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STM32MP151C Folha de dados(PDF) 21 Page - STMicroelectronics |
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STM32MP151C Folha de dados(HTML) 21 Page - STMicroelectronics |
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21 / 253 page ![]() DS12501 Rev 3 21/253 STM32MP151C/F Functional overview 55 NEON NEON technology can accelerate multimedia and signal processing algorithms such as video encode/decode, 2D/3D graphics, gaming, audio and speech processing, image processing, telephony, and sound synthesis. The Cortex-A7 provides an engine that offers both the performance and functionality of the Cortex-A7 floating-point unit (FPU) and an implementation of the NEON advanced SIMD instruction set for further acceleration of media and signal processing functions. The NEON extends the Cortex-A7 processor FPU to provide a quad-MAC and additional 64-bit and 128-bit register set supporting a rich set of SIMD operations over 8-, 16- and 32-bit integer and 32-bit floating-point data quantities. Hardware virtualization Highly efficient hardware support for data management and arbitration, whereby multiple software environments and their applications are able to simultaneously access the system capabilities. This enables the realization of devices that are robust, with virtual environments that are well isolated from each other. Optimized L1 caches Performance and power optimized L1 caches combine minimal access latency techniques to maximize performance and minimize power consumption. Integrated L2 cache controller Provides low-latency and high-bandwidth access to cached memory in high-frequency, or to reduce the power consumption associated with off-chip memory access. Cortex-A7 floating-point unit (FPU) The FPU provides high-performance single and double precision floating-point instructions compatible with the Arm VFPv4 architecture that is software compatible with previous generations of Arm floating-point coprocessor. Snoop control unit (SCU) The SCU is responsible for managing the interconnect, arbitration, communication, cache to cache and system memory transfers, cache coherence and other capabilities for the processor. This system coherence also reduces software complexity involved in maintaining software coherence within each OS driver. Generic interrupt controller (GIC) Implementing the standardized and architected interrupt controller, the GIC provides a rich and flexible approach to inter-processor communication and the routing and prioritization of system interrupts. Supporting up to 288 independent interrupts, under software control, hardware prioritized, and routed between the operating system and TrustZone software management layer. This routing flexibility and the support for virtualization of interrupts into the operating system, provides one of the key features required to enhance the capabilities of a solution utilizing a hypervisor. |
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