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ARM The Architecture For The Digital World  

Cortex-A Series

Cortex-A Series Image

The ARM Cortex™-A series of applications processors provide an entire range of solutions for devices hosting a rich OS platform and user applications ranging from ultra-low-cost handset through smartphonesmobile computing platforms, digital TV and set-top boxes through enterprise networking, printers and server solutions. The high-performance Cortex-A15, the scalable Cortex-A9, the market-proven Cortex-A8 processor, and the high-efficiency Cortex-A7 and Cortex-A5 processors all share the same architecture and therefore full application compatibility, that includes support for the traditional ARM, Thumb® instruction set and new high performance and compact Thumb-2 instruction set.

The Cortex-A15 and Cortex-A7 both support an extension to the ARMv7A architecture that brings support for large physical address reach and hardware virtualization, as well as AMBA4 ACE coherency that enables big.LITTLE processing.

Application Examples for Cortex-A Processors

 


Industry Standard

Cortex-A processors, used in applications that have high-compute requirements, run rich operating systems and deliver interactive media and graphics experience from the latest technological mobile internet must-have devices such as handsets and ultra-portable netbooks or SmartBooks, to automotive infotainment systems and next generation digital TV systems.

Cortex-A processors are geared towards providing the full internet experience, but are used in a wide variety of applications including:

 Product Type Application

Computing

 Netbook, Smartbook, Tablet, eReader, Thin client

 Mobile Handset

 Smartphones, Feature phones

 Digital Home

 Set-top Box, Digital TV, Blu-Ray player, Gaming consoles

 Automotive

 Infotainment, Navigation

 Enterprise

 Laserjet printers, routers, wireless base-stations, VOIP phones and equipment

Wiresless Infrastructure

Web 2.0, wireless base stations, switches, servers

 

Cortex - Intelligent Processors by ARMThe success of the Cortex-A processors is built on the success of our partners who have licensed these processors and developed a wide array of success stories in various markets.

Click here for a list of the currently public Silicon Partners

 

Ideal for Mobile Internet

  • Native support for Adobe Flash 10.1, 10.2, 10.3, and beyond 
  • High performance NEON™ engine for broad support of media codecs
  • Low power design enables all-day browsing and connection

High Performance

Cortex-A devices provide a scalable range of power-efficient performance points for their target applications. Some illustrative examples are:
  • Cortex-A15 highest performance solutions for next generation mobile and demanding wireless infrastructure applications
  • Cortex-A7 implementations in standalone, multi-core configurations delivering 800 MHz - 1.2 GHz typical frequency, or in combination with Cortex-A15 for big.LITTLE processing 
  • Cortex-A9 implementations delivering 800 MHz - 2 GHz typical frequency and delivering 5000 DMIPS of performance per core
  • Cortex-A8 single-core solutions that provide cost-effective high-performance from 600 MHz - 1 GHz delivering over 2000 DMIPs of performance
  • Cortex-A5 in low-cost implementations from 400- 800 MHz delivering over 1200 DMIPS of performance

Multicore Technology

The Cortex-A5, Cortex-A7, Cortex-A9 and Cortex-A15 processors support ARM's second-generation multicore technologies
  • Single to quad-core implementation for performance orientated applications
  • Supports symmetric and asymmetric OS implementations
  • Coherency throughout the processor exported to system via Accelerator Coherency Port (ACP) 

The Cortex-A7 and Cortex-A15 extend multi-core coherence beyond the 1~4 core cluster with AMBA4 ACE (AMBA Coherency Extension)

Advanced Extensions

Apart from binary compatibility with prior generation Classic ARM and Thumb® architectures, the Cortex-A class processors provide additional benefits through the following technology extensions
  • Thumb-2 for optimal code size and performance 
  • TrustZone® security extensions for trusted computing
  • Jazelle® technology for accelerating execution environments such as Java, .Net, MSIL, Python and Perl

The Cortex-A5, Cortex-A7Cortex-A8Cortex-A9 and the Cortex-A15 processors are all used in a wide variety of performance applications.  However while all support the same excellent base capabilities and full software compatibility, the processors offer significantly different characteristics to ensure the right-fit for tomorrow's advanced embedded solutions.

Cortex-A Comparisons

All Cortex-A Processors share a common architecture and feature set.  This makes them the best solution for open platform design where compatibility and portability of software between design is of upmost importance:

Together, the range of Cortex-A processor provide design flexibility by providing the required peak performance points and scalability and delivering the desired power efficiency and silicon cost while maintaining full software compatibility.

 

CoreCortex-A5Cortex-A5 MPCoreCortex-A8Cortex-A9Cortex-A9 MPCore

Cortex-A9
Hard macro

Cortex-A15 MPCore

Cortex-A7 MPCore

Architecture

ARMv7

ARMv7 + MP

ARMv7

ARMv7

ARMv7 + MP

ARMv7 + MP

ARMv7
+MP+LPAE

ARMv7+MP+LPAE

Interrupt
Controller

GIC-390

Integrated- GIC

GIC-390

GIC-390

Integrated- GIC

Integrated- GIC

Integrated-GIC

GIC-400

L2 Cache
Controller

L2C-310

L2C-310

Integrated

L2C-310

L2C-310

L2C-310

Integrated

Integrated
Expected
Implementation

300-800 MHz

300-800 MHz

600-1000 MHz

600-1000 MHz

600-1000 MHz

800-2000 MHz

1000-2500 MHz

800-1500MHz

DMIPS/MHz

1.6

1.6 per CPU

2.0

2.5

2.5 per CPU

5.0 (dualcore)

TBC

1.9 per CPU

Cortex-A9

The Cortex-A9 processor is available as either a single-core or 1-4 core multicore synthesisable processor each offering 2.5 Dhrystone MIPS per MHz per CPU. In its single-core implementation an area optimized implementation of the processor provide a minimal footprint and exceptional energy efficiency for traditional embedded designs, while a speed optimized multicore implementation offers up to four time the total performance with the additional advantages of cache coherence, integrated peripherals and advanced bus interface options. 

