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I want to know how I can show that 2-CNF is not NP-hard or NP complete? Can anyone help me in this regard. I need the solution urgently.

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Is this homework? – Abe Miessler Feb 20 '13 at 19:19
    
If it can be done in a pre-determined number of steps then it is not NP-Hard, or NP-Complete. – Achrome Feb 20 '13 at 19:20
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Try cstheory.stackexchange.com, but show some effort first. – Wooble Feb 20 '13 at 19:23

2-CNF satisfiability is known to be in P. So if you were able to prove it is not NP-complete, it would follow that P ≠ NP. Thus, no one knows how to prove this.

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