Analog Computers

Historical Document

Starlight: The Ultimate Simulation Computer

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Four-page color sales brochure for the EAI Starlight, described as a fast real-time simulation computer using a VME-bus multiprocessor architecture with Arithmetic Computing Modules (ACMs), Data Memory Modules (DMMs), and an Analog Interface Module (AIM) providing 16 ADCs and 16 DACs. The system is programmed in CSSL, FORTRAN, C, or Ada via an Integrated Sequential Processor that compiles and maps simulation models onto the parallel ACMs at run time. A benchmark chart compares Starlight favorably to Motorola, Encore, Intel, and Cray systems in frames-per-second for dynamic simulation.

Manufacturer
EAI
System
Starlight
Type
Historical Document
Language
English
Pages
4
Credit
Electronic Associates, Inc., 185 Monmouth Parkway, West Long Branch, NJ 07764. Part number 0222AFQR.
  • Starlight
  • EAI
  • real-time simulation
  • multiprocessor architecture
  • hardware-in-the-loop
  • analog/digital interface

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Starlight: The Ultimate Simulation Computer

_ Starlight _.. the Ultimate Simulation Computer STARLIGHT is an extremely fast Real Time Simulation Computer that dramatically reduces the time required lor continuous system simulations and dynamic systems modeling. It is designed to provide superior computing power for projects with time-dependent calculations, simulations, hardware-in-the- loop testing, or any situation where results are needed in real time or faster. The workstation size and low price allows companies to bring product testing and design in-house, expand previously limited testing, or decentralize simulations to achieve results in less time. STARLIGHT mnovations inciuct these FEATURES © Efficient Data Flow Architecture © Integrated Hardware /Software © Simulation Code implemented directly (not mapped to FORTRAN) » Optimized serial / parallel operations for maximum speed " Total solution (not just an accelerator board) STARLIGHT's tremendous speed opens the way to additional, more diverse or complex projects. This increased simulation speed is achieved through a digital imple mentation of analog computing architecture. Now there is time for more thorough testing without project delays, improving design dependability. This not however, does mean, Complete STARLIGHT System increased operation complexity or costs. STARLIGHT, only a small workstation-like tower unit, out- periorms higher cost conventional Simulation systems traditionally needed to achieve this perfor- mance level. Since it operates in a normal olfice environment, this simulation power is available right at the engineer's fingertips, STARLIGHT is controlled from an STARLIGHT BENEFITS over traditional simulation methiocs tnecehuice © Significantly reduced size © Drastically lowered price » 10-100 times perlormance Increase »" Power to handle larger, more complex simulations © Ability to function in a normal office environment X-Terminal user station with a Standard X-Window/ Motil inter face. STARLIGHT can just as casily connect to your present System as it can stand alone. There is no need to completely revamp your lab. When compu- ting power must be increased, you now have a better choice without the usual additional large invest- ment. USER INTERFACE STARLIGHT has a standard work- station for user interaction, con- trol and graphic display output. The system can also be used with your existing workstation or termi- nal with an Ethernet link and X- Terminal capability. Users would then have access to STARLIGHT from any site on the network. You can run ae simulation on STARLIGHT, continue with other work while the simulation is run- ning, examine the results on a local terminal, and pull simulation data into other software packages as needed for analysis or reports. STARLIGHT operates through a menu system with integrated help screens, Set-up, parameter chang- ing, run sequencing, recall, searches, and other operations are all executed in a few keystrokes or menu selections. Simulation out- put is presented to the user in either graphical or tabular form. Analog outputs are also available for plotters, scopes, etc, as well as digital output for slave monitors, mass storage systems, or data transfer to