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I am attempting to create a lexical analyzer that will return the length of a token in a text file.

I have a text file with a single letter 'a' in it.

The following is my lex.l file

%option noyywrap 

/* regular definitions */
delim           [ \t\n]
ws              {delim}+
letter          [A-Za-z]
digit           [0-9]


{ws}            {/* no action */}
letter          {return 1;}


The following is the main program file that uses the YYText() and YYLeng() function.

#include <stdio.h>
#include <stdlib.h>
#include ""

using namespace std;

int OpenInputOutput(int argc, char *argv[], ifstream & lexerFIn, ofstream & lexerFOut)
// open input
if (argc > 1) {[1]);
    if ( {
        cerr << "Input file cannot be opened\n";
        return 0;
else {
cerr << "Input file not specified\n";
return 0;

// open output"Output.txt");
if ( {
    cerr << "Output file cannot be opened\n";
    return 0;

int main(int argc, char *argv[]) 
yyFlexLexer lexer; 
while (lexer.yylex() != 0) {
    cout << lexer.YYText() << endl;
    cout << lexer.YYLeng() << endl;
return 0; 

When I run the program with the aforementioned text file, with the command ./a "sample.txt", it writes 'a' on a file. Why doesn't it cout YYText() or YYLeng() or write the length of the character in the output file?

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Nowhere in your code do you take a file name as a command line argument. It ignores the "sample.txt" you passed it. – David Schwartz Feb 26 '12 at 2:25
Why on earth should it return 'a' and 1 from a file you've never opened anywhere in the program? – ssube Feb 26 '12 at 2:29
I updated the question. – idealistikz Feb 26 '12 at 3:50
Are you sure you do not want to match {letter}? letter (without the braces) matches exactly that six-letter literal. – Tim Landscheidt Feb 26 '12 at 14:36
@TimLandscheidt, but why doesn't it return the length? – idealistikz Feb 26 '12 at 19:22

3 Answers 3

You can only call YYText or YYLeng after the parser has matched a token. You can't call them before parsing anything. You're retrieving properties of a match that never happened.

It's the same problem as if you randomly retrieved the value of errno.

share|improve this answer
How do I get the parser to match the token? – idealistikz Feb 26 '12 at 0:58
Call the parser's yylex method, typically in a while loop. – David Schwartz Feb 26 '12 at 1:05
When I call lexer.yylex(), the program doesn't output anything. What is the proper syntax? – idealistikz Feb 26 '12 at 1:13
I'm not sure I follow you. You mean it hangs in yylex? – David Schwartz Feb 26 '12 at 1:22
What do you mean it hangs in yylex? I generated a C++ scanner, so I have to create lexer object and use its member functions. I can't call yylex() by itself. When I call lexer.yylex() the program just pauses without outputting anything. Why is this? – idealistikz Feb 26 '12 at 1:26

The yylex() function will be reading from standard input unless you do something to make it work differently. So, it is waiting on you to type a letter or white space.

share|improve this answer
Once I type a letter or whitespace, it returns what I typed. Why isn't it returning the length of the token, since I entered cout << lexer.YYLeng()? – idealistikz Feb 26 '12 at 2:10
I'm not sure. When echo input, I'd surround it with other material, so I know what's really there: cout << "Text: <<" << lexer.YYText << ">> (length: " << lexer.YYLeng() << ")" << endl;. That shows when empty strings are being printed, for example. It also disambiguates between echoing by the terminal and echoing by the program. – Jonathan Leffler Feb 26 '12 at 2:36
Having experimented a bit, I don't understand where the default constructor for a yyFlexLexer is specified in the class, but I can tell you that it is not getting back into the body of your loop in main(). Quite what it is up to, I'm not sure, but it is still inside the lexer.yylex() function and not in your main loop (which is why you're not seeing the length printed). – Jonathan Leffler Feb 26 '12 at 2:48
And further research shows that the header declares default arguments for a two-argument constructor, thus appearing like a default constructor...see the Flex manual Generating C++ Scanners – Jonathan Leffler Feb 26 '12 at 2:55
I updated the question. – idealistikz Feb 26 '12 at 3:59

yylex () only returns for actions that return VALUE; or on EOF. cout << lexer.YYText() << endl; & Co. is thus only executed for the input letter.

So you either need to move the output code to the scanner's actions or return VALUE; in every action. NB: In the latter case I don't know if the values of yytext/yylen are guaranteed to exist and be meaningful after returning to yylex ()'s caller.

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