Allicdata Part #: | LS1020ASN7HNB-ND |
Manufacturer Part#: |
LS1020ASN7HNB |
Price: | $ 22.27 |
Product Category: | Integrated Circuits (ICs) |
Manufacturer: | NXP USA Inc |
Short Description: | LS1 32BIT ARM SOC 800MHZ DDR3/ |
More Detail: | ARM® Cortex®-A7 Microprocessor IC QorlQ LS1 2 Core... |
DataSheet: | LS1020ASN7HNB Datasheet/PDF |
Quantity: | 1000 |
84 +: | $ 20.24060 |
Series: | QorlQ LS1 |
Packaging: | Tray |
Part Status: | Active |
Core Processor: | ARM® Cortex®-A7 |
Number of Cores/Bus Width: | 2 Core, 32-Bit |
Speed: | 1.2GHz |
Co-Processors/DSP: | Multimedia; NEON™ SIMD |
RAM Controllers: | DDR3L, DDR4 |
Graphics Acceleration: | No |
Ethernet: | GbE (3) |
SATA: | SATA 3Gbps (1) |
USB: | USB 2.0 (1), USB 3.0 + PHY |
Voltage - I/O: | -- |
Operating Temperature: | 0°C ~ 105°C |
Package / Case: | 525-FBGA, FCBGA |
Supplier Device Package: | 525-FCPBGA (19x19) |
Due to market price fluctuations, if you need to purchase or consult the price. You can contact us or emial to us: sales@allicdata.com
The LS1020ASN7HNB embedded microprocessor is a cost-effective, integrated processor used for solving various kinds of automation and embedded system applications. Its innovative design gives it superior performance and power efficiency.
The LS1020ASN7HNB microprocessor is based on the ARM v8-A architecture and implements a 2-way out-of-order superscalar pipeline with a micro-coded instruction set. It also features dual-core ARM Cortex-A53 processor cores operating at 1.2GHz or 1.5GHz clock frequency, depending on the model. It has a 32KB L1 instruction cache and 32KB L1 data cache with an additional 512KB of L2 cache for shared data. Its on-chip system contains a wide range of peripherals and an integrated FPU with SIMD instructions for floating-point arithmetic. All of this helps support the most demanding embedded system applications.
The LS1020ASN7HNB processor is designed to support a wide range of applications including industrial automation, robotics, home automation, machine vision, communication, automotive, and IoT. Its applications range from basic control-oriented applications like motor control and HVAC to complex applications such as image processing and 3D rendering. It is also a powerful solution for embedded systems where a low-cost and high-performance solution is needed.
The LS1020ASN7HNB processor features a wide range of peripherals including USB, SPI, UART, I2C, GPIO, integrated Ethernet MAC and PHY, and external SRAM memory. It also supports secure boot, power management, and external memory protection. This makes the processor suitable for secure and complex applications such as connected healthcare devices, industrial automation, and home automation.
The LS1020ASN7HNB processor is optimized for low-power applications and is rated for 30mW power consumption at 1.5GHz clock frequency. Its power management core can reduce the processor\'s power consumption further by dynamically scaling the processor\'s clock frequency, voltage, and current according to application needs. This makes it an ideal choice for applications that require an efficient, low-power processor.
The working principle of the LS1020ASN7HNB processor is based on the out-of-order superscalar pipeline. It uses a micro-coded instruction set to process instructions efficiently and can execute multiple instructions at the same time. This allows it to process tasks quickly. The processor also features a wide range of peripherals and integrated FPU with SIMD instructions for floating-point arithmetic. This enables the processor to support complex applications and provide enhanced performance.
In conclusion, the LS1020ASN7HNB embedded microprocessor is a cost-effective, integrated processor that provides superior performance and power efficiency for a wide range of automation and embedded system applications. Its application fields range from basic control-oriented tasks like motor control and HVAC to complex tasks like image processing and 3D rendering. It has a wide range of on-chip peripherals for communication and power management, among other things. Its power management core enables it to dynamically scale voltage and current according to application needs, allowing it to be suitable for low-power applications. Its working principle is based on an out-of-order superscalar pipeline that enables the processor to execute multiple instructions at once and efficiently process instructions.
The specific data is subject to PDF, and the above content is for reference
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