and data not reported earlier and added this to the subject of botany. From him a large number of new drugs from plants with their evaluations became available to medical practitioners.

Al-Idrisi also made original contributions to topography, as related to economics, physical factors and cultural aspects. He wrote geographical encyclopedias, the largest called Rawd-Unnas wa Nuzhalat Nafs (Pleasure of Men and Delight of Souls). Al-Idrisi also wrote on the subjects of fauna, zoology and threapeutical aspects. His work was soon translated into Latin and his books on geography especially remained popular in the east and west for several centuries.

Working in the field of botany as well was abu Muhammad Ibn al-Baitar, also from Spain. He was one of the greatest scientists of Muslim Spain and one of the greatest botanists and pharmacists of the Middle Ages. He went on many traveling expeditions to collect plants as far as Africa and Asia Minor. He wrote Kitab al-Jami al-Adiwaya al-Mufrada, one of the greatest botanical compilations dealing with medicinal plants in Arabic The encyclopedia was made of over 1,400 items, many of which were not known before. The book referred to the works of 150 authors, mostly Arabic and quoted about 20 early Greek scientists. It was translated into Latin and published as late as 1758.

Ibn al-Baitars works were characterized by observation, analysis and classification and exerted a profound influence on Eastern as well as Western botany and medicine. Even though many of his works were translated and published late in the western languages, many earlier scientists had studied various parts of the book and made several references to it.

At the same time as these advances in medicine were being made, the Muslims produced some of the most outstanding Mathematicians. Muhammad ibn Musa al-Khwarizmi, born in 780 A.D., was the founder of modern Algebra. He developed sine, cosine and trigonometrical tables, which were later translated to the West. His book on algebra Hisab al-Jabr waal-Muqabalah (The Calculation of Integration and Equation) was used until the 16th century as the principal textbook of European universities. In it he writes that given an equation, collecting the unknowns in one side of the equation is called al-Jabr and collecting the knowns in the other side of the equation is called al-Mukabalah. He also described basic types of equations: nx=m , x^2=nx , x^2=m , m+x^2 =nx, m+nx +x^2 and x^2=m+nx. He also solved the particular equation x^2+21=10x using geometrical arguments.

Al-Khawarizmi also helped introduce Arabic numerals, the decimal position system, and the concept of zero. Algebra and Algorithm are in fact corruption's of his work and name. Interestingly, this first every book on algebra included many examples from the Islamic inheritance laws and how they could be solved using algebra. Under al-Mamun the caliph of the time, he with some others were the first to map the globe.

In the field of Algebra the Muslims continued with Thabit Ibn Qurra's more general equations solved by geometrical arguments. In 901, Abu Kamil, called "the Egyptian calculator", did some work on algebra in which he established rules for manipulating algebraic expressions. He also proved various laws such as ax*bx-abx^2, a(bx)=(ab)x and (10-x)(10-x)=100+x^2-20x (Mirza, p124).

Around 1000, Abu Bakr Al-Karaji, in his book. The Marvelous discussed higher order equations such as fourth and fifth order equations, combing geometry and arithmetic. Al-Samawal established the power law x^nx^n=x^(m+n) in 1180 in his work The Shining which is just one of his 85 books. He also worked on performing multiplication of algebraic expressions involving terms with different powers and division of polynomials. Abu Yunus proved the famous identity cos(a)cos(b)={cos(a+b)+cos(a-b)}/2 and used spherical trigonometry to set formulas to computer prayer times. Al-Biruni also used spherical trigonometry to find the direction of Mecca or any other city on the globe.

Another outstanding mathematician was Ghiyath al-Din al Kashani of the late fourteenth century. He worked on the theory of numbers and techniques of computations. In 1424, he computed a value of 2pi to sixteen decimal digits of accuracy using an approximation of the circle by 805306368 side polygon. One of his most important works was Miftah elHussab or The Calculators' Key, in it he described an algorithm for finding the fifth root of any number. The book was used in Persian schools until the seventeenth century. Later in his life he moved to Samarkand at the request of the then ruler to help direct a new scientific school and observatory and conduct research with other scholars of the time. Kashani also wrote on how to approximate sin(1) by solving a cubic equation accurately.

Umar Khayyam known to the west as only a poet actually also was an excellent mathematician. He criticized Euclid's theorems, evolved a methodology for the solution of third degree equations, and did research in the field of binomials and their coefficients.

