Cost-effective hardware acceleration of multimedia applications
Deependra Talla, Lizy K. John · 2002
General-purpose microprocessors augmented with SIMD execution units enhance multimedia applications by exploiting data level parallelism. However, supporting/overhead related instructions, accounting for 75-85% of the dynamic instructions, leads to an under-utilization of SIMD execution units resulting in a throughput that ranges between 1-12% of the peak throughput. We accelerate multimedia applications by providing explicit hardware support to eliminate or reduce the impact of the supporting/overhead related instructions. Performance evaluation shows that such hardware can significantly improve performance over conventional SIMD enhanced general-purpose processors. We investigate the cost of incorporating hardware, for efficient execution of supporting/overhead related instructions, into a high-speed SIMD enhanced general-purpose processor and perform area, power, and timing tradeoffs. Our results indicate that - the added hardware requires less than 10% SIMD execution units' chip area and 0.3% overall chip area, and power consumption is less than 1% of the total processor power. This is achieved without elongating the critical path of the processor.