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Sloan’s Lake had a long history of entertaining Denver residents with boating, fishing, swimming, and a steamboat canal built in the 1870s. In 1890, Adam Graff and his partners opened a new park on the shore of Sloan’s Lake that would eventually become Manhattan Beach. Originally created as a summer pleasure resort with a highly respected summer theater, boating, fishing, and music, the park quickly expanded to include typical amusement attractions, including Denver’s first roller coaster and merry-go-round. When the concept of the amusement park was created in 1895 with the opening of Sea Lion Park on Coney Island in New York, Manhattan Beach was already a step ahead of rivals Elitch Gardens and Arlington Park. Operating from 1890 to 1914, Manhattan Beach Amusement Park was the first true amusement park in Denver and was enjoyed by residents and visitors for nearly twenty-five years as Denver tried to shake off its image as a dusty cow town from gold mining days and fought to be seen as a sophisticated and well-developed city. Manhattan Beach played an important role in amusement park history in the United States, but its full story has never before been told. Manhattan Beach’s story is an important addition to both Denver and Colorado’s history as it reflects the city’s growth during the late 1800s and early 1900s. The park has also inspired many legends, the most famous of which concerns Roger the Elephant, who arrived at Manhattan Beach in 1891, and his supposed death and burial in a swamp near the park. Much of what has been told about Manhattan Beach in the years since it closed is more myth than fact, as this book demonstrates. After the amusement park closed in 1914, the city of Denver purchased the land and turned it into Sloan’s Lake Park, which continues to be a gathering place for Denverites.
Appropriate for upper-division undergraduate- and graduate-level courses in computer vision found in departments of Computer Science, Computer Engineering and Electrical Engineering. This textbook provides the most complete treatment of modern computer vision methods by two of the leading authorities in the field. This accessible presentation gives both a general view of the entire computer vision enterprise and also offers sufficient detail for students to be able to build useful applications. Students will learn techniques that have proven to be useful by first-hand experience and a wide range of mathematical methods.
Machine learning methods are now an important tool for scientists, researchers, engineers and students in a wide range of areas. This book is written for people who want to adopt and use the main tools of machine learning, but aren't necessarily going to want to be machine learning researchers. Intended for students in final year undergraduate or first year graduate computer science programs in machine learning, this textbook is a machine learning toolkit. Applied Machine Learning covers many topics for people who want to use machine learning processes to get things done, with a strong emphasis on using existing tools and packages, rather than writing one's own code. A companion to the author's Probability and Statistics for Computer Science, this book picks up where the earlier book left off (but also supplies a summary of probability that the reader can use). Emphasizing the usefulness of standard machinery from applied statistics, this textbook gives an overview of the major applied areas in learning, including coverage of:* classification using standard machinery (naive bayes; nearest neighbor; SVM)* clustering and vector quantization (largely as in PSCS)* PCA (largely as in PSCS)* variants of PCA (NIPALS; latent semantic analysis; canonical correlation analysis)* linear regression (largely as in PSCS)* generalized linear models including logistic regression* model selection with Lasso, elasticnet* robustness and m-estimators* Markov chains and HMM's (largely as in PSCS)* EM in fairly gory detail; long experience teaching this suggests one detailed example is required, which students hate; but once they've been through that, the next one is easy* simple graphical models (in the variational inference section)* classification with neural networks, with a particular emphasis onimage classification* autoencoding with neural networks* structure learning
In 1914, as the world prepared for war, thousands of men enlisted in Scotland. But thousands more Scots, and those of Scottish descent, joined up across the world. As the optimism of 1914 gave way to the grim reality of years of conflict, the human cost of fighting the First World War became a foundation of national consciousness - for Canada at Vimy Ridge, for Australia and New Zealand at Gallipoli, for South Africa at Delville Wood. Based on the exhibition at the National Museum of Scotland (11 July to 12 October 2014) the book explores how military service was related to other expressions of Scottish identity. And, following the structure of the exhibition, personal story vignettes, based on National Museum Scotland and on international collections, will reinforce the main themes of migration, multiple identity and loss.
