Abundant, deficient and perfect number classifications
These define three classifications of positive integers based on their proper divisors.
You are encouraged to solve this task according to the task description, using any language you may know.
Let P(n) be the sum of the proper divisors of n where the proper divisors are all positive divisors of n other than n itself.
ifP(n) < n
then n is classed as deficient (OEIS A005100). ifP(n) == n
then n is classed as perfect (OEIS A000396). ifP(n) > n
then n is classed as abundant (OEIS A005101).
- Example
6 has proper divisors of 1, 2, and 3.
1 + 2 + 3 = 6, so 6 is classed as a perfect number.
- Task
Calculate how many of the integers 1 to 20,000 (inclusive) are in each of the three classes.
Show the results here.
- Related tasks
- Aliquot sequence classifications. (The whole series from which this task is a subset.)
- Proper divisors
- Amicable pairs
11l
<lang 11l>F sum_proper_divisors(n)
R I n < 2 {0} E sum((1 .. n I/ 2).filter(it -> (@n % it) == 0))
V deficient = 0 V perfect = 0 V abundant = 0
L(n) 1..20000
V sp = sum_proper_divisors(n) I sp < n deficient++ E I sp == n perfect++ E I sp > n abundant++
print(‘Deficient = ’deficient) print(‘Perfect = ’perfect) print(‘Abundant = ’abundant)</lang>
- Output:
Deficient = 15043 Perfect = 4 Abundant = 4953
360 Assembly
For maximum compatibility, this program uses only the basic instruction set (S/360) with 2 ASSIST macros (XDECO,XPRNT). <lang 360asm>* Abundant, deficient and perfect number 08/05/2016 ABUNDEFI CSECT
USING ABUNDEFI,R13 set base register
SAVEAR B STM-SAVEAR(R15) skip savearea
DC 17F'0' savearea
STM STM R14,R12,12(R13) save registers
ST R13,4(R15) link backward SA ST R15,8(R13) link forward SA LR R13,R15 establish addressability SR R10,R10 deficient=0 SR R11,R11 perfect =0 SR R12,R12 abundant =0 LA R6,1 i=1
LOOPI C R6,NN do i=1 to nn
BH ELOOPI SR R8,R8 sum=0 LR R9,R6 i SRA R9,1 i/2 LA R7,1 j=1
LOOPJ CR R7,R9 do j=1 to i/2
BH ELOOPJ LR R2,R6 i SRDA R2,32 DR R2,R7 i//j=0 LTR R2,R2 if i//j=0 BNZ NOTMOD AR R8,R7 sum=sum+j
NOTMOD LA R7,1(R7) j=j+1
B LOOPJ
ELOOPJ CR R8,R6 if sum?i
BL SLI < BE SEI = BH SHI >
SLI LA R10,1(R10) deficient+=1
B EIF
SEI LA R11,1(R11) perfect +=1
B EIF
SHI LA R12,1(R12) abundant +=1 EIF LA R6,1(R6) i=i+1
B LOOPI
ELOOPI XDECO R10,XDEC edit deficient
MVC PG+10(5),XDEC+7 XDECO R11,XDEC edit perfect MVC PG+24(5),XDEC+7 XDECO R12,XDEC edit abundant MVC PG+39(5),XDEC+7 XPRNT PG,80 print buffer L R13,4(0,R13) restore savearea pointer LM R14,R12,12(R13) restore registers XR R15,R15 return code = 0 BR R14 return to caller
NN DC F'20000' PG DC CL80'deficient=xxxxx perfect=xxxxx abundant=xxxxx' XDEC DS CL12
REGEQU END ABUNDEFI</lang>
- Output:
deficient=15043 perfect= 4 abundant= 4953
8086 Assembly
<lang asm>LIMIT: equ 20000 cpu 8086 org 100h mov ax,data ; Set DS and ES to point right after the mov cl,4 ; program, so we can store the array there shr ax,cl mov dx,cs add ax,dx inc ax mov ds,ax mov es,ax mov ax,1 ; Set each element to 1 at the beginning xor di,di mov cx,LIMIT+1 rep stosw mov [2],cx ; Except the value for 1, which is 0 mov bp,LIMIT/2 ; BP = limit / 2 - keep values ready in regs mov di,LIMIT ; DI = limit oloop: inc ax ; Let AX be the outer loop counter (divisor) cmp ax,bp ; Are we there yet? ja clsfy ; If so, stop mov dx,ax ; Let DX be the inner loop counter (number) iloop: add dx,ax cmp dx,di ; Are we there yet? ja oloop ; Loop mov bx,dx ; Each entry