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I have a string that looks like L"\"4\"" and want to parse it into an integer value.

std::wstring wsFoo(L"\"4\"");
int iSize = 1; // Number of characters the number will have
int iResult = -1;
swscanf_s(wsFoo.c_str(), L"\"%*d\"", iSize, &iResult);
wprintf_s(L"%d", iResult);

According to http://www.cplusplus.com/reference/clibrary/cstdio/printf/ the asterisk in %*d should mean: The width is not specified in the format string, but as an additional integer value argument preceding the argument that has to be formatted.

Yet the value of iResult will be displayed as -1 after this code snippet. Why?

I don't know whether it helps, but I am using MSVC++ 2010.

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Why are you looking at the documentation for printf() when you are calling swscanf_s()? – André Caron Dec 10 '11 at 22:25
up vote 3 down vote accepted

This MSDN page explains the use of the * like:

An asterisk (*) following the percent sign suppresses assignment of the next input field, which is interpreted as a field of the specified type. The field is scanned but not stored.

Note that the format fields for printf and scanf are close but not identical.

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Thanks for the MSDN link - it was very helpful. I was assuming the format fields would be identical. – nijansen Dec 10 '11 at 22:29

You're looking at the meaning of asterisk for printf, not scanf.

If an asterisk (*) is put between the percent and the operator, e. g. %*d, the operator will only match its argument, and not assign any variables.

http://docs.roxen.com/pike/7.0/tutorial/strings/sscanf.xml

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