Welcome to the 2008EuropeanConference onComputer Vision. These proce- ings are the result of a great deal of hard work by many people. To produce them, a total of 871 papers were reviewed. Forty were selected for oral pres- tation and 203 were selected for poster presentation, yielding acceptance rates of 4.6% for oral, 23.3% for poster, and 27.9% in total. Weappliedthreeprinciples.First, sincewehadastronggroupofAreaChairs, the ?nal decisions to accept or reject a paper rested with the Area Chair, who wouldbeinformedbyreviewsandcouldactonlyinconsensuswithanotherArea Chair. Second, we felt that authors were entitled to a summary that explained how the Area Chair reached a decision for a paper. Third, we were very careful to avoid con?icts of interest. Each paper was assigned to an Area Chair by the Program Chairs, and each Area Chair received a pool of about 25 papers. The Area Chairs then identi?ed and rankedappropriatereviewersfor eachpaper in their pool, and a constrained optimization allocated three reviewers to each paper. We are very proud that every paper received at least three reviews. At this point, authors were able to respond to reviews. The Area Chairs then needed to reach a decision. We used a series of procedures to ensure careful review and to avoid con?icts of interest. ProgramChairs did not submit papers. The Area Chairs were divided into three groups so that no Area Chair in the group was in con?ict with any paper assigned to any Area Chair in the group
Welcome to the 2008EuropeanConference onComputer Vision. These proce- ings are the result of a great deal of hard work by many people. To produce them, a total of 871 papers were reviewed. Forty were selected for oral pres- tation and 203 were selected for poster presentation, yielding acceptance rates of 4.6% for oral, 23.3% for poster, and 27.9% in total. Weappliedthreeprinciples.First, sincewehadastronggroupofAreaChairs, the ?nal decisions to accept or reject a paper rested with the Area Chair, who wouldbeinformedbyreviewsandcouldactonlyinconsensuswithanotherArea Chair. Second, we felt that authors were entitled to a summary that explained how the Area Chair reached a decision for a paper. Third, we were very careful to avoid con?icts of interest. Each paper was assigned to an Area Chair by the Program Chairs, and each Area Chair received a pool of about 25 papers. The Area Chairs then identi?ed and rankedappropriatereviewersfor eachpaper in their pool, and a constrained optimization allocated three reviewers to each paper. We are very proud that every paper received at least three reviews. At this point, authors were able to respond to reviews. The Area Chairs then needed to reach a decision. We used a series of procedures to ensure careful review and to avoid con?icts of interest. ProgramChairs did not submit papers. The Area Chairs were divided into three groups so that no Area Chair in the group was in con?ict with any paper assigned to any Area Chair in the group
Welcome to the 2008EuropeanConference onComputer Vision. These proce- ings are the result of a great deal of hard work by many people. To produce them, a total of 871 papers were reviewed. Forty were selected for oral pres- tation and 203 were selected for poster presentation, yielding acceptance rates of 4.6% for oral, 23.3% for poster, and 27.9% in total. Weappliedthreeprinciples.First, sincewehadastronggroupofAreaChairs, the ?nal decisions to accept or reject a paper rested with the Area Chair, who wouldbeinformedbyreviewsandcouldactonlyinconsensuswithanotherArea Chair. Second, we felt that authors were entitled to a summary that explained how the Area Chair reached a decision for a paper. Third, we were very careful to avoid con?icts of interest. Each paper was assigned to an Area Chair by the Program Chairs, and each Area Chair received a pool of about 25 papers. The Area Chairs then identi?ed and rankedappropriatereviewersfor eachpaper in their pool, and a constrained optimization allocated three reviewers to each paper. We are very proud that every paper received at least three reviews. At this point, authors wereable to respond to reviews. The Area Chairs then needed to reach a decision. We used a series of procedures to ensure careful review and to avoid con?icts of interest. ProgramChairs did not submit papers. The Area Chairs were divided into three groups so that no Area Chair in the group was in con?ict with any paper assigned to any Area Chair in the group
