Marcelo Serrano Zanetti

dblp:41/10827 · DBLP profile ↗
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3ranked-venue papers
2as first author
0since 2021 · last 2013
0000-0001-6064-9854ORCID · corroborated

Domains — the database's venue-derived domains; a paper can count in several

Software engineering, systems software and programming languages · 2 · 2 first-authorArtificial intelligence and machine learning · 1

Expertise — from the expertise taxonomy: the topics of the expert's papers under the CCF categories. A weight counts papers with recency: 1 for a paper about the topic, 0.3 when the topic is its context, halved every five years.

Software engineering, system software, and programming languages
2 papers
Empirical software engineering · 69% Software maintenance and evolution · 31%
Human-computer interaction and pervasive computing
1 paper
Collaborative and social computing · 100%

Topics — the 10 heaviest of 10, each with the papers that count most for it

TopicWeightPapersLastEvidence papers
Empirical software engineering
mining software repositories
0.322013
Categorizing bugs with social networks: a case study on four open source software communities · ICSE 2013
The co-evolution of socio-technical structures in sustainable software development: Lessons from the open source software communities · ICSE 2012
Software maintenance and evolution
bug triage
0.212013
Categorizing bugs with social networks: a case study on four open source software communities · ICSE 2013
Empirical software engineering
developer studies
0.212013
Categorizing bugs with social networks: a case study on four open source software communities · ICSE 2013
Empirical software engineering › open source software
open source communities
0.112012
The co-evolution of socio-technical structures in sustainable software development: Lessons from the open source software communities · ICSE 2012
Empirical software engineering › human factors in software engineering
socio-technical analysis
0.112012
The co-evolution of socio-technical structures in sustainable software development: Lessons from the open source software communities · ICSE 2012
Software maintenance and evolution
software sustainability
0.112012
The co-evolution of socio-technical structures in sustainable software development: Lessons from the open source software communities · ICSE 2012
Empirical software engineering › issue report analysis
bug report quality
0.012013
Categorizing bugs with social networks: a case study on four open source software communities · ICSE 2013
Software maintenance and evolution › issue tracking
bug tracking
0.012013
Categorizing bugs with social networks: a case study on four open source software communities · ICSE 2013
Collaborative and social computing
online communities
0.012012
The co-evolution of socio-technical structures in sustainable software development: Lessons from the open source software communities · ICSE 2012
Collaborative and social computing › peer production
open source collaboration
0.012012
The co-evolution of socio-technical structures in sustainable software development: Lessons from the open source software communities · ICSE 2012

Methods — techniques the papers use, named apart from their topics

data-driven analysis · 0.3complex networks · 0.3support vector machine · 0.2social network analysis · 0.2
YearPublicationVenuePosition
2013 Categorizing bugs with social networks: a case study on four open source software communities
abstract
Efficient bug triaging procedures are an important precondition for successful collaborative software engineering projects. Triaging bugs can become a laborious task particularly in open source software (OSS) projects with a large base of comparably inexperienced part-time contributors. In this paper, we propose an efficient and practical method to identify valid bug reports which a) refer to an actual software bug, b) are not duplicates and c) contain enough information to be processed right away. Our classification is based on nine measures to quantify the social embeddedness of bug reporters in the collaboration network. We demonstrate its applicability in a case study, using a comprehensive data set of more than 700, 000 bug reports obtained from the Bugzilla installation of four major OSS communities, for a period of more than ten years. For those projects that exhibit the lowest fraction of valid bug reports, we find that the bug reporters' position in the collaboration network is a strong indicator for the quality of bug reports. Based on this finding, we develop an automated classification scheme that can easily be integrated into bug tracking platforms and analyze its performance in the considered OSS communities. A support vector machine (SVM) to identify valid bug reports based on the nine measures yields a precision of up to 90.3% with an associated recall of 38.9%. With this, we significantly improve the results obtained in previous case studies for an automated early identification of bugs that are eventually fixed. Furthermore, our study highlights the potential of using quantitative measures of social organization in collaborative software engineering. It also opens a broad perspective for the integration of social awareness in the design of support infrastructures.
Marcelo Serrano Zanetti, Ingo Scholtes, Claudio J. Tessone, Frank Schweitzer
ICSE1
2012 The co-evolution of socio-technical structures in sustainable software development: Lessons from the open source software communities
abstract
Software development depends on many factors, including technical, human and social aspects. Due to the complexity of this dependence, a unifying framework must be defined and for this purpose we adopt the complex networks methodology. We use a data-driven approach based on a large collection of open source software projects extracted from online project development platforms. The preliminary results presented in this article reveal that the network perspective yields key insights into the sustainability of software development.
Marcelo Serrano Zanetti
ICSE1
2006 Evolutionary Modeling of Larval Dispersal in Blowflies Using Non-Uniform Cellular Automata
abstract
When the food supply finishes, or when the larvae of blowflies complete their development and migrate prior to the total removal of the larval substrate, they disperse to find adequate places for pupation, a process known as post-feeding larval dispersal. Based on experimental data of the initial and final configuration of the dispersion, the reproduction of such spatio-temporal behavior is achieved here by means of the evolutionary search for cellular automata with a distinct transition rule associated with each cell, also known as a nonuniform cellular automata, and with two states per cell in the lattice. Two-dimensional regular lattices and multivalued states will be considered and a practical question is the necessity of discovering a proper set of transition rules. Given that the number of rules is related to the number of cells in the lattice, the search space is very large and an evolution strategy is then considered to optimize the parameters of the transition rules, with two transition rules per cell. As the parameters to be optimized admit a physical interpretation, the obtained computational model can be analyzed to raise some hypothetical explanation of the observed spatio-temporal behavior.
Ana L. T. Romano, Leonardo Gomes, Guilherme Gomes, Wilfredo Jaime Puma Villanueva, Marcelo Serrano Zanetti
IEEE Congress on Evolutionary Computation5