68-XX COMPUTER SCIENCE (For papers involving machine computations and programs in a specific mathematical area, see Section -04 in that area)
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Following axon pathfinding, growth cones transition from stochastic filopodial exploration to the formation of a limited number of synapses. How the interplay of filopodia and synapse assembly ensures robust connectivity in the brain has remained a challenging problem. Here, we developed a new 4D analysis method for filopodial dynamics and a data-driven computational model of synapse formation for R7 photoreceptor axons in developing Drosophila brains. Our live data support a 'serial synapse formation' model, where at any time point only a single 'synaptogenic' filopodium suppresses the synaptic competence of other filopodia through competition for synaptic seeding factors. Loss of the synaptic seeding factors Syd-1 and Liprin-α leads to a loss of this suppression, filopodial destabilization and reduced synapse formation, which is sufficient to cause the destabilization of entire axon terminals. Our model provides a filopodial 'winner-takes-all' mechanism that ensures the formation of an appropriate number of synapses.
We propose a novel optimization model for resource assignment in heterogeneous wireless network. The model adopts two objective functions maximizing the number of served users and the minimum granted utility at once. A distinctive feature of our new model is to consider two consecutive time slots, in order to include handover as an additional decision dimension.
Furthermore, the solution algorithm that we propose refines a heuristic solution approach recently proposed in literature, by considering a real joint optimization of the considered resources. The simulation study shows that the new model leads to a significant reduction in handover frequency, when compared to a traditional scheme based on maximum SNR.
Many optimization problems can be modeled as Mixed Integer Programs (MIPs). In general, MIPs cannot be solved efficiently, since solving MIPs is NP-hard, see, e.g., Schrijver, 2003. Common methods for solving NP-hard problems are branch-and-bound and column generation. In the case of column generation, the original problem
becomes decomposed or re-formulated into one ore more smaller subproblems, which are easier to solve. Each of these subproblems is solved separately and recurrently, which can be interpreted as solving a sequence of optimization problems.
In this thesis, we consider a sequence of MIPs which only differ in the respective objective functions. Furthermore, we assume each of these MIPs get solved with a branch-and-bound algorithm. This thesis aims to figure out whether the solving process of a given sequence of MIPs can be accelerated by reoptimization. As reoptimization we understand starting the solving process
of a MIP of this sequence at a given frontier of a search tree corresponding to another MIP of this sequence.
At the beginning we introduce an LP-based branch-and-bound algorithm. This algorithm is inspired by the reoptimizing algorithm of Hiller, Klug, and the author of this
thesis, 2013. Since most of the state-of-the-art MIP
solvers come to decisions based on dual information, which leads to the loss of feasible solutions after changing the objective function, we present a technique to guarantee optimality despite using these information. A decision is based on a dual information if this decision is valid for at least one feasible solution, whereas a decision is based on a primal information if this decision is valid for all feasible solutions. Afterwards, we consider representing the search frontier of the tree by a set of nodes of a given size. We call this the Tree Compression Problem. Moreover, we present a criterion characterizing the similarity of two objective functions. To evaluate our approach of reoptimization we extend the well-known and well-maintained MIP solver SCIP to an LP-based branch-and-bound framework, introduce two heuristics for solving the Tree Compression Problem, and a primal heuristic which is especially fitted to column generation. Finally, we present computational experiments on several problem classes, e.g., the Vertex Coloring and k-Constrained Shortest Path. Our experiments show, that a straightforward reoptimization, i.e., without additional heuristics, provides no benefit in general. However, in combination with the techniques and methods presented in this thesis, we can accelerate the solving of a given sequence up to the factor 14. For this purpose it is essential to take the differences of the objective functions into account and to restart the reoptimization, i.e., solve the subproblem from scratch, if the objective functions are not similar enough. Finally, we discuss the possibility to parallelize the solving process of the search frontier at the beginning of each solving process.