is 2 bytes wide shl bx,1 add [bx],ax ; Add divisor to number jmp iloop clsfy: xor bp,bp ; BP = deficient number counter xor dx,dx ; DX = perfect number counter xor cx,cx ; CX = abundant number counter xor bx,bx ; BX = current number under consideration mov si,2 ; SI = pointer to divsum of current number cloop: inc bx ; Next number cmp bx,di ; Are we done yet? ja done ; If so, stop lodsw ; Otherwise, get divsum of current number cmp ax,bx ; Compare to current number jb defic ; If smaller, the number is deficient je prfct ; If equal, the number is perfect inc cx ; Otherwise, the number is abundant jmp cloop defic: inc bp jmp cloop prfct: inc dx jmp cloop done: mov ax,cs ; Set DS and ES back to the code segment mov ds,ax mov es,ax mov di,dx ; Move the perfect numbers to DI mov dx,sdef ; Print "Deficient" call prstr mov ax,bp ; Print amount of deficient numbers call prnum mov dx,sper ; Print "Perfect" call prstr mov ax,di ; Print amount of perfect numbers call prnum mov dx,sabn ; Print "Abundant" call prstr mov ax,cx ; Print amount of abundant numbers prnum: mov bx,snum ; Print number in AX pdgt: xor dx,dx div word [ten] ; Extract digit dec bx ; Move pointer add dl,'0' mov [bx],dl ; Store digit test ax,ax ; Any more digits? jnz pdgt mov dx,bx ; Print string prstr: mov ah,9 int 21h ret ten: dw 10 ; Divisor for number output routine sdef: db 'Deficient: $' sper: db 'Perfect: $' sabn: db 'Abundant: $' db '.....' snum: db 13,10,'$' data: equ $</lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
AArch64 Assembly
<lang AArch64 Assembly> /* ARM assembly AARCH64 Raspberry PI 3B or android 64 bits */ /* program numberClassif64.s */
/*******************************************/ /* Constantes file */ /*******************************************/ /* for this file see task include a file in language AArch64 assembly*/ .include "../includeConstantesARM64.inc"
.equ NBDIVISORS, 1000
/*******************************************/ /* Initialized data */ /*******************************************/ .data szMessStartPgm: .asciz "Program 64 bits start \n" szMessEndPgm: .asciz "Program normal end.\n" szMessErrorArea: .asciz "\033[31mError : area divisors too small.\n" szMessError: .asciz "\033[31mError !!!\n" szMessErrGen: .asciz "Error end program.\n" szMessNbPrem: .asciz "This number is prime !!!.\n" szMessOverflow: .asciz "Overflow function isPrime.\n"
szCarriageReturn: .asciz "\n"
/* datas message display */ szMessResult: .asciz "Number déficients : @ perfects : @ abundants : @ \n"
/*******************************************/ /* UnInitialized data */ /*******************************************/ .bss .align 4 sZoneConv: .skip 24 tbZoneDecom: .skip 8 * NBDIVISORS // facteur 8 octets /*******************************************/ /* code section */ /*******************************************/ .text .global main main: // program start
ldr x0,qAdrszMessStartPgm // display start message bl affichageMess
mov x4,#1 mov x3,#0 mov x6,#0 mov x7,#0 mov x8,#0 ldr x9,iNBMAX
1:
mov x0,x4 // number //================================= ldr x1,qAdrtbZoneDecom bl decompFact // create area of divisors cmp x0,#0 // error ? blt 2f lsl x5,x4,#1 // number * 2 cmp x5,x1 // compare number and sum cinc x7,x7,eq // perfect cinc x6,x6,gt // deficient cinc x8,x8,lt // abundant
2:
add x4,x4,#1 cmp x4,x9 ble 1b //================================