Abu Wafa Muhammad al-Buzanji was born in Buzjan, Nishapur in 940 A. D. He became a great mathematician and astronomer at Baghdad and died in 997 A.D. Al-Buzanji's main contribution lies in several branches of mathematics, in geometry and trigonometry especially. In geometry he contributed to a solution of geometrical problems with opening of the compass, construction of a square equivalent to other squares, regular polyhedra, construction of regular hectagon taking for its side of the equilateral triangle inscribed in the same circle, constructions of parabola by points and geometrical solution of the equations x4=a and x4+ax3=b.

Al-Buzanji's contribution to the development of trigonometry was also extensive. He was the first to show the generality of the sine theorem relative to spherical triangles. He developed a new method of constructing sine tables, the value of sin 30` being correct to the eight decimal place. He also developed relations for sine(a+b) and the formula: 2 sin2 (a/2) = 1 -cos a and sin a = 2 sin (a/2) cos (a/2). In addition he studied tangent and calculated tables for them. He introduced the secant and cosecant for the first time. He wrote a large number of books on mathematics and other subjects, most of which have been lost or exist in modified forms. He also wrote rich commentaries on Euclid, Diophanatos and al-Khwarizmi. A sizable part of today's trigonometry can be traced back to him.

Abu Abdullah al-Battani (862-929 A.D.) was a son of a scientist and also a famous astronomer, mathematician and astrologer. He is often considered one of the greatest astronomists of Islam. His career of 42 years included a number of important discoveries, including the accurate determination of the solar year as 365 days, 5 hours, 46 minutes, and 24 seconds, which is very close to modern estimates. He also determined with accuracy the obliquity of the ecliptic, the length of the seasons and the true and mean orbit of the sun. He proved that in contrast to Ptolemy, the variation of the apparent angular diameter of the sun and the possibility of annular eclipses. His observations of lunar and solar eclipses were used by Dunthorne in 1749 to determine the secular acceleration of motion of the moon.

In mathematics, al-Battani was the first to replace the use of Greekchords by sines and the first to develop the concept of cotangent and furnished their table in degrees. He wrote a number of books on astronomy and trigonometry. His most famous book was his astronomical treatise with tables which was translated into Latin in the 12th century, called De Sceinta Stellerum De numeris Stellerum et Motibus. This was extremely influential in Europe until the Renaissance, with translations available in several languages. His original discoveries in both astronomy and trigonometry were of great consequence in the development of those sciences.

In the related field of Physics, Abu al-Fath Abd al-Rahman al-Khazini studied mechanics and hydrostats and wrote books on physics and astronomy. Al-Biruni, a geographer, chronologist, mathematician, astronomer, was also a physicist. His Elements of Astrology remained a textbook for centuries and he also wrote on specific gravity, and developed formulas to determine absolute and specific weights of all objects.

Abu al-Hassan al Haitham (965-1039 AD) was one of the most eminent physicists, whose contribution to optics and the scientific method were great. Originally from Basra, he went to Egypt where he was asked to find ways of controlling the flood of the Nile. Being unsuccessful in this, he feigned madness until the death of Caliph al-Hakim. He also traveled to Spain and during this time also had time for his scientific pursuits. He wrote treatises such as Kital al-Manzir on light, worked with mirrors and lenses, reflection, refraction, and magnifying and burning glasses. He discussed the propagation of light and colors, optic illusions and opposed the view of Euclid and Ptolemy that the eye sent out visual rays. From studying motion, he discovered the principle of inertia.

He contradicted Ptolemy's and Euclid's theory of vision that objects are seen by rays of light emanating from the eyes. According to Haitham, the rays originated in the object of vision and not in the eye. Through this kind of extensive research on optics, he has been considered the father of modern Optics. Roger Bacon and all medieval Western writers on optics based their work largely on his Opticae Thesaurus and it even influenced Leonardo da Vinci, Johann Kepler and Newton.. Haitham also studied the phenomena of sunrise and sunset and explained rainbows through the principle of reflection. He was known for the earliest use of the camera obscura as well.

Al-Kindi (d. 873 AD) considered the first philosopher of the Arabs, also contributed to Physics , Optics, reflection of light, specific weights, tides and metallurgy.

Muslims also made discoveries in Chemistry by discovering many new substances such as potash, nitrate of silver, corrosive sublimate and nitrate and sulfuric acid as well as improving methods for evaporation, filtration, sublimation, calcination, melting, distillation, and crystallization. Jabir, otherwise known as the father of Arab alchemy contributed in the fields of Pharmacology and Toxicology.