Welcome to the 2008EuropeanConference onComputer Vision. These proce- ings are the result of a great deal of hard work by many people. To produce them, a total of 871 papers were reviewed. Forty were selected for oral pres- tation and 203 were selected for poster presentation, yielding acceptance rates of 4.6% for oral, 23.3% for poster, and 27.9% in total. Weappliedthreeprinciples.First, sincewehadastronggroupofAreaChairs, the ?nal decisions to accept or reject a paper rested with the Area Chair, who wouldbeinformedbyreviewsandcouldactonlyinconsensuswithanotherArea Chair. Second, we felt that authors were entitled to a summary that explained how the Area Chair reached a decision for a paper. Third, we were very careful to avoid con?icts of interest. Each paper was assigned to an Area Chair by the Program Chairs, and each Area Chair received a pool of about 25 papers. The Area Chairs then identi?ed and rankedappropriatereviewersfor eachpaper in their pool, and a constrained optimization allocated three reviewers to each paper. We are very proud that every paper received at least three reviews. At this point, authors were able to respond to reviews. The Area Chairs then needed to reach a decision. We used a series of procedures to ensure careful review and to avoid con?icts of interest. ProgramChairs did not submit papers. The Area Chairs were divided into three groups so that no Area Chair in the group was in con?ict with any paper assigned to any Area Chair in the group
This book is the proceedings of the Second Joint European-US
Workshop on Applications of Invariance to Computer Vision, held at
Ponta Delgada, Azores, Portugal in October 1993.
This textbook is aimed at computer science undergraduates late in sophomore or early in junior year, supplying a comprehensive background in qualitative and quantitative data analysis, probability, random variables, and statistical methods, including machine learning. With careful treatment of topics that fill the curricular needs for the course, Probability and Statistics for Computer Science features: * A treatment of random variables and expectations dealing primarily with the discrete case. * A practical treatment of simulation, showing how many interesting probabilities and expectations can be extracted, with particular emphasis on Markov chains. * A clear but crisp account of simple point inference strategies (maximum likelihood; Bayesian inference) in simple contexts. This is extended to cover some confidence intervals, samples and populations for random sampling with replacement, and the simplest hypothesis testing. * A chapter dealing with classification, explaining why it's useful; how to train SVM classifiers with stochastic gradient descent; and how to use implementations of more advanced methods such as random forests and nearest neighbors. * A chapter dealing with regression, explaining how to set up, use and understand linear regression and nearest neighbors regression in practical problems. * A chapter dealing with principal components analysis, developing intuition carefully, and including numerous practical examples. There is a brief description of multivariate scaling via principal coordinate analysis. * A chapter dealing with clustering via agglomerative methods and k-means, showing how to build vector quantized features for complex signals. Illustrated throughout, each main chapter includes many worked examples and other pedagogical elements such as boxed Procedures, Definitions, Useful Facts, and Remember This (short tips). Problems and Programming Exercises are at the end of each chapter, with a summary of what the reader should know. Instructor resources include a full set of model solutions for all problems, and an Instructor's Manual with accompanying presentation slides.
Broad beliefs about the economics of 'developing countries' and of the development process have changed considerably since the subject became of wide interest in the 1950s; due largely to changes in the world and in the application of economic policies within developing countries. Subjects such as environment, gender, poverty, famine and globalization have come to be of increasingly important public interest. The extreme divergence of experience among regions of the world has also made it more and more questionable whether it even makes sense to think of a single and distinctive 'economics of developing countries'. This textbook presents a concise and up-to-date examination of the field of development economics, bringing together historical perspectives, current issues and policy implications. Each chapter can be read as a stand-alone unit, or as part of the wider economic debates presented throughout the book.
