Music as Biology


Book Description

The universality of musical tones has long fascinated philosophers, scientists, musicians, and ordinary listeners. Why do human beings worldwide find some tone combinations consonant and others dissonant? Why do we make music using only a small number of scales out of the billions that are possible? Why do differently organized scales elicit different emotions? Why are there so few notes in scales? In Music as Biology, Dale Purves argues that biology offers answers to these and other questions on which conventional music theory is silent. When people and animals vocalize, they generate tonal sounds—periodic pressure changes at the ear which, when combined, can be heard as melodies and harmonies. Human beings have evolved a sense of tonality, Purves explains, because of the behavioral advantages that arise from recognizing and attending to human voices. The result is subjective responses to tone combinations that are best understood in terms of their contribution to biological success over evolutionary and individual history. Purves summarizes evidence that the intervals defining Western and other scales are those with the greatest collective similarity to the human voice; that major and minor scales are heard as happy or sad because they mimic the subdued and excited speech of these emotional states; and that the character of a culture’s speech influences the tonal palette of its traditional music. Rethinking music theory in biological terms offers a new approach to centuries-long debates about the organization and impact of music.




The Physics of Music and Color


Book Description

This undergraduate textbook aids readers in studying music and color, which involve nearly the entire gamut of the fundamental laws of classical as well as atomic physics. The objective bases for these two subjects are, respectively, sound and light. Their corresponding underlying physical principles overlap greatly: Both music and color are manifestations of wave phenomena. As a result, commonalities exist as to the production, transmission, and detection of sound and light. Whereas traditional introductory physics textbooks are styled so that the basic principles are introduced first and are then applied, this book is based on a motivational approach: It introduces a subject with a set of related phenomena, challenging readers by calling for a physical basis for what is observed. A novel topic in the first edition and this second edition is a non-mathematical study of electric and magnetic fields and how they provide the basis for the propagation of electromagnetic waves, of light in particular. The book provides details for the calculation of color coordinates and luminosity from the spectral intensity of a beam of light as well as the relationship between these coordinates and the color coordinates of a color monitor. The second edition contains corrections to the first edition, the addition of more than ten new topics, new color figures, as well as more than forty new sample problems and end-of-chapter problems. The most notable additional topics are: the identification of two distinct spectral intensities and how they are related, beats in the sound from a Tibetan bell, AM and FM radio, the spectrogram, the short-time Fourier transform and its relation to the perception of a changing pitch, a detailed analysis of the transmittance of polarized light by a Polaroid sheet, brightness and luminosity, and the mysterious behavior of the photon. The Physics of Music and Color is written at a level suitable for college students without any scientific background, requiring only simple algebra and a passing familiarity with trigonometry. The numerous problems at the end of each chapter help the reader to fully grasp the subject.




Science, Music, And Mathematics: The Deepest Connections


Book Description

Professor Michael Edgeworth McIntyre is an eminent scientist who has also had a part-time career as a musician. From a lifetime's thinking, he offers this extraordinary synthesis exposing the deepest connections between science, music, and mathematics, while avoiding equations and technical jargon. He begins with perception psychology and the dichotomization instinct and then takes us through biological evolution, human language, and acausality illusions all the way to the climate crisis and the weaponization of the social media, and beyond that into the deepest parts of theoretical physics — demonstrating our unconscious mathematical abilities.He also has an important message of hope for the future. Contrary to popular belief, biological evolution has given us not only the nastiest, but also the most compassionate and cooperative parts of human nature. This insight comes from recognizing that biological evolution is more than a simple competition between selfish genes. Rather, he suggests, in some ways it is more like turbulent fluid flow, a complex process spanning a vast range of timescales.Professor McIntyre is a Fellow of the Royal Society of London (FRS) and has worked on problems as diverse as the Sun's magnetic interior, the Antarctic ozone hole, jet streams in the atmosphere, and the psychophysics of violin sound. He has long been interested in how different branches of science can better communicate with each other and with the public, harnessing aspects of neuroscience and psychology that point toward the deep 'lucidity principles' that underlie skilful communication.




Math and Music


Book Description

From the beat of a tribal drum to a choir of crickets--music is everywhere. Math and Music explores the music of various cultures and the sounds heard in nature while highlighting the mathematical concepts, such as proportion, patterns, Fibonacci numbers, geometric transformations, and trigonometry, found in music. The companion poster explores mysterious connections between seemingly different entities, such as music and animals! A four-page guide explains the connections students may discover.




