Hot answers tagged

96

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) ...


78

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 ...


35

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 ...


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 ...


24

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 ...


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 ...


14

That query times out because it runs 3 queries for every user. Back in the days the users table wasn't that big so the punishment for a bad query was covered by hardware. I re-implemented that query: select top 50 -- only the top 50 users p.lasteditoruserid as [User Link] , sum(case when posttypeid = 1 then 1 -- Questions ...


8

Now it appears to be fixed. I just went to the site and at first it appeared with the old image, after a hard refresh the new image came up. Case can now be closed! Thanks stack devs!


6

this q&a are more about playing with SEDE and not realy about plagiarism. Any unique entry may be plagarised from out of SO. Two identical entries could be made by different people who have not read each other. For example two identical answers to two different question. An entry can plagiarism two or more sources An entry can be 95% duplication and 5% ...


6

I have taken the simplest approach to give some sort of outcome that you can work with. I used this SEDE query select substring(url,1, charindex('/', url, 9)) as site , count(*) from ( select top 1000000 id -- , charindex('<a href="http',body) as start -- , charindex('"', body, charindex('<a href="http',body) + 16) as endi , ...


5

According to this query, you're number #181 for the bronze Swift badge. -- This query retrieves all the bronze swift badge users and ranks them according to their badge date received. SELECT ROW_NUMBER() OVER(ORDER BY b.Date ASC), b.UserId, b.Date DateReceived, u.DisplayName FROM Users u, Badges b WHERE b.name='swift' and b.class=3 and u.Id=b.UserId GROUP ...


3

Here's a SEDE query for it. select count(*) / 1440.0 from postswithdeleted p where datepart(year, getdate()) = datepart(year, p.creationdate) and datepart(dayofyear, getdate()) - 7 = datepart(dayofyear, p.creationdate) and p.posttypeid = 1 -- questions It returns the average number of questions asked 7 days ago (because SEDE can be a few days old). It ...


3

As indicated by Rob I forked the query to implement his suggestion: -- Questions with no answers and no comments declare @phrase nvarchar(200) = ##phrase:string## select TOP 30 p.Id as [Post Link] FROM Posts p WHERE p.PostTypeId = 1 AND p.score >= 0 AND p.closeddate is null AND ISNULL(p.AnswerCount,0) = 0 AND ISNULL(p.CommentCount,0) =...


2

Well, I finally had the time and patience to search an elegant, though somewhat complicated, solution, using a recursive Common Table Expression (CTE). As an example use, a summary of synonymization: with synonyms (target, source, level) as ( select targettagname, sourcetagname, 1 from tagsynonyms where approvaldate is not null and not targettagname ...


2

From the SEDE FAQ: How often is the Stack Exchange Data Explorer updated? The data is updated early every Sunday morning around 3:00 UTC. The last update was Dec 13 at 6:27.


2

Out of inspiration of your question, I began to toy with composing queries on StackExchange Data Explorer. I created this ugly query that will essentially, gather a list of all questions, answers, and comments from question posts in which you have either: Asked the question; Posed an answer; or Made a comment Then it will search each post/comment in the ...


2

My experience is that I started as a Asker, transitioned to an Answerer as it was the only way I had to show up my coding skills, and then settled to be asker/answerer in small bits. Stackoverflow really helped me to transition to a remote job. After i got my first remote job, experience became more important than Stackoverflow reputation. And i really ...


2

You need to indicate the collation to use for your LIKE statement, as I did in your forked query Location like '%##Location##%' collate Latin1_General_100_CI_AI The above collate tells Sql Server to compare the Location and the parameter case insensitive and accent insensitive. See the COLLATE clause. Almost all fields in the database are defined as ...


2

In case anyone needs a generic query (parameterized by badge and user), I've created one here: http://data.stackexchange.com/stackoverflow/query/446048/order-of-user-being-awarded-badge JAL appears as #180 (presumably another user was deleted since PetahChristian's answer): http://data.stackexchange.com/stackoverflow/query/446048/order-of-user-being-...


2

To see all the questions that have currently (well, when it was updated) pending duplicate flags, you can use this query: select postid as [Post Link], duplicateofquestionid as [Post Link] from pendingflags where duplicateofquestionid is not null


1

Look in the PostHistory table for a "Post Closed" record. For example, see this query. You can't see data about whether it was flagged as a duplicate from SEDE.


1

For the record, here is the query I came up with: DECLARE @tagName nvarchar(35) = '##tagName##' SELECT top 50 TagName, SUM(case votes.votetypeid WHEN 2 THEN 1 -- upvote WHEN 3 THEN -1 -- downvote END) as Rep, Users.DisplayName as UserName, number = ROW_NUMBER() OVER (ORDER BY TagName) FROM Tags ...


1

Based on this query you have to supply 2 wiki's: select p.id as [Post Link] , p.owneruserid as [User Link] , t.tagname , (case when t.WikiPostId is null and t.excerptPostId is null then 'No Wiki/NoExcerpt' when t.WikiPostId is null then 'No Wiki' when t.excerptPostId is null then '...


1

You ask for SEDE, you get SEDE. This query shows your answers that received a bounty, the amount and the user who started the bounty. select p.id as [Post Link] , owneruserid as [User Link] , v.bountyamount , vs.userid as [User Link] from posts p inner join votes v on v.postid = p.id inner join votes vs on vs.postid = p.parentid where v....


1

It requires some SQL magic to get this solved. I used a temporary table and stored procedure to parse two comma separated text entries. The stored procedure is recursive. Here is the magic: -- tags1: comma separated tags -- tags2: comma separated tags create table #tagselection( tagname varchar(35) collate SQL_Latin1_General_CP1_CS_AS, ...


1

It is a way to get the usage per day. I wouldn't convert to a varchar but to a date because that enable SEDE to create a graph, which was also mentioned by Daniel. My attempt can be found here SELECT dateadd(m, -datediff(m, CreationDate, getdate()),getdate()), COUNT(*) AS questions FROM Tags INNER JOIN PostTags ON PostTags.TagId = Tags.id ...



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