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SS 2024
LectureTypeSPPSECTS-CreditsCourse number
Digital Integrated Circuits 2 ILV 3,5 5,0 M2.02840.20.021
Master Thesis MT 0,0 24,0 M-ISCD-4.01
Master Thesis - Seminar ILV 4,0 6,0 M-ISCD-4.02
WS 2023
Compulsory optional subject: Elective Courses 2TypeSPPSECTS-Credits
Arithmetic Modules for VLSI/SoC Design ILV 3,5 5,0 M-ISCD-3.10
LectureTypeSPPSECTS-CreditsCourse number
Digital Integrated Circuits 1 ILV 3,5 5,0 M2.02840.10.021
IC Evaluation PT 1,5 2,0 M-ISCD-3.02
Introduction to Integrated Circuits Design Project PA 3,0 5,0 M2.0284.10.041
Methods in Systems and Circuits Theory ILV 3,5 5,0 M2.0284.10.061
Specialization Area: ElectronicsTypeSPPSECTS-Credits
Integrated Circuits Basics ILV 2,0 2,0 B2.05272.50.390
Specialization Area: ElectronicsTypeSPPSECTS-Credits
Integrated Circuits Basics ILV 2,0 2,0 B2.05272.50.390
Integrated Circuits Basics ILV 2,0 2,0 B2.05272.50.390
TitelAutorJahr
Digital Readout of the ATLAS Muon Spectrometer Michael Dauer 2023
Automotive Analog Hall Sensor with Ratiometric Output Michaela Keil 2022
Modelling of Class D amplifier for Sensor Applications with IEEE 1666.1 David Kwaku Okyere DARKWAH 2021
TitelAutorJahr
Digital Readout of the ATLAS Muon Spectrometer Michael Dauer 2023
TitelAutorJahr
Automotive Analog Hall Sensor with Ratiometric Output Michaela Keil 2022
TitelAutorJahr
Modelling of Class D amplifier for Sensor Applications with IEEE 1666.1 David Kwaku Okyere DARKWAH 2021
TitelAutorJahr
TEMPERATURE CONTROL SYSTEM
  • Xinying FU
  • 2021
    Sinewave generator for capacitive sensor applications
  • Josip Plazonic
  • 2020
    TitelAutorJahr
    TEMPERATURE CONTROL SYSTEM
  • Xinying FU
  • 2021
    TitelAutorJahr
    Sinewave generator for capacitive sensor applications
  • Josip Plazonic
  • 2020
    Run-TimeApril/2023 - March/2028
    Project management
  • Santiago Martin Sondón
  • Project staff
  • Michael Köberle
  • Vinayak HANDE
  • Ingmar Bihlo
  • Corinna Maria Kudler
  • Irene Terpetschnig
  • Wolfgang Scherr
  • Angelika Voutsinas
  • Junu KASIM
  • Matthew BIO
  • Raghava SRINIVASAN NIRANJAN
  • Gerhard Paoli
  • Vahid Irannejad
  • Amin Chegeni
  • Sepideh Gholipourpicha
  • Violeta Petrescu
  • Rajani Arasada
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammJosef Ressel Zentrum
    Förderinstitution/Auftraggeber
  • Christian Doppler Forschungsgesellschaft
  • The JR Centre for System-on-Chip Design Automation funded by the Christian Doppler Forschungsgesellschaft and Bundesministerium Arbeit und Wirtschaft aims to research fundamentally new methods for the development of „system-on-chips" in modern semiconductor technologies and to advance the automation of the development process of integrated circuits. Until now, chip designers have spent a lot of time for routine tasks like reworking basic circuit blocks with already given functionality in existing technologies to enable cost reduction. The JR Centre’s research will help to automate the development of integrated circuits and thus free up the working time of experts for innovative new development tasks, therefore making an essential contribution to strengthening competitiveness in the semiconductor industry.

    Run-TimeDecember/2023 - September/2024
    Project management
  • Wolfgang Scherr
  • Project staff
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammWirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Infineon Technologies Austria AG
  • Polymer fibers (PMF) reflect the latest and leading-edge research in wireline communication systems and a next step in direction of low-power, low-cost and high speed operation. Compared to optical fibers, they can be significantly more cost efficient in installation and operation. In respect to copper (twisted-pair e.g. CAT7/8 Ethernet, SATA, HDMI or similar), they can be also faster at lower power consumption. This applied research project aims to develop a research platform on one of the latest RF-SoC (radio frequency – system on chip) FPGAs (field programmable gate array), to allow more detailed analysis of the potential of such PMF links and to develop a real-life demonstration to show its capability. The research includes research on reliable communication (modulation) systems, which will differ significantly to the mentioned optical and copper SERDES (serialize/deserialize) connections but this system not yet defined. It also includes for the integration of the RF link the integration of the latest 60GHz transceiver ICs of Infineon Technologies (BGT60), which is also financing this research project. Thus this work can contribute to the development of a future PMF link standard, in a similar fashion as the initially mentioned standardized communication links.

    • Infineon Technologies Austria AG (Fördergeber/Auftraggeber)
    Run-TimeOctober/2023 - September/2027
    Project management
  • Jens Peter Konrath
  • Project staff
  • Josef Anibas
  • Ulla Birnbacher
  • Thomas Klinger
  • Christian Kreiter
  • Alexandra Liegl
  • Wolfgang Scherr
  • Johannes Sturm
  • Wolfgang Werth
  • Christoph Riedl
  • Santiago Martin Sondón
  • Michael Köberle
  • Gerhard Paoli
  • Subrahmanyam BOYAPATI
  • Irene Terpetschnig
  • Emmanuel Seun Oluwasogo
  • Mario Kapl
  • Christian Madritsch
  • Christoph Ungermanns
  • ForschungsschwerpunktBildungsforschung
    Studiengänge
  • Industrial Power Electronics
  • Integrated Systems and Circuits Design
  • Systems Engineering
  • ForschungsprogrammDIGITAL-2022-SKILLS-03-SPECIALISED-EDU, DIGITAL-SIMPLE
    Förderinstitution/Auftraggeber
  • European Commission
  • The EU Chips Act aims to increase Europe‘s global production share of semiconductors to 20% by 2030, leading to a need for a skilled workforce to support this growth. Additionally, the EU‘s Green Deal initiative focuses on a transition to sustainable and energy efficient technologies, further emphasizing the need for expertise in sustainable chip development and green applications. There is an EU wide shortage of skilled workers in microelectronics. Addressing this shortage will be crucial in meeting the goals of both the EU Chips Act and the Green Deal. Furthermore, the next generation of students is largely interested in contributing to a sustainable environment. Providing them with the opportunity to gain deeper expertise in this field will align their skills with the industry‘s future needs. The proposed project „Green Chips-EDU“ supports the aforementioned goals by addressing the needs and challenges of a green and digital transition in the microelectronics industry. The consortium, made up of 15 key players from 7 EU countries, aims to build an attractive education ecosystem in green microelectronics by integrating the knowledge triangle of excellent education, industries needs and research challenges. The consortium includes 6 Unite! partners working on a harmonized curriculum focusing on energy efficiency and the development of sustainable integrated circuits. The project addresses all objectives from the call by offering a wide range of degree programs including mutual recognition as well as self-standing modules, implementing staff and student mobility, digital learning formats and upgrading infrastructure. About 600 students are planned to receive degrees or certificates in green electronics. In addition, summer schools, sustainability hackathons, learn-repair cafés as well as expert lectures by the partner companies and research institutions are organized to attract and train students to counteract the skills shortage in microelectronics in the EU.