This scarce antiquarian book is a selection from Kessinger PublishingA AcentsAcentsa A-Acentsa Acentss Legacy Reprint Series. Due to its age, it may contain imperfections such as marks, notations, marginalia and flawed pages. Because we believe this work is culturally important, we have made it available as part of our commitment to protecting, preserving, and promoting the world's literature. Kessinger Publishing is the place to find hundreds of thousands of rare and hard-to-find books with something of intere
Human rights is all too often the first casualty of national insecurity. How can democracies cope with the threat of terror while protecting human rights? This timely volume compares the lessons of the United States and Israel with the "best-case scenarios" of the United Kingdom, Canada, Spain, and Germany. It demonstrates that threatened democracies have important options, and democratic governance, the rule of law, and international cooperation are crucial foundations for counterterror policy. The contributors include: Howard Adelman, Colm Campbell, Pilar Domingo, Richard Falk, David Forsythe, Wolfgang S. Heinz, Pedro Ibarra, Todd Landman, Salvador Marti, and, Daniel Wehrenfennig.
Machine learning methods are now an important tool for scientists, researchers, engineers and students in a wide range of areas. This book is written for people who want to adopt and use the main tools of machine learning, but aren't necessarily going to want to be machine learning researchers. Intended for students in final year undergraduate or first year graduate computer science programs in machine learning, this textbook is a machine learning toolkit. Applied Machine Learning covers many topics for people who want to use machine learning processes to get things done, with a strong emphasis on using existing tools and packages, rather than writing one's own code. A companion to the author's Probability and Statistics for Computer Science, this book picks up where the earlier book left off (but also supplies a summary of probability that the reader can use). Emphasizing the usefulness of standard machinery from applied statistics, this textbook gives an overview of the major applied areas in learning, including coverage of:* classification using standard machinery (naive bayes; nearest neighbor; SVM)* clustering and vector quantization (largely as in PSCS)* PCA (largely as in PSCS)* variants of PCA (NIPALS; latent semantic analysis; canonical correlation analysis)* linear regression (largely as in PSCS)* generalized linear models including logistic regression* model selection with Lasso, elasticnet* robustness and m-estimators* Markov chains and HMM's (largely as in PSCS)* EM in fairly gory detail; long experience teaching this suggests one detailed example is required, which students hate; but once they've been through that, the next one is easy* simple graphical models (in the variational inference section)* classification with neural networks, with a particular emphasis onimage classification* autoencoding with neural networks* structure learning
This volume emerged from an international research colloquium jointly organised by National Museums Scotland and the Scottish Centre for Diaspora Studies, University of Edinburgh, funded by the Scottish Government and administered by the Royal Society of Edinburgh. Historians and museum curators from Australia, Canada, New Zealand and South Africa were invited to join with their Scottish counterparts to consider the functioning, and the meaning, of 'military Scottishness' in different Commonwealth countries and in Britain from the late Victorian period to the present day, with a particular focus on the impact of the First World War. Another key objective was to throw light on the 'hidden' culture of social networking which potentially operated behind local regiments and military units amongst Scotland's global diaspora. This edited collection provides a comparative overview of the nineteenth century emergence of military Scottishness and explores how the construction and performance of Scottish military identity has evolved in different Commonwealth countries over the late nineteenth and twentieth centuries. In particular, it looks at the ways in which Scottish volunteer regiments in Commonwealth countries variously sought to draw upon, align themselves with or, at certain key moments, redefine the assertions of martial identity which Highland regiments represented.
This volume emerged from an international research colloquium jointly organised by National Museums Scotland and the Scottish Centre for Diaspora Studies, University of Edinburgh, funded by the Scottish Government and administered by the Royal Society of Edinburgh. Historians and museum curators from Australia, Canada, New Zealand and South Africa were invited to join with their Scottish counterparts to consider the functioning, and the meaning, of 'military Scottishness' in different Commonwealth countries and in Britain from the late Victorian period to the present day, with a particular focus on the impact of the First World War. Another key objective was to throw light on the 'hidden' culture of social networking which potentially operated behind local regiments and military units amongst Scotland's global diaspora. This edited collection provides a comparative overview of the nineteenth century emergence of military Scottishness and explores how the construction and performance of Scottish military identity has evolved in different Commonwealth countries over the late nineteenth and twentieth centuries. In particular, it looks at the ways in which Scottish volunteer regiments in Commonwealth countries variously sought to draw upon, align themselves with or, at certain key moments, redefine the assertions of martial identity which Highland regiments represented.
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