帝国理工学院
计算机理学硕士
(机器学习)
The MSc in Computing (Specialism) is a taught postgraduate course aimed at students with a good academic degree who may not have studied computing exclusively but who have studied a considerable amount of computing already.
计算机理学(具体研究方向)硕士项目针对可能没有专门学习过计算机专业知识,但已经掌握大量计算机知识的具有优秀学位的学生。
Applicants who want to become a specialist in a particular area of computing and who want to take a first crucial training step towards that goal are the natural target for this course. The expectation of graduates is that this course enables them to have rewarding careers as specialist in an area of Computing.
课程适合想在计算机某特定领域接受训练并成为专家的申请者。
Each specialism has a flexible mix of breadth and depth, consisting of two or three compulsory modules as well as choices from a selection of core and optional modules.
每个具体研究方向的课程,广度和深度不一,包括两或三个必修模块以及一系列核心和选修模块。
This course is also a suitable preparation for PhD studies.
本课程也能为博士研究做准备。
Imperial College London
MSc in Computing (Machine Learning)
计算机理学(机器学习)硕士项目是计算机理学(具体研究方向)硕士项目之二
This course specialises in sophisticated data mining and machine learning techniques, exploiting scalable data management and processing infrastructures, including neurotechnology, bioinformatics, security and human-centered computing.
本课程专注于复杂的数据挖掘和机器学习技术,利用可扩展数据管理和处理基础设施,包括神经技术,生物信息学,安全和以人为中心的计算。
课程结构
Compulsory 必修课
AUTUMN 秋季
496 Mathematics for Machine Learning
面向计算机学习的数学
534 Short Introduction to Prolog
Prolog概论
SUMMER 夏季
542 MSc Computing Science (Specialist) Individual Project
计算机科学(机器学习)个人项目
Selective: Choose the equivalent of between five and eight full courses from the list below. Courses whose number ends in H are half courses.
限选课:从下面选择五到八门课程,注意以H结尾的课程是半学年课程
AUTUMN 秋季
316 Computer Vision 计算机视觉
333 Robotics 机器人技术
424H Reinforcement Learning(Half Course)
强化学习(H)
474 Machine Arguing
机器辩论
477 Computational Optimisation计算优化
499H Modal Logic(Half Course)
模态逻辑(H)
AUTUMN AND SPRING 秋季和春季
531 Prolog
SPRING 春季
304 Logic-Based Learning基于逻辑的学习
395 Introduction to Machine Learning
机器学习导论
416 Machine Learning for Imaging
用于成像的机器学习
433 Advanced Robotics 高级机器人技术
460 Deep Learning 深度学习
493 Probabilistic Inference
概率推理
498H Logics for Strategic Reasoning in AI(Half Course)
人工智能中的战略推理逻辑(H)
Optional: Choose the equivalent of between zero and three full courses from the list below. Courses whose number ends in H are half courses.
选修课:从下面选择零到三门课程,注意以H结尾的课程是半学年课程
AUTUMN 秋季
337 Simulation and Modelling 仿真与建模
343 Operations Research 运筹学
349 Information and Coding Theory 信息和编码理论
382 Type Systems for Programming Languages
程序设计语言的类型系统
408 Privacy Engineering隐私工程
410 Scalable Distributed Systems Design
可缩放分布式系统设计
438 Complexity 复杂性
445H Advanced Security(Half Course)
高级安全(H)
471 Advanced Issues in Object Oriented Programming
面向对象编程的前沿问题
474 Machine Arguing 机器辩论
484 Quantum Computing 量子计算
572 Advanced Databases 高级数据库
SPRING 春季
317 Graphics 制图学
318 Custom Computing 定制计算
331 Network and Web Security 网络和网站安全
332 Advanced Computer Architecture
高级计算机体系结构
338 Pervasive Computing 普适计算
339 Performance Engineering 性能工程
347 Distributed Algorithms 分布式算法
409 Cryptography Engineering 加密工程
417 Advanced Computer Graphics 高级计算机制图学
422 Computational Finance 计算金融
446H Applied Network Security(Half Course)
应用网络安全(H)
467 Principles of Decentralized Ledgers
分布式账本原则
469 Probabilistic Model Checking and Analysis
概率模型检测与分析
512 Independent Study Option 自主学习
项目申请要求
Minimum academic requirement 最低学术要求
Our minimum requirement is at least a2.1 UK Honour's degree.
最低要求是二等甲级学位
While there is no minimum requirement for GRE scores, a strong application would include scores higher than 159 for Quantitative Reasoning and higher than 145 for Verbal Reasoning.
GRE:数学>159;语文>145
English language requirement 英语要求
standard College requirement:6.5 overall (minimum 6.0 in all elements)
雅思成绩:6.5(单科至少6.0)
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