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Chakra Bahadur Patali
Mphil Scholar
Far Western University
Facebook drives behavior of
passive households in stock
markets
Description of the article
 Title: Facebook drives behavior of passive
households in stock markets
 Authors: Milla Siikanen, Kęstutis Baltakysa, Juho
Kanniainena, Ravi Vatrapub,
Raghava Mukkamalab,Abid Hussain
 Journal: Finance Research Letters, 2018, Vol. 27,
208 -213.
Background
 Social media has grown since its humble beginnings
in the early 2000s.
 Social media sites, such as Face book and Twitter,
create various opportunities for companies to improve
their internal and external communications and to
collaborate and communicate with their customers,
partners, and other stakeholders, such as investors.
 According to Asur and Huberman (2010), social
media have important role in external communication,
it is not surprising that social media data have been
used recently to predict real world outcomes.
 In the financial market research, numerous
scholars have used Facebook data and data from
other social media sites (Karabulut, 2013;
Siganos et al., 2014; Bukovina et al., 2015).
 Facebook is clearly the most widely used social
media platform, with 2.2 billion monthly active
users worldwide (Statista, 2018).
 According to Jung et al. (2017), As of January
2013, social media sites such as Facebook and
Twitter are used by about 45% of S&P1500 firms
to communicate externally formal and informal
information about their business.
 Specifically, companies communicate both
corporate disclosures and other information via
social media (Zhou et al., 2014).
 Yang et al. (2017) show that social media, and
mass media in general, influences investor’s
trading decisions.
 In addition, Snow and Rasso (2017) show that
less sophisticated investors process financial
information received from social media differently
from information received via company’s investor
relations website.
Objective of study
 The primary aim of such research has been to
predict market-wide stock movements, yet
there is limited research on how social media
data relate to the behavior of individual
investors, perhaps because of the lack of
availability of investor account level data.
 The study also examine investors’ trading
decisions driven by Face book posts and
activity
Statement of problem
 How Facebook activity relates to an increase
versus a decrease in Nokia shares in investors’
portfolios.
 To identify the groups of investors whose trading
behavior is related to Facebook data.
Methodology
DATA, ESTIMATION OF VARIABLES, METHODS
Data
Shareholding registration record
data
 To identify the trading of different investor
categories the study use shareholding registration
record data including all domestic investors from
June 7, 2010 to the end of 2016.
 Data can be obtained from Euroclear Ltd.
 During study period 282,269 distinct Finnish
investors traded Nokia stock are taken as a
sample.
 The investors can be categorized into five groups
according to their sector codes: nonfinancial
corporations, financial and insurance
corporations, general governmental
organizations, nonprofit organizations, and
 Household investors are further divided into four
investor activity groups.
 Investor’s activity group is defined based on the
number of days the investor traded during the past
eight weeks, including the analyzed week.
 If the number of active days in the past 8 weeks is
equal to 1, the investor is considered inactive;
 if it is between 2 and 5, the investor is passive;
 6–20 means moderate; and
 21–40 means active
 Notably, this is a dynamic group, as one investor
might appear in several groups throughout the
analysis period.
 For the purposes of our analysis, we calculate the
number of investors in each group who changed
their holdings during a week and the number of
investors who increased their holdings (bought
more than sold) during that week.
 Table 1 gives the descriptive statistics of the
investor groups and their weekly trading in our
data sample.
 The study revealed that financial and
governmental institutions are on average most
active sector groups, where as households and
nonprofit organizations are least active.
Facebook data
 The study collect daily numbers of posts and
related comments, likes, and shares from Nokia’s
Facebook wall between June 2010 and
December 2016 using the Social Data Analytics
Tool (SODATO) (see Hussain et al., 2014;
Hussain and Vatrapu, 2014a, 2014b).
 The comments, likes, and shares are always
related to a specific post, i.e. the post is the main
action.
 Therefore, the study assign the numbers of
comments, likes, and shares to the date of the
original post—that is, not the date when the
actual comment, like, or share was made.
 The study aggregate the daily Facebook data to
weekly by summing the numbers of posts,
comments, likes, and shares during a week.
 The study relate the Facebook activity on
weekends to the week in which they can actually
affect investors’ trading decisions.
 In total, study sample comprises of 342 weekly
observations for posts, comments, likes, and
shares.
Table 2 gives descriptive statistics of
these time series.
Company announcement data
 The announcement data is collected from
NASDAQ OMX Nordic’s website.
 The data set includes all the announcements that
Nokia filed with Nasdaq between June 2010 and
December 2016.
 Altogether, the study have 507 company
announcements in the sample.
 Sample includes 187 weeks with at least one
announcement release (out of total 342 weeks).
Weekly return data
 The daily adjusted closing price data used to
calculate the returns is collected from NASDAQ
OMX Nordic’s website.
 The average weekly return for Nokia during the
sample period was −0.16%.
Results
 In Panel A, the signs for posts, comments, and likes
are consistently positive, except comments for
households.
 The signs for shares are both positive (governmental
and nonprofit) and negative (companies, financial,
households), though not all of them are statistically
significant, which can explain the variation.
 Panel B with activity groups reports positive estimates
for posts, but there is more variation for comments,
likes, and shares as passive and inactive investors
have negative estimates.
 Looking deeper into the reasons of these findings is
out of the scope of this paper and left for the future
research, as it would require semantic analysis.
Summary and conclusion
 We find that the decisions to buy versus sell are
associated with Facebook data especially for
passive households and for nonprofit
organizations.
 At the same time, it seems that more
sophisticated investors—financial and insurance
institutions—are behaving independently from
Facebook activities.
