124

Go to the users > reputation > all page Look at the last page in the list of pages. Divide that value by two Go to that page by editing the query string parameter for the page number. (At the time of this posting, this is the appropriate page.) If the users on that page don't all have the same reputation (at the time of this post, they do all have the same ...


107

Thanks to Pekka, I have created the following query and that user shows as number 1 on the list: -- Show top 20 most generous users: bounties awarded -- Minimum of 50 reputation required (removes low rep users, Community and -- sin-binned users) SELECT TOP(20) Users.Id [User Link], Users.DisplayName, Users.Reputation, (SELECT SUM(BountyAmount) ...


107

With the use of SEDE (short for The Stack Exchange Data Explorer, tutorial) and some SQL fu the following query gives you roughly what you're looking for: -- userid: User Id "The id in the url of your Stack Oveflow user profile" -- pos: Top position "What is the position you're interested in" -- create a temp table to hold only the tagid's for the OP -- ...


76

Interesting question! Here's a small start, open to critiques as I feel I'm bound to've made some kind of reasoning mistake... First things first, this is what my hacking around initially results in: (click img for "high fidelity" / meta-proof version by @jeeped) Note that -since the question is mainly about transitions- only the arrow widths are ...


59

The Top 1% of Users have 54.1% of the Reputation. #WeAreThe99%


56

After looking at rene's answer, I ran my own query filtering out anyone with 1 rep and got an answer of 21. For anyone interested the query is thus: select avg(reputation) median from (select reputation, rnasc = row_number() over(order by reputation), rndesc = row_number() over(order by reputation desc) from [users] where reputation > 1 ) b where ...


54

Age has been removed from SEDE (and from all internal databases) as part of an audit for GDPR. We no longer display it, so there's no reason to ask for or keep it. It was my call to remove the column completely on SEDE. I opted to do this because one of the primary usages of Age was distribution grouping there. These types of queries would silently fail if ...


38

It is 1 based on this SEDE query -- http://stackoverflow.com/a/7227860/578411 select avg(reputation) median from (select reputation, rnasc = row_number() over(order by reputation), rndesc = row_number() over(order by reputation desc) from [users] ) b where rnasc between rndesc - 1 and rndesc + 1 ... which is a big lie. The actual median is... 92 As ...


37

The existing posts answer your question perfectly, but for information, here is what the reputation distribution looks like. You can obtain the data with the following query: SELECT Reputation AS reputation, COUNT(Reputation) AS distribution FROM Users GROUP BY Reputation ORDER BY Reputation But because Jon Skeet, logarithmic scales are mandatory in order ...


33

Finding Exact-Match Answers There are two types of plagiarism that can be found on Stack Overflow: exact-match instances, and non-exact-match instances. Of the two types, exact-match plagiarism is relatively trivial to detect: it merely requires a simple equality comparison between two "strings" (or whatever text-field datatype is being used to store ...


33

To look at this more globally, consider the frequency distribution of all comment scores in the history of the site (SEDE query). In the plot below, comment scores are represented by points, proportion of comments with that score is on the y-axis, and the rank of that score's frequency is on the x-axis (score 0 is rank 1, score 1 is rank 2, and so on). Note ...


31

Here's my query: SELECT TOP 50 u.Id, u.DisplayName, u.Reputation, count(*) as [Total Number of Posts], u.Reputation/count(*) as Ratio FROM Users u join Posts p on p.OwnerUserId = u.Id where p.postTypeId in (1,2) group by u.Id,u.DisplayName,u.Reputation ORDER BY Ratio DESC Almost all of the top 50 users made only one post. Id |...


28

The following SEDE Query does that: ;with answers as (select a.id , a.owneruserid from posts q inner join posts a on q.id = a.parentid where q.owneruserid = ##userid:int?3577745## ) select a.id as [Post Link] , a.owneruserid as [User Link] , (select count(*) from answers ans where a.owneruserid = ans.owneruserid) as [# ...


27

Answer to the question: Excluding those users with no contributions (1 rep) would certainly help increase the usefulness of your query. As far as I know, Jon Skeet's rep is accurate, but he would have a lot more if it wasn't for the daily rep limit. Response about results: To the results, and to respond to the post by @Adam893; high rep users have high ...


27

All in one... This query includes amounts and percentages for reputation spent on one's self and on others. While an overall rank is included for context, results are ordered by a composite generosity rank which excludes self-serving bounties. This particular query's top user is named enough rep to comment. He apparently retains enough rep to comment and ...