Al-Asma'i (740-882 AD) was a philologist who contributed to Zoology, Botany and Animal Husbandry. Other Muslim botanists described plants in detail, medicinal herbs, physiology of plants and wrote books on horses, camels, sheep, birds, the history of bees and locusts, the effect of climate on the behavior of animals and men. Also working on the subject of Botany, Suri al- Dimashqi researched plants around Damascus and Lebanon at different stages of growth.

In the field of geography, Ibn Majid invented the compass. The Muslims traversed the Indian, Atlantic and Pacific Ocean as well as sailing around the African continent, in their trading with India, Iran and Greece. They wrote such books as Akhbar al-Hind (Reports on India), Akhbar al-Sin (Reports on China) and Ajib al-Hind (Curiosities of India). Sulaiman Al-Makri wrote of his travels in Al-budat and other books. Abu al-Hasan al-Masudi, a historian and scientist, traveled the world journeying from Persia, Central Asia, India, the Near East, Madagascar and the China Sea. He wrote his encyclopedic volume on his travels which included history, cosmology and geography.

Al-Biruni was the first known writer to identify certain geological facts, such as the formation of sedimentary rocks and the great geological changes that happened in the past. He was also the founder of geodesy and wrote and improved upon the methods of measuring longitudes, latitudes, heights of mountains and the diameter of the earth. He also wrote on biological evolution.

Of the many scientists in the field of astronomy, Al-Sufi helped build a famous observatory under the Buwayh sultan Sharaf-al-Dawlah. He prepared charts of the heavens with magnitudes and was the first to mark the nebula of Andromeda in his atlas. Al-Zarqali from al-Andalus invented the astrolabe and measured the rate of motion. He also constructed astronomical instruments and built a water clock.

Jabir ibn Aflah was a Spanish Arab who criticized Ptolemy's heliocentric theory of planetary motion. He designed the first portable celestial sphere to explain and measure the movements of celestial objects and led the way for spherical trigonometry. Al-Bitruji developed a new theory of stellar movements. Names of many constellations, words like zenith and nadir and even names of craters of the moon all go back to the works of Muslim scholars of this time.

We can see that these Islamic sciences had a great impact upon both the Western world and also the two major civilizations east of the Islamic world, India and China. Without the Islamic scientists and their work, the development of science in these civilizations would have been different. Between the eleventh and thirteenth centuries the major works of Islamic scientists were translated into Latin in Spain, Sicily and Italy. Muslim scientists like Ibn Sina and al-Razi became household names in the West. Islamic medicine led the way for European medicine.

In the field of mathematics the works of al-Khwarazmi and others were taught in the Western universities for centuries. Astronomical tables written in the West were based upon the work of Muslims before them. Treatises on algebra that were written were mostly based on the work of Khayyam. Works in chemistry written in Latin used an extensive Arabic vocabulary because there was no Latin vocabulary in this field.

Many of these scientists were also great philosophers, such as Ibn Sina and al-Razi. Ibn Sina initially began studying logic, from there he studied physics and metaphysics and was the first to develop a complete philosophical system in Arabic. Ibn Sina's philosophical encyclopedia Kitab al-Shifa was a monumental work, embodying a vast field of knowledge from philosophy to science. He classified the entire field as follows: theoretical knowledge; physics, mathematics, and metaphysics; ethics, economics and politics. His philosophy synthesized Aristotelian tradition, Neoplatonic influences and Muslim theology. Besides al-Shifa his well-known treatises in philosophy are al-Najat and Isharat.

Al-Razi's contribution as a philosopher was also well known. The basic elements in his philosophical system were the Creator, the spirit, matter, space and time. He discussed their characteristics in detail and his concepts of space and time as constituting a continuum. His philosophical views were, however, criticized by a number of other Muslim scholars of the era.

During the time of Harun al-Rashid (786-809) the Muslims built a library which contained both originals and translations of almost any then known scientific work in Sanskrit, Persian and Greek. His son, Caliph al-Mamun continued the tradition of philosophy and science and established in Baghdad his Bayt al-Hikmah (House of Wisdom), a library and academy. Here the objective was to collect all scientific works, translate them into Arabic and copy and bind them into books to preserve them. No doubt much of the knowledge of the Greeks and others was preserved in this way.

