• Medientyp: Dissertation; E-Book; Elektronische Hochschulschrift
  • Titel: Towards the Efficient Creation of Accurate and High-Performance Virtual Prototypes
  • Beteiligte: Hufnagel, Simon [VerfasserIn]
  • Erschienen: KLUEDO - Publication Server of University of Kaiserslautern-Landau (RPTU), 2014
  • Sprache: Englisch
  • Schlagwörter: IP-XACT ; Transaction Level Modeling (TLM) ; Discrete Event Simulation (DES) ; SystemC ; Cycle Accuracy ; Temporal Decoupling ; Code Generation ; Shared Resource Modeling
  • Entstehung:
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  • Beschreibung: As the complexity of embedded systems continuously rises, their development becomes more and more challenging. One technique to cope with this complexity is the employment of virtual prototypes. The virtual prototypes are intended to represent the embedded system’s properties on different levels of detail like register transfer level or transaction level. Virtual prototypes can be used for different tasks throughout the development process. They can act as executable specification, can be used for architecture exploration, can ease system integration, and allow for pre- and post-silicon software development and verification. The optimization objectives for virtual prototypes and their creation process are manifold. Finding an appropriate trade-off between the simulation accuracy, the simulation performance, and the implementation effort is a major challenge, as these requirements are contradictory. In this work, two new and complementary techniques for the efficient creation of accurate and high-performance SystemC based virtual prototypes are proposed: Advanced Temporal Decoupling (ATD) and Transparent Transaction Level Modeling (TTLM). The suitability for industrial environments is assured by the employment of common standards like SystemC TLM-2.0 and IP-XACT. Advanced Temporal Decoupling enhances the simulation accuracy while retaining high simulation performance by allowing for cycle accurate simulation in the context of SystemC TLM-2.0 temporal decoupling. This is achieved by exploiting the local time warp arising in SystemC TLM-2.0 temporal decoupled models to support the computation of resource contention effects. In ATD, accesses to shared resource are managed by Temporal Decoupled Semaphores (TDSems) which are integrated into the modeled shared resources. The set of TDSems assures the correct execution order of shared resource accesses and incorporates timing effects resulting from shared resource access execution and resource conflicts. This is done by dynamically varying the data granularity of ...
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