dc.description.abstract |
Law enforcement departments are using several criminal databases which contain
different parameters related to crimes and criminals. This data is critical for
investigation. There is a need to apply data mining techniques on such data to identify
interesting patterns and influential parameters. These influential parameters can be
used by the law enforcement departments for crime control and investigation.
Criminal profiling is used by law enforcement agencies as an investigation tool to
predict the suspected offenders and to extract similar patterns which help in prediction
of future offences. Different criminal profiling techniques were proposed based on
crime nature, geographic locations, physical characteristics, crime scene parameters,
modus operandi, victim details, forensic evidence, recency, prolificness and actual
location. In Pakistan generally and in the province of Khyber Paktunkhwa
particularly, less work has been done in criminal profiling.
In this research, a predictive system for criminal profiling has been proposed based on
a mathematical model. The mathematical model is constructed from a list of attributes
which are critical for criminal profiling. A scoring engine has been designed which
assigns scores to criminals on the basis of which they are classified into high-profile
(habitual), medium-profile, and low-profile (non-habitual) criminals. This
classification will greatly help the law enforcement departments in the process of
investigation, prediction and management of criminals.
Dataset of prison department of Khyber Pakhtunkhwa has been used in this research.
There are thirty attributes available in the dataset from which twenty two have been
selected using attribute selection method. Some attributes are derived from the
existing attributes and finally a list of attributes has been made for research purposes. The findings of this research shows that five attributes have strong correlation with
high act crimes that are: total number of hearings, recovery in high act crime, total
number of group members, total number of non-blood visitors and crime frequency.
There are three attributes that have strong negative correlation with the high act
crimes which are: prison duration, number of dependents and education. On the basis
of these attributes a mathematical scoring model is constructed which is used for
criminals profiling. |
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