The greatest figure in Islamic philosophy is held to be Imam al-Ghazali, who was a jurist, theologian, philosopher and mystic. Born in 1058 in Khorasan, he came to have a high standard of scholarship in religion and philosophy and gained an appointment as a professor at the Nizamiyah University, which was one of the most reputed institutions of learning at the time. Muslim philosophers of his time had been following and developing many of the viewpoints of Greek philosophy, including Neoplatonic philosophy, which led to conflict with some Islamic teachings. Also at this time the Sufi's began introducing heretical beliefs like avoiding observances of obligatory prayers and other duties of Islam. Ghazali sought to show the faults in both these trends.

In philosophy, Ghazali upheld the approach of mathematics and exact sciences as essentially correct, but he adopted the techniques of Aristotelian logic and the Neoplatonic procedqres and used these as tools to show the flaws in the then prevalent Aristotelianism and excessive rationalism. In contrast to some of the Muslim philosophers like Farabi, he portrayed the inability of reason to comprehend the absolute and the infinite. Reason could not transcend the finite and was limited to the observation of the relative, he argued. Also, several Muslim philosophers had the opinion that the universe was finite in space but infinite in time. Ghazali argued that infinite time was related to infinite space. He was able to create a balance between religion and reason.

Ghazali wrote many books including Tuhafut al-Falasifa (The Incoherence of the Philosophers) and Ihya al-Ulum al-Islamia (The Revival of the Islamic Sciences). Ghazali's influence was deep. His theological doctrines penetrated Europe and influenced Jewish and Christian Scholasticism and Thomas Aquinas.

Other Muslims also wrote extensively on Creation, God, Aristotelian thought, logic and developed systems of jurisprudence and law. During this period especially, Islamic philosophy was active in Spain and Morocco. These included Ibn Bajjah who wrote Tadbir al-mutawahhid (Regimen of the Solitary) where he discussed the perfect society built upon the inner perfection of individuals within the society. Ibn Tufayl, a physician and philosopher, followed with Hayy al Yaqzan (Living Son of the Awake).

Another great philosopher was Ibn Rushd, the Qadi of Cordova, a jurist, and interpreter of the Shair'ah. Ibn Rushd was a rationalist and wrote about religion and philosophy. In his book Kitab Fasl al-Makal, he wrote about the creation of the world, Divine knowledge of particular things, and the future of the human soul. He also wrote commentaries on Aristotle, to such an extent that in the West he was known as "The Commentator" during the Western Middle Ages and the Renaissance. He wrote an answer to Al-Ghazali's works and wrote the Tahafut al tahafut (Incoherence of the Incoherence). Ibn Rushd's influence on Medieval and Renaissance European history is found to be greater than that of his influence on the Islamic world.

Ibn Khaldun's (1332-1395) main contribution lies in philosophy of history and sociology. He wanted to write a world history aimed at analyzing historical events. The first volume was known as the Muqaddimah. This monumental work identified psychological, economic, environmental and social facts that contributed to the advancement of human civilizations and the currents of history as opposed to just the political context of earlier writers.

In this context, he analyzed the dynamics of group relationships and showed how group feelings, al-'Asabiyya, give rise to the ascent of a new civilization and political power and how, later on, its diffusion into a more general civilization invited the beginning of a still new 'Asabiyya in its pure form. He identified an almost rhythmic repetition of rise and fall in human civilization and analyzed factors contributing to it. His contribution to history is marked by the fact that, unlike most earlier writers who interpreted history through the political context, he emphasized environmental, sociological, psychological and economic factors governing the apparent events. This revolutionized the science of history and also laid the foundation of Umraniyat (Sociology).

Lastly we come to the realm of the arts. The well known Hadith "Allah is beautiful and He loves beauty" encouraged Muslims to beautify the word of Allah through calligraphy and other expressions. Islamic calligraphy began with the kufi styles, then followed naskhi, thuluth, muhaqqiq, rayhani, and nasta'liq. Calligraphy began as a direct response of the soul of Muslims to the descent of the Qur’anic revelation. Calligriphical art moved from beautifying the Quran and texts to objects, houses and Mosques and eventually to Architecture.

Writes T.B. Irving on Islamic architecture, "..few civilizations have approached Islam's beauties in architecture: her soaring minarets and spires, her fabled domes, her cool corridors, all reflect the yearning of Muslims, who refusing to find expression in natural depiction concentrate their energies on buildings and their embellishment."

