Alan Turing was one of the most influential thinkers of the 20th century. In 1935, aged 22, he developed the mathematical theory upon which all subsequent stored-program digital computers are modeled. At the outbreak of hostilities with Germany in September 1939, he joined the Goverment Codebreaking team at Bletchley Park, Buckinghamshire and played a crucial role in deciphering Engima, the code used by the German armed forces to protect their radio communications. Turing's work on the version of Enigma used by the German navy was vital to the battle for supremacy in the North Atlantic. He also contributed to the attack on the cyphers known as 'Fish' which were used by the German High Command for the encryption of signals during the latter part of the war. His contribution helped to shorten the war in Europe by an estimated two years. After the war, his theoretical work led to the development of Britain's first computers at the National Physical Laboratory and the Royal Society Computing Machine Laboratory at Manchester University. Turing was also a founding father of modern cognitive science, theorizing that the cortex at birth is an 'unorganized machine' which through 'training' becomes organized 'into a universal machine or something like it' He went on to develop the use of computers to model biological growth, launching the discipline now referred to as Artificial Life. The papers in this book are the key works for understanding Turing's phenomenal contribution across all these fields. The collection includes Turing's declassified wartime 'Treatise on the Enigma'; letters from Turing to Churchill and to codebreakers; lectures, papers, and broadcasts which opened up the concept of AI and its implications; and the paper which formed the genesis of the investigation of Artifical Life.
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Alan Turing FRS OBE, (1912-1954) studied mathematics at King's College, Cambridge. He was elected a Fellow of King's in March 1935, at the age of only 22. In the same year he invented the abstract computing machines - now known simply as Turing machines - on which all subsequent stored-program digital computers are modelled. During 1936-1938 Turing continued his studies, now at Princeton University. He completed a PhD in mathematical logic, analysing the notion of 'intuition' in mathematics and introducing the idea of oracular computation, now fundamental in mathematical recursion theory. An 'oracle' is an abstract device able to solve mathematical problems too difficult for the universal Turing machine. In the summer of 1938 Turing returned to his Fellowship at King's. When WWII started in 1939 he joined the wartime headquarters of the Government Code and Cypher School (GC&CS) at Bletchley Park, Buckinghamshire. Building on earlier work by Polish cryptanalysts, Turing contributed crucially to the design of electro-mechanical machines ('bombes') used to decipher Enigma, the code by means of which the German armed forces sought to protect their radio communications. Turing's work on the version of Enigma used by the German navy was vital to the battle for supremacy in the North Atlantic. He also contributed to the attack on the cyphers known as 'Fish'. Based on binary teleprinter code, Fish was used during the latter part of the war in preference to morse-based Enigma for the encryption of high-level signals, for example messages from Hitler and other members of the German High Command. It is estimated that the work of GC&CS shortened the war in Europe by at least two years. Turing received the Order of the British Empire for the part he played. In 1945, the war over, Turing was recruited to the National Physical Laboratory (NPL) in London, his brief to design and develop an electronic computer - a concrete form of the universal Turing machine. Turing's report setting out his design for the Automatic Computing Engine (ACE) was the first relatively complete specification of an electronic stored-program general-purpose digital computer. Delays beyond Turing's control resulted in NPL's losing the race to build the world's first working electronic stored-program digital computer - an honour that went to the Royal Society Computing Machine Laboratory at Manchester University, in June 1948. Discouraged by the delays at NPL, Turing took up the Deputy Directorship of the Royal Society Computing Machine Laboratory in that year. Turing was a founding father of modern cognitive science and a leading early exponent of the hypothesis that the human brain is in large part a digital computing machine, theorising that the cortex at birth is an 'unorganised machine' which through 'training' becomes organised 'into a universal machine or something like it'. He also pioneered Artificial Intelligence. Turing spent the rest of his short career at Manchester University, being appointed to a specially created Readership in the Theory of Computing in May 1953. He was elected a Fellow of the Royal Society of London in March 1951 (a high honour). In March 1952 he was prosecuted for his homosexuality, then a crime in Britain, and sentenced to a period of twelve months hormone 'therapy'. From 1951 Turing worked on what would now be called Artificial Life, using the Ferranti Mark I computer to model aspects of biological growth, in particular a chemical mechanism by which the genes of a zygote could determine the anatomical structure of the resulting animal or plant. He died in the midst of this groundbreaking work.
