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Decay
In eleven sharp essays, the contributors to Decay attend to the processes and experiences of symbolic and material decay in a variety of sociopolitical contexts across the globe.They examine decay in its myriad manifestations—biological, physical, organizational, moral, political, personal, and social and in numerous contexts, including colonialism and imperialism, governments and the state, racism, the environment, and infrastructure.The volume's topics are wide in scope, ranging from the discourse of social decay in contemporary Australian settler colonialism and the ways infrastructures both create and experience decay to cultural decay in the aftermath of the Sri Lankan civil war and the relations among individual, institutional, and societal decay in an American high-security prison.By using decay as a problematic and expounding its mechanisms, conditions, and temporalities, the contributors provide nuanced and rigorous means to more fully grapple with the exigencies of the current sociopolitical moment. Contributors. Cameo Dalley, Peter D. Dwyer, Akhil Gupta, Ghassan Hage, Michael Herzfeld, Elise Klein, Bart Klem, Tamara Kohn, Michael Main, Fabio Mattioli, Debra McDougall, Monica Minnegal, Violeta Schubert
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Fashion and Environmental Sustainability : Entrepreneurship, Innovation and Technology
The wide range of topics that the book covers are organised into sections reflecting a cradle to grave view of how entrepreneurial, innovative, and tech-savvy approaches can advance environmental sustainability in the fashion sector.These sections include: sustainable materials; innovation in design, range planning and product development; sustainable innovations in fashion supply chains; sustainable innovations in fashion retail and marketing; sustainable alternatives for end-of-life and circular economy initiatives; and more sustainable alternative fashion business models.
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Growth and Decay of Coral Reefs : Fifty Years of Learning
Growth and Decay of Coral Reefs: Fifty Years of Learning describes how coral reefs have alternately flourished and declined over the last 50 years and the dynamics of these changes.The study is based on recordings at 30 different locations along the Sudanese coast, visited by the author between 1971 and 1973. Beyond the Red Sea's desert shores lie some of the richest and most diverse coral reefs on our planet.Over a thousand species of reef fishes, matched by a similar abundance of living corals, creating habitats scientists were only just beginning to understand.The complexity of the inter-relations was truly mesmerizing.A single intervention, such as removal of a key species, could cause the whole community to collapse.Healthy corals were transformed into green weed-smothered reefs, accompanied by the loss of both corals and fish. Based on the author’s observations of how knowledge and perspectives have changed over the last 50 years, this book highlights lessons learned from historical records that may help maintain and reestablish coral reefs in the years to come. Topics covered include:CORAL REEF FISHFish surveysCORAL REEF PROFILESCoral growth ratesCoral distribution Corals on 'Cousteau garage'CORAL THREATSClimate changeCoral bleachingCoral diseasesCoral spongesTerpios hoshinotaCoral predatorsCoral urchinsCORAL – ALGAECORAL RESEARCHand more . . .
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Love & Decay
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What is exponential growth plus decay?
Exponential growth plus decay refers to a mathematical model that combines the processes of growth and decay over time. In this model, the quantity of a substance or value of a variable increases exponentially at a certain rate, representing growth, and simultaneously decreases exponentially at a different rate, representing decay. This combination of growth and decay can be observed in various natural and man-made phenomena, such as population growth and radioactive decay. The resulting behavior of the system is determined by the relative rates of growth and decay.
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What is exponential growth and exponential decay?
Exponential growth is a process where a quantity increases at a constant rate over time, resulting in a rapid and accelerating growth pattern. On the other hand, exponential decay is a process where a quantity decreases at a constant rate over time, leading to a rapid and decelerating decline. Both exponential growth and decay can be described by exponential functions, which have the general form y = a * b^x, where 'a' is the initial quantity, 'b' is the growth or decay factor, and 'x' is the time variable.
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What are models for growth and decay?
Models for growth and decay are mathematical representations used to describe how a quantity changes over time. Growth models typically involve exponential functions, where the quantity increases at a constant percentage rate. Decay models, on the other hand, involve exponential functions where the quantity decreases at a constant percentage rate. These models are commonly used in various fields such as biology, economics, and physics to predict and analyze changes in populations, investments, radioactive decay, and more.
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What are exponential growth and decay processes?
Exponential growth and decay processes are mathematical models that describe how a quantity changes over time. In exponential growth, the quantity increases at a rate proportional to its current value, resulting in rapid growth over time. On the other hand, exponential decay describes a process where the quantity decreases at a rate proportional to its current value, leading to a rapid decline over time. These processes are commonly used to model population growth, radioactive decay, and financial investments.
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Tooth decay repair Repair all tooth decay cavities and protect teeth Removal of Plaque Stains Decay
Tooth decay repair Repair all tooth decay cavities and protect teeth Removal of Plaque Stains Decay
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Tooth decay repair Repair all tooth decay cavities and protect teeth Removal of Plaque Stains Decay
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Love & Decay CD
The second fulllength from the Brooklyn melodic shoegazers. For fans of Deftones, Mew, Pelican
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Decay By Greed
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When does exponential growth and exponential decay occur?
Exponential growth occurs when a quantity increases at a constant percentage rate over a period of time. This can happen when there is continuous reinvestment of profits or interest earned on an investment. Exponential decay, on the other hand, occurs when a quantity decreases at a constant percentage rate over time. This can be seen in processes such as radioactive decay or the cooling of a hot object.
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Which decay?
There are several types of decay that can occur in nature, including alpha decay, beta decay, and gamma decay. Alpha decay involves the emission of an alpha particle, which consists of two protons and two neutrons. Beta decay involves the emission of a beta particle, which can be either an electron or a positron. Gamma decay involves the emission of gamma rays, which are high-energy electromagnetic radiation. Each type of decay is associated with different types of radioactive isotopes and occurs at different rates.
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How does exponential growth and decay work in mathematics?
Exponential growth and decay in mathematics refer to the change in quantity over time, where the rate of change is proportional to the current quantity. In exponential growth, the quantity increases at a rate proportional to its current value, resulting in rapid growth over time. In contrast, exponential decay occurs when the quantity decreases at a rate proportional to its current value, leading to a rapid decrease over time. Both processes can be modeled using exponential functions, which have the form y = ab^x, where a is the initial quantity, b is the growth or decay factor, and x is the time.
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How can one demonstrate exponential growth or exponential decay?
Exponential growth can be demonstrated by a quantity increasing at a constant percentage rate over a period of time. For example, if an investment grows at a rate of 5% per year, the value will double in approximately 14 years. On the other hand, exponential decay can be demonstrated by a quantity decreasing at a constant percentage rate over time. For instance, if a radioactive substance decays at a rate of 10% per year, the amount remaining will halve in approximately 7 years. Both exponential growth and decay can be represented by mathematical functions, such as the exponential growth function y = ab^x and the exponential decay function y = ab^(-x).
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