27

There comes a point where a resource like php has reached the full breadth of what it can cover within the constraints of what Stack Overflow considers to be on topic. What remains is a lot of noise throwing itself at the wall, with a tiny bit of signal occasionally emerging and bringing more depth to the resource. This problem isn't at all surprising, and I'...


26

There is no such functionality in the search engine. I instead use the Stack Exchange Data Explorer (SEDE) for this, with a query aptly named Have they met? The query takes two userids and then finds all question/answer pairs between two users, questions they have in common, as well as comments from one user left on posts by the other or left as a reply to ...


26

As per this Meta Stack Exchange FAQ post OwnerUserId (only present if user has not been deleted; always -1 for tag wiki entries, i.e. the community user owns them) So filtering out OwnerUserId IS NOT NULL AND OwnerUserId <> -1 is the correct way to get the result: SELECT TOP 10 OwnerUserId AS [User Link], COUNT(*) AS PostCount FROM Posts ...


23

AccountId is the id that belongs to your network profile. So it is a ForeignKey to the Account table. However, that table isn't in SEDE. It is stable across all your user profiles on all sites. UserId is per site (and different per site) You can do some nice cross-site analysis with UserId and Accountid like I did for Who is the user with highest combined ...


22

Using a Unicode string N'%中国%' instead of '%中国%' gives you the desired results: SELECT ROW_NUMBER() OVER(ORDER BY Reputation DESC) AS [#], Id AS Link, DisplayName, location, Reputation FROM Users WHERE Location LIKE N'%中国%' ORDER BY Reputation DESC; See https://softwareengineering.stackexchange.com/questions/155859/why-do-...


20

Yes, that is possible.1 In T-SQL you can switch between databases or link to a database. To know which databases there are you can run this query: select name from sys.databases The tables are always in the dbo schema. To determine which tags are common between Stack Overflow, Super User and Server Fault you can run this join over three tables from three ...


20

These are posts by deleted users. They also include dissociated posts. This can be confirmed by the following query: select top 10 Id as [Post Link], OwnerUserId from Posts where OwnerUserId is NULL;


19

So, it's good if there was a parameter, added in the link It already exists, you can just add parameters like this: https://data.stackexchange.com/stackoverflow/query/949/?UserId=2377343 This will directly execute the query for your user ID. If you are writing a query, there even is a 'permalink' option which will generate the URL for you (see the status ...


19

This should do it for you. Just input the ID of the question you want to search and run the query. Thanks @HansPassant for pointing to a good starting point (and @jon.doe12231 for making such initial query). Code if curious: select distinct * from ( select PostId as [Post Link] from PostLinks join Posts q on q.Id=RelatedPostId where LinkTypeId=...


18

Questions about Transact SQL, the SQL dialect used by the SEDE server, are on-topic; see the tsql tag, for example. Questions about the SEDE schema are not; ask those on Meta Stack Exchange instead. In other words, if the question can be applied to any SQL Server, not just to the SEDE dataset, it is on-topic. If the question is closely coupled to the SEDE ...


18

It is true, Age is gone. But not just that. We've completely dropped the Birthdate field from our database altogether (and the option is gone from the Edit Profile screen). The API will forever return null for backwards compatibility reasons, but the Age field was dropped for SEDE exports.


18

Deleted posts in SEDE are available, but anonymized. This means you can't view the count of deleted answers for a specific user. Deleted posts also get removed from related tables like PostHistory to avoid people working around the anonymization.


18

These are the answers that earned the most reputation with bounties: SELECT TOP 100 SUM(V.BountyAmount) as 'Bounty Amount', COUNT(*) as 'Amount of Bounties', V.PostId AS [Post Link] FROM Votes V INNER JOIN Posts P ON P.id = V.PostId WHERE P.PostTypeId = 2 AND V.VoteTypeId=9 GROUP BY V.PostId ORDER BY 'Bounty Amount' DESC And these are the ...


17

Well, most images that I see are all hosted by imgur. So I just did a query that searches for your posts that include text like imgur. You can see the query here: https://data.stackexchange.com/stackoverflow/query/303727/find-posts-of-yours-that-include-an-image?PutYourUserIdHere=272287


16

The Posts.Body field in SEDE actually contains the rendered HTML version of the post content, so it's pretty easy to search it for <img> tags: SELECT Id AS [Post Link] FROM Posts WHERE lower(Body) LIKE '%<img%' AND OwnerUserId = ##UserId## (Forked from Roombatron5000's query.) This query works also for images that are not hosted on imgur. For ...


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