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Home > FPGA Technical Tutorials > FPGA-Based Prototyping Methodology > THE FUTURE OF PROTOTYPING > Summary: software-driven hardware development

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Summary: software-driven hardware development

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As outlined in the previous sections, the needs are different in the various  application domains, but the overarching commonality is the trend towards more  software development. In the future the actual system behavior in the majority  application domains is mostly defined by software; that is certainly the case for  those we explored in this chapter. As a result, hardware development will be driven  to optimize the software’s execution.  

Depending on the specifics of the application domains this has different effects. In  mobile wireless and consumer, the underlying digital hardware is fairly generic,  enabling software platforms like Google Android™, Apple® Mobile OS or  Windows Mobile™ 7 to execute most efficiently and decouple the ecosystem of  application developers from the actual hardware. 

In contrast, in the networking application domain, the software still defines system  behavior but it is much more hardware-dependent, embedded in the networking  software stacks on Linux and other operating systems. However, software is still the  key differentiator of a combined hardware/software platform. 

Similarly, in automotive, due to the overall complexity, developers of hardware dependent software often reside in independent companies. They need access to  representations of the hardware for which they are developing software and this  increases the need for virtual and FPGA-based prototypes. 

There is no question that software will gain even more importance and that we are  on cusp of quite significant changes in development methodologies as well as  responsibilities within the design chains. How exactly the changes will manifest  themselves, very much depends on the application domains. It is safe to assume that  in all of them prototyping will play a key role.



  • XC5VFX100T-2FFG1738I

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  • FPGA Virtex-5 FXT Family 65nm Technology 1V 1738-Pin FCBGA
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  • FPGA Virtex-5 FXT Family 65nm Technology 1V 1738-Pin FCBGA
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  • FPGA Spartan-XL Family 20K Gates 950 Cells 250MHz 3.3V 208-Pin HSPQFP EP
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    Lifecycle:Obsolete -

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  • XCS20XL-5VQ100C

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  • FPGA Spartan-XL Family 20K Gates 950 Cells 250MHz 3.3V 100-Pin VTQFP
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