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I have this SV code :

module m1 (input int a);
    always begin #1; force a=a+1; end
endmodule

module m ();
    int a;  
    m1 m1(a);
endmodule

Is this statement in above code valid force a=a+1;?

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Does it compile for you? Does it behave the way you expect? –  toolic Feb 5 '13 at 13:05
    
@toolic yes it did worked with the tool I was using but I wanted to know if it is allowed as per standards ? –  nav_jan Feb 5 '13 at 14:49
    
why -1 ? It will be better for me if a reason is given for downvote. –  nav_jan Feb 6 '13 at 4:54
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2 Answers 2

up vote 1 down vote accepted

It might work in your simulator, however it is not recommended.

In the IEEE std 1800-2009 section 10.6 defines a force statement as a "procedural continuous assignment." There is an example in the LRM stating that if a value on the right hand side of the equation is changes, then it will force the new value to the right hand variable. In this case a=a+1 should technically cause an infinite loop but likely does not because of a scheduling rule.

In general force should be used sparingly and be used in a test bench and behavioral modeling. Functional expressions are allowed with force however circular dependance needs to be avoided. Best to assign a constant expression with force is possible.

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Will it be fine if I change force a = a+1 to force a = b+1 where b can be any other variable ? –  nav_jan Feb 6 '13 at 4:59
    
Yes, so long as a is not in the sensitivity list that triggers an update on b. Be aware that if b changes at any time while the force is applied then a will update. At least according to the LRM. –  Greg Feb 6 '13 at 16:37
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Yes, I believe the behavior is well defined in this case. Module m1 will see the forced value but the enclosing module will not.

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Thanks for your answer. It will be more helpful to me if you can quote IEEE std section number along with your answer. –  nav_jan Feb 6 '13 at 4:57
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