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no suitable constructor exists to convert from "uint8_t *" to "std::vector<uint8_t, std::allocator<uint8_t>>"

and the cast not working

Edit:

const std::vector<uint8_t> Test (const std::vector<uint8_t> buffer) const;

uint8_t* buffer="...";

//so i can use Test() function
Test(buffer);

Error
no suitable constructor exists to convert from "uint8_t *" to "std::vector<uint8_t, std::allocator<uint8_t>>"
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5  
You need to clarify a bit, perhaps with some code, what you're trying to do. This just tells me you have an uint8_t pointer that you're casting to a STL vector. How would the vector type know the length of the integer sequence you're giving it? –  Shtééf Feb 27 '11 at 18:52
    
You should really know by now how to ask a real question … >:-( –  Konrad Rudolph Feb 27 '11 at 18:56
    
@Shtééf- Edit; @Konrad Rudolph- dont be mad man xD , i just though maybe my prob faced someone before so i didnt post a code !_! well i edit it –  MixedCoder Feb 27 '11 at 19:03

1 Answer 1

up vote 4 down vote accepted

You cannot convert an array to a std::vector, you need to construct one explicitly. One way to do it would be to use the vector's range constructor like this:

uint8_t* buffer="...";
// +1 for the terminating \0
std::vector<uint8_t> vector( buffer, buffer + strlen( buffer ) + 1 ); 
Test( vector );

As a side note if your buffer has embedded \0 then strlen will return an incorrect value. As a workaround you can do something like this:

uint8_t[] buffer="...";
std::vector<uint8_t> vector( buffer, buffer + sizeof( buffer ) ); 
Test( vector );
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