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Course, academic year 2025/2026
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Neural Networks Implementation 2 - NAIL015
Title: Implementace neuronových sítí 2
Guaranteed by: Department of Theoretical Computer Science and Mathematical Logic (32-KTIML)
Faculty: Faculty of Mathematics and Physics
Actual: from 2023
Semester: summer
E-Credits: 5
Hours per week, examination: summer s.:2/2, C+Ex [HT]
Capacity: unlimited
Min. number of students: unlimited
4EU+: no
Virtual mobility / capacity: no
State of the course: not taught
Language: Czech, English
Teaching methods: full-time
Guarantor: RNDr. Petr Božovský, CSc.
Class: Informatika Mgr. - Teoretická informatika
Classification: Informatics > Theoretical Computer Science
Co-requisite : NAIL060
Annotation -
Implementation methods and techniques of neural network models. Kohonen maps, Hopfield network. Neural formulation of classical tasks, assignment transitions. Solution evaluation, modifications for network behavior improvement. Seminars are devoted to practical issues of specific applications implementation.
Last update: T_KSI (15.04.2003)
Aim of the course -

To learn methods and techniques of implementation of basic models of neuron networks

Last update: Božovský Petr, RNDr., CSc. (07.04.2018)
Course completion requirements -

Student gains a credit after a successful presentation of working programs for the tasks discussed in the course. These programs must be the student's own work, with an eventual utilization of appropriate framework that is under lecturer's approval.

As an integral part of gaining the credit, a sufficient attendance at the seminar is also considered since the task analysis and related discussion take place there.

Last update: Božovský Petr, RNDr., CSc. (16.10.2017)
Literature - Czech

Beale R.: Neural Computing - An Introduction. Adam Hilger, Bristol, 1990

Goles E.: Lyapunov functions associated to automata networks, in Automata networks in computer science, Princeton University Press, 1987

Tank D., Hopfield J.: Simple "Neural" Optimization Networks, IEEE TCS CAS-33, pp.533-541, 1986

Last update: G_I (28.05.2004)
Requirements to the exam -

The examination is in oral form. Student has an opportunity to prepare written notes within the exam to support the oral examination.

Requirements for the examination correspond to the syllabus of the course in the range presented at the lecture.

Last update: Božovský Petr, RNDr., CSc. (16.10.2017)
Syllabus -

Implementation methods and techniques of neural network models. Kohonen maps, Hopfield network. Neural formulation of classical tasks, assignment transitions. Solution evaluation, modifications for network behavior improvement. Seminars are devoted to practical issues of specific applications implementation.

Last update: T_KSI (15.04.2003)
 
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