Verabradley.com Traffic and Demographic Statistics by Quantcast

 

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Rankings

verabradley.com

Monthly Uniques 557.3K US
  •  
  • Not Quantified

    Data is estimated

Creates stylish quilted cotton luggage, handbags and accessories. Company history, store locator, and product lines. [Description from dmoz]

Vera Bradley Designs likes its customers to carry lots of baggage around. The company designs and makes quilted handbags, travel bags, as well as travel accessories such as cosmetic bags, curling iron covers, and pocket wallets. The company's products are available in more than 3,000 gift and specialty stores and about a half a dozen Vera Bradley retail stores. In addition to handbags and travel bags, the stores offer licensed products, including Vera Bradley brands rugs, lighting, furniture and other products. Vera Bradley Designs was formed in 1982 by friends Patricia Miller and Barbara Bradley Baekgaard. They named the company after Barbara's mother, Vera Bradley. [Description from Hoover's]

This site reaches over 557K U.S. monthly people.The typical visitor patronizes Sephora, wears Lands End, and shops at Stein Mart.


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This publisher has not implemented Quantcast Measurement. Data is estimated and not verified by Quantcast. Get Quantified!™
Updated May 2013 • Next: Jun 2013

US Web Demographics

See More Details     Gender   ||   Age   ||   Children   ||   Income   ||   Education   ||   Ethnicity
index
 
 
Male
 
  77
Female
 
 
122
 
 
 
< 18
 
 
107
18-24
 
  99
25-34
 
 
120
35-44
 
 
111
45-54
 
  79
55-64
 
  88
65+
 
  67
 
 
 
No Kids
 
  92
Has Kids
 
 
108
 
internet average
index
 
 
$0-50k
 
  50
$50-100k
 
  81
$100-150k
 
 
143
$150k+
 
 
108
 
 
 
No College
 
  84
College
 
 
115
Grad School
 
 
109
 
 
 
Caucasian
 
 
124
African American
 
  23
Asian
 
  32
Hispanic
 
  14
Other
 
  73
 
internet average

Updated Feb 2013 • Delayed - Next: Jun 2013

Audience Also Likes

Data Source: United States

The people who visit verabradley.com are also likely to visit these categories and sites:

Affinity Fragrances/Cosmetics
14.6x Sephora
14.5x ulta.com
7.8x Bath and Body Works
7.8x saksfifthavenue.com
Affinity Apparel
10.9x Lands End
8.6x L.L. Bean
7.8x saksfifthavenue.com
7.5x Stein Mart
Affinity Department Stores
8.3x Kohl's
7.8x saksfifthavenue.com
6.6x Macy's
6.1x QVC

Audience Also Likes

This list shows other sites an audience frequents, which can reveal brand preferences and other lifestyle traits. The Audience Also Likes section of a site's profile shows other sites that the audience is likely to visit, and the affinity indicates how much more likely than average. For example, if the profile for wsj.com listed barrons.com with an affinity of 10x, a randomly chosen visitor to wsj.com is ten times likelier to visit barrons.com than the average internet user.

Demographic Index

Index represents how a site's audience compares to the online internet population as a whole. An index of 100 indicates a site's audience is at parity with the total internet population.

Affinity

The affinity numbers represent how likely a given visitor is to visit one of the listed sites or categories compared to the internet average. For example, an affinity number of 10.2 would say that a user on "X" website is 10.2 times more likely than the average internet visitor to visit the other site or category that is provided.

Directly Measured

This website is Quantified, and the data displayed here is directly measured by Quantcast.

Addicts

Addicts are the hardcore segment of a site's audience, who have 30 or more visits to that site in a month.


Regulars

Regulars refers to a segment of a site's audience that frequent a site more than once per month but not as much as addicts who frequent a site 30 or more times per month.


Passers-By

Passers-by have a single visit over the course of a month.


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Getting Quantified

Getting Quantified means you get free, directly measured and reliable audience and traffic data for the web properties you manage. Non-Quantified sites are still listed, but the data shown is estimated.

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People from Sites & Syndicators

These percentages usually sum greater than 100% due to overlap in site and syndicated audiences.

Reading Demographic Graphs

1. Index

This compares audience composition of the site to the entire Internet population. The higher the index number, the more concentrated a site is in a particular demographic.

As an example, if a site indexes 100 for age 18-24, that means a given visitor to it is as likely to be 18-24 as any internet user chosen at random. An index of 200 means the visitor is twice as likely to be 18-24, 50 means half as likely, and so on.

2. Segments are represented with icons. Segments include gender, age, household income, and education.

3. Very High Indexes (over 200) are denoted with a plus symbol.

4. Internet Average is represented by the dotted vertical line.


Reading Demographic Graphs

This compares audience composition of the site to the entire Internet population. The higher the index number, the more concentrated a site is in a particular demographic.

As an example, if a site indexes 100 for age 18-24, that means a given visitor to it is as likely to be 18-24 as any internet user chosen at random. An index of 200 means the visitor is twice as likely to be 18-24, 50 means half as likely, and so on.

1. Segment refers to the demographic composition attribute.

2. Very High Indexes (over 200) are denoted with a plus symbol.

3. Internet Average is represented by the dotted vertical line.

4. Expand the data to see the numbers which make up the index calculation.

The expanded view shows the percentage composition, the Internet average and the multiple.

1. A Colored Bar indicates that a segment exceeds the Internet average, whereas a gray bar indicates the segment is below the Internet average. Internet average is represented by the dotted vertical line.

2. A Multiple is the percentage of the segment on this site divided by the average of the same segment on the entire Internet.

Example:
80% female segment on site ÷ 32% female internet average = 2.5x

This chart breaks down the site's audience for a demographic. All the segments collectively equal 100%.

As an example, if a site indexes 100 for age 18-24, that means a given visitor to it is as likely to be 18-24 as any internet user chosen at random. An index of 200 means the visitor is twice as likely to be 18-24, 50 means half as likely, and so on.

1. The Top-Indexing Segment is shown in color.


Understanding User Retention

This graph examines user retention patterns for a mobile app, which tells the story of how much of app's user base continues to use the app after installation over time.

1. The x-axis is comprised of cohorts based on when users installed the app. For example, if we look at the column "+3 Days", this means that regardless of whether users installed the app a week ago or a month ago, what ratio of these users have returned within three days after installation.

2. The gray bars indicate the average retention rate across all days the app was downloaded.

3. The yellow line represents the average retention rate by period of all apps measured by Quantcast.

4. Install grouping details can be found by clicking on the down arrow.

In the expanded view, each row shows the retention patterns based on a point in time. Click on each row to compare that cohort against the average of all users installing the app.

1. The average day row shows the general retention rate for the entire app.

2. The highlighted row shows the retention rate compared against the average. In this example, 29% of users who installed the app one month ago returned at some point within two days, compared to the average of 35%.

3. The Add Date button allows you to add custom dates to determine retention patterns.

4. The Close button collapses the details and returns you to the default view.


Understanding Visit Frequency

This chart shows the number of return visits for unique users over the last 30 days.

1. Toggle between visit patterns of Logged In and Non Logged In users. In order to enable the toggle, the publisher must designate that the app has a logged in user base. The Logged In number represents the visit frequency of users that have logged in order to use this app.

3. For example, over the last 30 days, 3,644 unique users visited 4-7 times.


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