These embellishments included the calligraphic mosaics of mosques, tombs and places through out Persia, India, Turkey, Egypt, Morocco along with marble carving, plaster work, delicate inlay and tile work. Muslims also evolved their own style of art, while producing beautiful ceramic tiles, porcelain, pottery, plates, bowls, tapestries and rugs, and lamps.

The defining elements of Islamic Architecture are many. The use of the frame created organization and design. Calligraphy was found in the decoration of almost every Islamic building as well as many objects. Geometry become a major art form by using the circle as a basis and generating patterns from repetition, symmetry and changing scale to create unusual effects. Reflected light was developed and multiplied with the Muqarnas cells beneath domes, and they reflected and refracted light.

Ceramic tiles and mirrors were added to use light and increase them. Foliation including the classical vine and scroll motifs gave rise to the abstract art of the arabesque. Lastly, water was an essential element, whether flowing through palaces in India or in fountains found in the inner courtyards of Spain. Islamic architecture influenced the widespread use of the niche form for Mihrab, tombstone, door, window or decorative feature, lamps, domes, mosaics, geometric shapes, patterns, intertwining leaf motifs and designs, fountains, gardens, and courtyards.

Islamic art took from the civilizations surrounding it and also impacted them. The Chinese were influenced in their vases and carpets. Medieval Europe were influenced in their arts and showed it from their adoption of arches to their illuminations of Latin and Hebrew manuscripts. Of course the epitome of Islamic art can be seen in the greatest Islamic masterpieces such as the grand mosques of Cordova in Spain, the Taj Mahal in India, and the Blue mosque in Turkey. The works of these Muslim artists have become prototypes and models on which other artists and craftsmen patterned their own works, or from which they derived the inspiration for related work.

Thus the contributions of early Islam was so rich, so voluminous and so varied that it defies this brief descriptive survey. These Muslims drew from their pre-Islamic traditions, plus those of the civilizations they came into contact with and they absorbed what went with their beliefs and rejected what did not. Over the centuries they continued to develop and partake in the pursuit of knowledge with no hesitation. The destruction of Baghdad and the Mongol invasions did not even hinder them from learning and elaborating on the arts and sciences, despite the great destruction of their books and knowledge.

However, what is most important is not the discoveries themselves of the early Muslims but the methodology and kind of thought behind what produced them. Inspired by the truth of Islam, by strong faith and by Qur’anic enjoinders to ponder, think and discover the world did they lead the world in doing so. Only with this verve to relate the outward world of science, art and philosophy to inner spirituality and religion can we again reach the heights of the Golden Age of Islam.

Source: jannah.org

[ A timetable of contributions:]

- Chuzini, Abu al-Fath al-; physicist.
- Ibn Hisham; biographer, historian.
- Ibn Labban, Kushyar.
- Ibn Turk, `Abd al-Hamid; mathematician.
- Ibn al-Muqtafi, Abu al-Fadl Ja`far; astronomer.
- 767 Ibn Ishaq; biographer, historian.
721 - 815 Jabir ibn Hayyan, Abu Musa (Geber); alchemist.
780 - 850 Khwarizmi, Muhammad ibn Musa al-; astronomer, mathematician.
82? - 861 Farghani, Abu al-`Abbas al- (Afragamus); astronomer, geographer.
- 870 Kindi, Abu Yusuf Ya`qub ibn Ishaq al-Sabah al-; philosopher.
828 - 889 Ibn Qutaybah; historian, philologist, theologian.
826 - 901 Ibn Qurra, Thabit; mathematician.
865 - 923 Razi, al- (Rhazes); alchemist, philosopher, physician.
839 - 923 Tabari, al-; historian, theologian.
858 - 929 Battani, al- (Albatenius); astronomer, mathematician.
870 - 950 Farabi, al- (Alfarabicus); philosopher, poet.
940 - 998 Abu al-Wafa'; astronomer, mathematician.
- 1008 Ibn Yunus; astronomer, mathematician.
936 - 1013 Abu al-Qasim (Albucasis); physician.
- 1029 Karkhi, al-; mathematician.
930 - 1030 Ibn Miskawayh; historian, philosopher.
980 - 1037 Ibn Sina, Abu `Ali al-Husayn (Avicenna); philosopher, physician.
965 - 1039 Ibn al-Haytham (Alhazen); mathematician, physicist.
973 - 1048 Biruni, al-; historian, mathematician, physicist.
1058 - 1111 Ghazali, Abu Hamid al- (Algazel); philosopher.
1048 - 1131 Khayyam, `Umar (Omar Khayyam); astronomer, mathematician, poet.
1095 - 1138 Ibn Bajjah (Avempace); philosopher.
1075 - 1144 Zamakhshari, al-; philologist, theologian.
1090 - 1162 Ibn Zuhr, Abu Marwun `Abd al-Malik (Avenzoar, Abumeron); physician.
1100 - 1185 Ibn Tufayl; philosopher, physician.
1126 - 1198 Ibn Rushd, Abu al-Walid (Averroes); philosopher, physician.
1135 - 1204 Ibn Maymun (Maimonides); Jewish philosopher, physician.
1201 - 1274 Tusi, Nasir al-Din al-; astronomer, mathematician, philosopher.
- 1288 Ibn al-Nafis; physician.
- 137? Ibn al-Shatir; astronomer.
1332 - 1406 Ibn Khaldun, Abu Zayd `Abd al-Rahman; historian, sociologist.
- 1436 Kashi, al-; mathematician.
1445 - 1505 Suyuti, al-; historian, philologist, theologian.