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Paperback. Condición: Very Good. Alan Turing, pioneer of computing and WWII codebreaker, is one of the most important and influential thinkers of the twentieth century. In this volume for the first time his key writings are made available to a broad, non-specialist readership. They make fascinating reading both in their own right and for their historic significance: contemporary computational theory, cognitive science, artificial intelligence, and artificial life all spring from this ground-breaking work, which is also rich in philosophical and logical insight. An introduction by leading Turing expert Jack Copeland provides the background and guides the reader through the selection. About Alan Turing Alan Turing FRS OBE, (1912-1954) studied mathematics at King's College, Cambridge. He was elected a Fellow of King's in March 1935, at the age of only 22. In the same year he invented the abstract computing machines - now known simply as Turing machines - on which all subsequent stored-program digital computers are modelled. During 1936-1938 Turing continued his studies, now at Princeton University. He completed a PhD in mathematical logic, analysing the notion of 'intuition' in mathematics and introducing the idea of oracular computation, now fundamental in mathematical recursion theory. An 'oracle' is an abstract device able to solve mathematical problems too difficult for the universal Turing machine. In the summer of 1938 Turing returned to his Fellowship at King's. When WWII started in 1939 he joined the wartime headquarters of the Government Code and Cypher School (GC&CS) at Bletchley Park, Buckinghamshire. Building on earlier work by Polish cryptanalysts, Turing contributed crucially to the design of electro-mechanical machines ('bombes') used to decipher Enigma, the code by means of which the German armed forces sought to protect their radio communications. Turing's work on the version of Enigma used by the German navy was vital to the battle for supremacy in the North Atlantic. He also contributed to the attack on the cyphers known as 'Fish'. Based on binary teleprinter code, Fish was used during the latter part of the war in preference to morse-based Enigma for the encryption of high-level signals, for example messages from Hitler and other members of the German High Command. It is estimated that the work of GC&CS shortened the war in Europe by at least two years. Turing received the Order of the British Empire for the part he played. In 1945, the war over, Turing was recruited to the National Physical Laboratory (NPL) in London, his brief to design and develop an electronic computer - a concrete form of the universal Turing machine. Turing's report setting out his design for the Automatic Computing Engine (ACE) was the first relatively complete specification of an electronic stored-program general-purpose digital computer. Delays beyond Turing's control resulted in NPL's losing the race to build the world's first working electronic stored-program digital computer - an honour that went to the Royal Society Computing Machine Laboratory at Manchester University, in June 1948. Discouraged by the delays at NPL, Turing took up the Deputy Directorship of the Royal Society Computing Machine Laboratory in that year. Turing was a founding father of modern cognitive science and a leading early exponent of the hypothesis that the human brain is in large part a digital computing machine, theorising that the cortex at birth is an 'unorganised machine' which through 'training' becomes organised 'into a universal machine or something like it'. He also pioneered Artificial Intelligence. Turing spent the rest of his short career at Manchester University, being appointed to a specially created Readership in the Theory of Computing in May 1953. He was elected a Fellow of the Royal Society of London in March 1951 (a high honour). The book has been read, but is in excellent condition. Pages are intact and not marred by notes or highlighting. The spine remains undamaged. Nº de ref. del artículo: GOR002814086
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Soft cover. Condición: Good. 1st Edition. Minor edge and corner wear; lightly scuffed and scratched; spine is gently creased; some light shelf wear; ex-library with the usual library markings; overall a nice used copy! Full-color illustrated wrapper with red and white lettering. 613 historical and informative pages nicely enhanced by black and white photographs and illustrations! "Alan Turing was one of the most influential thinkers of the 20th century. In 1935, aged 22, he developed the mathematical theory upon which all subsequent stored-program digital computers are modeled. At the outbreak of hostilities with Germany in September 1939, he joined the Goverment Codebreaking team at Bletchley Park, Buckinghamshire and played a crucial role in deciphering Enigma, the code used by the German armed forces to protect their radio communications. Turing's work on the version of Enigma used by the German navy was vital to the battle for supremacy in the North Atlantic. He also contributed to the attack on the cyphers known as 'Fish' which were used by the German High Command for the encryption of signals during the latter part of the war. His contribution helped to shorten the war in Europe by an estimated two years. After the war, his theoretical work led to the development of Britain's first computers at the National Physical Laboratory and the Royal Society Computing Machine Laboratory at Manchester University. Turing was also a founding father of modern cognitive science, theorizing that the cortex at birth is an 'unorganized machine' which through 'training' becomes organized 'into a universal machine or something like it' He went on to develop the use of computers to model biological growth, launching the discipline now referred to as Artificial Life. The papers in this book are the key works for understanding Turing's phenomenal contribution across all these fields. The collection includes Turing's declassified wartime 'Treatise on the Enigma'; letters from Turing to Churchill and to codebreakers; lectures, papers, and broadcasts which opened up the concept of AI and its implications; and the paper which formed the genesis of the investigation of Artificial Life.". Nº de ref. del artículo: 053312