mov x0,x6 // deficient ldr x1,qAdrsZoneConv bl conversion10 // convert ascii string ldr x0,qAdrszMessResult ldr x1,qAdrsZoneConv bl strInsertAtCharInc // and put in message mov x5,x0 mov x0,x7 // perfect ldr x1,qAdrsZoneConv bl conversion10 // convert ascii string mov x0,x5 ldr x1,qAdrsZoneConv bl strInsertAtCharInc // and put in message mov x5,x0 mov x0,x8 // abundant ldr x1,qAdrsZoneConv bl conversion10 // convert ascii string mov x0,x5 ldr x1,qAdrsZoneConv bl strInsertAtCharInc // and put in message bl affichageMess
ldr x0,qAdrszMessEndPgm // display end message bl affichageMess b 100f
99: // display error message
ldr x0,qAdrszMessError bl affichageMess
100: // standard end of the program
mov x0, #0 // return code mov x8, #EXIT // request to exit program svc 0 // perform system call
qAdrszMessStartPgm: .quad szMessStartPgm qAdrszMessEndPgm: .quad szMessEndPgm qAdrszMessError: .quad szMessError qAdrszCarriageReturn: .quad szCarriageReturn qAdrtbZoneDecom: .quad tbZoneDecom
qAdrszMessResult: .quad szMessResult qAdrsZoneConv: .quad sZoneConv
iNBMAX: .quad 20000 /******************************************************************/ /* decomposition en facteur */ /******************************************************************/ /* x0 contient le nombre à decomposer */ /* x1 contains factor area address */ decompFact:
stp x3,lr,[sp,-16]! // save registres stp x4,x5,[sp,-16]! // save registres stp x6,x7,[sp,-16]! // save registres stp x8,x9,[sp,-16]! // save registres stp x10,x11,[sp,-16]! // save registres mov x5,x1 mov x1,x0 cmp x0,1 beq 100f mov x8,x0 // save number bl isPrime // prime ? cmp x0,#1 beq 98f // yes is prime mov x1,#1 str x1,[x5] // first factor mov x12,#1 // divisors sum mov x4,#1 // indice divisors table mov x1,#2 // first divisor mov x6,#0 // previous divisor mov x7,#0 // number of same divisors
2:
mov x0,x8 // dividende udiv x2,x0,x1 // x1 divisor x2 quotient x3 remainder msub x3,x2,x1,x0 cmp x3,#0 bne 5f // if remainder <> zero -> no divisor mov x8,x2 // else quotient -> new dividende cmp x1,x6 // same divisor ? beq 4f // yes mov x7,x4 // number factors in table mov x9,#0 // indice
21:
ldr x10,[x5,x9,lsl #3 ] // load one factor mul x10,x1,x10 // multiply str x10,[x5,x7,lsl #3] // and store in the table add x12,x12,x10 add x7,x7,#1 // and increment counter add x9,x9,#1 cmp x9,x4 blt 21b mov x4,x7 mov x6,x1 // new divisor b 7f
4: // same divisor
sub x9,x4,#1 mov x7,x4
41:
ldr x10,[x5,x9,lsl #3 ] cmp x10,x1 sub x13,x9,1 csel x9,x13,x9,ne bne 41b sub x9,x4,x9
42:
ldr x10,[x5,x9,lsl #3 ] mul x10,x1,x10 str x10,[x5,x7,lsl #3] // and store in the table add x12,x12,x10 add x7,x7,#1 // and increment counter add x9,x9,#1 cmp x9,x4 blt 42b mov x4,x7 b 7f // and loop /* not divisor -> increment next divisor */
5:
cmp x1,#2 // if divisor = 2 -> add 1 add x13,x1,#1 // add 1 add x14,x1,#2 // else add 2 csel x1,x13,x14,eq b 2b /* divisor -> test if new dividende is prime */
7:
mov x3,x1 // save divisor cmp x8,#1 // dividende = 1 ? -> end beq 10f mov x0,x8 // new dividende is prime ? mov x1,#0 bl isPrime // the new dividende is prime ? cmp x0,#1 bne 10f // the new dividende is not prime cmp x8,x6 // else dividende is same divisor ? beq 9f // yes mov x7,x4 // number factors in table mov x9,#0 // indice
71:
ldr x10,[x5,x9,lsl #3 ] // load one factor mul x10,x8,x10 // multiply str x10,[x5,x7,lsl #3] // and store in the table add x12,x12,x10 add x7,x7,#1 // and increment counter add x9,x9,#1 cmp x9,x4 blt 71b mov x4,x7 mov x7,#0 b 11f
9:
sub x9,x4,#1 mov x7,x4
