عنوان مقاله | نویسنده(ها) | مربوط به کنفرانس | چکیده | خرید مقاله |
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Narges Khakpour, Saeed Jalili
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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Intrusion detection can no longer satisfy security
needs of an organization solely. Recently, the attention
of security community turned to automatic intrusion
response and prevention, as the techniques, to protect
network resources as well as to reduce the attack
damages. Knowing attack scenarios enables the system
administrator to respond to the threats swiftly by either
blocking the attacks or preventing them from
escalating. Alert correlation is a technique to extract
attack scenarios by investigating the correlation of
intrusion detection systems alerts. In this paper, we
propose a new learning-based method for alert
correlation that employs supervised and transductive
learning techniques. Using this method, we are able to
extract attack scenarios automatically.
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Mohammad Reza Miryani, Mahmoud Naghibzadeh
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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Optimal tasks allocation is one of the most
important problems in multiprocessing. Optimal
assignment of tasks to a multiprocessor is an NPhard
problem in general cases, and precedence task
graph makes it more complex. Many factors affect
optimal tasks allocation. One of them is cache reload
time in multiprocessor systems. These problems exist
in real-time systems, too. Due to high sensitivity of
‘time’ in real-time systems, scheduling with respect
to time constraints becomes very important. This
paper proposes a suboptimal scheduler for hard realtime
heterogeneous multiprocessor systems
considering time constraints and cache reload time
simultaneously, using multiobjective genetic
algorithm. In addition, it tries to propose a
generalized method for real-time multiobjective
scheduling in multiprocessor systems using genetic
algorithms.
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Seyyed Amir Asghari, Mohammad Khademi, Morteza Ansarinia, Hamid Reza Zarandi, Hossein Pedram
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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The embedded systems usage in different applications
is prevalent in recent years. These systems include a wide
range of equipments from cell phones to medical
instruments, which consist of hardware and software. In
many examples of embedded systems, fault occurrence can
lead to serious dangers in system behavior (for example in
satellites). Therefore, we try to increase the fault tolerance
feature in these systems. Therefore, we need some
mechanisms that increase the robustness and reliability of
such systems. These objects cause the on-line test to be a
great concern. It is not important that these mechanisms
work in which level (Hardware level, Software level or
Firmware). The major concern is that how well these
systems can provide debugging, test and verification
features for the user regardless of their implementation
levels. Background Debug Module is a real time tool for
these features. In this paper we apply an innovative way to
use the BDM tool for fault injection in an embedded
system.
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M. Lankarany, M.H. Savoji
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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We address, in this paper, the problem of estimating
the input sequence of a known, non-minimum phase,
FIR system, when a large number of its roots are
located near or on the unit circle. This issue cannot be
solved by conventional methods known to date.
Recently, algorithms based on spectral factorization
are considered as possible solutions of inversing nonminimum
phase systems but, these techniques cannot
prohibit the instability of the systems whose roots are
located on the unit circle. We propose an alternative
method based on adaptive filtering resulted from a new
point of view of the deconvolution problem that avoids
inversing the system. The LMS adaptive filter is used to
meet our objective while faster implementation than
optimization-based techniques, be it gradient based or
genetic, is achieved. Moreover, the technique is
validated by experimental results, in simulated cases,
which are mainly focused on large sequence of signals
in noisy conditions.
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M. Komeili, M. Valizadeh, N. Armanfard, E. Kabir
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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In this paper, a fuzzy inference system by which
reliability of features can be measured is designed.
The reliability determines discriminative power of a
feature in separating target from background. We
focus our attention on design of membership functions.
With a rational explanation on available information
over a particle filter-base tracking process, we infer a
coarse estimation of membership functions. It follows
with a fine-tuning stage by using genetic algorithm.
Color, edge, texture and TED are used in current work
but the extension to a wider number of features is
straightforward.
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Ahmad Ali Abin, Mehran Fotouhi, Shohreh Kasaei
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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In recent years, processing the images that contain
human faces has been a growing research interest
because of establishment and development of
automatic methods especially in security applications,
compression, and perceptual user interface. In this
paper, a new method has been proposed for multiple
face detection and tracking in video frames. The
proposed method uses skin color, edge and shape
information, face detection, and dynamic movement
analysis of faces for more accurate real-time multiple
face detection and tracking purposes. One of the main
advantages of the proposed method is its robustness
against usual challenges in face tracking such as
scaling, rotation, scene changes, fast movements, and
partial occlusions.
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Elham Shabani Nia, Shohreh Kasaei
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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Vehicle tracking is an essential requirement of any
vision based Intelligent Transportation System for
extracting different traffic parameters, efficiently.
Handling inter-object occlusion is the most
challenging part of tracking as a process of finding
and following interested objects in a sequence of video
frames. In this paper we present a system, based on
code-book background model for motion segmentation
and Kalman filter for tracking with a new approach for
occlusion. This approach separates occluded vehicles
based on longest common substring of chain codes. We
use this tracking system to estimate some traffic
parameters. Experimental results show the efficiency
of the method
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Fatemeh Javadi Mottaghi, Mohammad Abdollahi Azgomi
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چهاردهمین کنفرانس بینالمللی سالانه انجمن کامپیوتر ایران
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The existing workflow modeling languages have
some limitations and drawbacks. The aim is to introduce a
new workflow modeling language based on stochastic
activity networks (SANs). SANs are a powerful extension of
Petri nets, which have been used in a wide range of
applications. SAN-based workflow modeling language
(SWML) has some high-level modeling primitives for easily
modeling workflow patterns. For analysis of the modeled
workflow systems with SWML, we have introduced the
transformation techniques from SWML models into
ordinary SANs. The transformed models can be analyzed
using the existing tools for SANs, such as the Möbius
modeling tool. In this paper, we present definitions of
SWML modeling language and its primitives and an
example of SWML models.
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امیر قیاسوند, امید قیاسوند
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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ابوالفضل نادی, علیرضا رضائی, سعید شیری قیداری
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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حامد خطائی مراغه, علی حاجیپور
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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مصطفی قاضیزاده, هادی صدوقییزدی
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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محمود امین طوسی, ناصر مزینی
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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مهران جوانی, امیرمسعود افتخاریمقدم
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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آرش عبدی هجراندوست
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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سعید صبامنیری
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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سیدامیر اصغری, حسن طاهری
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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سیدیحیی نبوی
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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مهدی گلشن
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پانزدهمین کنفرانس ملی سالانه انجمن کامپیوتر ایران
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