Таблица истинности для функции F≡(A∨B)∧(C∨D)∨(C∨A)∧D:


Промежуточные таблицы истинности:
A∨B:
ABA∨B
000
011
101
111

C∨D:
CDC∨D
000
011
101
111

C∨A:
CAC∨A
000
011
101
111

(A∨B)∧(C∨D):
ABCDA∨BC∨D(A∨B)∧(C∨D)
0000000
0001010
0010010
0011010
0100100
0101111
0110111
0111111
1000100
1001111
1010111
1011111
1100100
1101111
1110111
1111111

(C∨A)∧D:
CADC∨A(C∨A)∧D
00000
00100
01010
01111
10010
10111
11010
11111

((A∨B)∧(C∨D))∨((C∨A)∧D):
ABCDA∨BC∨D(A∨B)∧(C∨D)C∨A(C∨A)∧D((A∨B)∧(C∨D))∨((C∨A)∧D)
0000000000
0001010000
0010010100
0011010111
0100100000
0101111001
0110111101
0111111111
1000100100
1001111111
1010111101
1011111111
1100100100
1101111111
1110111101
1111111111

F≡(((A∨B)∧(C∨D))∨((C∨A)∧D)):
FABCDA∨BC∨D(A∨B)∧(C∨D)C∨A(C∨A)∧D((A∨B)∧(C∨D))∨((C∨A)∧D)F≡(((A∨B)∧(C∨D))∨((C∨A)∧D))
000000000001
000010100001
000100101001
000110101110
001001000001
001011110010
001101111010
001111111110
010001001001
010011111110
010101111010
010111111110
011001001001
011011111110
011101111010
011111111110
100000000000
100010100000
100100101000
100110101111
101001000000
101011110011
101101111011
101111111111
110001001000
110011111111
110101111011
110111111111
111001001000
111011111111
111101111011
111111111111

Общая таблица истинности:

FABCDA∨BC∨DC∨A(A∨B)∧(C∨D)(C∨A)∧D((A∨B)∧(C∨D))∨((C∨A)∧D)F≡(A∨B)∧(C∨D)∨(C∨A)∧D
000000000001
000010100001
000100110001
000110110110
001001000001
001011101010
001101111010
001111111110
010001010001
010011111110
010101111010
010111111110
011001010001
011011111110
011101111010
011111111110
100000000000
100010100000
100100110000
100110110111
101001000000
101011101011
101101111011
101111111111
110001010000
110011111111
110101111011
110111111111
111001010000
111011111111
111101111011
111111111111

Логическая схема:
Схема

Совершенная дизъюнктивная нормальная форма (СДНФ):

По таблице истинности:
FABCDF
000001
000011
000101
000110
001001
001010
001100
001110
010001
010010
010100
010110
011001
011010
011100
011110
100000
100010
100100
100111
101000
101011
101101
101111
110000
110011
110101
110111
111000
111011
111101
111111
Fсднф = ¬F∧¬A∧¬B∧¬C∧¬D ∨ ¬F∧¬A∧¬B∧¬C∧D ∨ ¬F∧¬A∧¬B∧C∧¬D ∨ ¬F∧¬A∧B∧¬C∧¬D ∨ ¬F∧A∧¬B∧¬C∧¬D ∨ ¬F∧A∧B∧¬C∧¬D ∨ F∧¬A∧¬B∧C∧D ∨ F∧¬A∧B∧¬C∧D ∨ F∧¬A∧B∧C∧¬D ∨ F∧¬A∧B∧C∧D ∨ F∧A∧¬B∧¬C∧D ∨ F∧A∧¬B∧C∧¬D ∨ F∧A∧¬B∧C∧D ∨ F∧A∧B∧¬C∧D ∨ F∧A∧B∧C∧¬D ∨ F∧A∧B∧C∧D
Логическая cхема:
Схема

Совершенная конъюнктивная нормальная форма (СКНФ):

По таблице истинности:
FABCDF
000001
000011
000101
000110
001001
001010
001100
001110
010001
010010
010100
010110
011001
011010
011100
011110
100000
100010
100100
100111
101000
101011
101101
101111
110000
110011
110101
110111
111000
111011
111101
111111
Fскнф = (F∨A∨B∨¬C∨¬D) ∧ (F∨A∨¬B∨C∨¬D) ∧ (F∨A∨¬B∨¬C∨D) ∧ (F∨A∨¬B∨¬C∨¬D) ∧ (F∨¬A∨B∨C∨¬D) ∧ (F∨¬A∨B∨¬C∨D) ∧ (F∨¬A∨B∨¬C∨¬D) ∧ (F∨¬A∨¬B∨C∨¬D) ∧ (F∨¬A∨¬B∨¬C∨D) ∧ (F∨¬A∨¬B∨¬C∨¬D) ∧ (¬F∨A∨B∨C∨D) ∧ (¬F∨A∨B∨C∨¬D) ∧ (¬F∨A∨B∨¬C∨D) ∧ (¬F∨A∨¬B∨C∨D) ∧ (¬F∨¬A∨B∨C∨D) ∧ (¬F∨¬A∨¬B∨C∨D)
Логическая cхема:
Схема

