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There is 4 lexical elements of grammar

G = (S, N, T, P)

Where G = Grammar, S = Start Symbol, N = Non-Terminals, T = Terminals, P = Production rules

I wanted to know if N is always equal with P because as I know P are lexemes which may replace with other lexemes

So in this example:

<program> --> <stmts>
<stmts> --> <stmt> | <stmt> ; <stmts>
<stmt> --> <var> = <expr>
<var> --> a | b | c | d
<expr> --> <term> + <term> | <term> - <term>
<term> --> <var> | const

S: <program>
N: <program>, <stmts>, <var>, <expr>, <term>
T: ;, a, b, c, d, +, -, const
P: <program>, <stmts>, <var>, <expr>, <term>

Is that right?

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2 Answers

up vote 2 down vote accepted

No. |N| does not necessarily = |P|. Consider:

<program> --> <stmts>
<stmts> --> <stmt> 
<stmts> -->| <stmt> ; <stmts>
<stmt> --> <var> = <expr>
<var> --> a 
<var> --> b
<var> --> c
<var> --> d
<expr> --> <term> + <term> 
<expr> --> <term> - <term>
<term> --> <var> 
<term> --> const

Your problem is that you are not precise about what is allowed in a grammar rule.

You can force the number of rules to match nonterminals, by insisting that no rule has the same left hand side. To do that, you can't insist on simple BNF; you have to have extended BNF with at least alternation.

PS: This isn't really about "lexical elements" of a grammar. It is just about the definition of a grammar.

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Thank you very much for your help, I remembered some things... So the P are 12, right? –  a1204773 May 30 '12 at 0:25
1  
For the grammar as I have provided, P==12 and N==6 –  Ira Baxter May 30 '12 at 18:03
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Sounds like homework... You have it basically right, only P are the actual rules.

G = (S, N, T, P)

S: <program>
N: <program>, <stmts>, <var>, <expr>, <term>
T: ;, a, b, c, d, +, -, const
P: <program> --> <stmts>, 
   <stmts> --> <stmt> | <stmt> ; <stmts>,
   <stmt> --> <var> = <expr>,
   <var> --> a | b | c | d,
   <expr> --> <term> + <term> | <term> - <term>,
   <term> --> <var> | const

Without rules the a grammar is useless.

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