Heutzutage ist eine Vielzahl der mehrstöckigen Gebäude mit Personenaufzugsgruppen
ausgestattet. Uns wohl bekannt sind die sogenannten konventionellen Systeme. Bei
diesen Systemen betätigt jeder ankommende Passagier eine der beiden Richtungstasten
und teilt dem dahinterstehenden Steuerungsalgorithmus seine gewünschte Startetage
und Fahrtrichtung mit. Betreten wird der zuerst auf der Startetage ankommende Aufzug
mit gleicher Fahrtrichtung und ausreichend Kapazität. Die entsprechende Zieletage
wird dem System erst nach dem Betreten der Fahrgastkabine mitgeteilt. Neben diesen
konventionellen Systemen gibt es Aufzugsgruppen mit Zielrufsteuerung. Die Besonderheit
eines zielrufgesteuerten Systems ist, dass ein ankommender Passagier bereits auf
der Startetage seine gewünschte Zieletage angibt und eine Rückmeldung vom System
erhält, welchen Aufzug er nutzen soll. Diese Zuweisung durch das System hat das Ziel,
die Warte- und Reisezeiten der Passagiere zu minimieren. Ein wesentlicher Faktor bei
der Berechnung warte- und reisezeitminimaler Fahrpläne ist das momentane Verkehrsmuster.
Eine Einteilung der Verkehrsszenarien lässt sich am besten bei Bürogebäuden
vornehmen. So ist es typisch für die Morgenstunden, dass jeder Passagier auf einer
Zugangsebene seine Fahrt beginnt und alle Passagiere die gleiche Fahrtrichtung haben.
Unter einer Zugangsebene ist z. B. der Haupteingang oder ein Parkdeck zu verstehen.
Ein weiterer wesentlicher Punkt bei Zielrufsystemen ist die Art der Zuweisung der Passagiere
durch das System. Zum einen gibt es unmittelbar zuweisende (UZ-) Systeme.
In einem UZ-System wird nach jeder Ankunft eines Passagiers eine Momentaufnahme
des momentanen Verkehrs erstellt und es findet eine Neuplanung und Zuweisung statt.
Eine solche Momentaufnahme werden wir im späteren Verkauf als Schnappschussproblem
bezeichnen. Jeder Passagier bekommt im Anschluss an die Lösung des Schnappschussproblems
eine Mitteilung vom System, z. B. über ein Display, welchen Aufzug
er benutzen soll. Zum anderen gibt es verzögert zuweisende (VZ-) Systeme. In diesen
Systemen wird die Erstellung und Lösung eines Schnappschussproblems bis kurz vor
Ankunft eines Aufzuges auf einer Etage verzögert. In einem VZ-System teilt das System
allen wartenden Passagieren die geplanten Zieletagen des ankommenden Aufzugs mit.
Jeder Passagier, der einen Ruf getätigt hat und zu einer dieser Zieletagen fahren will,
kann jetzt diesen Aufzug betreten. Durch die Verzögerung muss im Vergleich zu einem
UZ-System eine weitaus größere Menge von Passagieren zugewiesen werden. Dadurch
kann der Lösungsprozess bedeutend aufwändiger werden. Vorteil eines VZ-Systems ist
hingegen der größere Freiheitsgrad bei der Optimierung, da aufgrund der späten Zuweisung
die weitere Verkehrsentwicklung mit einbezogen werden kann.
VZ-Systeme sind aufgrund des größeren Freiheitsgrades interessant für die
Praxis ist, wir uns demzufolge in dieser Arbeit mit einer effizienteren Lösung dieser
Art von Schnappschussproblemen befassen. Es genügt dabei den Lösungsprozess eines
Schnappschussproblems zu betrachten. Das Ziel ist eine Reduzierung der benötigten
Rechenzeit. Unter Reoptimierung verstehen wir die Konstruktion
zulässiger Spalten in den jeweiligen Iterationsrunden der Spaltengenerierung
innerhalb eines Schnappschussproblems. Als eine Iterationsrunde bezeichnet wir einer
Menge zulässiger Touren mit negativen reduzierten Kosten. Eine effiziente Reoptimierung
zeichnet sich durch die Wiederverwendung und Aufbereitung von Informationen
aus vorangegangenen Iterationsrunden desselben Schnappschussproblems aus. Zu den
wichtigen Informationen gehört der konstruierte Suchbaum der vorherigen Iterationsrunde
mit seinen ausgeloteten (abgeschnittenen) Blättern sowie konstruierten Touren
bzw. Spalten, welche in der Iterationsrunde ihrer Konstruktion nicht zur Lösung des
Teilproblems der Spaltengenerierung beitrugen. Eine solche Wiederverwendung und
Aufbereitung von Informationen nennen wir Warmstart.
Radiologists from all application areas are trained to read slice-based visualizations of 3D medical image data. Despite the numerous
examples of sophisticated three-dimensional renderings, especially all variants of direct volume rendering, such methods are
often considered not very useful by radiologists who prefer slice-based visualization. Just recently there have been attempts to bridge this
gap between 2D and 3D renderings. These attempts include specialized techniques for volume picking that result in repositioning slices.