91:
ldr x10,[x5,x9,lsl #3 ] cmp x10,x8 sub x13,x9,#1 csel x9,x13,x9,ne bne 91b sub x9,x4,x9
92:
ldr x10,[x5,x9,lsl #3 ] mul x10,x8,x10 str x10,[x5,x7,lsl #3] // and store in the table add x12,x12,x10 add x7,x7,#1 // and increment counter add x9,x9,#1 cmp x9,x4 blt 92b mov x4,x7 b 11f
10:
mov x1,x3 // current divisor = new divisor cmp x1,x8 // current divisor > new dividende ? ble 2b // no -> loop /* end decomposition */
11:
mov x0,x4 // return number of table items mov x1,x12 // return sum mov x3,#0 str x3,[x5,x4,lsl #3] // store zéro in last table item b 100f
98:
//ldr x0,qAdrszMessNbPrem //bl affichageMess add x1,x8,1 mov x0,#0 // return code b 100f
99:
ldr x0,qAdrszMessError bl affichageMess mov x0,#-1 // error code b 100f
100:
ldp x10,x11,[sp],16 // restaur des 2 registres ldp x8,x9,[sp],16 // restaur des 2 registres ldp x6,x7,[sp],16 // restaur des 2 registres ldp x4,x5,[sp],16 // restaur des 2 registres ldp x3,lr,[sp],16 // restaur des 2 registres ret // retour adresse lr x30
qAdrszMessErrGen: .quad szMessErrGen qAdrszMessNbPrem: .quad szMessNbPrem /***************************************************/ /* Verification si un nombre est premier */ /***************************************************/ /* x0 contient le nombre à verifier */ /* x0 retourne 1 si premier 0 sinon */ isPrime:
stp x1,lr,[sp,-16]! // save registres stp x2,x3,[sp,-16]! // save registres mov x2,x0 sub x1,x0,#1 cmp x2,0 beq 99f // retourne zéro cmp x2,2 // pour 1 et 2 retourne 1 ble 2f mov x0,#2 bl moduloPux64 bcs 100f // erreur overflow cmp x0,#1 bne 99f // Pas premier cmp x2,3 beq 2f mov x0,#3 bl moduloPux64 blt 100f // erreur overflow cmp x0,#1 bne 99f
cmp x2,5 beq 2f mov x0,#5 bl moduloPux64 bcs 100f // erreur overflow cmp x0,#1 bne 99f // Pas premier
cmp x2,7 beq 2f mov x0,#7 bl moduloPux64 bcs 100f // erreur overflow cmp x0,#1 bne 99f // Pas premier
cmp x2,11 beq 2f mov x0,#11 bl moduloPux64 bcs 100f // erreur overflow cmp x0,#1 bne 99f // Pas premier
cmp x2,13 beq 2f mov x0,#13 bl moduloPux64 bcs 100f // erreur overflow cmp x0,#1 bne 99f // Pas premier
2:
cmn x0,0 // carry à zero pas d'erreur mov x0,1 // premier b 100f
99:
cmn x0,0 // carry à zero pas d'erreur mov x0,#0 // Pas premier
100:
ldp x2,x3,[sp],16 // restaur des 2 registres ldp x1,lr,[sp],16 // restaur des 2 registres ret // retour adresse lr x30
/**************************************************************/ /********************************************************/ /* Calcul modulo de b puissance e modulo m */ /* Exemple 4 puissance 13 modulo 497 = 445 */ /********************************************************/ /* x0 nombre */ /* x1 exposant */ /* x2 modulo */ moduloPux64:
stp x1,lr,[sp,-16]! // save registres stp x3,x4,[sp,-16]! // save registres stp x5,x6,[sp,-16]! // save registres stp x7,x8,[sp,-16]! // save registres stp x9,x10,[sp,-16]! // save registres cbz x0,100f cbz x1,100f mov x8,x0 mov x7,x1 mov x6,1 // resultat udiv x4,x8,x2 msub x9,x4,x2,x8 // contient le reste
1:
tst x7,1 beq 2f mul x4,x9,x6 umulh x5,x9,x6 //cbnz x5,99f mov x6,x4 mov x0,x6 mov x1,x5 bl divisionReg128U cbnz x1,99f // overflow mov x6,x3
2:
mul x8,x9,x9 umulh x5,x9,x9 mov x0,x8 mov x1,x5 bl divisionReg128U cbnz x1,99f // overflow mov x9,x3 lsr x7,x7,1 cbnz x7,1b mov x0,x6 // result cmn x0,0 // carry à zero pas d'erreur b 100f
99:
ldr x0,qAdrszMessOverflow bl affichageMess cmp x0,0 // carry à un car erreur mov x0,-1 // code erreur
100:
