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Technical Paper

Automotive ADAS Camera System Configuration Using Multi-Core Microcontroller

2015-03-10
2015-01-0023
It has become an important trend to implement safety-related requirements in the road vehicles. Recent studies have shown that accidents, which occurred when drivers are not focused due to fatigue or distractions, can be predicted in advance when using safety features. Advanced Driver Assistance Systems (ADAS) are used to prevent this kind of situation. Currently, many major tiers are using a DSP chip for ADAS applications. This paper suggests the migration from a DSP configuration to a Microcontroller configuration for ADAS application, for example, using a 32bit Multi-core Microcontroller. In this paper, the following topics will be discussed. Firstly, this paper proposes and describes the system block diagram for ADAS configuration followed by the requirements of the ADAS system. Secondly, the paper discusses the current solutions using a DSP. Thirdly, the paper presents a system that is migrated to a Multi-core microcontroller.
Journal Article

On-Chip Delta-Sigma ADC for Rotor Positioning Sensor Application (Resolver-to-Digital Converter)

2014-04-01
2014-01-0333
This paper discusses the RDC method utilizing delta-sigma analog-to-digital converter hardware module (DSADC) integrated in the Infineon's microcontroller family. With its higher resolution capability when compared to the regularly used ADC with successive-approximation (SAR), DSADC seems to have more potential. On the other hand, DSADC's inherent properties, such as asynchronous sampling rate and group delay, which when not handled properly, would have negative effects to the rotor positioning system. The solution to overcome those side-effects involves utilization of other internal microcontroller's resources such as timers and capture units, as well as additional software processing run inside CPU. The rotor positioning system is first modeled and simulated in high-level simulation language environment (Matlab and Simulink) in order to predict the transient- and steady state behaviors. The group delay itself is obtained by simulating the model of DSADC module implementation.
Technical Paper

Implementing Automotive Microcontroller Abstraction Layer (MCAL) on 32 bit Architectures

2006-04-03
2006-01-1554
Modern automotive systems are highly complex, incorporating more than one CPU core, running with more than 100 MHz and consisting of millions of transistors. Similarly, software complexity is growing at an even higher rate. There is thus a high expectation in the automotive market that deliveries from μC suppliers should also contain an independent software layer - the Microcontroller Abstraction Layer - placed on the register level of the μC. The I/O drivers standardization activity, which started with the HIS (Hersteller Initiative Software), is now continued with AUTOSAR (Automotive Open System Architecture) which will standardize all layers of the ECU basic software. The complex interaction between specifically implemented hardware features and standardized software requirements is a big challenge for software driver development.
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