Psychology of Music


Book Description

Between the physical world of vibration, as measured by apparatus, and the world of consciously heard music there is a third area of investigation. Our auditory apparatus and/or mind separates different instruments and tones, hears some vibrations but not others, adds tones to fill out the sound spectrum, etc. This middle ground is the province of the psychology of music, a subject about which even many physical scientists know little. This introduction, by the developer of the Seashore test of musical ability, is a thorough survey of this field, the standard book for psychologists specializing in the area, for the school, and for interested musicologists. It opens with the musical mind and with a series of chapters on music as a medium: vibrato, pitch, loudness, duration, timbre, tone, consonance, volume, and rhythm, dealing with each from the special point of view of the role of psychology. It then moves to such factors as learning, imagining, and thinking in music; the nature of musical feeling; the relative sound patterns of specific instruments and the human voice; measures of musical talent; inheritance of musical ability; primitive music; the development of musical skills; and musical aesthetics. This wealth of material is supplemented with dozens of oscillograms and other sound-pattern charts recorded from actual play and singing by Jeritza, Caruso, Paderewski, Szigeti, Rethberg, Menuhin, Martinelli, and other artists. An appendix cites two attitudes toward the evaluation of musical talent and over 200 bibliographic references.




Emblems of Mind


Book Description




Physics and Music


Book Description

Comprehensive and accessible, this foundational text surveys general principles of sound, musical scales, characteristics of instruments, mechanical and electronic recording devices, and many other topics. More than 300 illustrations plus questions, problems, and projects.




Physics and Music


Book Description

From the primitive reed pipe to modern music "written" by computers is quite a journey. Here, in informal text and about a score of plates, is a story that takes the teenage layman on this interesting trip.The younger reader, like a good musicologist, follows the steps in the evolution of the most important instruments that make up today's symphony orchestra, and the development of music itself (scales, modes, keys, and temperaments).Physics and music is also a source, although, of necessity a modest one, of information about the music research that has been underway in the Soviet Union, especially in the scientific manufacture of the violin, and in electrophonic and synthetic music. This is why the foreign reader might think of a degree of "bias" on the part of the author. Yet, it gives him an insight into what is going on in a country that has given the world quite a number of great composers. About the AuthorGleb Anfilov was a prominent Soviet journalist and writer on popular science. Educated as a physicist, he contributed to Knowledge Is Strength, a popular science magazine for youth




Models of the Mind


Book Description

The human brain is made up of 85 billion neurons, which are connected by over 100 trillion synapses. For more than a century, a diverse array of researchers searched for a language that could be used to capture the essence of what these neurons do and how they communicate – and how those communications create thoughts, perceptions and actions. The language they were looking for was mathematics, and we would not be able to understand the brain as we do today without it. In Models of the Mind, author and computational neuroscientist Grace Lindsay explains how mathematical models have allowed scientists to understand and describe many of the brain's processes, including decision-making, sensory processing, quantifying memory, and more. She introduces readers to the most important concepts in modern neuroscience, and highlights the tensions that arise when the abstract world of mathematical modelling collides with the messy details of biology. Each chapter of Models of the Mind focuses on mathematical tools that have been applied in a particular area of neuroscience, progressing from the simplest building block of the brain – the individual neuron – through to circuits of interacting neurons, whole brain areas and even the behaviours that brains command. In addition, Grace examines the history of the field, starting with experiments done on frog legs in the late eighteenth century and building to the large models of artificial neural networks that form the basis of modern artificial intelligence. Throughout, she reveals the value of using the elegant language of mathematics to describe the machinery of neuroscience.




Music, Mind, and Brain


Book Description

There is much music in our lives -yet we know little about its function. Music is one of man's most remarkable inventions - though possibly it may not be his invention at all: like his capacity for language his capacity for music may be a naturally evolved biologic .function. All cultures and societies have music. Music differs from the sounds of speech and from other sounds, but only now do we find ourselves at the threshold of being able to find out how our brain processes musical sounds differently from other sounds. We are going through an exciting time when these questions and the question of how music moves us are being seriously investigated for the first time from the perspective of the co-ordinated functioning of the organism: the perspective of brain function, motor function as well as perception and experience. There is so much we do not yet know. But the roads to that knowledge are being opened, and the coming years are likely to see much progress towards providing answers and raising new questions. These questions are different from those music theorists have asked themselves: they deal not with the structure of a musical score (although that knowledge is important and necessary) but with music in the flesh: music not outside of man to be looked at from written symbols, but music-man as a living entity or system.