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Paperback. Condición: Fine. Two listing notes: this is principally a collection of writings by Alan Turing , edited and introduced by B. Jack Copeland , rather than a book solely by Copeland. Also, Oxford records ISBN 9780198250807 as the paperback edition first published in 2004 ; your copy may be a 2013 reprint, so the impression page should settle the date. Alan Turing helped invent theoretical computer science before electronic computers properly existed, played a decisive role in breaking German codes during the Second World War, designed an early stored-program computer, helped establish artificial intelligence and proposed a mathematical explanation for patterns in living organisms. He accomplished this before dying at forty-one, leaving subsequent generations the comparatively modest task of building the world he had already imagined. The Essential Turing brings together his most important writings across mathematics, logic, computing, philosophy, codebreaking, artificial intelligence and artificial life. Edited by leading Turing scholar B. Jack Copeland, it allows readers to encounter Turing?s ideas in his own words, assisted by introductions and explanatory guides for those who do not ordinarily begin the day contemplating the limits of computability. The collection includes Turing?s celebrated 1936 paper on computable numbers. In addressing a difficult problem in mathematical logic, he imagined an abstract machine that reads and writes symbols according to precise rules. The ?Turing machine? was not a physical device awaiting a manufacturer; it was a conceptual model showing what computation itself means. Modern computers are vastly more colourful, expensive and prone to requesting software updates, but the underlying principle remains recognisably his. His universal machine introduced the idea that one machine could perform any computational task if supplied with the correct instructions. Hardware and program could therefore be separated, allowing the same machine to calculate, process text, play games or display advertisements for items discussed privately five minutes earlier. Turing supplied the profound intellectual foundation; commercial civilisation attended to the refinements. The book does not avoid the more demanding mathematics. Papers on logic, ordinal systems and computability show Turing working at the frontiers of formal thought, asking what can be calculated and whether some problems lie permanently beyond mechanical solution. Copeland?s commentary provides routes into this material, although readers may still occasionally discover that Turing has crossed an intellectual mountain while they are checking the map legend. A major section concerns Enigma and Turing?s secret wartime work at Bletchley Park. As a leading member of Hut 8, he developed methods for attacking German naval Enigma communications and helped design procedures used with the cryptanalytic bombe machines. The battle of the Atlantic was fought by ships and submarines, but also by mathematicians examining letter patterns in Buckinghamshire. Included are declassified materials relating to Enigma, together with correspondence and accounts of the codebreaking campaign. These reveal that breaking a cipher was not a single dramatic moment after which every German message became politely readable. Keys changed, procedures varied and analysts had to exploit repeated habits, technical weaknesses and the occasional assistance of an operator who had become bored with following instructions. The volume also presents Turing?s post-war work on electronic computing. His design for the Automatic Computing Engine anticipated important features of high-speed stored-program computers. Government committees responded with the timeless institutional method of recognising a revolutionary proposal and then discussing it until somebody elsewhere built something. Turing?s 1950 paper ?Computing Machinery and Intelligence? asks whether machines can think. Rather than becoming trapped in definitions of ?machine,? ?thinking? and ?can??a philosophical meeting from which nobody would ever return?he proposed the imitation game, now commonly known as the Turing Test. If a machine could converse in a way indistinguishable from a human, perhaps the practical question mattered more than arguments about its inner essence. He considered objections involving consciousness, creativity, mathematics, religion and the supposed uniqueness of the human mind. Decades before contemporary arguments about artificial intelligence, Turing had already anticipated many of them, presumably to spare the twenty-first century effort. The twenty-first century has shown little gratitude and is repeating the discussion at greater volume. The collection also explores machine learning, chess-playing programs and Turing?s speculation that an intelligent machine might be educated rather than completely programmed in advance. This resembles modern approaches to AI closely enough to be unsettling, particularly since Turing developed the idea when computers possessed less memory than a modern kitchen appliance. His interests eventually extended into biology. In his pioneering paper on morphogenesis, Turing used mathematical models to explain how chemical processes might produce patterns such as spots and stripes in living organisms. Having helped explain computing and machine intelligence, he evidently looked at leopards and decided their administrative arrangements also required attention. Copeland?s introductions place each work in historical and intellectual context, connecting the technical papers to Turing?s broader career. The result is neither a straightforward biography nor a simplified popular-science account. It is a guided tour through the original documents from which several modern disciplines emerged, with the guide occasionally pausing while Turing disappears several decades ahead. The book also inevitably carries the shadow of Turing?s treatment by the British state. After. Nº de ref. del artículo: 7033
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Paperback or Softback. Condición: New. The Essential Turing: Seminal Writings in Computing, Logic, Philosophy, Artificial Intelligence, and Artificial Life Plus the Secrets of Eni. Book. Nº de ref. del artículo: BBS-9780198250807
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