other computers. SYSTEM ARCHITECTURE One olf STARLIGHT's benefits is its significantly smaller footprint when compared to the much larg- er size of a traditional system needed to match its extremely high level of computing power. This is achieved through a unique hardware architecture, bringing system computing size to the board level. The heart of the system is the ARITHMETIC COMPUTATION MODULE (ACM). This primary computational component is a unique floating-point, pipelined parallel processor designed and built by EAI specifically for model- ing continuous dynamic systems. A single ACM can run simulations 30 to 100 times faster than a microprocessor-based worksta- tion, and 5 to 10 times faster than a Supercomputer costing tens of millions of dollars. The system will accommodate up to three addi- tional ACMs (four total) for very large simulation models or to meet further speed requirements. Speed is the key to putting results in your hands so decisions and mod- ifications are implemented in much less time. Each ACM provides up to 128K words (512K bytes) of data memo- ry for function generation and data logging. For applications requiring more than this, an optional DATA MEMORY MOD | § |O\'\)) provides up to 64 mil- lion 32-bit words (256 million bytes) of additional indexed data memory. This supports very large data tables for functions of up to eight variables, and high-speed logging of many channels of data for additional post-run analysis on STARLIGHT or your system. STARLIGHT includes a Host processor housed in an industry standard VME chassis, running under the UNIX operating system. During problem preparation, the Host performs editing, compiling and linking tasks and loads the simulation model. During run- time, the Host supports menu- based user interaction, real-time data-logging, and graphic display. For connection to external equip- ment such as flight tables, lab instruments, or other computers, a wide range of |/O options is available: @ The ANALOG INTERFACE MODULE (AIM) provides 16 Analog-to-Digital Converters (ADCs) and 16 Digital-to-Analog Converters (DACs) with control circuitry for continuous analog hardware-in-the-loop communica- tion. The system can accommo- date up to 4 AIMs, for a total of 64 channels in each direction, @ The DIGITAL INTERFACE MODULE (DIM) provides 32 dis- crete digital inputs and 32 discrete digital outputs to communicate with digital hardware-in-the-loop. Four DIMs maximum allow for 128 discrete channels in each direction. @ The PROCESSOR INTERFACE ADAPTER (PIA), and the PROCES SOR INTERFACE MODULE (PIM) with its dual-port memory (32 bits wide), provide the link between STARLIGHT modules on the VME bus and the STARBUS. Three additional PIMs can provide inde- pendent run time communication with up to three different external processors, providing a data path into an existing computer system. @ An optional ([NITERNAL SEQUENTIAL PROCESSOR (ISP) is available for simulations that require sequential code (for exam- ple, simulation of a continuous system controlled by an embedded microprocessor). The ISP is housed in the same VME chassis as the Host processor, and runs without operating system over- head for maximum speed. The ISP may be programmed in any stan- dard sequential language, such as FORTRAN, C, or Ada, and commu- nicates with the ACMs via the standard PIA/PIM modules. The SYSTEM CONTROL MODULE ‘SUM provides the centralized program counter, which is distrib- uted to the other processors and [/O modules to synchronize the entire simulation. The program is loaded into the ACMs, DIMs, DMM, AIMs, and PIMs through the Host processor on the VME bus and the SCSI INTERFACE MODULE (SIM) on the STARBUS. The SIM also monitors results between tests and will run diag- nostics via the SCSI bus. A key element in achieving STARLIGHT’'s high performance in computation speed and real world interconnection is the S'tAKDLS. Designed by EAI, the STARBUS operates at a true 80 MB/sec sustained transfer rate. Hardware-in-the-loop connections come directly into the STARBUS, which operates at rates 2-4 times faster than conventional real world links. Not only does STARBUS allow STARLIGHT’'s various mod- ules to perform their calculations at tremendous speeds, but it also receives data from and transmits results to your hardware-in-the- loop at increased rates. The com- oo EE EE eEO“s.eRee..PaaaeaaasaSS2.