Построение полинома Жегалкина:

По таблице истинности функции
FABCDFж
000001
000011
000101
000110
001001
001010
001100
001110
010001
010010
010100
010110
011001
011010
011100
011110
100000
100010
100100
100111
101000
101011
101101
101111
110000
110011
110101
110111
111000
111011
111101
111111

Построим полином Жегалкина:
Fж = C00000 ⊕ C10000∧F ⊕ C01000∧A ⊕ C00100∧B ⊕ C00010∧C ⊕ C00001∧D ⊕ C11000∧F∧A ⊕ C10100∧F∧B ⊕ C10010∧F∧C ⊕ C10001∧F∧D ⊕ C01100∧A∧B ⊕ C01010∧A∧C ⊕ C01001∧A∧D ⊕ C00110∧B∧C ⊕ C00101∧B∧D ⊕ C00011∧C∧D ⊕ C11100∧F∧A∧B ⊕ C11010∧F∧A∧C ⊕ C11001∧F∧A∧D ⊕ C10110∧F∧B∧C ⊕ C10101∧F∧B∧D ⊕ C10011∧F∧C∧D ⊕ C01110∧A∧B∧C ⊕ C01101∧A∧B∧D ⊕ C01011∧A∧C∧D ⊕ C00111∧B∧C∧D ⊕ C11110∧F∧A∧B∧C ⊕ C11101∧F∧A∧B∧D ⊕ C11011∧F∧A∧C∧D ⊕ C10111∧F∧B∧C∧D ⊕ C01111∧A∧B∧C∧D ⊕ C11111∧F∧A∧B∧C∧D

Так как Fж(00000) = 1, то С00000 = 1.

