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Econ 5121辅导、讲解R编程语言、辅导NoteII adoption、讲解R设计 解析Haskell程序|辅导Python编程

Econ 5121 Problem Set 3 (Due on Dec 5 (section C) and Dec 6 (section B))
We encourage team collaborations in this problem set. Each team can consist of at most 5
students and each team only submit one copy of answers. All answers should be machine-typed.
The top 3 teams which provide the most precise predictions will be awarded with course bounce
points. The winning teams have to prepare a 10 minutes presentation (with power points shown
on screen) in the tutorial to show the class how they specify the model and how they predict.
I. Predicting Samsung NoteII adoption (download the data sets “adoption” and “prediction” from
the course blackboard system)
You are given a dataset of customers from a telecommunication company in 2012. There
are 2,621 customers who belongs to 20 groups. Using this data set, we are interested in
knowing what factors affect customer’s adoption on Samsung cellphone, which is a binary
variable with values 1 (adopt) or 0 (not adopt) and we denote it by Y . The data set provides
customer information including age, gender dummy (1 for man and 0 for woman), and the
dummy of smartphone user (prior to the release of Samsung Note II). Other than the above
customer information, you are also given the communication network constructed from the
call detail record for each group. The communication network takes the form of an adjacency
matrix (W). Each element of W, Wij equals to one if customers i and j are connected and
zero otherwise.
1. Please compute the group size, network density, and network clustering coefficient of
each group and report which group has the highest density and which group has the
highest clustering coefficient.
2. Please use the regression analysis to comment on whether the group size, network density,
and network clustering coefficient have impacts on the number of Samsung Note II
adoption in each group or not.
3. Please pick up one group and use the R package “igraph” to visualize this communication
network. Use a different color to denote nodes who adopt Samsung Note II and use
different node size to reflect its degree centrality.
4. You are suggested to incorporate network statistics at individual level (e.g., degree
centrality) or global level (e.g., density) into your Logit model to study customer’s
adoption of Samsung NoteII. Please specify your model and report your estimation
results (including coefficients and standard errors)
15. Based on your estimated model, predict Samsung Note II adoptions for another 20
groups (indexed from 21 to 40) in the data set “prediction.” In the data set “prediction,”
there are information of customer characteristics and networks, but no information of
Samsung Note II adoption. According to your predictions, please rank the top 10 groups
according to the number of predicted adoptions in each group.

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