2012年10月28日 星期日

P6-48 8bit full Adder (for loop) 適用於DE2-70

P6-48 8bit full Adder (for loop) 適用於DE2-70 

源自於http://www.electronics-tutorials.ws/combination/comb_7.html

Binary Addition

Binary Addition follows the same basic rules as for the denary addition above except in binary there are only two digits and the largest digit is "1", so any "SUM" greater than 1 will result in a "CARRY". This carry 1 is passed over to the next column for addition and so on. Consider the single bit addition below.
0011
+ 0+ 1+ 0+ 1
01110
The single bits are added together and "0 + 0", "0 + 1", or "1 + 0" results in a sum of "0" or "1" until you get to "1 + 1" then the sum is equal to "2". For a simple 1-bit addition problem like this, the resulting carry bit could be ignored which would result in an output truth table resembling that of an Ex-OR Gate as seen in the Logic Gates section and whose result is the sum of the two bits but without the carry.
An Ex-OR gate only produces an output "1" when either input is at logic "1", but not both. However, all microprocessors and electronic calculators require the carry bit to correctly calculate the equations so we need to rewrite them to include 2 bits of output data as shown below.
00000101
+ 00+ 01+ 00+ 01
00010110
From the above equations we know that an Ex-OR gate will only produce an output "1" when "EITHER" input is at logic "1", so we need an additional output to produce a carry output, "1" when "BOTH" inputs "A" and "B" are at logic "1" and a standard AND Gate fits the bill nicely. By combining the Ex-OR gate with the AND gate results in a simple digital binary adder circuit known commonly as the "Half Adder" circuit.

The Half Adder Circuit

1-bit Adder with Carry-Out

SymbolTruth Table
Half AdderABSUMCARRY
0000
0110
1010
1101
Boolean Expression: Sum = A  B     Carry = A . B

From the truth table we can see that the SUM (S) output is the result of the Ex-OR gate and the Carry-out (Cout) is the result of the AND gate. One major disadvantage of the Half Adder circuit when used as a binary adder, is that there is no provision for a "Carry-in" from the previous circuit when adding together multiple data bits.
For example, suppose we want to add together two 8-bit bytes of data, any resulting carry bit would need to be able to "ripple" or move across the bit patterns starting from the least significant bit (LSB). The most complicated operation the half adder can do is "1 + 1" but as the half adder has no carry input the resultant added value would be incorrect. One simple way to overcome this problem is to use a Full Adder type binary adder circuit.

The Full Adder Circuit

The main difference between the Full Adder and the previous seen Half Adder is that a full adder has three inputs, the same two single bit binary inputs A and B as before plus an additional Carry-In (C-in) input as shown below.

Full Adder with Carry-In

SymbolTruth Table
Full AdderABC-inSumC-out
00000
01010
10010
11001
00110
01101
10101
11111
Boolean Expression: Sum = A  B  C-in

The 1-bit Full Adder circuit above is basically two half adders connected together and consists of threeEx-OR gates, two AND gates and an OR gate, six logic gates in total. The truth table for the full adder includes an additional column to take into account the Carry-in input as well as the summed output and carry-output. 4-bit full adder circuits are available as standard IC packages in the form of the TTL 74LS83 or the 74LS283 which can add together two 4-bit binary numbers and generate a SUM and aCARRY output. But what if we wanted to add together two n-bit numbers, then n 1-bit full adders need to be connected together to produce what is known as the Ripple Carry Adder.

The 4-bit Binary Adder

The Ripple Carry Binary Adder is simply n, full adders cascaded together with each full adder represents a single weighted column in the long addition with the carry signals producing a "ripple" effect through the binary adder from right to left. For example, suppose we want to "add" together two 4-bit numbers, the two outputs of the first full adder will provide the first place digit sum of the addition plus a carry-out bit that acts as the carry-in digit of the next binary adder.
The second binary adder in the chain also produces a summed output (the 2nd bit) plus another carry-out bit and we can keep adding more full adders to the combination to add larger numbers, linking the carry bit output from the first full binary adder to the next full adder, and so forth. An example of a 4-bit adder is given below.

A 4-bit Binary Adder

4-bit Binary Adder
One main disadvantage of "cascading" together 1-bit binary adders to add large binary numbers is that if inputs A and B change, the sum at its output will not be valid until any carry-input has "rippled" through every full adder in the chain. Consequently, there will be a finite delay before the output of a adder responds to a change in its inputs resulting in the accumulated delay especially in large multi-bit binary adders becoming prohibitively large. This delay is called Propagation delay. Also "overflow" occurs when an n-bit adder adds two numbers together whose sum is greater than or equal to 2n
One solution is to generate the carry-input signals directly from the A and B inputs rather than using the ripple arrangement above. This then produces another type of binary adder circuit called a Carry Look Ahead Binary Adder were the speed of the parallel adder can be greatly improved using carry-look ahead logic.