    • European Commission (Fördergeber/Auftraggeber)
    • TU Graz (Lead Partner)
    • Politecnico Di Torino
    • Technische Universität Darmstadt
    • Universitat Politecnica de Catalunya
    • Institut Polytechnique de Grenoble
    • Instituto Superior Tecnico
    • INESC ID
    • Infineon Technologies Austria AG
    • KONCAR - ELECTRONICS AND INFORMATICS Inc.
    • Silicongate LDA
    • JLG Formations
    • AEDVICES Consulting
    • RUSZ - Verein zur Förderung der Sozialwirtschaft
    • BK-Business Konsens OG
    • CADENCE DESIGN SYSTEMS GMBH
    • STMICROELECTRONICS (ALPS) SAS
    • ONG "THE STERN STEWART INSTITUTE"/LYCEE PRIVE SHORGE
    Run-TimeJanuary/2023 - December/2024
    Project management
  • Wolfgang Scherr
  • Project staff
  • Rutvi PADHY
  • Irene Terpetschnig
  • Shilpa Shyam
  • Gerhard Paoli
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammNicht wirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Silicon Austria Labs GmbH
  • This project is dedicated to establish procedures in modelling for electromagnetic compatibility as well as high-level modelling for wireless communication and EMC. It consists of three work packages. Part 1 contains the modelling of EMC for near field communication (NFC) in the automotive domain, making use of 3D simulation and circuit simulation. Part 2 deals with functional modelling using the standardized SystemC language (IEEE 1666) for a top-down concept- and verification methodology and also investigates in extending the model using SystemC-AMS (IEEE 1666.1). Also a “shift left” approach - to start software development and test early using virtual prototypes - is addressed in this part, as well as extending the model for e.g. abstract Monte-Carlo simulations of a radio-frequency (RF) signal chain. In Part 3, the feasibility and also usability of such a high-level, functional modelling approach will be extended to wireless systems incl. EMC modelling for an NXP ultra-wide-band (UWB) transceiver product, instead of a classical Verilog WREAL model. It includes a complete end-to-end (E2E) path of transmitter (TX) and receiver (RX) with a wireless channel in between (as functional IEEE 1666/1666.1 model) and simulates EMC events (“disturbers”) in the channel. It is a cooperative project between NXP Semiconductors Austria GmbH and Co KG, Silicon Austria Labs GmbH and Carinthia University of Applied Sciences.

    Run-TimeMay/2021 - March/2023
    Project management
  • Dongning Zhao
  • Vinayak HANDE
  • Project staff
  • Wolfgang Scherr
  • Manfred Ley
  • Mehdi MORADIAN BOVANLOO
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Ingmar Bihlo
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Irene Terpetschnig
  • ForschungsschwerpunktSensorik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammRegionale Impulsförderung/EFRE-REACT
    Förderinstitution/Auftraggeber
  • KWF - Kärntner Wirtschaftsförderungsfonds
  • The scientific and technological objective of PATTERN-Skin was to develop a novel embodied bendable and potentially stretchable multimodal modular robot skin that provided robots with unprecedented sensing abilities, facilitating contact-based/tactile and contact-less multimodal exploration of the world towards safe human-robot interaction. Besides the physical realization of the skin modules, physically accurate real-time simulations („digital twin“) were developed that allowed for the optimization and tailoring of skin configurations for robots and applications. Based on this sensor skin and the corresponding digital twin, PATTERN-Skin investigated model-based and AI-based methods to obtain representations of the environment for utilization in safe control strategies and aiming to meet requirements as defined in standards such as ISO 15066 and 10218 safety standards. With respect to safe, reliable, and secure assembly of full systems from a number of individual sensor skin modules, a unified design pattern utilizing Near Field Communication (NFC) and hardware security elements was investigated for both wired and wireless connectivity. By equipping robots with these enhanced sensing and interaction abilities, PATTERN-Skin was expected to impact a wide range of robotics applications ranging from personal care and assistance to agile logistics and manufacturing. The developed technologies and methods were open, modular, and non-proprietary.

    This project is co-financed by the European Regional Development Fund. REACT-EU FUNDED AS PART OF THE UNION'S RESPONSE TO THE COVID-19 PANDEMIC. You can find more information about IWB/EFRE at www.efre.gv.at

    Run-TimeJanuary/2020 - November/2022
    Project management
  • Johannes Sturm
  • Wolfgang Scherr
  • Project staff
  • Corinna Maria Kudler
  • Michael Köberle
  • ForschungsschwerpunktHochfrequenztechnik
    Studiengang
  • Integrated Systems and Circuits Design
  • Forschungsprogrammnicht wirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Silicon Austria Labs GmbH
  • The main goal of the ANAGEN project is to develop an agile analog design methodology where the IC analog engineering knowledge will be captured in executable generators implemented in Python programming language. The target of the project is to design of basic analog blocks and systems that will be reused across different system-on-chips (SoCs) and CMOS technologies.

    Run-TimeApril/2019 - December/2024
    Project management
  • Johannes Sturm
  • Project staff
  • Suchendranath Popuri
  • Vedran Ibrahimovic
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Sahar Sarafi
  • Bernd Filipitsch
  • Wolfgang Scherr
  • Graciele Batistell
  • Angelika Voutsinas
  • Ranjith Reddy KATTA
  • Swathi KARUTURI
  • Yassmina ELIOUJ
  • Sepideh Gholipourpicha
  • Subrahmanyam BOYAPATI
  • Vahid Irannejad
  • Irene Terpetschnig
  • Amin Chegeni
  • Matthew BIO
  • Yogananda Reddy ANKANA
  • Ingmar Bihlo
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammNicht wirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Silicon Austria Labs GmbH
  • The “Research Lab for Radio Frequency Frontends” (RFFE-Lab) is a cooperative research lab jointly operated with Silicon Austria Labs (SAL) and co-located at CUAS. As successor of the Josef Ressel Center for Integrated CMOS RF Systems and Circuits (Interact), it acts as an innovation hub for high-level research in RF and mmWave integrated circuits for wireless and wired high-speed data communication systems.

    Run-TimeJanuary/2019 - June/2022
    Homepage Projektwebseite
    Project management
  • Dongning Zhao
  • Wolfgang Scherr
  • Project staff
  • Mehdi MORADIAN BOVANLOO
  • Ivan SEJC
  • Ram Ratnaker Reddy BODHA
  • David Kwaku Okyere DARKWAH
  • Klaudia LLESHI
  • ForschungsschwerpunktSensorik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammRegionale Impulsförderung/EFRE-KWF
    Förderinstitution/Auftraggeber
  • Bundesministerium für Wissenschaft, Forschung und Wirtschaft (BMWFW)
  • The aim of the CapSize project was to develop a cost-effective, novel perception sensor system for gesture recognition, position estimation, and motion tracking in a real-time human-robot working environment using innovative integrated sensor solutions. The new key technology was intended to enable the development of a Contactless and Safe Interaction Cell (CSIC), where humans could collaborate and interact with the robot in a safe and intuitive way. CapSize was a cooperative project between the University of Klagenfurt, Carinthia University of Applied Sciences, and Joanneum Research Robotics. The research target of Carinthia University of Applied Sciences was to develop an integrated circuit for capacitive sensor read-out e.g. as proximity detection, to ensure human safety and increase the collaborative productivity of robots in the future.

    This project is co-financed by the ERDF European Regional Development Fund.

    Run-TimeFebruary/2018 - December/2030
    Homepage Hauptseite
    Project management
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ingmar Bihlo
  • Vedran Ibrahimovic
  • Dongning Zhao
  • Sahar Sarafi
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Angelika Voutsinas
  • Vinayak HANDE
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Sai Manish SASANAPURI
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengänge
  • Electrical Energy und Mobility Systems
  • Integrated Systems and Circuits Design
  • Medizinische Informationstechnik
  • Netzwerktechnik und Kommunikation
  • Systems Engineering
  • ForschungsprogrammZFF_1+ F&E Gruppen, 1. Call 2017
    Förderinstitution/Auftraggeber
  • Fachhochschule Kärnten - Gemeinnützige Privatstiftung
  • Die Forschungsgruppe RESPECT hat das Ziel die unterschiedlichen, zur Zeit an der Fachhochschule unabhängig bearbeiteten Forschungsthemen im Bereich Hochfrequenztechnik, Analog- und Digitaltechnik zu bündeln und damit eine enge Zusammenarbeit und Knowhow-Austausch zu ermöglichen.

    Die Forschungs- und Entwicklungsaktivitäten der Forschungsgruppe können thematisch in die 3 Themenbereiche: Integrierte Schaltungen, Systemintegration und Modellierung und Simulation gebündelt werden. Die enge Kooperation und der Austausch der vorhandenen spezifischen Kompetenzen zwischen diesen drei Themenbereichen innerhalb der Forschungsgruppe ermöglicht die Durchführung komplexer, multi-disziplinärer Projekte im Bereich integrierter Schaltungen. Weites kann im Vergleich zum Ist-Stand die internationale Sichtbarkeit im Bereich der Forschung gesteigert werden.


