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Presents a set of positive changes in corporate strategies, industry norms, regional policies, and national laws that will incentivize talent flow, creativity, and growth.
Cultural observer Os Guinness argues that the American experiment in freedom is at risk. Guinness calls us to cultivate the essential civic character needed for ordered liberty and sustainable freedom. True freedom requires virtue, which in turn requires faith. Only within the framework of what is true, right and good can freedom be found.
For centuries Augustine's theory of free will has been used to explain why God is not the author of evil and humans are morally responsible for sin. Yet, when he embraced the doctrines of unconditional election and operative grace, Augustine began modifying his theory of free will. His final works claim his evolved notion of free will remained consistent with his early view, but this claim has provoked significant debate. Some scholars take him at his word, interpreting his teachings on free will in light of his later predestination teachings. Others reject his claim of continuity and warn of great inconsistencies between his early and later works. Few have undertaken a thorough study of Augustine's works to compare his early notion of free will with his later theory of predestination. Free To Say No? is a detailed study of Augustine's work that presents clear evidence in Augustine's own words for a significant discontinuity between his early and later theories--especially the disappearance of the will's freedom to say "No"--and offers some fascinating insights as to why Augustine proposed such drastic changes.
An introduction to a broad range of topics in deep learning, covering mathematical and conceptual background, deep learning techniques used in industry, and research perspectives. “Written by three experts in the field, Deep Learning is the only comprehensive book on the subject.” —Elon Musk, cochair of OpenAI; cofounder and CEO of Tesla and SpaceX Deep learning is a form of machine learning that enables computers to learn from experience and understand the world in terms of a hierarchy of concepts. Because the computer gathers knowledge from experience, there is no need for a human computer operator to formally specify all the knowledge that the computer needs. The hierarchy of concepts allows the computer to learn complicated concepts by building them out of simpler ones; a graph of these hierarchies would be many layers deep. This book introduces a broad range of topics in deep learning. The text offers mathematical and conceptual background, covering relevant concepts in linear algebra, probability theory and information theory, numerical computation, and machine learning. It describes deep learning techniques used by practitioners in industry, including deep feedforward networks, regularization, optimization algorithms, convolutional networks, sequence modeling, and practical methodology; and it surveys such applications as natural language processing, speech recognition, computer vision, online recommendation systems, bioinformatics, and videogames. Finally, the book offers research perspectives, covering such theoretical topics as linear factor models, autoencoders, representation learning, structured probabilistic models, Monte Carlo methods, the partition function, approximate inference, and deep generative models. Deep Learning can be used by undergraduate or graduate students planning careers in either industry or research, and by software engineers who want to begin using deep learning in their products or platforms. A website offers supplementary material for both readers and instructors.
Who had the right to live within the newly united states of America? In the country's founding decades, federal and state politicians debated which categories of people could remain and which should be subject to removal. The result was a white Republic, purposefully constructed through contentious legal, political, and diplomatic negotiation. But, as Samantha Seeley demonstrates, removal, like the right to remain, was a battle fought on multiple fronts. It encompassed tribal leaders' fierce determination to expel white settlers from Native lands and free African Americans' legal maneuvers both to remain within the states that sought to drive them out and to carve out new lives in the West. Never losing sight of the national implications of regional conflicts, Seeley brings us directly to the battlefield, to middle states poised between the edges of slavery and freedom where removal was both warmly embraced and hotly contested. Reorienting the history of U.S. expansion around Native American and African American histories, Seeley provides a much-needed reconsideration of early nation building.
"Freedom is living your life the way you want to live it. This book shows how you can have that freedom now - without having to change the world or the people around you."--Jacket
Originally published in 1985, and available for the first time in paperback, Bondmen & Rebels provides a pioneering study of slave resistance in the Americas. Using the large-scale Antigua slave conspiracy of 1736 as a window into that society, David Barry Gaspar explores the deeper interactive character of the relation between slave resistance and white control.