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I am trying to filter my results in the query builder of Visual Studio 2008 so that when it executes the query to SELECT data from the field i chose, it will only retrieve last names that start with an user input. I figure this is to be done using the filter tab. SO i put a filter I used different filters but did not work with me. I'm using mySQL database.

here is the code I used:

SELECT Last_Name FROM contact_info WHERE (Last_Name LIKE 'prefixText%') will return null ........ SELECT Last_Name FROM contact_info WHERE (Last_Name LIKE @prefixText%) will give me error ............ SELECT Last_Name FROM contact_info WHERE (Last_Name LIKE '@prefixText%')will return null ................ SELECT Last_Name FROM contact_info WHERE (Last_Name LIKE @prefixText)will return null ............................

here is the error I'm getting: [URL=http://img180.imageshack.us/i/errorm.jpg/][IMG]http://img180.imageshack.us/img180/8983/errorm.jpg[/IMG][/URL] please advice what is the correct syntax for mySQL to use in query builder of Visual Studio 2008 to return fields start with first letter that the user enter???

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Is prefixText a variable? Does "SELECT Last_Name FROM contact_info WHERE (Last_Name LIKE 'A%')" return anything? Or Just this "SELECT Last_Name FROM contact_info Limit 10"? Your syntaxt for the first query looks correct so I'm guessing there's something else going on here. –  brendan Feb 17 '10 at 5:28
    
this (SELECT Last_Name FROM contact_info WHERE (Last_Name LIKE 'A%') ) will return nothing. check this error [URL=img180.imageshack.us/i/errorm.jpg/][IMG]http://… I'm testing my query in query builder of Visual Studio 2008 and I tried many syntax no result like what I want. –  Eyla Feb 17 '10 at 11:11

2 Answers 2

up vote 2 down vote accepted

this code work OK for me.

SELECT First_Name FROM contact_info WHERE (First_Name LIKE CONCAT(@prefixText, '%'))

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If @prefixText is a parameter then try..

SELECT Last_Name FROM contact_info WHERE Last_Name LIKE '%'+@prefixText+'%';

LIKE Operator

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I tried your way but I'm getting an error >>> here is the error: [URL=img341.imageshack.us/i/error2a.jpg/][IMG]http://… –  Eyla Feb 17 '10 at 11:59

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