ldp x9,x10,[sp],16 // restaur des 2 registres ldp x7,x8,[sp],16 // restaur des 2 registres ldp x5,x6,[sp],16 // restaur des 2 registres ldp x3,x4,[sp],16 // restaur des 2 registres ldp x1,lr,[sp],16 // restaur des 2 registres ret // retour adresse lr x30
qAdrszMessOverflow: .quad szMessOverflow /***************************************************/ /* division d un nombre de 128 bits par un nombre de 64 bits */ /***************************************************/ /* x0 contient partie basse dividende */ /* x1 contient partie haute dividente */ /* x2 contient le diviseur */ /* x0 retourne partie basse quotient */ /* x1 retourne partie haute quotient */ /* x3 retourne le reste */ divisionReg128U:
stp x6,lr,[sp,-16]! // save registres stp x4,x5,[sp,-16]! // save registres mov x5,#0 // raz du reste R mov x3,#128 // compteur de boucle mov x4,#0 // dernier bit
1:
lsl x5,x5,#1 // on decale le reste de 1 tst x1,1<<63 // test du bit le plus à gauche lsl x1,x1,#1 // on decale la partie haute du quotient de 1 beq 2f orr x5,x5,#1 // et on le pousse dans le reste R
2:
tst x0,1<<63 lsl x0,x0,#1 // puis on decale la partie basse beq 3f orr x1,x1,#1 // et on pousse le bit de gauche dans la partie haute
3:
orr x0,x0,x4 // position du dernier bit du quotient mov x4,#0 // raz du bit cmp x5,x2 blt 4f sub x5,x5,x2 // on enleve le diviseur du reste mov x4,#1 // dernier bit à 1
4:
// et boucle subs x3,x3,#1 bgt 1b lsl x1,x1,#1 // on decale le quotient de 1 tst x0,1<<63 lsl x0,x0,#1 // puis on decale la partie basse beq 5f orr x1,x1,#1
5:
orr x0,x0,x4 // position du dernier bit du quotient mov x3,x5
100:
ldp x4,x5,[sp],16 // restaur des 2 registres ldp x6,lr,[sp],16 // restaur des 2 registres ret // retour adresse lr x30
/********************************************************/ /* File Include fonctions */ /********************************************************/ /* for this file see task include a file in language AArch64 assembly */ .include "../includeARM64.inc" </lang>
- Output:
Program 64 bits start Number déficients : 15043 perfects : 4 abundants : 4953 Program normal end.
Action!
Because of the memory limitation on the non-expanded Atari 8-bit computer the array containing Proper Divisor Sums is generated and used twice for the first and the second half of numbers separately. <lang Action!>PROC FillSumOfDivisors(CARD ARRAY pds CARD size,maxNum,offset)
CARD i,j
FOR i=0 TO size-1 DO pds(i)=1 OD FOR i=2 TO maxNum DO FOR j=i+i TO maxNum STEP i DO IF j>=offset THEN pds(j-offset)==+i FI OD OD
RETURN
PROC Main()
DEFINE MAXNUM="20000" DEFINE HALFNUM="10000" CARD ARRAY pds(HALFNUM+1) CARD def,perf,abud,i,sum,offset BYTE CRSINH=$02F0 ;Controls visibility of cursor CRSINH=1 ;hide cursor Put(125) PutE() ;clear the screen PrintE("Please wait...")
def=1 perf=0 abud=0 FillSumOfDivisors(pds,HALFNUM+1,HALFNUM,0) FOR i=2 TO HALFNUM DO sum=pds(i) IF sum<i THEN def==+1 ELSEIF sum=i THEN perf==+1 ELSE abud==+1 FI OD
offset=HALFNUM FillSumOfDivisors(pds,HALFNUM+1,MAXNUM,offset) FOR i=HALFNUM+1 TO MAXNUM DO sum=pds(i-offset) IF sum<i THEN def==+1 ELSEIF sum=i THEN perf==+1 ELSE abud==+1 FI OD
PrintF(" Numbers: %I%E",MAXNUM) PrintF("Deficient: %I%E",def) PrintF(" Perfect: %I%E",perf) PrintF(" Abudant: %I%E",abud)
RETURN</lang>
- Output:
Screenshot from Atari 8-bit computer
Please wait... Numbers: 20000 Deficient: 15043 Perfect: 4 Abudant: 4953
Ada
This solution uses the package Generic_Divisors from the Proper Divisors task [[1]].