    • Fachhochschule Kärnten - Gemeinnützige Privatstiftung (Fördergeber/Auftraggeber)
    Run-TimeSeptember/2018 - December/2018
    Homepage Projektwebseite
    Project management
  • Dongning Zhao
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ivan SEJC
  • Ivan SEJC
  • Mehdi MORADIAN BOVANLOO
  • ForschungsschwerpunktSensorik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammRegionale Impulsförderung/EFRE-KWF
    Förderinstitution/Auftraggeber
  • KWF - Kärntner Wirtschaftsförderungsfonds
  • The demand from industry for a shared human robot work environment for safe human robot collaboration has increased tremendously in the past years. The most demanding requirement is to ensure the inherent safety of the human in such a work environment and to fulfill the technical specification ISO/TS15066 for collaborative robots in the industrial context. Current research approaches utilize vision based solutions in combination with sensors mounted on the robot manipulator to detect an approaching human. One drawback of these solutions is the occurrence of occlusions (“blind spots”) due to, e.g., robot manipulator movement. In such a situation, the robot needs to go into an intrinsically safe mode, i.e. it has to reduce the speed of the manipulator thus significantly reducing the productivity. Consequently, the lack or rather the major restrictions of the currently available perception sensor technology with respect to measurement speed, range and integrability, etc. prevents high motion speed of collaborative robots. A central point of investigation in the project is the development of a novel perception sensor system, combining a variety of physical measurement principles (capacitive, ToF, etc.) in order to increase measurement rate, range, accuracy and resolution for position estimation and motion tracking in real time of a worker in the near surrounding of the workplace and robot manipulator. Furthermore, the new perception sensor system is fully integrated in the workplace and the robot manipulator. This new key technology enables the development of a Contactless and Safe Interaction Cell (CSIC), where a human can safely fulfill collaborative tasks jointly with a robot manipulator. Parts of the perception sensor are also utilized for a gesture based human robot interface. This allows for an intuitive interaction of the human with the robot manipulator, which will improve the user experience and increase the user acceptance. The user acceptance will be further fostered through the imitation of a human-human interaction behavior as the robot manipulator will mimic human behavior in the motion planning and control strategy of the robot manipulator. The new perception sensor technology will thus tremendously increase the operational speed of the robot manipulator in the CSIC further increasing the productivity of the collaborative human robot work cell while ensuring the safety of the human throughout the entire time and raising the human acceptance and user experience due to a human like intuitive interaction and control.

     

    Project goals:

    * Development of a modular human robot work cell (Contactless and Safe Interaction Cell)

    * Realtime perception sensor system
    * Realtime proximity sensor system
    * Capacitive to Digital Converter Sensor Chip

     

    Dieses Projekt wird aus Mitteln des EFRE Europäischen Fonds für regionale Entwicklung kofinanziert.
    www.efre.gv.at

    Nähere Informationen entnehmen Sie bitte der Webseite: https://www.efre.gv.at/

    Run-TimeFebruary/2018 - December/2030
    Homepage Hauptseite
    Project management
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ingmar Bihlo
  • Vedran Ibrahimovic
  • Dongning Zhao
  • Sahar Sarafi
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Angelika Voutsinas
  • Vinayak HANDE
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Sai Manish SASANAPURI
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengänge
  • Electrical Energy und Mobility Systems
  • Integrated Systems and Circuits Design
  • Medizinische Informationstechnik
  • Netzwerktechnik und Kommunikation
  • Systems Engineering
  • ForschungsprogrammZFF_1+ F&E Gruppen, 1. Call 2017
    Förderinstitution/Auftraggeber
  • Fachhochschule Kärnten - Gemeinnützige Privatstiftung
  • Die Forschungsgruppe RESPECT hat das Ziel die unterschiedlichen, zur Zeit an der Fachhochschule unabhängig bearbeiteten Forschungsthemen im Bereich Hochfrequenztechnik, Analog- und Digitaltechnik zu bündeln und damit eine enge Zusammenarbeit und Knowhow-Austausch zu ermöglichen.

    Die Forschungs- und Entwicklungsaktivitäten der Forschungsgruppe können thematisch in die 3 Themenbereiche: Integrierte Schaltungen, Systemintegration und Modellierung und Simulation gebündelt werden. Die enge Kooperation und der Austausch der vorhandenen spezifischen Kompetenzen zwischen diesen drei Themenbereichen innerhalb der Forschungsgruppe ermöglicht die Durchführung komplexer, multi-disziplinärer Projekte im Bereich integrierter Schaltungen. Weites kann im Vergleich zum Ist-Stand die internationale Sichtbarkeit im Bereich der Forschung gesteigert werden.


    • Fachhochschule Kärnten - Gemeinnützige Privatstiftung (Fördergeber/Auftraggeber)
    Run-TimeFebruary/2018 - December/2030
    Homepage Hauptseite
    Project management
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ingmar Bihlo
  • Vedran Ibrahimovic
  • Dongning Zhao
  • Sahar Sarafi
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Angelika Voutsinas
  • Vinayak HANDE
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Sai Manish SASANAPURI
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengänge
  • Electrical Energy und Mobility Systems
  • Integrated Systems and Circuits Design
  • Medizinische Informationstechnik
  • Netzwerktechnik und Kommunikation
  • Systems Engineering
  • ForschungsprogrammZFF_1+ F&E Gruppen, 1. Call 2017
    Förderinstitution/Auftraggeber
  • Fachhochschule Kärnten - Gemeinnützige Privatstiftung
  • Die Forschungsgruppe RESPECT hat das Ziel die unterschiedlichen, zur Zeit an der Fachhochschule unabhängig bearbeiteten Forschungsthemen im Bereich Hochfrequenztechnik, Analog- und Digitaltechnik zu bündeln und damit eine enge Zusammenarbeit und Knowhow-Austausch zu ermöglichen.

    Die Forschungs- und Entwicklungsaktivitäten der Forschungsgruppe können thematisch in die 3 Themenbereiche: Integrierte Schaltungen, Systemintegration und Modellierung und Simulation gebündelt werden. Die enge Kooperation und der Austausch der vorhandenen spezifischen Kompetenzen zwischen diesen drei Themenbereichen innerhalb der Forschungsgruppe ermöglicht die Durchführung komplexer, multi-disziplinärer Projekte im Bereich integrierter Schaltungen. Weites kann im Vergleich zum Ist-Stand die internationale Sichtbarkeit im Bereich der Forschung gesteigert werden.


    • Fachhochschule Kärnten - Gemeinnützige Privatstiftung (Fördergeber/Auftraggeber)
    Run-TimeFebruary/2018 - December/2030
    Homepage Hauptseite
    Project management
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ingmar Bihlo
  • Vedran Ibrahimovic
  • Dongning Zhao
  • Sahar Sarafi
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Angelika Voutsinas
  • Vinayak HANDE
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Sai Manish SASANAPURI
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengänge
  • Electrical Energy und Mobility Systems
  • Integrated Systems and Circuits Design
  • Medizinische Informationstechnik
  • Netzwerktechnik und Kommunikation
  • Systems Engineering
  • ForschungsprogrammZFF_1+ F&E Gruppen, 1. Call 2017
    Förderinstitution/Auftraggeber
  • Fachhochschule Kärnten - Gemeinnützige Privatstiftung
  • Die Forschungsgruppe RESPECT hat das Ziel die unterschiedlichen, zur Zeit an der Fachhochschule unabhängig bearbeiteten Forschungsthemen im Bereich Hochfrequenztechnik, Analog- und Digitaltechnik zu bündeln und damit eine enge Zusammenarbeit und Knowhow-Austausch zu ermöglichen.

    Die Forschungs- und Entwicklungsaktivitäten der Forschungsgruppe können thematisch in die 3 Themenbereiche: Integrierte Schaltungen, Systemintegration und Modellierung und Simulation gebündelt werden. Die enge Kooperation und der Austausch der vorhandenen spezifischen Kompetenzen zwischen diesen drei Themenbereichen innerhalb der Forschungsgruppe ermöglicht die Durchführung komplexer, multi-disziplinärer Projekte im Bereich integrierter Schaltungen. Weites kann im Vergleich zum Ist-Stand die internationale Sichtbarkeit im Bereich der Forschung gesteigert werden.


