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How do you multiply a binary number by ten in verilog? Is it as simple as

reg [7:0] a,b;
reg[31:0] p;
b= 8'b00001001;
p=a*b;

Upgraded to windows 8 and my xilinx is working atm. Need to know asap for planning stage.

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2 Answers 2

up vote 2 down vote accepted

Nearly - 10 in binary is 1010! For multiplying two 8-bit numbers, you'll only need 16 bits for the result, so reg [15:0] p would do. What about:

 always @( a )
     p = a * 8'd10; 

or

wire [13:0] p;
assign p = a * 4'd10;
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Are you sure a*b gave 16 bit result? I thought in verilog arithmetic result capasity is the same as its arguments. –  Alexey Birukov Oct 10 '14 at 10:37

I'm not sure how good the HDL synthesis tools are at converting multiplies to bit shifts. I wouldn't want to synthesise a multiplier for this code by accident (even your CPU is unlikely to use a multiply for this).

wire [7:0] a;
wire [11:0] shift2;
wire [11:0] shift1;
wire [11:0] result;

assign shift2 = a << 2; // a*4
assign shift1 = 1 << 1; // a * 2
assign result = shift2 + shift2 + shift1;
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Modern synthesis tools tend to be very efficient when an operand is fixed. Using a * constant also allows power optimizations to be made by the tools, and when pushed for timing they are free to choose faster architectures. –  Morgan Nov 15 '12 at 17:24

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