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  • Technology Innovation : Models, Dynamics, and Processes
    Technology Innovation : Models, Dynamics, and Processes

    Technology Innovation discusses the fundamental aspects of processes and structures of technology innovation.It offers a new perspective concerning fundamentals aspects not directly involved in the complex relations existing between technology and the socio-economic system. By considering technology and its innovation from a scientific point of view, the book presents a novel definition of technology as a set of physical, chemical and biological phenomena, producing an effect exploitable for human purposes.Expanding on the general model of technology innovation by linking the model of technology, based on a structure of technological operations, with the models of the structures for technology innovation, based on organization of fluxes of knowledge and capitals, the book considers various technological processes and the stages of the innovation process. Explains a novel definition of technology as a set of physical, chemical and biological phenomena producing an effect exploitable for human purposesDiscusses technology innovation as result of structures organizing fluxes of knowledge and capitalsProvides a technology model simulating the functioning of technology with its optimizationPresents a technology innovation model explaining the territorial technology innovation processOffers a perspective on the evolution of technology in the frame of an industrial platform networkThe book is intended for academics, graduate students and technology developers who are involved in operations management and research, innovation and technology development.

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  • Manufacturing Technology : Manufacturing Processes
    Manufacturing Technology : Manufacturing Processes


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  • Business Development : Processes, Methods and Tools
    Business Development : Processes, Methods and Tools

    This reference book provides a compact overview of the increasingly important topic of Business Development.The author not only describes the role of the Business Development Manager with its tasks, but also shows how Business Development can be organizationally integrated into a company.In addition, a prototypical Business Development Process is specifically presented and explained using a case study. The second, revised and expanded edition of the reference book shows that crises can also be an opportunity, explains specific Key Performance Indicators (KPIs) for Business Development and describes new digital business models.In addition, the book was supplemented by a practical interview and quotes from business and science. The reference book helps everyone who is responsible for introducing or optimizing Business Development in the company or who wants to work in this area in the future.

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  • Development in Wastewater Treatment Research and Processes : Advanced Oxidation Processes for Tannery Effluent
    Development in Wastewater Treatment Research and Processes : Advanced Oxidation Processes for Tannery Effluent

    Advanced Oxidation Processes for Tannery Effluent provides a detailed overview of currently applied and tested sewage treatment technologies and the integration of advanced processes to remove trace organic contaminants and micro-organisms.The book discusses the potential of improved biological treatment to produce reusable wastewater, new municipal wastewater disinfection processes, the reduction of bacteria resistant to antibiotics, as well as the effects of advanced oxidation processes on microbial and chemical contaminants.It features membrane bioreactors, moving bed bioreactors, light and solar technology, ozonation and immobilized heterogeneous photocatalysis, and more.In addition, the book discusses issues and standards for water reuse, the state of application of membrane bioreactors, and the treatment of reverse osmosis concentrate for better water use in wastewater treatment.Final sections present the latest developments in the field of drinking water reuse and address various important issues in this context, such as proper public health protection, reliability and monitoring.

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  • What are growth processes in mathematics?

    Growth processes in mathematics refer to the development and expansion of mathematical concepts, skills, and understanding over time. This can involve building on foundational knowledge, mastering new techniques, and making connections between different areas of mathematics. Growth processes also include the ability to solve increasingly complex problems, think critically, and apply mathematical reasoning in various contexts. Ultimately, growth in mathematics is a continuous journey of learning and improvement that leads to a deeper and more comprehensive understanding of the subject.

  • How can growth processes be modeled?

    Growth processes can be modeled using mathematical equations and statistical methods. One common approach is to use exponential or logistic growth models to describe how a quantity changes over time. These models can be used to predict future growth based on past data and to understand the underlying mechanisms driving the growth process. Additionally, growth processes can also be modeled using computer simulations and agent-based models to capture the complex interactions and feedback loops that influence growth in biological, economic, and social systems.

  • How do exponential growth processes occur?

    Exponential growth processes occur when a quantity increases at a constant percentage rate over a fixed period of time. This means that the rate of growth itself is increasing, leading to a rapid and accelerating increase in the quantity. Exponential growth can be seen in various natural and man-made systems, such as population growth, compound interest, and the spread of infectious diseases. It is important to note that exponential growth is unsustainable in the long term, as it eventually leads to resource depletion or other limiting factors.

  • How do growth processes work in mathematics?

    In mathematics, growth processes refer to the way in which quantities increase or decrease over time or with respect to another variable. These processes can be modeled using various mathematical functions such as linear, exponential, or logarithmic functions. Growth processes can be described by equations that show how a quantity changes in relation to another variable, allowing for predictions and analysis of the behavior of the system. Understanding growth processes in mathematics is essential for various applications such as population growth, compound interest, and exponential decay.