Далее подставляем все остальные наборы в порядке возрастания числа единиц, подставляя вновь полученные значения в следующие формулы:
Fж(10000) = С00000 ⊕ С10000 = 0 => С10000 = 1 ⊕ 0 = 1
Fж(01000) = С00000 ⊕ С01000 = 1 => С01000 = 1 ⊕ 1 = 0
Fж(00100) = С00000 ⊕ С00100 = 1 => С00100 = 1 ⊕ 1 = 0
Fж(00010) = С00000 ⊕ С00010 = 1 => С00010 = 1 ⊕ 1 = 0
Fж(00001) = С00000 ⊕ С00001 = 1 => С00001 = 1 ⊕ 1 = 0
Fж(11000) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С11000 = 0 => С11000 = 1 ⊕ 1 ⊕ 0 ⊕ 0 = 0
Fж(10100) = С00000 ⊕ С10000 ⊕ С00100 ⊕ С10100 = 0 => С10100 = 1 ⊕ 1 ⊕ 0 ⊕ 0 = 0
Fж(10010) = С00000 ⊕ С10000 ⊕ С00010 ⊕ С10010 = 0 => С10010 = 1 ⊕ 1 ⊕ 0 ⊕ 0 = 0
Fж(10001) = С00000 ⊕ С10000 ⊕ С00001 ⊕ С10001 = 0 => С10001 = 1 ⊕ 1 ⊕ 0 ⊕ 0 = 0
Fж(01100) = С00000 ⊕ С01000 ⊕ С00100 ⊕ С01100 = 1 => С01100 = 1 ⊕ 0 ⊕ 0 ⊕ 1 = 0
Fж(01010) = С00000 ⊕ С01000 ⊕ С00010 ⊕ С01010 = 0 => С01010 = 1 ⊕ 0 ⊕ 0 ⊕ 0 = 1
Fж(01001) = С00000 ⊕ С01000 ⊕ С00001 ⊕ С01001 = 0 => С01001 = 1 ⊕ 0 ⊕ 0 ⊕ 0 = 1
Fж(00110) = С00000 ⊕ С00100 ⊕ С00010 ⊕ С00110 = 0 => С00110 = 1 ⊕ 0 ⊕ 0 ⊕ 0 = 1
Fж(00101) = С00000 ⊕ С00100 ⊕ С00001 ⊕ С00101 = 0 => С00101 = 1 ⊕ 0 ⊕ 0 ⊕ 0 = 1
Fж(00011) = С00000 ⊕ С00010 ⊕ С00001 ⊕ С00011 = 0 => С00011 = 1 ⊕ 0 ⊕ 0 ⊕ 0 = 1
Fж(11100) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С00100 ⊕ С11000 ⊕ С10100 ⊕ С01100 ⊕ С11100 = 0 => С11100 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 = 0
Fж(11010) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С00010 ⊕ С11000 ⊕ С10010 ⊕ С01010 ⊕ С11010 = 1 => С11010 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 = 0
Fж(11001) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С00001 ⊕ С11000 ⊕ С10001 ⊕ С01001 ⊕ С11001 = 1 => С11001 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 = 0
Fж(10110) = С00000 ⊕ С10000 ⊕ С00100 ⊕ С00010 ⊕ С10100 ⊕ С10010 ⊕ С00110 ⊕ С10110 = 1 => С10110 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 = 0
Fж(10101) = С00000 ⊕ С10000 ⊕ С00100 ⊕ С00001 ⊕ С10100 ⊕ С10001 ⊕ С00101 ⊕ С10101 = 1 => С10101 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 = 0
Fж(10011) = С00000 ⊕ С10000 ⊕ С00010 ⊕ С00001 ⊕ С10010 ⊕ С10001 ⊕ С00011 ⊕ С10011 = 1 => С10011 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 = 0
Fж(01110) = С00000 ⊕ С01000 ⊕ С00100 ⊕ С00010 ⊕ С01100 ⊕ С01010 ⊕ С00110 ⊕ С01110 = 0 => С01110 = 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 0 = 1
Fж(01101) = С00000 ⊕ С01000 ⊕ С00100 ⊕ С00001 ⊕ С01100 ⊕ С01001 ⊕ С00101 ⊕ С01101 = 0 => С01101 = 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 0 = 1
Fж(01011) = С00000 ⊕ С01000 ⊕ С00010 ⊕ С00001 ⊕ С01010 ⊕ С01001 ⊕ С00011 ⊕ С01011 = 0 => С01011 = 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 0 = 0
Fж(00111) = С00000 ⊕ С00100 ⊕ С00010 ⊕ С00001 ⊕ С00110 ⊕ С00101 ⊕ С00011 ⊕ С00111 = 0 => С00111 = 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 0 = 0
Fж(11110) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С00100 ⊕ С00010 ⊕ С11000 ⊕ С10100 ⊕ С10010 ⊕ С01100 ⊕ С01010 ⊕ С00110 ⊕ С11100 ⊕ С11010 ⊕ С10110 ⊕ С01110 ⊕ С11110 = 1 => С11110 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 = 0
Fж(11101) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С00100 ⊕ С00001 ⊕ С11000 ⊕ С10100 ⊕ С10001 ⊕ С01100 ⊕ С01001 ⊕ С00101 ⊕ С11100 ⊕ С11001 ⊕ С10101 ⊕ С01101 ⊕ С11101 = 1 => С11101 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 = 0
Fж(11011) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С00010 ⊕ С00001 ⊕ С11000 ⊕ С10010 ⊕ С10001 ⊕ С01010 ⊕ С01001 ⊕ С00011 ⊕ С11010 ⊕ С11001 ⊕ С10011 ⊕ С01011 ⊕ С11011 = 1 => С11011 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 = 0
Fж(10111) = С00000 ⊕ С10000 ⊕ С00100 ⊕ С00010 ⊕ С00001 ⊕ С10100 ⊕ С10010 ⊕ С10001 ⊕ С00110 ⊕ С00101 ⊕ С00011 ⊕ С10110 ⊕ С10101 ⊕ С10011 ⊕ С00111 ⊕ С10111 = 1 => С10111 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 = 0
Fж(01111) = С00000 ⊕ С01000 ⊕ С00100 ⊕ С00010 ⊕ С00001 ⊕ С01100 ⊕ С01010 ⊕ С01001 ⊕ С00110 ⊕ С00101 ⊕ С00011 ⊕ С01110 ⊕ С01101 ⊕ С01011 ⊕ С00111 ⊕ С01111 = 0 => С01111 = 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 = 0
Fж(11111) = С00000 ⊕ С10000 ⊕ С01000 ⊕ С00100 ⊕ С00010 ⊕ С00001 ⊕ С11000 ⊕ С10100 ⊕ С10010 ⊕ С10001 ⊕ С01100 ⊕ С01010 ⊕ С01001 ⊕ С00110 ⊕ С00101 ⊕ С00011 ⊕ С11100 ⊕ С11010 ⊕ С11001 ⊕ С10110 ⊕ С10101 ⊕ С10011 ⊕ С01110 ⊕ С01101 ⊕ С01011 ⊕ С00111 ⊕ С11110 ⊕ С11101 ⊕ С11011 ⊕ С10111 ⊕ С01111 ⊕ С11111 = 1 => С11111 = 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 ⊕ 1 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 0 ⊕ 1 = 0

Таким образом, полином Жегалкина будет равен:
Fж = 1 ⊕ F ⊕ A∧C ⊕ A∧D ⊕ B∧C ⊕ B∧D ⊕ C∧D ⊕ A∧B∧C ⊕ A∧B∧D
Логическая схема, соответствующая полиному Жегалкина:
Схема