基于Fpga的个人计算机体系结构实验练习

Othman Ahmad
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引用次数: 0

摘要

计算机体系结构是对数字计算机的设计、建造和操作的研究。数字计算机对现代生活至关重要,因为它们在自动驾驶汽车和智能手机等设备中提供智能是必不可少的。计算机体系结构是马来西亚沙巴大学电子(计算机)工程课程的核心科目,符合马来西亚工程师委员会工程认证委员会(EAC)认可的华盛顿协议要求。基于现场可编程门阵列(FPGA)的计算机体系结构实验室已被开发以支持本课程的课程设置。FPGA允许实验室练习的可持续实施,而无需诉诸有毒的微电子设备制造和集成电路的安装。FPGA只是一个可配置的,因此可重用的数字设计组件。两个促进计算机工程课程的组织,ACM和IEEE,在他们最新的建议中鼓励在数字设计中使用FPGA,并与EAC一起,强调每个学生掌握基础知识。实验练习是单独的练习,每个学生都有一个独特的作业。为每位学生提供一份实验手册作为指导和项目规范,但总的来说,实验练习的概念是以学生为中心的。从第一节到第十节,每个学生都可以根据自己的努力来完成实验练习。根据完成实验课程的学生人数,对这些实验课程的有效性进行了定量分析。这些会议从1:FPGA教程开始,以实现2:立即加载,3:立即加载到多个寄存器,4:加法,5:操作代码,6:程序内存,7:跳转,8:条件跳转,9:寄存器到寄存器和10:输入输出的微处理器的功能。三批学生的结果表明,在一学分课程的时间限制内,学生们已经设法完成了一个简单微处理器的一些方面的实现。
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FPGA BASED INDIVIDUAL COMPUTER ARCHITECTURE LABORATORY EXERCISES
Computer Architecture is the study of digital computers towards designing, building and operating digital computers. Digital computers are vital for the modern living because they are essential in providing the intelligences in devices such as self-driving cars and smartphones. Computer Architecture is a core subject for the Electronic (Computer) Engineering course at the Universiti Malaysia Sabah that is compliant to the requirement of the Washington Accord as accredited by the Engineering Accreditation Council of the Board of Engineers of Malaysia (EAC). An FPGA (Field Programmable Gate Array) based Computer Architecture Laboratory had been developed to support the curriculum of this course. FPGA allows a sustainable implementation of laboratory exercises without resorting to poisonous fabrication of microelectronic devices and installation of integrated circuits. An FPGA is just a configurable and therefore reusable digital design component. Two established organisations promoting computer engineering curriculum, ACM and IEEE, encourages the use of FPGA in digital design in their latest recommendation and together with the EAC, emphasises the grasp of the fundamentals for each student. The laboratory exercises are individual exercises where each student is given a unique assignment. A laboratory manual is provided as a guide and project specification for each student but overall the concept of the laboratory exercise is a student-centred one. Each student is allowed to pace their effort to achieve the sessions of the laboratory exercises starting from session one to session ten. A quantitative analysis of the effectiveness of these laboratory sessions is carried out based on the numbers of students completing the laboratory sessions. These sessions start from an 1:FPGA tutorial to implementations of features of a microprocessor of 2:Immediate Load, 3:Immediate Load to Multiple Registers, 4:Addition, 5:Operation Code, 6:Program Memory, 7:Jump, 8:Conditional Jump, 9:Register to Register and 10:Input-Output. The results of three batches of students show that within the time limits of a one credit hour course, students had managed to complete some aspects of the implementation of a simple microprocessor.
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