SOURCES

Brend, Barbara. Islamic Art. Cambridge: Harvard University Press, 1991.
Fakhry, Majid. A History of Islamic Philosophy. New York: Columbia University Press, 1970.
Haye, Kh. A. Stories of Great Muslims. Brentwood: American Trust Publications, 1991.
Hitti, K. Phillip. History of the Arabs. New York: St. Martins Press, 1970.
Irving, T.B. The Tide of Islam. Cedar Rapids: Igrams Press, 1982.
Michell, George. Architecture of the Islamic World. London: Thames and Hudson, 1995.
Mirza, Dr. Muhammad R. and Sidiiqi, Muhammad Iqbal. Muslim Contribution to Science. Chicago: Kazi Publications, 1986.
Nasr, Seyyed Hossein. A Young Muslim's Guide to the Modern World. Chicago: Kazi Publications,1994.
Qadir, C.A. Philosophy and Science in the Muslim World. London: Croom Helm, 1988.
Science : The Islamic Legacy: Worlds fair issue, 1987.

*Various Internet sources

Wednesday, February 01, 2006

Islam's Contribution to Europe's Renaissance

By HRH, The Prince of Wales, Islam And The West

. . . we have underestimated the importance of 800 years of Islamic society and culture in Spain between the 8th and 15th centuries. The contribution of Muslim Spain to the preservation of classical learning during the Dark Ages, and to the first flowering of the Renaissance, has long been recognized. But Islamic Spain was much more than a mere larder where Hellenistic knowledge was kept for later consumption by the emerging modern world.

Not only did Muslim Spain gather and preserve the intellectual content of ancient Greek and Roman civilization, it also interpreted and expanded upon that civilization, and made a vital contribution of its own in so many fields of human endeavour -- in science, astronomy, mathematics, algebra (itself an Arabic word), law, history, medicine, pharmacology, optics, agriculture, architecture, theology, music. Averroes and Avenzoor, like their counterparts Avicenna and Rhazes in the East, contributed to the study and practice of medicine in ways from which Europe benefited for centuries afterwards.

Islam nurtured and preserved the quest for learning. In the words of (the Prophet's) tradition "the ink of the scholar is more sacred than the blood of the martyr." Cordoba in the 10th century was by far the most civilized city of Europe. We know of lending libraries in Spain at the time King Alfred was making terrible blunders with the culinary arts in this country. It is said that the 400,000 volumes of its ruler's library amounted to more books than all the of the rest of Europe put together. That was made possible because the Muslim world acquired from China the skill of making paper more than four hundred years before the rest of non-Muslim Europe. Many of the traits on which Europe prides itself came to it from Muslim Spain. Diplomacy, free trade, open borders, the techniques of academic research, of anthropology, etiquette, fashion, alternative medicine, hospitals, all came from this great city of cities.

Mediaeval Islam was a religion of remarkable tolerance for its time, allowing Jews and Christians to practice their inherited beliefs, and setting an example which was not, unfortunately, copied for many centuries in the West. The surprise, ladies and gentlemen, is the extent to which Islam has been a part of Europe for so long, first in Spain, then in the Balkans, and the extent to which it has contributed so much towards the civilization which we all too often think of, wrongly, as entirely Western. Islam is part of our past and present, in all fields of human endeavour. It has helped to create modern Europe. It is part of our own inheritance, not a thing apart.


