cocMatrix
computes co-occurences between elements of a Tag Field from a bibliographic data frame. Manuscript is the unit of analysis.
cocMatrix(M, Field = "AU", type = "sparse", sep = ";",
binary = TRUE)
is a data frame obtained by the converting function
convert2df
. It is a data matrix with cases corresponding to
articles and variables to Field Tag in the original ISI or SCOPUS file.
is a character object. It indicates one of the field tags of the standard ISI WoS Field Tag codify. Field can be equal to one of this tags:
AU |
Authors | |
SO |
Publication Name (or Source) | |
JI |
ISO Source Abbreviation | |
DE |
Author Keywords | |
ID |
Keywords associated by ISI or SCOPUS database |
for a complete list of filed tags see: Field Tags used in bibliometrix
indicates the output format of co-occurrences:
type = "matrix" |
produces an object of class
matrix |
is the field separator character. This character separates strings in each
column of the data frame. The default is sep = ";"
.
is a logical. If TRUE each cell contains a 0/1. if FALSE each cell contains the frequency.
a co-occurrence matrix with cases corresponding to manuscripts and variables to the
objects extracted from the Tag Field
.
This co-occurrence matrix can be tranformed into a collection of compatible networks. Through matrix multiplication you can obtain different networks. The fuction follows the approach proposed by Batagely and Cerinsek (2013).
convert2df
to import and convert an ISI or SCOPUS
Export file in a data frame.
biblioAnalysis
to perform a bibliometric analysis.
biblioNetwork
to compute a bibliographic network.
# NOT RUN {
# EXAMPLE 1: Articles x Authors co-occurrence matrix
data(scientometrics)
WA <- cocMatrix(scientometrics, Field = "AU", type = "sparse", sep = ";")
# EXAMPLE 2: Articles x Cited References co-occurrence matrix
# data(scientometrics)
# WCR <- cocMatrix(scientometrics, Field = "CR", type = "sparse", sep = ";")
# EXAMPLE 3: Articles x Cited First Authors co-occurrence matrix
# data(scientometrics)
# scientometrics <- metaTagExtraction(scientometrics, Field = "CR_AU", sep = ";")
# WCR <- cocMatrix(scientometrics, Field = "CR_AU", type = "sparse", sep = ";")
# }
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