    • Fachhochschule Kärnten - Gemeinnützige Privatstiftung (Fördergeber/Auftraggeber)
    Run-TimeApril/2023 - March/2028
    Project management
  • Santiago Martin Sondón
  • Project staff
  • Michael Köberle
  • Vinayak HANDE
  • Ingmar Bihlo
  • Corinna Maria Kudler
  • Irene Terpetschnig
  • Wolfgang Scherr
  • Angelika Voutsinas
  • Junu KASIM
  • Matthew BIO
  • Raghava SRINIVASAN NIRANJAN
  • Gerhard Paoli
  • Vahid Irannejad
  • Amin Chegeni
  • Sepideh Gholipourpicha
  • Violeta Petrescu
  • Rajani Arasada
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammJosef Ressel Zentrum
    Förderinstitution/Auftraggeber
  • Christian Doppler Forschungsgesellschaft
  • The JR Centre for System-on-Chip Design Automation funded by the Christian Doppler Forschungsgesellschaft and Bundesministerium Arbeit und Wirtschaft aims to research fundamentally new methods for the development of „system-on-chips" in modern semiconductor technologies and to advance the automation of the development process of integrated circuits. Until now, chip designers have spent a lot of time for routine tasks like reworking basic circuit blocks with already given functionality in existing technologies to enable cost reduction. The JR Centre’s research will help to automate the development of integrated circuits and thus free up the working time of experts for innovative new development tasks, therefore making an essential contribution to strengthening competitiveness in the semiconductor industry.

    Run-TimeFebruary/2018 - December/2030
    Homepage Hauptseite
    Project management
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ingmar Bihlo
  • Vedran Ibrahimovic
  • Dongning Zhao
  • Sahar Sarafi
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Angelika Voutsinas
  • Vinayak HANDE
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Sai Manish SASANAPURI
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengänge
  • Electrical Energy und Mobility Systems
  • Integrated Systems and Circuits Design
  • Medizinische Informationstechnik
  • Netzwerktechnik und Kommunikation
  • Systems Engineering
  • ForschungsprogrammZFF_1+ F&E Gruppen, 1. Call 2017
    Förderinstitution/Auftraggeber
  • Fachhochschule Kärnten - Gemeinnützige Privatstiftung
  • Die Forschungsgruppe RESPECT hat das Ziel die unterschiedlichen, zur Zeit an der Fachhochschule unabhängig bearbeiteten Forschungsthemen im Bereich Hochfrequenztechnik, Analog- und Digitaltechnik zu bündeln und damit eine enge Zusammenarbeit und Knowhow-Austausch zu ermöglichen.

    Die Forschungs- und Entwicklungsaktivitäten der Forschungsgruppe können thematisch in die 3 Themenbereiche: Integrierte Schaltungen, Systemintegration und Modellierung und Simulation gebündelt werden. Die enge Kooperation und der Austausch der vorhandenen spezifischen Kompetenzen zwischen diesen drei Themenbereichen innerhalb der Forschungsgruppe ermöglicht die Durchführung komplexer, multi-disziplinärer Projekte im Bereich integrierter Schaltungen. Weites kann im Vergleich zum Ist-Stand die internationale Sichtbarkeit im Bereich der Forschung gesteigert werden.


    • Fachhochschule Kärnten - Gemeinnützige Privatstiftung (Fördergeber/Auftraggeber)
    Run-TimeOctober/2023 - September/2027
    Project management
  • Jens Peter Konrath
  • Project staff
  • Josef Anibas
  • Ulla Birnbacher
  • Thomas Klinger
  • Christian Kreiter
  • Alexandra Liegl
  • Wolfgang Scherr
  • Johannes Sturm
  • Wolfgang Werth
  • Christoph Riedl
  • Santiago Martin Sondón
  • Michael Köberle
  • Gerhard Paoli
  • Subrahmanyam BOYAPATI
  • Irene Terpetschnig
  • Emmanuel Seun Oluwasogo
  • Mario Kapl
  • Christian Madritsch
  • Christoph Ungermanns
  • ForschungsschwerpunktBildungsforschung
    Studiengänge
  • Industrial Power Electronics
  • Integrated Systems and Circuits Design
  • Systems Engineering
  • ForschungsprogrammDIGITAL-2022-SKILLS-03-SPECIALISED-EDU, DIGITAL-SIMPLE
    Förderinstitution/Auftraggeber
  • European Commission
  • The EU Chips Act aims to increase Europe‘s global production share of semiconductors to 20% by 2030, leading to a need for a skilled workforce to support this growth. Additionally, the EU‘s Green Deal initiative focuses on a transition to sustainable and energy efficient technologies, further emphasizing the need for expertise in sustainable chip development and green applications. There is an EU wide shortage of skilled workers in microelectronics. Addressing this shortage will be crucial in meeting the goals of both the EU Chips Act and the Green Deal. Furthermore, the next generation of students is largely interested in contributing to a sustainable environment. Providing them with the opportunity to gain deeper expertise in this field will align their skills with the industry‘s future needs. The proposed project „Green Chips-EDU“ supports the aforementioned goals by addressing the needs and challenges of a green and digital transition in the microelectronics industry. The consortium, made up of 15 key players from 7 EU countries, aims to build an attractive education ecosystem in green microelectronics by integrating the knowledge triangle of excellent education, industries needs and research challenges. The consortium includes 6 Unite! partners working on a harmonized curriculum focusing on energy efficiency and the development of sustainable integrated circuits. The project addresses all objectives from the call by offering a wide range of degree programs including mutual recognition as well as self-standing modules, implementing staff and student mobility, digital learning formats and upgrading infrastructure. About 600 students are planned to receive degrees or certificates in green electronics. In addition, summer schools, sustainability hackathons, learn-repair cafés as well as expert lectures by the partner companies and research institutions are organized to attract and train students to counteract the skills shortage in microelectronics in the EU.

    • European Commission (Fördergeber/Auftraggeber)
    • TU Graz (Lead Partner)
    • Politecnico Di Torino
    • Technische Universität Darmstadt
    • Universitat Politecnica de Catalunya
    • Institut Polytechnique de Grenoble
    • Instituto Superior Tecnico
    • INESC ID
    • Infineon Technologies Austria AG
    • KONCAR - ELECTRONICS AND INFORMATICS Inc.
    • Silicongate LDA
    • JLG Formations
    • AEDVICES Consulting
    • RUSZ - Verein zur Förderung der Sozialwirtschaft
    • BK-Business Konsens OG
    • CADENCE DESIGN SYSTEMS GMBH
    • STMICROELECTRONICS (ALPS) SAS
    • ONG "THE STERN STEWART INSTITUTE"/LYCEE PRIVE SHORGE
    Run-TimeApril/2023 - March/2028
    Project management
  • Santiago Martin Sondón
  • Project staff
  • Michael Köberle
  • Vinayak HANDE
  • Ingmar Bihlo
  • Corinna Maria Kudler
  • Irene Terpetschnig
  • Wolfgang Scherr
  • Angelika Voutsinas
  • Junu KASIM
  • Matthew BIO
  • Raghava SRINIVASAN NIRANJAN
  • Gerhard Paoli
  • Vahid Irannejad
  • Amin Chegeni
  • Sepideh Gholipourpicha
  • Violeta Petrescu
  • Rajani Arasada
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammJosef Ressel Zentrum
    Förderinstitution/Auftraggeber
  • Christian Doppler Forschungsgesellschaft
  • The JR Centre for System-on-Chip Design Automation funded by the Christian Doppler Forschungsgesellschaft and Bundesministerium Arbeit und Wirtschaft aims to research fundamentally new methods for the development of „system-on-chips" in modern semiconductor technologies and to advance the automation of the development process of integrated circuits. Until now, chip designers have spent a lot of time for routine tasks like reworking basic circuit blocks with already given functionality in existing technologies to enable cost reduction. The JR Centre’s research will help to automate the development of integrated circuits and thus free up the working time of experts for innovative new development tasks, therefore making an essential contribution to strengthening competitiveness in the semiconductor industry.

