Embedded - Microprocessors

Image Part Number Description / PDF Quantity Rfq
MG80C186XL-12/B

MG80C186XL-12/B

Rochester Electronics

HIGH INTEGRTED 16 BIT; CMOS MP (

9

MG80186-8/B

MG80186-8/B

Rochester Electronics

MICROPROCESSOR, 16-BIT

540

MG80C186XL-20/B

MG80C186XL-20/B

Rochester Electronics

MG80C186XL-20/B

1080

MG80186-6/BZA

MG80186-6/BZA

Rochester Electronics

DUAL MARKED (8501002ZA)

587

LD8087

LD8087

Rochester Electronics

MATH COPROCESSOR, COMPATIBLE WIT

43

MG80C186-10/B

MG80C186-10/B

Rochester Electronics

16 BIT CHMOS MPU

197

MQ80C186-12/BYC

MQ80C186-12/BYC

Rochester Electronics

DUAL MARKED (5962-8850102YC)

696

MG80C186XL-10

MG80C186XL-10

Rochester Electronics

MICROPROCESSOR

113

MQ80C186-12/R

MQ80C186-12/R

Rochester Electronics

MICROPROCESSOR, 16-BIT

2161

EN80C188XL-20

EN80C188XL-20

Rochester Electronics

80C188XL - MPU INTEL 186 CISC 16

1017

MG80C186-10/BZA

MG80C186-10/BZA

Rochester Electronics

DUAL MARKED (5962-8850101ZA)

86

MG8797BH/B

MG8797BH/B

Rochester Electronics

16 BIT CPU W/A/D

127

MQ80286-6/B

MQ80286-6/B

Rochester Electronics

16-BIT HI PERFORMANCE CPU

14

MD8086-2/B

MD8086-2/B

Rochester Electronics

MICROPROCESSOR, 16-BIT

230

MD8087/BQA

MD8087/BQA

Rochester Electronics

DUAL MARKED (5962-8854702QA)

384

MD8087-2

MD8087-2

Rochester Electronics

MATH COPROCESSOR, CMOS

42

MG80C186EB-16/R

MG80C186EB-16/R

Rochester Electronics

MG80C186EB-16/R

166

R80186-10

R80186-10

Rochester Electronics

RISC MICROPROCESSOR, 16 BIT, 10M

0

MQ80186-6/BYA

MQ80186-6/BYA

Rochester Electronics

DUAL MARKED (8501002YA)

245

EN80C188EB-20

EN80C188EB-20

Rochester Electronics

80C188EB - MICROPROCESSOR, 16-BI

217

Embedded - Microprocessors

1. Overview

Embedded microprocessors are specialized computing units designed for dedicated control, monitoring, or processing tasks within electronic systems. Unlike general-purpose CPUs, they integrate processing cores, memory interfaces, and peripheral controllers into a single chip (SoC) to optimize performance, power efficiency, and cost for specific applications. These devices form the backbone of modern IoT, automotive systems, industrial automation, and consumer electronics.

2. Main Types and Functional Classification

TypeFunctional CharacteristicsApplication Examples
ARM Cortex-M SeriesLow-power 32-bit cores with real-time capabilities, optional DSP extensionsSmart sensors, wearables, motor control
PowerPCHigh reliability, floating-point units, automotive/Aerospace focusedVehicle ECUs, avionics systems
MIPSEfficient pipelining, 32/64-bit variants for multimedia processingNetworking equipment, set-top boxes
RISC-VOpen instruction set, modular architecture for customizationAI accelerators, edge computing devices
x86 (Embedded)PC compatibility, high processing power with integrated GPUsIndustrial PCs, medical imaging equipment

3. Architecture and Components

A typical embedded microprocessor contains:

  • Processing Core(s): RISC/Complex Instruction Set architectures with 1-8 cores
  • Memory Subsystem: Integrated SRAM, ROM, and external DRAM controllers
  • Peripheral Interfaces: UART, SPI, I2C, USB, CAN, PCIe, Ethernet MAC
  • Real-Time Components: Watchdog timers, PWM generators, ADC/DAC modules
  • Power Management: Multiple sleep modes, DVFS (Dynamic Voltage/Frequency Scaling)

4. Key Technical Specifications

ParameterDescriptionImportance
Clock FrequencyOperating speed (10MHz-6GHz)Determines processing throughput
Instruction SetRISC vs CISC architectureAffects code density and power consumption
TDP (Thermal Design Power)Power consumption under load (100mW-50W)Dictates thermal management requirements
Process NodeManufacturing technology (28nm-5nm)Impacts performance and energy efficiency
Memory BandwidthData transfer rate between core and memoryLimits performance in data-intensive tasks

5. Application Domains

  • Consumer Electronics: Smartphones (application processors), home appliances
  • Automotive: ADAS controllers, engine management systems
  • Industrial: PLCs (Programmable Logic Controllers), robotics
  • Healthcare: MRI scanners, portable diagnostic devices
  • Communications: 5G base stations, optical network transceivers

6. Leading Manufacturers and Products

ManufacturerRepresentative ProductKey Features
ARM HoldingsCortex-A78128-bit NEON engine, 4nm process, 3.0GHz
IntelAtom x6425EQuad-core, 12W TDP, integrated Intel HD Graphics
NXP Semiconductorsi.MX 8M Plus1.8GHz Cortex-A53, NPU for ML acceleration
MicrochipSAM9X6032-bit ARM926EJ-S, 120MHz, ECC memory support
QualcommQCS610Hexagon DSP, Adreno GPU, AI Engine for computer vision

7. Selection Guidelines

Key considerations include:

  • Performance requirements vs power budget (e.g., Cortex-M55 for ultra-low-power AI)
  • Real-time constraints (deterministic latency for motor control applications)
  • Peripheral integration (CAN FD for automotive networks)
  • Software ecosystem (RTOS support, middleware availability)
  • Longevity and supply chain stability (automotive-grade qualification)

Case Study: A smart thermostat design selected NXP's MCIMX7U5 (Cortex-M4 + Cortex-A7) for its combination of real-time sensor processing and application-layer connectivity.

8. Industry Trends

Emerging directions include:

  • AI integration: On-chip neural processing units (NPUs) for edge ML inference
  • Heterogeneous computing: Multi-architecture SoCs (RISC-V + GPU + NPU)
  • Advanced packaging: 3D-stacked memory integration for bandwidth-intensive applications
  • Functional safety: ISO 26262 compliance for autonomous vehicle systems
  • Open ecosystems: Growth of RISC-V adoption in custom ASIC designs
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