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i have write this code in SQL :

alter proc verfinanfiltrado(@valor smallmoney) as
select idconta,vencimento,historico,original,formpagto,planoconta,clifor
from financeiro where original like @valor

this procedure works , i want to write something like :

alter proc verfinanfiltrado(@valor smallmoney) as
select idconta,vencimento,historico,original,formpagto,planoconta,clifor
from financeiro where original like  % @valor % 

example the procedure work with 746.06 but i want to show all the values that begins with 746 , like 746.06, 746.10, 748.12

And in the case of nvarchar ??

 alter proc verfinanfiltrado(@histo smallmoney) as
select idconta,vencimento,historico,original,formpagto,planoconta,clifor
from financeiro where historico  like  % @histo % 
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2  
% and * are string functions, smallmoney appears to be numeric data. So you would need to use between, >, <, <=, >= when working with numbers. where round(original,0,1) = round(@valor,0,1) for example –  xQbert Feb 21 '13 at 20:07
    
This work perfect for me , i only to solve when is nvarchar –  alejandro carnero Feb 21 '13 at 20:48

3 Answers 3

Converting the column (via string conversion or rounding) will prevent the use of indexes. Don't do it. Instead...

from financeiro where @value <= original and original < @value + 1
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if value isn't a whole number wouldn't you get 747 when value is 746? Say if value is 746.11 and data contains 747.10? –  xQbert Feb 21 '13 at 20:43
    
So? handle it before you wake up the database. –  David B Feb 21 '13 at 20:44
WHERE original >= ROUND(@valor,0,1) AND original < ROUND(@valor,0,1) + 1

Incidentally, xQberts solution in the comments to the original problem will work too, but this is sargable, so you'll benefit from any indecies on original

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I have solve with this proc

alter proc vencevalor (@valor smallmoney)as
select idconta,vencimento,pagamento,historico,original,formpagto,planoconta,clifor
from financeiro where round(original,0,1) = round (@valor,0,1)  
order by idconta desc 

thanks to all

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