Facebook drives the behavior of passive households in stock Markets

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Facebook drives the behavior of passive households in stock Markets

  • 1. Chakra Bahadur Patali Mphil Scholar Far Western University Facebook drives behavior of passive households in stock markets
  • 2. Description of the article  Title: Facebook drives behavior of passive households in stock markets  Authors: Milla Siikanen, Kęstutis Baltakysa, Juho Kanniainena, Ravi Vatrapub, Raghava Mukkamalab,Abid Hussain  Journal: Finance Research Letters, 2018, Vol. 27, 208 -213.
  • 3. Background  Social media has grown since its humble beginnings in the early 2000s.  Social media sites, such as Face book and Twitter, create various opportunities for companies to improve their internal and external communications and to collaborate and communicate with their customers, partners, and other stakeholders, such as investors.  According to Asur and Huberman (2010), social media have important role in external communication, it is not surprising that social media data have been used recently to predict real world outcomes.
  • 4.  In the financial market research, numerous scholars have used Facebook data and data from other social media sites (Karabulut, 2013; Siganos et al., 2014; Bukovina et al., 2015).  Facebook is clearly the most widely used social media platform, with 2.2 billion monthly active users worldwide (Statista, 2018).  According to Jung et al. (2017), As of January 2013, social media sites such as Facebook and Twitter are used by about 45% of S&P1500 firms to communicate externally formal and informal information about their business.
  • 5.  Specifically, companies communicate both corporate disclosures and other information via social media (Zhou et al., 2014).  Yang et al. (2017) show that social media, and mass media in general, influences investor’s trading decisions.  In addition, Snow and Rasso (2017) show that less sophisticated investors process financial information received from social media differently from information received via company’s investor relations website.
  • 6. Objective of study  The primary aim of such research has been to predict market-wide stock movements, yet there is limited research on how social media data relate to the behavior of individual investors, perhaps because of the lack of availability of investor account level data.  The study also examine investors’ trading decisions driven by Face book posts and activity
  • 7. Statement of problem  How Facebook activity relates to an increase versus a decrease in Nokia shares in investors’ portfolios.  To identify the groups of investors whose trading behavior is related to Facebook data.
  • 8. Methodology DATA, ESTIMATION OF VARIABLES, METHODS
  • 9. Data Shareholding registration record data  To identify the trading of different investor categories the study use shareholding registration record data including all domestic investors from June 7, 2010 to the end of 2016.  Data can be obtained from Euroclear Ltd.  During study period 282,269 distinct Finnish investors traded Nokia stock are taken as a sample.  The investors can be categorized into five groups according to their sector codes: nonfinancial corporations, financial and insurance corporations, general governmental organizations, nonprofit organizations, and
  • 10.  Household investors are further divided into four investor activity groups.  Investor’s activity group is defined based on the number of days the investor traded during the past eight weeks, including the analyzed week.  If the number of active days in the past 8 weeks is equal to 1, the investor is considered inactive;  if it is between 2 and 5, the investor is passive;  6–20 means moderate; and  21–40 means active  Notably, this is a dynamic group, as one investor might appear in several groups throughout the analysis period.
  • 11.  For the purposes of our analysis, we calculate the number of investors in each group who changed their holdings during a week and the number of investors who increased their holdings (bought more than sold) during that week.
  • 12.  Table 1 gives the descriptive statistics of the investor groups and their weekly trading in our data sample.  The study revealed that financial and governmental institutions are on average most active sector groups, where as households and nonprofit organizations are least active.
  • 13. Facebook data  The study collect daily numbers of posts and related comments, likes, and shares from Nokia’s Facebook wall between June 2010 and December 2016 using the Social Data Analytics Tool (SODATO) (see Hussain et al., 2014; Hussain and Vatrapu, 2014a, 2014b).  The comments, likes, and shares are always related to a specific post, i.e. the post is the main action.  Therefore, the study assign the numbers of comments, likes, and shares to the date of the original post—that is, not the date when the actual comment, like, or share was made.
  • 14.  The study aggregate the daily Facebook data to weekly by summing the numbers of posts, comments, likes, and shares during a week.  The study relate the Facebook activity on weekends to the week in which they can actually affect investors’ trading decisions.  In total, study sample comprises of 342 weekly observations for posts, comments, likes, and shares.
  • 15. Table 2 gives descriptive statistics of these time series.
  • 16. Company announcement data  The announcement data is collected from NASDAQ OMX Nordic’s website.  The data set includes all the announcements that Nokia filed with Nasdaq between June 2010 and December 2016.  Altogether, the study have 507 company announcements in the sample.  Sample includes 187 weeks with at least one announcement release (out of total 342 weeks).
  • 17. Weekly return data  The daily adjusted closing price data used to calculate the returns is collected from NASDAQ OMX Nordic’s website.  The average weekly return for Nokia during the sample period was −0.16%.
  • 18. Results  In Panel A, the signs for posts, comments, and likes are consistently positive, except comments for households.  The signs for shares are both positive (governmental and nonprofit) and negative (companies, financial, households), though not all of them are statistically significant, which can explain the variation.  Panel B with activity groups reports positive estimates for posts, but there is more variation for comments, likes, and shares as passive and inactive investors have negative estimates.  Looking deeper into the reasons of these findings is out of the scope of this paper and left for the future research, as it would require semantic analysis.
  • 19. Summary and conclusion  We find that the decisions to buy versus sell are associated with Facebook data especially for passive households and for nonprofit organizations.  At the same time, it seems that more sophisticated investors—financial and insurance institutions—are behaving independently from Facebook activities.