基于虚拟仪器的信号发生器的设计与实现_翻译设计.doc
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1、合肥学院题目:基于虚拟仪器的信号发生器的设计与实现Virtual Instruments Based on Reconfigurable LogicAbstract. A virtual instrument results from the combination of a general purpose computer with a generic data acquisition system in order to emulate a traditional measurement instrument. The data acquisition hardware of the vi
2、rtual instruments provides computers with input/output capability and is usually based on the integration of standard circuits with fixed architecture. Meanwhile the software defines the analysis and processing of the acquired data that is the function of the generated virtual instrument. As a conse
3、quence, the virtual instruments are characterized by their versatility and low cost but they lack of performance of the application oriented hardware architectures. In this paper, we present a virtual instrument system based on reconfigurable hardware that improves the features of virtual instrument
4、s preserving their versatility and low cost.1. IntroductionThe emergence of virtual instrumentation is a revolution in the history of the development of measuring instruments. It fully utilizes the latest computer technology to implement and extend the instrument function. Using the image of a compu
5、ter screen can be easily simulate a variety of equipment control panels to the needs expressed in the form of the output of test results. Using computer software to achieve most of the signal of the analysis and processing to complete a variety of control and test function. The user through the appl
6、ication of general-purpose computer program modules and features of the hardware together. Through friendly graphical interface to operate this computer. As in operating their own definition of individual instruments of their own design can be measured to complete the acquisition, analysis, determin
7、e, control, display, data storage and so on.Virtual Instruments advantages of more traditional instruments: (1)A strong integration of computer hardware resources. Breaking the traditional instruments in data processing, display, storage and other limitations, and greatly enhanced the capabilities o
8、f traditional instruments. (2)The use of computer software resources to achieve some part of the software of instrument hardware, saving material resources, increase system flexibility. Through software technology and the corresponding numerical algorithm. Directly on the test data for various analy
9、sis and processing in time. Through the graphical user interface technology, truly user-friendly, human-computer interaction. (3)Hardware and software of virtual instrument is an open, modular, reusable and interchangeability characteristics. Therefore, the user can according to their own needs and
10、use different manufacturers products. The development of the instrument system is more flexible, efficient and shorten the formation time of the systemThe traditional instruments are application specific systems based on fixed hardware and software resources so their function and applications are de
11、fined by the manufacturer. These instruments are complex systems and therefore they become expensive and difficult to manage.The widespread usage of personal computers in many scientific and technological fields make them an ideal hardware and software platform for the implementation of measurement
12、instruments. By adding a simple data acquisition system, a personal computer can emulate any instrument. The instruments generated in this way are called virtual instruments because they do not have exclusive access to hardware and software resources. Different instruments can be implemented over th
13、e same hardware by only reprogramming the software. The virtual instruments offer plenty of advantages the most important of which is the low cost due to the reusability of hardware and software resources. The above characteristics and the continuous evolution and cheapening of the personal computer
14、s make the virtual instruments a valuable alternative to traditional ones.Nevertheless, there are two main factors which limits the application of virtual instruments. By one hand, the data capture is reduce to slow rates because of the more common operating systems of the general purpose computers
15、are not oriented to realtime applications. By other hand, the data acquisition system is not an application oriented system but a generic one. Therefore, our proposal is focused on the enhancement of virtual instruments by the replacement of the generic hardware with a reconfigurable data acquisitio
16、n system, as it is shown in Figure 1. By this way, some data process can be implemented by hardware reducing the data flow to/from the computer and rising the maximum sample rate.The benefits of virtual instruments based on reconfigurable logic are the following:-The bandwidth of the instruments can
17、 be increased implementing the more time critical algorithms by hardware.-The input/output capacity can be reconfigured according to the application. In special, FPGAs devices are characterized by a great number of input/output pins providing virtual instrument with the capacity to observe and contr
18、ol a wide number of signals.-The computer interface can be reconfigured according to the available resources (Plug&Play peripherals).-Different instruments can share software and hardware design modules increasing their reusability.2. The composition and classification of virtual instruments Virtual
19、 instrument system mainly consists of computers, hardware board,software and accessories. Users can request the flexibility to build their own testing equipment.The core of virtual instrument is software, which is mainly provided by the hardware driver, application programming software etc. It can c
20、omplete all the test requirements. The current development environment mainly into two categories:(1) text language; (2) graphics language. As the graphic language developed by convenience welcomed by the majority of engineers. There are not many trained in computer language engineers able to master
21、 the development of virtual instrument technology and applied to engineering practice in a relatively short period of time. Virtual instrument is essentially an open structure which to provide signal processing, storage and display functions by general-purpose computer, digital signal processors, or
22、 other CPU. To achieve instrument functions from data acquisition boards, GP IB or VXI bus interface board for signal acquisition and control. According to its different ways of using the bus can be divided into the following types: (1) PC Bus - plug-in card-based virtual instrument(2) parallel port
23、 virtual instruments (3) the way of GB IB bus virtual machines (4) VXI bus mode Virtual Instrument (5) PXI bus mode virtual instruments3. Reconfigurable Data Acquisitions SystemsWe propose the implementation of a reconfigurable data acquisition system using FPGAs. This system operates like a reconfi
24、gurable coprocessor oriented to the capture, generation and analysis of digital signals. The combination of this hardware with a general purpose computer results in a reconfigurable virtual instrumentation system where the end user determines the software and hardware resources required for each par
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