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  • Mind in Society : Development of Higher Psychological Processes
    Mind in Society : Development of Higher Psychological Processes

    Vygotsky’s sociocultural theory of cognitive development in his own words—collected and translated by an outstanding group of scholars. “A landmark book.” —Contemporary PsychologyThe great Russian psychologist L.S. Vygotsky has long been recognized as a pioneer in developmental psychology.But his theory of development has never been well understood in the West.Mind in Society corrects much of this misunderstanding.Carefully edited by a group of outstanding Vygotsky scholars, the book presents a unique selection of Vygotsky’s important essays, most of which have previously been unavailable in English. The mind, Vygotsky argues, cannot be understood in isolation from the surrounding society.Humans are the only animals who use tools to alter their own inner world as well as the world around them.Vygotsky characterizes the uniquely human aspects of behavior and offers hypotheses about the way these traits have been formed in the course of human history and the way they develop over an individual's lifetime. From the handkerchief knotted as a simple mnemonic device to the complexities of symbolic language, society provides the individual with technology that can be used to shape the private processes of the mind.In Mind in Society Vygotsky applies this theoretical framework to the development of perception, attention, memory, language, and play, and he examines its implications for education.The result is a remarkably interesting book that makes clear Vygotsky’s continuing influence in the areas of child development, cognitive psychology, education, and modern psychological thought. Chapters include:1. Tool and Symbol in Child Development2. The Development of Perception and Attention3. Mastery of Memory and Thinking4. Internalization of Higher Psychological Functions5. Problems of Method6. Interaction between Learning and Development7. The Role of Play in Development8. The Prehistory of Written Language

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    This book examines the role that intellectual property plays in fostering innovation within knowledge societies, with a particular focus on the role of emerging technologies such as Artificial Intelligence tools. Creativity and the generation of new knowledge across the broad spectrum of intellectual property are essential sources of growth for knowledge societies.This includes the major areas of copyright, inventions and patents, trademarks and geographical indications.This book acknowledges the societal and cultural character of knowledge societies, discussing how Intellectual Property (IP) Law plays a pivotal role in safeguarding innovation, thereby fostering evolution.As emerging technologies and artificial intelligence redefine the landscape, the book identifies both new challenges and opportunities in enhancing innovation prowess and nurturing knowledge societies.Suggesting regulations which prioritise copyright, trademarks, and patents as fundamental instruments in international commerce, the book presents a framework for IP Law through which knowledge societies can thrive. The book will appeal to researchers in the field of Intellectual Property Law, international law, business law and emerging technologies such as AI.

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  • A Common Good Approach to Development : Collective Dynamics of Development Processes
    A Common Good Approach to Development : Collective Dynamics of Development Processes

    This edited collection proposes a common good approach to development theory and practice. Rather than focusing on the outcomes or conditions of development, the contributors concentrate on the quality of development processes, suggesting that a common good dynamic is key in order to trigger development. Resulting from more than three years of research by an international group of over fifty scholars, the volume advocates for a modern understanding of the common good-rather than a theological or metaphysical good-in societies by emphasising the social practice of 'commoning' at its core. It suggests that the dynamic equilibrium of common goods in a society should be at the centre of development efforts. For this purpose, it develops a matrix of common good dynamics, accounting for how institutions, social norms and common practices interconnect by identifying five key drivers not only of development, but human development (agency, governance, justice, stability, humanity). Based on this matrix, the contributors suggest a possible metric for measuring the quality of these dynamics. The last section of the book highlights the possibilities enabled by this approach through a series of case studies. The concept of the common good has recently enjoyed a revival and inspired practitioners keen to look beyond the shortcomings of political and economic liberalism. This book builds on those efforts to think beyond the agenda of twentieth-century development policies, and will be of interest to those working in the fields of development, economics, sociology, philosophy and political science.

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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.

  • Where is the error in mathematical growth processes?

    The error in mathematical growth processes typically arises from incorrect assumptions or inputs in the calculations. This could include using inaccurate data, applying the wrong formula, or making a mistake in the calculations. It is important to double-check all inputs and calculations to ensure the accuracy of the growth process and avoid errors.

  • What are the mathematical models for growth processes?

    Mathematical models for growth processes typically involve exponential or logistic functions. Exponential growth models assume that a population grows at a constant percentage rate over time, while logistic growth models take into account limiting factors that eventually slow down the growth rate. These models are often used in biology, economics, and other fields to predict and understand how populations or quantities change over time. They can help in making projections, understanding trends, and making informed decisions based on the growth patterns.

  • How do you calculate growth and decline processes?

    Growth and decline processes can be calculated using a simple formula: Growth/Decline Rate = (Final Value - Initial Value) / Initial Value * 100. This formula calculates the percentage change in a value over a specific period of time. For example, if a company's revenue increased from $100,000 to $150,000 over a year, the growth rate would be (150,000 - 100,000) / 100,000 * 100 = 50%. Similarly, if a population decreased from 1,000 to 800 over a decade, the decline rate would be (800 - 1,000) / 1,000 * 100 = -20%.

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