A dual-core multicore solution is also available as a hard macro which can achieve over 2 GHz typical performance having leveraged the ARM high performance Physical IP within its implementation. 

Cortex-A9 processor benefits include:

  • ARM's highest total performance platform with up to four cores operating in unison
  • Leverages substantial multicore ecosystem with advanced OS support from major vendors
  • Full scalability of solutions from minimal single-core through to MPCore™ with NEON

Cortex-A9 Hardmacro Implementations

The Cortex-A9 has also been hardened to the TSMC 40G/GL process as a fully configured dual-core hardmacro.  Offering performance over 2GHz when selected from typical silicon. These macro provide the silicon manufacturer a low-risk, and accellerated path to delivering the ARM low power solution for various high performance markets.

Cortex-A8

The Cortex-A8 processor is a dual-issue, in-order superscalar processor offering 2.0 Dhrystone MIPS per MHz targetted at highly optimized, power-efficient implementations that deliver the high-level performance required for a traditional single-processor based devices. The Cortex-A8 has established the ARMv7 architecture in the marketplace and is already available in diverse applications including smartphones, smartbooks, portable media players and other consumer and enterprise platforms.

The Cortex-A8 processor benefits include:

  • A well-established eco-system including low-cost development platforms and available catalog parts
  • Variety of licensing options for new entrants.
  • Applications such as open source media players that can provide 720p video based on the NEON advanced SIMD instruction set.

Cortex-A5

The Cortex-A5 processor is the smallest, lowest power ARM multicore processor capable of delivering the Internet to the widest possible range of devices: from ultra low cost handsets, feature phones and smart mobile devices, to pervasive embedded, consumer and industrial devices.The Cortex-A5 processor is fully application compatible with the Cortex-A8, Cortex-A9, and Cortex-A15 processors, enabling immediate access to an established developer and software ecosystem including Android, Adobe Flash, Java Platform Standard Edition (Java SE), JavaFX, Linux, Microsoft Windows Embedded, Symbian and Ubuntu. Cortex-A5 benefits include:

  • Full application compatibility with the Cortex-A8, Cortex-A9, and Cortex-A15 processors
  • Provides a high-value migration path for the large number of existing ARM926EJ-S™ and ARM1176JZ-S™ processor licensees.
  • 1/3 the power and area of Cortex-A9, with full instruction set compatibility.

Cortex-A7

The Cortex-A7 processor is similar in power and area to the ultra-efficient Cortex-A5, but brings a 15~20% performance increase as well as full architectural compatibility with the high-end Cortex-A15 CPU, including large physical address extensions (LPAE), hardware virtualization support, and AMBA4 ACE (AMBA Coherency Extension). The small and power efficient Cortex-A7 is ideal for the latest low-cost smartphone and tablet applications as a standalone CPU, and can be combined with the Cortex-A15 in a big.LITTLE processing configuration.

Cortex-A technologies

The Cortex-A processors share a number of key technologies that make them ideal for portable media-rich devices.

RISC Processor Core

Instruction Set Architecture

  • High performance 32-bit core
  • Up to 13-stage pipeline technology
  • 1.5-2.5 DMIPS/MHz per core
  • Advanced branch prediction
  • ARM and Thumb ISA for ensuring binary compatibility
  • Thumb-2 for optimal blend of code density and performance
  • NEON™ / DSP extensions for advanced DSP and media performance
  • VFP for high-performance single and double-precision floating point
  • Jazelle®-DBX and RCT support

Media Acceleration

Multicore Technologies

  • NEON integer and floating point SIMD Engine for enhanced media performance
  • Jazelle technology for accelerated execution environments 
  • 1-4 cores
  • Full L1 cache coherency
  • Advanced Coherency Port
  • Snoop Control Unit

Advanced Memory System

System Extensions

  • 1-2 cycle cache access
  • Pipe-lined loads and stores
  • Tuned for memory streaming
  • Integrated or closely-coupled optional level-2 caches

 


ARM MPCore™ Technology

The ARM MPCore technology allows for design-configurable processors supporting between one, two, three or four CPUs in operate in an integrated cache coherent manner. These multicore processor clusters are fully coherent at the level-1 cache boundaries and in addition can be configured to extend limited coherency into the rest of the System on a Chip (SoC) through an Accelerator Coherence Port (ACP). The ACP permits system-mastering peripherals and accelerators with a non-cached view of memory, such as a DMA engine or cryptographic accelerator core, to share the processor caches in a fully cache coherent manner. The multicore cluster includes a Global Interrupt Controller (GIC) architecture compliant integrated interrupt and communication system with private peripherals for increased performance and simplified software portability. This GIC can be configured to support between 0 (legacy bypass mode) to 224 independent interrupt sources providing a low latency interrupt path to a large number of devices.  The processor can support either a single or dual 64-bit AMBA® 3 AXI™ interconnect interface with the option for full speed filtering between different address space within the SoC.

The intelligence of the MPCore technology comes from the Snoop Control Unit (SCU) which  is responsible for managing the interconnect, arbitration, communication, cache-2-cache and system memory transfers, cache coherence and other multicore capabilities for all MPCore technology enabled processors.  

ARM MPCore technology allows for very efficient, scalable multi-processing CPU clusters which give a very high-range of performance possibilities with very low software overhead. In Symmetric Multi-Processing (SMP) mode, the OS scheduler handles all allocation of threads to the processing cluster making it transparent to applications running. Most current high-level operating systems have built-in support for this mode of operation.


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