The 4-bit Binary Subtractor

Now that we know how to "ADD" together two 4-bit binary numbers how would we subtract two 4-bit binary numbers, for example, A - B using the circuit above. The answer is to use 2’s-complement notation on Binary Subtractorall the bits in B must be complemented (inverted) and an extra one added using the carry-input. This can be achieved by inverting each Binput bit using an inverter or NOT-gate.
Also, in the above circuit for the 4-bit binary adder, the first carry-in input is held LOW at logic "0", for the circuit to perform subtraction this input needs to be held HIGH at "1".
With this in mind a ripple carry adder can with a small modification be used to perform half subtraction, full subtraction and/or comparison.
There are a number of 4-bit full-adder ICs available such as the 74LS283 and CD4008. which will add two 4-bit binary number and provide an additional input carry bit, as well as an output carry bit, so you can cascade them together to produce 8-bit, 12-bit, 16-bit, etc. adders.


//----------------------------------------
//8-bit adder using for loop
//Filename : adder8_for.v
//----------------------------------------
module _8bit_FA(SW, LEDR, LEDG , CLOCK_27 ,KEY ,HEX0 ,HEX1 ,HEX2,HEX3 );

input  [17:0] SW; // toggle switches
input  [7:0] KEY;     // Push bottom
input  CLOCK_27; //Clock 27MHz , 50Mhz

output [17:0] LEDR; // red  LEDS   
  output [8:0] LEDG; // green LEDs
    
    output [6:0] HEX0,HEX1,HEX2,HEX3; //7-segment display
    
  
//set original program input , output 
parameter length = 8;          //Data length
//(sum, cout, a, b, cin);

//output [length-1:0] sum;            //Summation
//output cout;                        //Carry out
//input [length-1:0] a, b;            //Data input
//input cin;                          //Carry in
     
    reg [length-1:0] sum; 
reg cout; 

wire [length-1:0] a, b;
wire cin;  

   
    wire [7:0] segout1;   //HEX 0
    wire [7:0] segout2;   //HEX 1
    wire [7:0] segout3;  //HEX 2
            
    //mapping to hardware 
    assign LEDR = SW;
    assign a=SW[7:0];
    assign b=SW[15:8];
    assign cin=SW[17];
    

reg carry;                          //Internal Carry
integer i;                          //Loop parameter

always @ (a or b or cin or carry)
begin
carry = cin;
i = 0;
for (i = 0; i<length; i = i+1)
begin
sum[i] = a[i] ^ b[i] ^ carry;
carry = a[i] & b[i] | a[i] & carry | b[i] & carry;
end
cout = carry;
end

assign LEDG[7:0]=sum ;
assign LEDG[8]=cout ;


//module _7seg(hex , seg);
    _7seg UUT1(.hex((sum[3:0])),
               .seg(segout1));
    
    _7seg UUT2(.hex((sum[7:4])),
               .seg(segout2));
    
    _7seg UUT3(.hex({3'b0,cout}),
               .seg(segout3));
               
    assign HEX0=segout1[6:0];
    assign HEX1=segout2[6:0];
    assign HEX2=segout3[6:0];
    

endmodule




//-----------------------------------------
//Common-cathod seven segment display
//using case.....endcase statement
//Filename : sevenseg_case.v
//----------------------------------------- 
module _7seg(hex , seg);

    input  [3:0] hex;
    output [7:0] seg;
    reg    [7:0] seg;
    
        

// segment encoding
//      0
//     ---  
//  5 |   | 1
//     ---   <- 6
//  4 |   | 2
//     ---
//      3

always @(hex)
begin
case (hex)
       // Dot point is always disable
       4'b0001 : seg = 8'b11111001;   //1 = F9H
       4'b0010 : seg = 8'b10100100;   //2 = A4H
       4'b0011 : seg = 8'b10110000;   //3 = B0H
       4'b0100 : seg = 8'b10011001;   //4 = 99H
       4'b0101 : seg = 8'b10010010;   //5 = 92H
       4'b0110 : seg = 8'b10000010;   //6 = 82H
       4'b0111 : seg = 8'b11111000;   //7 = F8H
       4'b1000 : seg = 8'b10000000;   //8 = 80H
       4'b1001 : seg = 8'b10010000;   //9 = 90H
       4'b1010 : seg = 8'b10001000;   //A = 88H
       4'b1011 : seg = 8'b10000011;   //b = 83H
       4'b1100 : seg = 8'b11000110;   //C = C6H
       4'b1101 : seg = 8'b10100001;   //d = A1H
       4'b1110 : seg = 8'b10000110;   //E = 86H
       4'b1111 : seg = 8'b10001110;   //F = 8EH
       default : seg = 8'b11000000;   //0 = C0H
     endcase
   end
   

endmodule


沒有留言:

張貼留言

2024_09 作業3 以Node-Red 為主

 2024_09 作業3  (以Node-Red 為主  Arduino 可能需要配合修改 ) Arduino 可能需要修改的部分 1)mqtt broker  2) 主題Topic (發行 接收) 3) WIFI ssid , password const char br...