Maria Rosa Menocal, The Ornament of the World: How Muslims, Jews and Christians Created a Culture of Tolerance in Medieval Spain
[It] is no exaggeration to say that what we presumptuously call 'Western' culture is owed in large measure to the Andalusian enlightenment....This book partly restores to us a world we have lost, a world for which our current monotheistic leaderships do not even feel nostalgia.--Christopher Hitchens, The Nation

Akbar S. Ahmed, Living Islam
It is well to recall that Islam not only caused Islamic civilization to develop but also enabled the European Renaissance to take root and grow. The time when Islam was most strongly established was also the time when art, culture and literature flourished, whether in Spain or, later, under the Ottomans, the Safavids and the Mughals. Christian Europe was enveloped in darkness until Islam came to the Iberian peninsula. For centuries Islam fed Greek, Sanskrit and Chinese ideas into Europe. Slowly and steadily Europe began to absorb those ideas. In England, France, Germany and Italy society began to explore literature and art with a new perspective; thus the seeds of the Renaissance were sown. -- p. 15

James Johnston, Medieval Script Shows Islam's Role in Learning
The manuscript stands as a uniquely important monument to the central role of Jews and Muslims in the spread of knowledge and learning throughout medieval Europe, as well as being possibly the earliest known example of Latin script of any kind written on paper. Sotheby's says that only four other copies of this work are known.

Washington W. Irving, Tales Of The Alhambra
As conquerors [Muslims], their heroism was equaled only by their moderation, and in both, for a time, they excelled the nations with whom they contended. Severed from their native homes, they loved the land given them as they supposed by Allah and strove to embellish it with everything that could administer to the happiness of man. Laying the foundations of their power in a system of wise and equitable laws, diligently cultivating the arts and sciences, and promoting agriculture, manufactures and commerce, they gradually formed an empire unrivaled for its prosperity by any of the empires of Christendom . . .

The cities of Arabian Spain became the resort of Christian artisans, to instruct themselves in the useful art. The Universities of Toledo, Cordova, Seville, Granada, were sought by the pale student from lands to acquaint himself with the sciences of the Arabs and the treasure lore of antiquity. -- p. 52

Martin Wainwright, Our Debt to Islam
While the barbarians smashed and burned in western Europe, the Arabs and Persians used the libraries of Alexandria and Asia Minor, translated the scrolls and took them to Baghdad and far beyond. In distant Bukhara on the Silk Road to China, a teenager called Abu Ali Ibn Sina was engrossed in Aristotle's Metaphysics at the age of 17. The year was AD997 and the text - central to the subsequent development of philosophy - had long been lost and unknown in western Europe.

David Self, Christians and Muslims Share a Journey
We are indebted to the Arabic world not only for arithmetic but also for algebra and trigonometry. Logarithms were invented by a mathematician called Al-Khwarizmi in the 7th century. Test tubes, the compass and the first surgical tools were all pioneered by Muslim inventors. A thousand years ago, it is said, Baghdad had 60 hospitals.

This scientific flowering was accompanied by the establishment of the first universities - or madrassahs. In a madrassah, the sheik or professor taught, literally, from a chair. He was assisted by readers. When the west eventually replicated such places of learning, we borrowed such terms.

Jared Diamond, Guns, Germs, and Steel
In the Middle Ages the flow of technology was overwhelmingly from Islam to Europe, rather than from Europe to Islam as it is today. Only around A.D. 1500 did the net direction of flow begin to reverse. -- p. 253

Fernand Braudel, A History of Civilizations
The major landmarks in this process of expolitation were: in the sixteenth century, the arrival of 'treasures' (gold and silver ingots) from America; the brutal opening-up of India after the battle of Plassey (23 June 1757), at which the British defeated the nawab of Bengal; the forced expolitation of the Chinese market after the First Opium War in 1839-42; and the partition of Africa at Berlin in 1885. -- p. 388

John Edwards, History Today
On the second day of January [1492] I saw Your Highnesses' royal banners placed by force of arms on the towers of the Alhambra . . . and in the same month . . . Your Highness, as Catholic Christians and princes devoted to the holy Christian faith and the furtherance of its cause, and enemies of the sect of Mohammed and of all idolatry and heresy, resolved to send me, Christopher Columbus, to the . . . regions of India. .... vol 42

Also published in: The Wisdom Fund

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