    Run-TimeFebruary/2018 - December/2030
    Homepage Hauptseite
    Project management
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ingmar Bihlo
  • Vedran Ibrahimovic
  • Dongning Zhao
  • Sahar Sarafi
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Angelika Voutsinas
  • Vinayak HANDE
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Sai Manish SASANAPURI
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengänge
  • Electrical Energy und Mobility Systems
  • Integrated Systems and Circuits Design
  • Medizinische Informationstechnik
  • Netzwerktechnik und Kommunikation
  • Systems Engineering
  • ForschungsprogrammZFF_1+ F&E Gruppen, 1. Call 2017
    Förderinstitution/Auftraggeber
  • Fachhochschule Kärnten - Gemeinnützige Privatstiftung
  • Die Forschungsgruppe RESPECT hat das Ziel die unterschiedlichen, zur Zeit an der Fachhochschule unabhängig bearbeiteten Forschungsthemen im Bereich Hochfrequenztechnik, Analog- und Digitaltechnik zu bündeln und damit eine enge Zusammenarbeit und Knowhow-Austausch zu ermöglichen.

    Die Forschungs- und Entwicklungsaktivitäten der Forschungsgruppe können thematisch in die 3 Themenbereiche: Integrierte Schaltungen, Systemintegration und Modellierung und Simulation gebündelt werden. Die enge Kooperation und der Austausch der vorhandenen spezifischen Kompetenzen zwischen diesen drei Themenbereichen innerhalb der Forschungsgruppe ermöglicht die Durchführung komplexer, multi-disziplinärer Projekte im Bereich integrierter Schaltungen. Weites kann im Vergleich zum Ist-Stand die internationale Sichtbarkeit im Bereich der Forschung gesteigert werden.


    • Fachhochschule Kärnten - Gemeinnützige Privatstiftung (Fördergeber/Auftraggeber)
    Run-TimeOctober/2023 - September/2027
    Project management
  • Jens Peter Konrath
  • Project staff
  • Josef Anibas
  • Ulla Birnbacher
  • Thomas Klinger
  • Christian Kreiter
  • Alexandra Liegl
  • Wolfgang Scherr
  • Johannes Sturm
  • Wolfgang Werth
  • Christoph Riedl
  • Santiago Martin Sondón
  • Michael Köberle
  • Gerhard Paoli
  • Subrahmanyam BOYAPATI
  • Irene Terpetschnig
  • Emmanuel Seun Oluwasogo
  • Mario Kapl
  • Christian Madritsch
  • Christoph Ungermanns
  • ForschungsschwerpunktBildungsforschung
    Studiengänge
  • Industrial Power Electronics
  • Integrated Systems and Circuits Design
  • Systems Engineering
  • ForschungsprogrammDIGITAL-2022-SKILLS-03-SPECIALISED-EDU, DIGITAL-SIMPLE
    Förderinstitution/Auftraggeber
  • European Commission
  • The EU Chips Act aims to increase Europe‘s global production share of semiconductors to 20% by 2030, leading to a need for a skilled workforce to support this growth. Additionally, the EU‘s Green Deal initiative focuses on a transition to sustainable and energy efficient technologies, further emphasizing the need for expertise in sustainable chip development and green applications. There is an EU wide shortage of skilled workers in microelectronics. Addressing this shortage will be crucial in meeting the goals of both the EU Chips Act and the Green Deal. Furthermore, the next generation of students is largely interested in contributing to a sustainable environment. Providing them with the opportunity to gain deeper expertise in this field will align their skills with the industry‘s future needs. The proposed project „Green Chips-EDU“ supports the aforementioned goals by addressing the needs and challenges of a green and digital transition in the microelectronics industry. The consortium, made up of 15 key players from 7 EU countries, aims to build an attractive education ecosystem in green microelectronics by integrating the knowledge triangle of excellent education, industries needs and research challenges. The consortium includes 6 Unite! partners working on a harmonized curriculum focusing on energy efficiency and the development of sustainable integrated circuits. The project addresses all objectives from the call by offering a wide range of degree programs including mutual recognition as well as self-standing modules, implementing staff and student mobility, digital learning formats and upgrading infrastructure. About 600 students are planned to receive degrees or certificates in green electronics. In addition, summer schools, sustainability hackathons, learn-repair cafés as well as expert lectures by the partner companies and research institutions are organized to attract and train students to counteract the skills shortage in microelectronics in the EU.

    • European Commission (Fördergeber/Auftraggeber)
    • TU Graz (Lead Partner)
    • Politecnico Di Torino
    • Technische Universität Darmstadt
    • Universitat Politecnica de Catalunya
    • Institut Polytechnique de Grenoble
    • Instituto Superior Tecnico
    • INESC ID
    • Infineon Technologies Austria AG
    • KONCAR - ELECTRONICS AND INFORMATICS Inc.
    • Silicongate LDA
    • JLG Formations
    • AEDVICES Consulting
    • RUSZ - Verein zur Förderung der Sozialwirtschaft
    • BK-Business Konsens OG
    • CADENCE DESIGN SYSTEMS GMBH
    • STMICROELECTRONICS (ALPS) SAS
    • ONG "THE STERN STEWART INSTITUTE"/LYCEE PRIVE SHORGE
    Run-TimeApril/2023 - March/2028
    Project management
  • Santiago Martin Sondón
  • Project staff
  • Michael Köberle
  • Vinayak HANDE
  • Ingmar Bihlo
  • Corinna Maria Kudler
  • Irene Terpetschnig
  • Wolfgang Scherr
  • Angelika Voutsinas
  • Junu KASIM
  • Matthew BIO
  • Raghava SRINIVASAN NIRANJAN
  • Gerhard Paoli
  • Vahid Irannejad
  • Amin Chegeni
  • Sepideh Gholipourpicha
  • Violeta Petrescu
  • Rajani Arasada
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammJosef Ressel Zentrum
    Förderinstitution/Auftraggeber
  • Christian Doppler Forschungsgesellschaft
  • The JR Centre for System-on-Chip Design Automation funded by the Christian Doppler Forschungsgesellschaft and Bundesministerium Arbeit und Wirtschaft aims to research fundamentally new methods for the development of „system-on-chips" in modern semiconductor technologies and to advance the automation of the development process of integrated circuits. Until now, chip designers have spent a lot of time for routine tasks like reworking basic circuit blocks with already given functionality in existing technologies to enable cost reduction. The JR Centre’s research will help to automate the development of integrated circuits and thus free up the working time of experts for innovative new development tasks, therefore making an essential contribution to strengthening competitiveness in the semiconductor industry.

    Run-TimeFebruary/2018 - December/2030
    Homepage Hauptseite
    Project management
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ingmar Bihlo
  • Vedran Ibrahimovic
  • Dongning Zhao
  • Sahar Sarafi
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Angelika Voutsinas
  • Vinayak HANDE
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Sai Manish SASANAPURI
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengänge
  • Electrical Energy und Mobility Systems
  • Integrated Systems and Circuits Design
  • Medizinische Informationstechnik
  • Netzwerktechnik und Kommunikation
  • Systems Engineering
  • ForschungsprogrammZFF_1+ F&E Gruppen, 1. Call 2017
    Förderinstitution/Auftraggeber
  • Fachhochschule Kärnten - Gemeinnützige Privatstiftung
  • Die Forschungsgruppe RESPECT hat das Ziel die unterschiedlichen, zur Zeit an der Fachhochschule unabhängig bearbeiteten Forschungsthemen im Bereich Hochfrequenztechnik, Analog- und Digitaltechnik zu bündeln und damit eine enge Zusammenarbeit und Knowhow-Austausch zu ermöglichen.

    Die Forschungs- und Entwicklungsaktivitäten der Forschungsgruppe können thematisch in die 3 Themenbereiche: Integrierte Schaltungen, Systemintegration und Modellierung und Simulation gebündelt werden. Die enge Kooperation und der Austausch der vorhandenen spezifischen Kompetenzen zwischen diesen drei Themenbereichen innerhalb der Forschungsgruppe ermöglicht die Durchführung komplexer, multi-disziplinärer Projekte im Bereich integrierter Schaltungen. Weites kann im Vergleich zum Ist-Stand die internationale Sichtbarkeit im Bereich der Forschung gesteigert werden.