In this paper, we present a new volume picking technique that, in contrast to previous work, does not require pre-segmented data or metadata. The positions picked by our method are solely based on the data itself, the transfer function and,
most importantly, on the way the volumetric rendering is perceived by viewers. To demonstrate the usefulness of the proposed method
we apply it for automatically
repositioning slices in an abdominal MRI
scan, a data set from a flow simulation and a number of other volumetric scalar fields. Furthermore we discuss how the method can be implemented in combination with various different volumetric rendering techniques.
Simulations of the critical Ising model by means of local update algorithms suffer from critical slowing down. One way to partially compensate for the influence of this phenomenon on the runtime of simulations is using increasingly faster and parallel computer hardware. Another approach is using algorithms that do not suffer
from critical slowing down, such as cluster algorithms. This paper reports on the Swendsen-Wang multi-cluster algorithm on Intel Xeon Phi coprocessor 5110P, Nvidia Tesla M2090 GPU, and x86
multi-core CPU. We present shared memory versions of the said algorithm for the simulation of the two- and three-dimensional Ising model. We use a combination of local cluster search and global label reduction by means of atomic hardware primitives. Further, we
describe an MPI version of the algorithm on Xeon Phi and CPU, respectively. Significant performance improvements over known im
plementations of the Swendsen-Wang algorithm are demonstrated.
Tracing microtubule centerlines in serial section electron tomography requires microtubules to be stitched across sections, that is lines from different sections need to be aligned, endpoints need to be matched at section boundaries to establish a correspondence between neighboring sections, and corresponding lines need to be connected across multiple sections. We present computational methods for these tasks: 1) An initial alignment is computed using a distance compatibility graph. 2) A fine alignment is then computed with a probabilistic variant of the iterative closest points algorithm, which we extended to handle the orientation of lines by introducing a periodic random variable to the probabilistic formulation. 3) Endpoint correspondence is established by formulating a matching problem in terms of a Markov random field and computing the best matching with belief propagation. Belief propagation is not generally guaranteed to converge to a minimum. We show how convergence can be achieved, nonetheless, with minimal manual input. In addition to stitching microtubule centerlines, the correspondence is also applied to transform and merge the electron tomograms. We applied the proposed methods to samples from the mitotic spindle in C. elegans, the meiotic spindle in X. laevis, and sub-pellicular microtubule arrays in T. brucei. The methods were able to stitch microtubules across section boundaries in good agreement with experts’ opinions for the spindle samples. Results, however, were not satisfactory for the microtubule arrays. For certain experiments, such as an analysis of the spindle, the proposed methods can replace manual expert tracing and thus enable the analysis of microtubules over long distances with reasonable manual effort.
For cryptanalysis in lattice-based schemes, the performance evaluation of lattice basis reduction using high-performance computers is becoming increasingly important for the determination of the security level. We propose a distributed and asynchronous parallel reduction algorithm based on randomization and DeepBKZ, which is an improved variant of the block Korkine-Zolotarev (BKZ) reduction algorithm. Randomized copies of a lattice basis are distributed to up to 103,680 cores and independently reduced in parallel, while some basis vectors are shared asynchronously among all processes via MPI. There is a trade-off between randomization and information sharing; if a substantial amount of information is shared, all processes will work on the same problem, thereby diminishing the benefit of parallelization. To monitor this balance between randomness and sharing, we propose a metric to quantify the variety of lattice bases. We empirically find an optimal parameter of sharing for high-dimensional lattices. We demonstrate the efficacy of our proposed parallel algorithm and implementation with respect to both performance and scalability through our experiments.
Lattice problems are a class of optimization problems that are notably hard. There are no classical or quantum algorithms known to solve these problems efficiently. Their hardness has made lattices a major cryptographic primitive for post-quantum cryptography. Several different approaches have been used for lattice problems with different computational profiles; some suffer from super-exponential time, and others require exponential space. This motivated us to develop a novel lattice problem solver, CMAP-LAP, based on the clever coordination of different algorithms that run massively in parallel. With our flexible framework, heterogeneous modules run asynchronously in parallel on a large-scale distributed system while exchanging information, which drastically boosts the overall performance. We also implement full checkpoint-and-restart functionality, which is vital to high-dimensional lattice problems. Through numerical experiments with up to 103,680 cores, we evaluated the performance and stability of our system and demonstrated its high capability for future massive-scale experiments.