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= Master and Bachelor Thesis Supervision = #acl IdaGroup:read,write,delete,revert All:read
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== General information ==
After the topic and supervisor have been found (see below), the student must write a proposal with '''preliminary''' results. After Klaus approves the proposal, the student can register the thesis, and the writing period begins. This implies that a thesis often requires more time than the official writing period (typically three months for BA and six months for MA). It might be possible to hand in the thesis early (check with the respective examination regulations for the student’s degree program). However, we encourage significant time between registration and submission.
= Master and Bachelor Thesis Supervision (public landing page) =
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Though we encourage thesis supervision, there is no obligation to supervise every interested student, e.g., in case no appropriate topic/supervisor is available. == Finding a supervisor ==
Interested students can contact us with the [[https://1drv.ms/w/s!Ahi16FpIWOkRkttoYVVe5krTQqpBTg?e=XRslcE|thesis application form]], a curriculum vitae/resume, and an optional cover letter. Please provide '''evidence''' for '''relevant''' skills.
Applicants require significant experience in machine learning, e.g., as acquired through the courses offered by our group (passed with the grade “good” or better) or some equivalent. This typically includes a deep conceptual understanding of machine learning and profound programming experience. The necessary skills may vary depending on the topic, e.g., purely theoretical theses require more mathematical than programming skills.
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== Senior researchers ==
Our senior researchers often have a good overview of the research interests in our group. It can be helpful to contact one of the researchers below if you cannot supervise an interested student yourself and none of the open topics below are appropriate.
There are two complementary ways to find a supervisor:
 1. Top-down: write a mail to jobs@ml.tu-berlin.de. We will match you with suitable internally advertised topics if possible.
 2. Unsolicited: you can contact the researchers below if they work in a research area that suits you.
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Many theses are connected to ongoing research in our group. However, it is also possible for students to suggest own topics/ideas.
'''Our group tries to supervise as many students as possible, but we typically do not have the capacity to supervise every interested student.'''

Researchers:
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 * Explainable AI: Pan Kessel (pan.kessel@gmail.com)  * Explainable AI: Grégoire Montavon (gregoire.montavon@tu-berlin.de)
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 * Probabilistic/Bayesian models: Shinichi Nakajima (nakajima@tu-berlin.de)  * Probabilistic modeling and inference: Shinichi Nakajima (nakajima@tu-berlin.de)
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 * Multimodal signal acquisition and analysis - neurotechnology + biomedical sensing: Alexander von Lühmann (vonluehmann@tu-berlin.de)
 * ML for Security & Privacy: Daniel Arp (d.arp@tu-berlin.de)
 * Explainable AI & Natural Language Processing: Oliver Eberle (oliver.eberle@tu-berlin.de)
 * Learning with multiple modalities: Jannik Wolff (wolff.jannik@tu-berlin.de)
 * Robustness against spurious correlations in DNNs, neural cellular automata: Lorenz Linhardt (l.linhardt@campus.tu-berlin.de)
 * Combining Explainable AI & Deep Generative Models like Diffusion Models, Large Language Models, GANs, VAEs and Normalizing Flows in different modalities: Sidney Bender (s.bender@tu-berlin.de)
 * ML for Quantum Chemistry: Jonas Lederer (jonas.lederer@tu-berlin.de)
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== Open topics ==
 * Please delete topics that are not available anymore.
 * Please include the entry's date. This can help identify outdated topics that should have been deleted.
 * The last column can entail additional information helpful to students to assess their interest in a topic without contacting the person. For example, you may include a short abstract or links to relevant papers.
You can find further information about our group members on [[https://doc.ml.tu-berlin.de/publications/|our group's publication list]] and the [[https://www.bifold.berlin/research/people|BIFOLD website]].
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|| '''MS/BS''' || '''Topic''' || '''Supervisor + email address'' || '''Date of entry''' || '''Additional information'' ||
|| BS || Assessment of data quality in open source wind turbine SCADA data sets || Simon Letzgus (simon.letzgus@tu-berlin.de)|| Jan 2023 || - ||
=== Publicly advertised open topics ===
We advertise most topics internally ([[https://wiki.ml.tu-berlin.de/wiki/IDA/ThesisTopicsNewInternal|link to our internal wiki]]) because they are related to ongoing and unpublished research.

|| '''MS/BS''' || '''Topic''' || '''Supervisor + email address''' || '''Date of entry''' || '''Additional information'' ||
|| - || - || -|| - || - ||

== After having found a supervisor ==
Students prepare a proposal that includes
 * the research question and its context/motivation,
 * related work,
 * preliminary methodological and/or experimental results,
 * and formalities such as the number of ECTS credits and the writing time as specified in the student’s examination regulations.
The supervisor can help the student with writing the proposal. Students can register the thesis with the examination office after Prof. Müller approves the proposal. We encourage students not to underestimate the time required for writing the proposal. Furthermore, consider that we may require some time to review the proposal. Therefore, it is helpful to contact our group early.

Master and Bachelor Thesis Supervision (public landing page)

Finding a supervisor

Interested students can contact us with the thesis application form, a curriculum vitae/resume, and an optional cover letter. Please provide evidence for relevant skills. Applicants require significant experience in machine learning, e.g., as acquired through the courses offered by our group (passed with the grade “good” or better) or some equivalent. This typically includes a deep conceptual understanding of machine learning and profound programming experience. The necessary skills may vary depending on the topic, e.g., purely theoretical theses require more mathematical than programming skills.

There are two complementary ways to find a supervisor:

  1. Top-down: write a mail to jobs@ml.tu-berlin.de. We will match you with suitable internally advertised topics if possible.

  2. Unsolicited: you can contact the researchers below if they work in a research area that suits you.

Many theses are connected to ongoing research in our group. However, it is also possible for students to suggest own topics/ideas. Our group tries to supervise as many students as possible, but we typically do not have the capacity to supervise every interested student.

Researchers:

You can find further information about our group members on our group's publication list and the BIFOLD website.

Publicly advertised open topics

We advertise most topics internally (link to our internal wiki) because they are related to ongoing and unpublished research.

MS/BS

Topic

Supervisor + email address

Date of entry

Additional information

-

-

-

-

-

After having found a supervisor

Students prepare a proposal that includes

  • the research question and its context/motivation,
  • related work,
  • preliminary methodological and/or experimental results,
  • and formalities such as the number of ECTS credits and the writing time as specified in the student’s examination regulations.

The supervisor can help the student with writing the proposal. Students can register the thesis with the examination office after Prof. Müller approves the proposal. We encourage students not to underestimate the time required for writing the proposal. Furthermore, consider that we may require some time to review the proposal. Therefore, it is helpful to contact our group early.

IDA Wiki: IDA/ThesisTopicsNew (last edited 2023-08-23 09:14:47 by JannikWolff)