    • Fachhochschule Kärnten - Gemeinnützige Privatstiftung (Fördergeber/Auftraggeber)
    Run-TimeOctober/2023 - September/2027
    Project management
  • Jens Peter Konrath
  • Project staff
  • Josef Anibas
  • Ulla Birnbacher
  • Thomas Klinger
  • Christian Kreiter
  • Alexandra Liegl
  • Wolfgang Scherr
  • Johannes Sturm
  • Wolfgang Werth
  • Christoph Riedl
  • Santiago Martin Sondón
  • Michael Köberle
  • Gerhard Paoli
  • Subrahmanyam BOYAPATI
  • Irene Terpetschnig
  • Emmanuel Seun Oluwasogo
  • Mario Kapl
  • Christian Madritsch
  • Christoph Ungermanns
  • ForschungsschwerpunktBildungsforschung
    Studiengänge
  • Industrial Power Electronics
  • Integrated Systems and Circuits Design
  • Systems Engineering
  • ForschungsprogrammDIGITAL-2022-SKILLS-03-SPECIALISED-EDU, DIGITAL-SIMPLE
    Förderinstitution/Auftraggeber
  • European Commission
  • The EU Chips Act aims to increase Europe‘s global production share of semiconductors to 20% by 2030, leading to a need for a skilled workforce to support this growth. Additionally, the EU‘s Green Deal initiative focuses on a transition to sustainable and energy efficient technologies, further emphasizing the need for expertise in sustainable chip development and green applications. There is an EU wide shortage of skilled workers in microelectronics. Addressing this shortage will be crucial in meeting the goals of both the EU Chips Act and the Green Deal. Furthermore, the next generation of students is largely interested in contributing to a sustainable environment. Providing them with the opportunity to gain deeper expertise in this field will align their skills with the industry‘s future needs. The proposed project „Green Chips-EDU“ supports the aforementioned goals by addressing the needs and challenges of a green and digital transition in the microelectronics industry. The consortium, made up of 15 key players from 7 EU countries, aims to build an attractive education ecosystem in green microelectronics by integrating the knowledge triangle of excellent education, industries needs and research challenges. The consortium includes 6 Unite! partners working on a harmonized curriculum focusing on energy efficiency and the development of sustainable integrated circuits. The project addresses all objectives from the call by offering a wide range of degree programs including mutual recognition as well as self-standing modules, implementing staff and student mobility, digital learning formats and upgrading infrastructure. About 600 students are planned to receive degrees or certificates in green electronics. In addition, summer schools, sustainability hackathons, learn-repair cafés as well as expert lectures by the partner companies and research institutions are organized to attract and train students to counteract the skills shortage in microelectronics in the EU.

    • European Commission (Fördergeber/Auftraggeber)
    • TU Graz (Lead Partner)
    • Politecnico Di Torino
    • Technische Universität Darmstadt
    • Universitat Politecnica de Catalunya
    • Institut Polytechnique de Grenoble
    • Instituto Superior Tecnico
    • INESC ID
    • Infineon Technologies Austria AG
    • KONCAR - ELECTRONICS AND INFORMATICS Inc.
    • Silicongate LDA
    • JLG Formations
    • AEDVICES Consulting
    • RUSZ - Verein zur Förderung der Sozialwirtschaft
    • BK-Business Konsens OG
    • CADENCE DESIGN SYSTEMS GMBH
    • STMICROELECTRONICS (ALPS) SAS
    • ONG "THE STERN STEWART INSTITUTE"/LYCEE PRIVE SHORGE
    Run-TimeApril/2023 - March/2028
    Project management
  • Santiago Martin Sondón
  • Project staff
  • Michael Köberle
  • Vinayak HANDE
  • Ingmar Bihlo
  • Corinna Maria Kudler
  • Irene Terpetschnig
  • Wolfgang Scherr
  • Angelika Voutsinas
  • Junu KASIM
  • Matthew BIO
  • Raghava SRINIVASAN NIRANJAN
  • Gerhard Paoli
  • Vahid Irannejad
  • Amin Chegeni
  • Sepideh Gholipourpicha
  • Violeta Petrescu
  • Rajani Arasada
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammJosef Ressel Zentrum
    Förderinstitution/Auftraggeber
  • Christian Doppler Forschungsgesellschaft
  • The JR Centre for System-on-Chip Design Automation funded by the Christian Doppler Forschungsgesellschaft and Bundesministerium Arbeit und Wirtschaft aims to research fundamentally new methods for the development of „system-on-chips" in modern semiconductor technologies and to advance the automation of the development process of integrated circuits. Until now, chip designers have spent a lot of time for routine tasks like reworking basic circuit blocks with already given functionality in existing technologies to enable cost reduction. The JR Centre’s research will help to automate the development of integrated circuits and thus free up the working time of experts for innovative new development tasks, therefore making an essential contribution to strengthening competitiveness in the semiconductor industry.

    Run-TimeApril/2019 - December/2024
    Project management
  • Johannes Sturm
  • Project staff
  • Suchendranath Popuri
  • Vedran Ibrahimovic
  • Corinna Maria Kudler
  • Santiago Martin Sondón
  • Sahar Sarafi
  • Bernd Filipitsch
  • Wolfgang Scherr
  • Graciele Batistell
  • Angelika Voutsinas
  • Ranjith Reddy KATTA
  • Swathi KARUTURI
  • Yassmina ELIOUJ
  • Sepideh Gholipourpicha
  • Subrahmanyam BOYAPATI
  • Vahid Irannejad
  • Irene Terpetschnig
  • Amin Chegeni
  • Matthew BIO
  • Yogananda Reddy ANKANA
  • Ingmar Bihlo
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammNicht wirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Silicon Austria Labs GmbH
  • The “Research Lab for Radio Frequency Frontends” (RFFE-Lab) is a cooperative research lab jointly operated with Silicon Austria Labs (SAL) and co-located at CUAS. As successor of the Josef Ressel Center for Integrated CMOS RF Systems and Circuits (Interact), it acts as an innovation hub for high-level research in RF and mmWave integrated circuits for wireless and wired high-speed data communication systems.

    Run-TimeJanuary/2023 - December/2024
    Project management
  • Wolfgang Scherr
  • Project staff
  • Rutvi PADHY
  • Irene Terpetschnig
  • Shilpa Shyam
  • Gerhard Paoli
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammNicht wirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Silicon Austria Labs GmbH
  • This project is dedicated to establish procedures in modelling for electromagnetic compatibility as well as high-level modelling for wireless communication and EMC. It consists of three work packages. Part 1 contains the modelling of EMC for near field communication (NFC) in the automotive domain, making use of 3D simulation and circuit simulation. Part 2 deals with functional modelling using the standardized SystemC language (IEEE 1666) for a top-down concept- and verification methodology and also investigates in extending the model using SystemC-AMS (IEEE 1666.1). Also a “shift left” approach - to start software development and test early using virtual prototypes - is addressed in this part, as well as extending the model for e.g. abstract Monte-Carlo simulations of a radio-frequency (RF) signal chain. In Part 3, the feasibility and also usability of such a high-level, functional modelling approach will be extended to wireless systems incl. EMC modelling for an NXP ultra-wide-band (UWB) transceiver product, instead of a classical Verilog WREAL model. It includes a complete end-to-end (E2E) path of transmitter (TX) and receiver (RX) with a wireless channel in between (as functional IEEE 1666/1666.1 model) and simulates EMC events (“disturbers”) in the channel. It is a cooperative project between NXP Semiconductors Austria GmbH and Co KG, Silicon Austria Labs GmbH and Carinthia University of Applied Sciences.

    Run-TimeDecember/2023 - September/2024
    Project management
  • Wolfgang Scherr
  • Project staff
  • Irene Terpetschnig
  • ForschungsschwerpunktMikroelektronik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammWirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Infineon Technologies Austria AG
  • Polymer fibers (PMF) reflect the latest and leading-edge research in wireline communication systems and a next step in direction of low-power, low-cost and high speed operation. Compared to optical fibers, they can be significantly more cost efficient in installation and operation. In respect to copper (twisted-pair e.g. CAT7/8 Ethernet, SATA, HDMI or similar), they can be also faster at lower power consumption. This applied research project aims to develop a research platform on one of the latest RF-SoC (radio frequency – system on chip) FPGAs (field programmable gate array), to allow more detailed analysis of the potential of such PMF links and to develop a real-life demonstration to show its capability. The research includes research on reliable communication (modulation) systems, which will differ significantly to the mentioned optical and copper SERDES (serialize/deserialize) connections but this system not yet defined. It also includes for the integration of the RF link the integration of the latest 60GHz transceiver ICs of Infineon Technologies (BGT60), which is also financing this research project. Thus this work can contribute to the development of a future PMF link standard, in a similar fashion as the initially mentioned standardized communication links.

