Tag Info

New answers tagged

1

First, you should improve your INSERTS, if you sort your values before inserting there should be no further duplicates. To remove all rows where another, sorted combination exists use this: DELETE FROM table FROM table t1 WHERE EXISTS ( SELECT NULL FROM table t2 WHERE t2.model1 = t1.model2 AND t2.model2 = t1.model1) WHERE t1.model2 > t1.model1 ...


1

To select duplicates as you've defined them: SELECT * FROM Table1 a WHERE EXISTS ( SELECT * FROM Table1 b WHERE a.model1 = b.model2 AND a.model2 = b.model1 ) AND model2 < model1 Demo: SQL Fiddle


2

Untested, use at your own risk, but it could serve as starting point to see unique only: select model1,model2 from T EXCEPT select model2,model1 from T where model2 > model1;


1

If you want to filter out duplicates from your results, seems like it should be simply: where cast(model1 as char(4))+cast(model2 as char(4))<>cast(model1 as char(4))+cast(model2 as char(4)) AND cast(model1 as char(4))+cast(model2 as char(4))<>cast(model2 as char(4))+cast(model1 as char(4)) If you want to SELECT the duplicates for deletion, ...


0

Use <Datatable>.DefaultView.ToTable(true) Ex.: dt.DefaultView.ToTable(true) If we need a column specific distinct rows,use .DefaultView.ToTable(true, <Columns>) Ex.: dt.DefaultView.ToTable(true, "EmpId", "Name")


0

I suppose, that your query that produces this one-column-multiple-values-table uses GROUP_CONCAT(). In this case you need to do it like this: SELECT DISTINCT GROUP_CONCAT(DISTINCT whatever_column ORDER BY whatever_column) FROM ... Use the DISTINCT keyword two times. In GROUP_CONCAT(), so that duplicates are removed from the comma separated values, and one ...


0

SELECT rowone, rowtwo, rowonemillion FROM yourtable GROUP BY(nodupecolumn)


1

Using @akrun's data, you could also use ave to only keep rows within each group that are equal to the minimum date value: dat[with(dat, Date == ave(Date, value, FUN=min) ),]


2

May be you can try: (It is better to show an example) set.seed(42) dat <- data.frame(Date=sample(seq(as.Date("2010-01-03"), length.out=5, by='1 day'), 20, replace=TRUE), value=sample(LETTERS[1:5],20, replace=TRUE)) dat1 <- dat[order(dat$value, dat$Date),] dat1[!duplicated(dat1$value),] Or using data.table library(data.table) setDT(dat)[, ...


0

To sort a string by characters, you can use the sorted builtin. It returns a list of individual characters you can then put together with string.join. Because it seems that you want each character to only appear once, filter out duplicates by using set: def foobar(string): return "".join(sorted(set(string))) This results in >>> foobar("what ...


0

with set and list comprehension to get rid of the space : "".join([i for i in set(string) if i!=' ']) acedihntwy


1

s='what a nice day' print ("".join(set(s.replace(" ","")))) acedihntwy A set will remove the duplicates and s.replace(" ","") will remove the spaces def foobar(s): return "".join(set(s.replace(" ",""))) In [4]: foobar("what a nice day") Out[4]: 'acedihntwy'


0

Use a set. >>> mystring = 'what a nice day' >>> chars = sorted(set(mystring.replace(" ", ""))) >>> print(chars) ['a', 'c', 'd', 'e', 'h', 'i', 'n', 't', 'w', 'y'] >>> "".join(chars) 'acdehintwy'


0

Consider adding a generic Url. The generic Url would be the one Google would know about. Any Url with the title would be routed to the generic Url. Create a rule that catches all urls with the pattern //myApp/%title%-%ID% and causes a redirect //myapp/property/%ID% You can do all this in your routing.yml GenericRoute: pattern: ...


0

thank you for all your comments. I'm working with Mat Bios and you help us to find the solution. We find a way to detect old url and then to make a redirect 301 in the controller. return $this->redirect($currentUrl, 301); Thank you


1

Try this var arr = [1, 2, 2, 3, 1, 3]; var newarr = []; $.each(arr, function (index, element) { if ($.inArray(element, newarr) < 0) newarr.push(element); }); alert(newarr[0]); alert(newarr[1]); alert(newarr[2]); Demo


1

Here is the very simple implementation using js var getfruits = [1, 2, 2, 3, 1, 3]; var uniq = []; for (var i = 0; i < getfruits.length; i++) { if(uniq.indexOf(getfruits[i])==-1) uniq.push(getfruits[i]); }; console.log(uniq); And you have to just add lo-dash in your fiddle. FIXED FIDDLE WITH LO-DASH


1

Try this var getfruits = [1, 2, 2, 3, 1, 3]; var newfruits = []; $.each(getfruits, function (i, el) { if ($.inArray(el, newfruits) === -1) newfruits.push(el); }); console.log(newfruits) alert(newfruits[0]); alert(newfruits[1]); alert(newfruits[2]); DEMO


0

If you don't want to alter the column properties then you can use the query below. Since you have a column which has unique id's or any column which has auto_increment properties you can use that column to remove the duplicates. DELETE a FROM **table** as a, table as b WHERE a.site_id = b.site_id AND a.company=b.company AND a.title=b.title AND ...


1

The parse_str function will give you an array of key-value pairs from your query string value. Working on an array will make things cleaner as existing keys will inherently be overridden instead of appended. function setQueryString($url, $key, $val){ $pUrl = parse_url($url); if(isset($pUrl['query'])) parse_str($pUrl['query'], ...


1

This is probably one of the fastest way to remove permanently the duplicates from an array 10x times faster than the most functions here.& 78x faster in safari function toUnique(a,b,c){ //array,placeholder,placeholder b=a.length;while(c=--b)while(c--)a[b]!==a[c]||a.splice(c,1) } Test: http://jsperf.com/wgu Demo: ...


0

Martijin Pieters' explanation is correct about your error in the list comprehension. The items() returned for each dict in the list will be a list. In other words, a set cannot hash a list of lists. However, you can store a tuple of tuples within a set. So you can make following change to your line of code. >>> [dict(tupleized) for tupleized ...


3

This does the trick on your set of data for me. from itertools import groupby print [k for k,v in groupby(sorted(shared_list))] Taken from this question


1

You have your loops inverted; you need to loop over shared_list *first: [dict(tupleized) for item in shared_list for tupleized in set(tuple(item.items()))] A list comprehension lists the loops in nesting order; left is outermost. Next problem is that your values contain lists, these cannot be added to a set unaltered. Next is that you need to use the ...


0

I think an optimized version which supports ASCII codes can be like this: public static void main(String[] args) { System.out.println(removeDups("*PqQpa abbBBaaAAzzK zUyz112235KKIIppP!!QpP^^*Www5W38".toCharArray())); } public static String removeDups(char []input){ long ocr1=0l,ocr2=0l,ocr3=0; int index=0; for(int i=0;i<input.length;i++){ ...



Top 50 recent answers are included