High-Level Synthesis蓝皮书,高级语言综合中的经典教材!!!
2019-12-21 22:06:15 11.24MB 高级语言综合 RTL Algorithmic C
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Quantitative Trading - How to Build Your Own Algorithmic Trading Business.
2019-12-21 21:41:20 3.39MB Quantitative
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Twenty Lectures on Algorithmic Game Theory By Tim Roughgarden 2016 | 250 Pages | ISBN: 131662479X , 1107172667 | EPUB | 2 MB Computer science and economics have engaged in a lively interaction over the past fifteen years, resulting in the new field of algorithmic game theory. Many problems that are central to modern computer science, ranging from resource allocation in large networks to online advertising, involve interactions between multiple self-interested parties. Economics and game theory offer a host of useful models and definitions to reason about such problems. The flow of ideas also travels in the other direction, and concepts from computer science are increasingly important in economics. This book grew out of the author's Stanford University course on algorithmic game theory, and aims to give students and other newcomers a quick and accessible introduction to many of the most important concepts in the field. The book also includes case studies on online advertising, wireless spectrum auctions, kidney exchange, and network management.
2019-12-21 21:26:45 2.28MB Algorithmic Game Theory
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Algorithmic Trading Winning Strategies and Their Rationale 英文无水印原版pdf pdf所有页面使用FoxitReader、PDF-XChangeViewer、SumatraPDF和Firefox测试都可以打开 本资源转载自网络,如有侵权,请联系上传者或csdn删除 查看此书详细信息请在美国亚马逊官网搜索此书
2019-12-21 21:22:32 7.46MB Algorithmic Trading Winning Strategies
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Algorithmic Game Theory英文原版,作者Noam Nisan,剑桥大学教材,深入浅出的介绍了算法博弈论以基于博弈论的算法设计等。
2019-12-21 21:08:47 4.73MB 博弈论 算法博弈论 nash equilib
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Title: Machine Learning: An Algorithmic Perspective, 2nd Edition Author: Stephen Marsland Length: 457 pages Edition: 2 Language: English Publisher: Chapman and Hall/CRC Publication Date: 2014-10-08 ISBN-10: 1466583282 ISBN-13: 9781466583283 A Proven, Hands-On Approach for Students without a Strong Statistical Foundation Since the best-selling first edition was published, there have been several prominent developments in the field of machine learning, including the increasing work on the statistical interpretations of machine learning algorithms. Unfortunately, computer science students without a strong statistical background often find it hard to get started in this area. Remedying this deficiency, Machine Learning: An Algorithmic Perspective, Second Edition helps students understand the algorithms of machine learning. It puts them on a path toward mastering the relevant mathematics and statistics as well as the necessary programming and experimentation. New to the Second Edition Two new chapters on deep belief networks and Gaussian processes Reorganization of the chapters to make a more natural flow of content Revision of the support vector machine material, including a simple implementation for experiments New material on random forests, the perceptron convergence theorem, accuracy methods, and conjugate gradient optimization for the multi-layer perceptron Additional discussions of the Kalman and particle filters Improved code, including better use of naming conventions in Python Suitable for both an introductory one-semester course and more advanced courses, the text strongly encourages students to practice with the code. Each chapter includes detailed examples along with further reading and problems. All of the code used to create the examples is available on the author’s website. Table of Contents Chapter 1: Introduction Chapter 2: Preliminaries Chapter 3: Neurons, Neural Networks,and Linear Discriminants Chapter 4: The Multi-layer Perceptron Chapter 5: R
2019-12-21 20:59:15 6.65MB Machine Learning Algorithmic
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implement advanced trading strategies using time series analysis, machine learning and Bayesian statistics with the open source R and Python programming languages, for direct, actionable results on your strategy profitability.
2019-12-21 20:27:36 13.89MB Advanced Algorithmic Trading
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Successful Algorithmic Trading(原书加代码),包含全部章节的内容。
2019-12-21 20:17:21 2.09MB 量化交易 Python 事件驱动 回测
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Introduction to Algorithmic Marketing is a comprehensive guide to advanced marketing automation for marketing strategists, data scientists, product managers, and software engineers. It summarizes various techniques tested by major technology, advertising, and retail companies, and it glues these methods together with economic theory and machine learning. The book covers the main areas of marketing that require programmatic micro-decisioning — targeted promotions and advertisements, eCommerce search, recommendations, pricing, and assortment optimization.
2019-12-21 20:13:33 6.95MB machine learning marketing
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Matrix-geometric solutions in stochastic models an algorithmic approach
2019-12-21 20:07:54 69.02MB Matrix-geome
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