    • Infineon Technologies Austria AG (Fördergeber/Auftraggeber)
    Run-TimeMay/2021 - March/2023
    Project management
  • Dongning Zhao
  • Vinayak HANDE
  • Project staff
  • Wolfgang Scherr
  • Manfred Ley
  • Mehdi MORADIAN BOVANLOO
  • Bernd Filipitsch
  • Corinna Maria Kudler
  • Ingmar Bihlo
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Osheen Reffat Fahmy Y. Mikhail OSHEEN REFFAT FAHMY Y. MIKHAIL
  • Irene Terpetschnig
  • ForschungsschwerpunktSensorik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammRegionale Impulsförderung/EFRE-REACT
    Förderinstitution/Auftraggeber
  • KWF - Kärntner Wirtschaftsförderungsfonds
  • The scientific and technological objective of PATTERN-Skin was to develop a novel embodied bendable and potentially stretchable multimodal modular robot skin that provided robots with unprecedented sensing abilities, facilitating contact-based/tactile and contact-less multimodal exploration of the world towards safe human-robot interaction. Besides the physical realization of the skin modules, physically accurate real-time simulations („digital twin“) were developed that allowed for the optimization and tailoring of skin configurations for robots and applications. Based on this sensor skin and the corresponding digital twin, PATTERN-Skin investigated model-based and AI-based methods to obtain representations of the environment for utilization in safe control strategies and aiming to meet requirements as defined in standards such as ISO 15066 and 10218 safety standards. With respect to safe, reliable, and secure assembly of full systems from a number of individual sensor skin modules, a unified design pattern utilizing Near Field Communication (NFC) and hardware security elements was investigated for both wired and wireless connectivity. By equipping robots with these enhanced sensing and interaction abilities, PATTERN-Skin was expected to impact a wide range of robotics applications ranging from personal care and assistance to agile logistics and manufacturing. The developed technologies and methods were open, modular, and non-proprietary.

    This project is co-financed by the European Regional Development Fund. REACT-EU FUNDED AS PART OF THE UNION'S RESPONSE TO THE COVID-19 PANDEMIC. You can find more information about IWB/EFRE at www.efre.gv.at

    Run-TimeJanuary/2019 - June/2022
    Homepage Projektwebseite
    Project management
  • Dongning Zhao
  • Wolfgang Scherr
  • Project staff
  • Mehdi MORADIAN BOVANLOO
  • Ivan SEJC
  • Ram Ratnaker Reddy BODHA
  • David Kwaku Okyere DARKWAH
  • Klaudia LLESHI
  • ForschungsschwerpunktSensorik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammRegionale Impulsförderung/EFRE-KWF
    Förderinstitution/Auftraggeber
  • Bundesministerium für Wissenschaft, Forschung und Wirtschaft (BMWFW)
  • The aim of the CapSize project was to develop a cost-effective, novel perception sensor system for gesture recognition, position estimation, and motion tracking in a real-time human-robot working environment using innovative integrated sensor solutions. The new key technology was intended to enable the development of a Contactless and Safe Interaction Cell (CSIC), where humans could collaborate and interact with the robot in a safe and intuitive way. CapSize was a cooperative project between the University of Klagenfurt, Carinthia University of Applied Sciences, and Joanneum Research Robotics. The research target of Carinthia University of Applied Sciences was to develop an integrated circuit for capacitive sensor read-out e.g. as proximity detection, to ensure human safety and increase the collaborative productivity of robots in the future.

    This project is co-financed by the ERDF European Regional Development Fund.

    Run-TimeJanuary/2020 - November/2022
    Project management
  • Johannes Sturm
  • Wolfgang Scherr
  • Project staff
  • Corinna Maria Kudler
  • Michael Köberle
  • ForschungsschwerpunktHochfrequenztechnik
    Studiengang
  • Integrated Systems and Circuits Design
  • Forschungsprogrammnicht wirtschaftliche Forschung
    Förderinstitution/Auftraggeber
  • Silicon Austria Labs GmbH
  • The main goal of the ANAGEN project is to develop an agile analog design methodology where the IC analog engineering knowledge will be captured in executable generators implemented in Python programming language. The target of the project is to design of basic analog blocks and systems that will be reused across different system-on-chips (SoCs) and CMOS technologies.

    Run-TimeSeptember/2018 - December/2018
    Homepage Projektwebseite
    Project management
  • Dongning Zhao
  • Wolfgang Scherr
  • Project staff
  • Johannes Sturm
  • Ivan SEJC
  • Ivan SEJC
  • Mehdi MORADIAN BOVANLOO
  • ForschungsschwerpunktSensorik
    Studiengang
  • Integrated Systems and Circuits Design
  • ForschungsprogrammRegionale Impulsförderung/EFRE-KWF
    Förderinstitution/Auftraggeber
  • KWF - Kärntner Wirtschaftsförderungsfonds
  • The demand from industry for a shared human robot work environment for safe human robot collaboration has increased tremendously in the past years. The most demanding requirement is to ensure the inherent safety of the human in such a work environment and to fulfill the technical specification ISO/TS15066 for collaborative robots in the industrial context. Current research approaches utilize vision based solutions in combination with sensors mounted on the robot manipulator to detect an approaching human. One drawback of these solutions is the occurrence of occlusions (“blind spots”) due to, e.g., robot manipulator movement. In such a situation, the robot needs to go into an intrinsically safe mode, i.e. it has to reduce the speed of the manipulator thus significantly reducing the productivity. Consequently, the lack or rather the major restrictions of the currently available perception sensor technology with respect to measurement speed, range and integrability, etc. prevents high motion speed of collaborative robots. A central point of investigation in the project is the development of a novel perception sensor system, combining a variety of physical measurement principles (capacitive, ToF, etc.) in order to increase measurement rate, range, accuracy and resolution for position estimation and motion tracking in real time of a worker in the near surrounding of the workplace and robot manipulator. Furthermore, the new perception sensor system is fully integrated in the workplace and the robot manipulator. This new key technology enables the development of a Contactless and Safe Interaction Cell (CSIC), where a human can safely fulfill collaborative tasks jointly with a robot manipulator. Parts of the perception sensor are also utilized for a gesture based human robot interface. This allows for an intuitive interaction of the human with the robot manipulator, which will improve the user experience and increase the user acceptance. The user acceptance will be further fostered through the imitation of a human-human interaction behavior as the robot manipulator will mimic human behavior in the motion planning and control strategy of the robot manipulator. The new perception sensor technology will thus tremendously increase the operational speed of the robot manipulator in the CSIC further increasing the productivity of the collaborative human robot work cell while ensuring the safety of the human throughout the entire time and raising the human acceptance and user experience due to a human like intuitive interaction and control.

     

    Project goals:

    * Development of a modular human robot work cell (Contactless and Safe Interaction Cell)

    * Realtime perception sensor system
    * Realtime proximity sensor system
    * Capacitive to Digital Converter Sensor Chip

     

    Dieses Projekt wird aus Mitteln des EFRE Europäischen Fonds für regionale Entwicklung kofinanziert.
    www.efre.gv.at

