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for (d=k-1;d>0;d=d-1) begin:loop8
  input_temp[d][0][m+d-1:0] <= {s_temp[d-1][m+d-2],s_temp[d-1][m+d-2:0]};
  input_temp[d][1][m+d-1:0] <= {c_temp[d-1][m+d-2:0],1'b0};
  for (c=0;c<k;c=c+1) begin:loop5
    row[d][c][m+d-1:0] <= {row[d-1][c][m+d-2],row[d-1][c][m+d-2:0]};
  end
end

row is a register.

It does not work as I am doing it.

Could anyone please help me to fix it?

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closed as too localized by Tim, Mario, Macmade, competent_tech, ElYusubov Jan 11 '13 at 0:26

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The code you added didn't help. You need to show how everything is declared. What is row defined as? Are m, d, & c integers? Are any of these inputs or outputs. It's all important information. –  Paul S Sep 27 '12 at 10:43

4 Answers 4

When I try to compile your code (using the VCS simulator), I get the following type of compile error:

The following expression should be a constant: (m+i)

Obviously, since you have provided an incomplete code sample, I have had to make many assumptions about how you have declared your variables. I assumed that i and m are integer variables. If that is the case, you could attempt to use a generate block.

If that is not the case, you must:

  1. Show more Verilog code.
  2. Show the exact compiler error and/or warning messages you get.

"It does not work as I am doing it" is not very descriptive.

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I had made a new comment to update my code, please look at it and help me to fix it, thanks –  shen Apr 6 '10 at 0:46

assign is used for a continuous assignment. It does not look like that is what you want. Remove the assign keyword for a regular procedural assignment.

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It is true that assign keyword should not be used there since that for loop has to be inside of an always block. Assign can only be used outside an always block. The error means that you are indexing the array with a variable expression.

I'm guessing that m is not a loop variable and therefore the values are unknown and could potentially result in invalid values for the array. This results in the expression being non sythesizable as well. If m is truly some variable value you are going to have to restructure your logic for it to work.

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1  
It is not true that assign must be used outside of an always block. Verilog supports procedural continuous assignments with the syntax above (its just not what should have been used in this example). When applied it sets up a new continuous assign to the variable until a deassign is called. In practice they seem to be rarely used and only for testbench code to my knowledge. –  JeffW Oct 9 '10 at 1:30

I did System Verilog quite a long time ago, so I'm not sure if my memory is still correct.

But I remember that you cannot specify a "dynamic" or "changing" range when accessing an array in System Verilog (has this limitation changed ?).

For example

for (i=0; i<2; i++) 
begin
    my_answer = my_array[i*2 + 1: i*2]; // this wouldn't work since integer i is changing in the loop
end

A work-around, right off the top of my head would be:

for (i=0; i<2; i++) 
begin
   case (i)
      0 : my_answer = my_array [1:0];
      1 : my_answer = my_array [3:2];
   endcase
}

I haven't touched System Verilog in a while, I do not know if this limitation has changed, but I am reasonably sure that it hasn't, maybe someone else can help clarify this ? I could really learn a lesson here too ! :)

Hope that helps.

Thanks

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