Marwan Mostafa

M.Sc.
Wissenschaftlicher Mitarbeiter

Kontakt

Marwan Mostafa, M.Sc.
E-6 Elektrische Energietechnik
  • Elektrische Energietechnik
Sprechzeiten
nach Vereinbarung/ by appointment
Harburger Schloßstraße 36,
21079 Hamburg
Gebäude HS36, Raum C3 0.013
Tel: +49 40 42878 4097
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Forschungsprojekt

iNeP
Integrierte Netzplanung der Sektoren Strom, Gas und Wärme

iNeP

Integrierte Netzplanung der Sektoren Strom, Gas und Wärme

Bundesministerium für Wirtschaft und Klimaschutz (BMWK); Laufzeit: 2021 bis 2026

Publikationen

TUHH Open Research (TORE)

2023

2022

2021

Lehrveranstaltungen

Stud.IP
zur Veranstaltung in Stud.IP Studip_icon
GPU Architecture
Semester:
SoSe 23
Veranstaltungstyp:
Vorlesung (Lehre)
DozentIn:
Prof. Dr. Sohan Lal
Beschreibung:
In this module, you will study the architecture and programming of GPUs. Please find below a brief outline of the lectures: - Review of computer architecture basics - measuring performance, benchmarks, five-stage RISC pipeline, caches - GPU basics - the evolution of GPU computing, a high-level overview of a GPU architecture - GPU programming with CUDA - program structure, CUDA threads organization, warp/thread-block scheduling - GPU (micro) architecture - streaming multiprocessors, single instruction multiple threads (SIMT) core design, tensor cores for deep learning, RT cores for ray tracing, mixed-precision support - GPU memory hierarchy - banked register file and operand collectors, shared memory, GPU caches (differences w.r.t. CPU caches), global memory - Branch and memory divergence - branch handling, stack-based reconvergence, memory coalescing, coalescer design - Barriers and synchronization - Temporal and spatial locality exploitation challenges in GPU caches - Global memory- high throughput requirements, GDDR/HBM, memory bandwidth optimization techniques - GPU research issues - performance bottlenecks, GPU power modeling, high-power consumption/energy efficiency, GPU security - Application case study - deep learning - Cycle-accurate simulators for GPUs In addition to lectures, a semester-long problem-based project will augment the learning in the lectures. Several topics related to GPUs will be proposed. You are required to choose a topic and work on it. It is possible to work in groups. There will be (bi-) weekly meetings to discuss progress and problems. In addition to the semester-long project, there will be assignments to teach CUDA programming. Course Evaluation: Oral examination Duration: 30 minutes
Voraussetzungen:
An introductory module on basic computer architecture or a similar module, and good programming skills in C/C++.
Leistungsnachweis:
Project/assignments + 30-minute oral exam
Bereichseinordnung:
Studiendekanat Elektrotechnik, Informatik und Mathematik
ECTS-Kreditpunkte:
6
Weitere Informationen aus Stud.IP zu dieser Veranstaltung
Heimatinstitut: Institut für Massively Parallel Systems (E-EXK5)
In Stud.IP angemeldete Teilnehmer: 37
Anzahl der Dokumente im Stud.IP-Downloadbereich: 15

Betreute Abschlussarbeiten

laufende
beendete

2022

  • Barthelme, J. (2022). Technisch-ökonomische Systemmodellierung und -anlayse eines urbanen Quatiers hinsichtlich des Einsatz von Wasserstoff als primärer Energieträger.