    Nähere Informationen entnehmen Sie bitte der Webseite: https://www.efre.gv.at/

    Conference contributions
    TitleAuthorYear
    BAG2 Assisted Hierarchical Analog Layout Synthesis for Planar Technologies in: IEEE Xplore (Hrsg.), Austrochip Workshop on Microelectronics (Austrochip), 20-21 Sep 2023, GrazBIO, M., Scherr, W., Agbemenu, A., Sondón, S., Sturm, J., Hande, V.2023
    HW-SW development "Shift Left" in: Digital Dialogue: "Integrated Electronic Systems", 27-27 Jun 2023, VillachScherr, W., Mueller, B., Jeurissen, D.2023
    High-level synthesis of digital signal processing circuits in: 32nd International Electrotechnical and Computer Science Conference, 28-29 Sep 2023, Portorož, SlovenijaTrost, A., Scherr, W., Sturm, J.2023
    A low-complexity DDS-based I/Q reference signal generation for capacitive sensing in 65nm CMOS in: IEEE (Hrsg.), IEEE Austrochip Workshop on Microelectronics (Austrochip), 11-11 Oct 2022BIO, M., Ley, M., Bihlo, I., Filipitsch, B., Arndt, T., Scherr, W.2022
    Novel Capacitance Sensing Measurement Technique for Human-Robot Co-existence in: IEEE (Hrsg.), IEEE Austrochip Workshop on Microelectronics (Austrochip), 11-11 Oct 2022Hande, V., Scherr, W., MORADIAN BOVANLOO, M., Reddy, S., MIKHAIL, O., Zangl, H., Sturm, J.2022
    Prototyping for a DDS-based I/Q reference signal generation on a capacitive sensing chip in 65nm CMOS using SystemC AMS, C HLS and VHDL in: IEEE Xplore (Hrsg.), 2021 Austrochip Workshop on Microelectronics (Austrochip), 14-14 Oct 2021, Linz, AustriaBIO, M., Gietler, H., Plazonic, J., Ley, M., Zangl, H., Scherr, W.2021
    Beyond real number modeling: Comparison of analog modeling approaches. in: Forum on specification and Design Languages (FDL), 08-18 Sep 2021, KielScherr, W., Einwich, K.2021
    SystemC-AMS ELN: the new way of generating macro models ? in: COSEDA User Group Conference, 04-04 Nov 2020, DresdenScherr, W.2020
    Design of Stable and Configurable Digital Filters for Automotive Sensors in: Austrochip, Oct 2013Kantamneni, V., Scherr, W., Rinner, B.2013
    A miniature digital current sensor with differential Hall probes using enhanced chopping techniques and mechanical stress compensation in: IEEE Sensors, 28-31 Oct 2012Motz, M., Udo, A., Bresch, M., Fakesch, U., Schaffer, B., Reidl, C., Scherr, W., Pircher, G., Strasser, M., Strutz, V.2012
    SystemC-AMS Modelling of Embedded Systems for Automotive Applications in: 1st SystemC-AMS Workshop, 25-25 Jun 2007Scherr, W., Granig, W.2007
    An Integrated Magnetic Sensor with Two Continuous-Time Delta-Sigma-Converters and Stress Compensation Capability in: IEEE Sensors 2006, 2006, DaeguMotz, M., Ausserlechner, U., Scherr, W., Katzmaier, E.2006
    Power Saving Algorithms for Tire Pressure Monitoring Based on Pressure Measurement in: SAE World Congress, 11-14 Apr 2005, Detroit, MIHammerschmidt, D., Kolle, C., Scherr, W.2005
    Configurable computing architectures for wireless and software defined radio - a FPGA prototyping experience using high level design-tool-chains in: International Symposium on System-on-Chip (ISSOC), 16-18 Nov 2004Blaickner, A., Albl, S., Scherr, W.2004
    A FEC Codec-Processor (ASIP) for Software Defined Radio in: Software Defined Radio (SDR), 15-18 Nov 2004, Phoenix, AZBlaickner, A., Scherr, W.2004
    Ultra low-power monolithically integrated, capacitive pressure sensor for tire pressure monitoring in: IEEE Sensors 2004 Vienna, 2004, ViennaKolle, C., Scherr, W., Hammerschmidt, D., Pichler, G., Motz, M., Schaffer, B., Forster, B.2004
    other Publications
    TitleAuthorYear
    Vielseitiger Eigenbau-Sequenzer im Miniaturformat Das internationale Fachmagazin für Amateurfunk, Elektronik und FunktechnikScherr, W.2021
    Transverter verwenden ohne Hürden Das Amateurfunkmagazin CQ DL des dt. AmateurfunkvereinsScherr, W.2019
    Little helper for various control tasks DUBUS magazineScherr, W.2018
    Conference contributions
    TitleAuthorYear
    BAG2 Assisted Hierarchical Analog Layout Synthesis for Planar Technologies in: IEEE Xplore (Hrsg.), Austrochip Workshop on Microelectronics (Austrochip), 20-21 Sep 2023, GrazBIO, M., Scherr, W., Agbemenu, A., Sondón, S., Sturm, J., Hande, V.2023
    HW-SW development "Shift Left" in: Digital Dialogue: "Integrated Electronic Systems", 27-27 Jun 2023, VillachScherr, W., Mueller, B., Jeurissen, D.2023
    High-level synthesis of digital signal processing circuits in: 32nd International Electrotechnical and Computer Science Conference, 28-29 Sep 2023, Portorož, SlovenijaTrost, A., Scherr, W., Sturm, J.2023
    Conference contributions
    TitleAuthorYear
    A low-complexity DDS-based I/Q reference signal generation for capacitive sensing in 65nm CMOS in: IEEE (Hrsg.), IEEE Austrochip Workshop on Microelectronics (Austrochip), 11-11 Oct 2022BIO, M., Ley, M., Bihlo, I., Filipitsch, B., Arndt, T., Scherr, W.2022
    Novel Capacitance Sensing Measurement Technique for Human-Robot Co-existence in: IEEE (Hrsg.), IEEE Austrochip Workshop on Microelectronics (Austrochip), 11-11 Oct 2022Hande, V., Scherr, W., MORADIAN BOVANLOO, M., Reddy, S., MIKHAIL, O., Zangl, H., Sturm, J.2022
    Conference contributions
    TitleAuthorYear
    Prototyping for a DDS-based I/Q reference signal generation on a capacitive sensing chip in 65nm CMOS using SystemC AMS, C HLS and VHDL in: IEEE Xplore (Hrsg.), 2021 Austrochip Workshop on Microelectronics (Austrochip), 14-14 Oct 2021, Linz, AustriaBIO, M., Gietler, H., Plazonic, J., Ley, M., Zangl, H., Scherr, W.2021
    Beyond real number modeling: Comparison of analog modeling approaches. in: Forum on specification and Design Languages (FDL), 08-18 Sep 2021, KielScherr, W., Einwich, K.2021
    other Publications
    TitleAuthorYear
    Vielseitiger Eigenbau-Sequenzer im Miniaturformat Das internationale Fachmagazin für Amateurfunk, Elektronik und FunktechnikScherr, W.2021
    Conference contributions
    TitleAuthorYear
    SystemC-AMS ELN: the new way of generating macro models ? in: COSEDA User Group Conference, 04-04 Nov 2020, DresdenScherr, W.2020
    other Publications
    TitleAuthorYear
    Transverter verwenden ohne Hürden Das Amateurfunkmagazin CQ DL des dt. AmateurfunkvereinsScherr, W.2019
    Conference contributions
    TitleAuthorYear
    Design of Stable and Configurable Digital Filters for Automotive Sensors in: Austrochip, Oct 2013Kantamneni, V., Scherr, W., Rinner, B.2013
    A miniature digital current sensor with differential Hall probes using enhanced chopping techniques and mechanical stress compensation in: IEEE Sensors, 28-31 Oct 2012Motz, M., Udo, A., Bresch, M., Fakesch, U., Schaffer, B., Reidl, C., Scherr, W., Pircher, G., Strasser, M., Strutz, V.2012
    SystemC-AMS Modelling of Embedded Systems for Automotive Applications in: 1st SystemC-AMS Workshop, 25-25 Jun 2007Scherr, W., Granig, W.2007
    An Integrated Magnetic Sensor with Two Continuous-Time Delta-Sigma-Converters and Stress Compensation Capability in: IEEE Sensors 2006, 2006, DaeguMotz, M., Ausserlechner, U., Scherr, W., Katzmaier, E.2006
    Power Saving Algorithms for Tire Pressure Monitoring Based on Pressure Measurement in: SAE World Congress, 11-14 Apr 2005, Detroit, MIHammerschmidt, D., Kolle, C., Scherr, W.2005
    Configurable computing architectures for wireless and software defined radio - a FPGA prototyping experience using high level design-tool-chains in: International Symposium on System-on-Chip (ISSOC), 16-18 Nov 2004Blaickner, A., Albl, S., Scherr, W.2004
    A FEC Codec-Processor (ASIP) for Software Defined Radio in: Software Defined Radio (SDR), 15-18 Nov 2004, Phoenix, AZBlaickner, A., Scherr, W.2004
    Ultra low-power monolithically integrated, capacitive pressure sensor for tire pressure monitoring in: IEEE Sensors 2004 Vienna, 2004, ViennaKolle, C., Scherr, W., Hammerschmidt, D., Pichler, G., Motz, M., Schaffer, B., Forster, B.2004
    other Publications
    TitleAuthorYear
    Little helper for various control tasks DUBUS magazineScherr, W.2018

    Please use this link for external references on the profile of Wolfgang Scherr: www.fh-kaernten.at/mitarbeiter-details?person=w.scherr