°.0Q_QQaQxagagaxaxgQaxQQxQQQ05030©hO .Saa_aQmm_m EE Logic 1/O w/External Hardware Double Sided Backplane Analog 1/0 w/External <« Hardware Basic System = Required minimal configuration. Provides a complete stand- alone system with internal data logging from simulation equations, Digital 1/O w/External Processor STARLIGHT System Components. All components shown (except workstation) are housed in a single tower unit, bined result of STARLIGHT's computation speed with the high STARBUS throughput rate and automated scheduling means a more efficient operation and faster results in your hands, PROGRAMMING METHODOLOGY Your simulation model is pro- grammed using the >) \iiii 1) INTERACTIVE SIMULATION LANGUAGE (SISL) which con- forms to the industry-standard CONTINUOUS SYSTEM SIMULA- TION LANGUAGE (CSSL) specifi- cations, freeing you from the details of numerical integration methods and sorting considera- tions. A continuous parallel sys- tem is modeled in a continuous parallel language, enabling you to model the system simply in terms of differential equations or transfer functions, WITHOUT THE NECES- SITY OF TRANSLATING A PARAL- LEL MODEL INTO SEQUENTIAL CODE. For applications requiring sequential code, the ISP may be programmed in any standard sequential language (e.g, FOR- TRAN, C, or Ada). Most currently available CSSL implementations translate the users CSSL source program into an intermediate FORTRAN or C format, which is then compiled and executed in the usual man- ner. If speed is not a major concern, this simple approach is adequate. However, if parallel processors are used for speed, the compiler is forced to search this FORTRAN or C program for oppor- tunities to “parallelize” it (despite the fact that the original problem was parallel in the first place). In contrast, the STARLIGHT compil- er maps the SISL source directly into parallel machine code, omit- ting the intermediate step. Result...a more efficient program. The availability of both SISL (for continuous parallel simulation) and FORTRAN, C, and Ada (for standard sequential programming) means that you can convert a module at a time from current programs, either to break up the conversion task or perhaps to run a particular component at a faster rate. You may also want to isolate a particular task that requires maximized computation power. ’ > - Starli ight 4 1 \ SS Gives you the competitive edge... 40 * OK 25 Frames per Second eu Ss 1O K =e ; Se eet" aK ——_—~ = ZY MOTOROLA MOTOROLA ENCORE ENCORE INTEL CRAY STARLIGHT 68030 680-40 32/87 2040 $860 Y-MP Measured speed for a typical non-linear dynamic simulation with 20 integrations WHY STARLIGHT EXCELS STARLIGHT’'s unique hardware architecture — cal equation and function generation statement combines with the efficiency of the STARLIGHT into fundamental mathematical operations. It INTERACTIVE SIMULATION LANGUAGE (SISL) then automatically schedules the calculation to create a totally linked system. STARLIGHT and memory I/O code sequences to utilize the handles the implementation of differential and available hardware to its maximum physical algebraic equations, logic equations and func- _ efficiency. In this way, STARLIGHT achieves tion generation in a manner analogous to how computing speeds that far surpass any sequen- they would be ideally programmed and run on _ tial approach used by single processor, multi- a completely parallel multiprocessor computer. processor, or other parallel systems on the The SISL software breaks-up each mathemati- market today for this type of application. WHEN YOUR APPLICATIONS ARE FOR REAL... ..EXPLORE THE POSSIBILITIES WITH SJ ARLIGHT. Electronic Associates, Inc. 185 Monmouth Parkway, West Long Branch, NJ 07764-9989 (906) 229-1100 Toll Free: 1-800-631-4198 Fax: 1-(906)-229-1329 VME. ies is a Registerectd Trademark of Motorola Ethernet is a Registered Tradernark of Xerox Corporation UNIX is a Registered Trademark of ATAT 32/87 & 2040 are Registered Trademarks of Encore The tnformation cwdained herein is summary in nature, subject to I8GO ts a Registered Tractermark of INTEL change and intended for general informearion only X-Window System is a Trademark of the Massachusetis Institute of Technolodty 7 Motil ts a Trademark of the Open Software Foundation. Inc O22 500926