<lang Ada>with Ada.Text_IO, Generic_Divisors;
procedure ADB_Classification is
function Same(P: Positive) return Positive is (P); package Divisor_Sum is new Generic_Divisors (Result_Type => Natural, None => 0, One => Same, Add => "+"); type Class_Type is (Deficient, Perfect, Abundant); function Class(D_Sum, N: Natural) return Class_Type is (if D_Sum < N then Deficient elsif D_Sum = N then Perfect else Abundant); Cls: Class_Type; Results: array (Class_Type) of Natural := (others => 0); package NIO is new Ada.Text_IO.Integer_IO(Natural); package CIO is new Ada.Text_IO.Enumeration_IO(Class_Type);
begin
for N in 1 .. 20_000 loop Cls := Class(Divisor_Sum.Process(N), N); Results(Cls) := Results(Cls)+1; end loop; for Class in Results'Range loop CIO.Put(Class, 12); NIO.Put(Results(Class), 8); Ada.Text_IO.New_Line; end loop; Ada.Text_IO.Put_Line("--------------------"); Ada.Text_IO.Put("Sum "); NIO.Put(Results(Deficient)+Results(Perfect)+Results(Abundant), 8); Ada.Text_IO.New_Line; Ada.Text_IO.Put_Line("====================");
end ADB_Classification;</lang>
- Output:
DEFICIENT 15043 PERFECT 4 ABUNDANT 4953 -------------------- Sum 20000 ====================
ALGOL 68
<lang algol68>BEGIN # classify the numbers 1 : 20 000 as abudant, deficient or perfect #
INT abundant count := 0; INT deficient count := 0; INT perfect count := 0; INT abundant example := 0; INT deficient example := 0; INT perfect example := 0; INT max number = 20 000; # construct a table of the proper divisor sums # [ 1 : max number ]INT pds; pds[ 1 ] := 0; FOR i FROM 2 TO UPB pds DO pds[ i ] := 1 OD; FOR i FROM 2 TO UPB pds DO FOR j FROM i + i BY i TO UPB pds DO pds[ j ] +:= i OD OD; # classify the numbers # FOR n TO max number DO IF INT pd sum = pds[ n ]; pd sum < n THEN # have a deficient number # deficient count +:= 1; deficient example := n ELIF pd sum = n THEN # have a perfect number # perfect count +:= 1; perfect example := n ELSE # pd sum > n # # have an abundant number # abundant count +:= 1; abundant example := n FI OD; # displays the classification, count and example # PROC show result = ( STRING classification, INT count, example )VOID: print( ( "There are " , whole( count, -8 ) , " " , classification , " numbers up to " , whole( max number, 0 ) , " e.g.: " , whole( example, 0 ) , newline ) );
# show how many of each type of number there are and an example # show result( "abundant ", abundant count, abundant example ); show result( "deficient", deficient count, deficient example ); show result( "perfect ", perfect count, perfect example )
END</lang>
- Output:
There are 4953 abundant numbers up to 20000 e.g.: 20000 There are 15043 deficient numbers up to 20000 e.g.: 19999 There are 4 perfect numbers up to 20000 e.g.: 8128
ALGOL W
<lang algolw>begin % count abundant, perfect and deficient numbers up to 20 000 %
integer MAX_NUMBER; MAX_NUMBER := 20000; begin integer array pds ( 1 :: MAX_NUMBER ); integer aCount, dCount, pCount, dSum; % construct a table of proper divisor sums % pds( 1 ) := 0; for i := 2 until MAX_NUMBER do pds( i ) := 1; for i := 2 until MAX_NUMBER do begin for j := i + i step i until MAX_NUMBER do pds( j ) := pds( j ) + i end for_i ; aCount := dCount := pCOunt := 0; for i := 1 until 20000 do begin dSum := pds( i ); if dSum > i then aCount := aCount + 1 else if dSum < i then dCount := dCOunt + 1 else % dSum = i % pCount := pCount + 1 end for_i ; write( "Abundant numbers up to 20 000: ", aCount ); write( "Perfect numbers up to 20 000: ", pCount ); write( "Deficient numbers up to 20 000: ", dCount ) end
end.</lang>
- Output:
Abundant numbers up to 20 000: 4953 Perfect numbers up to 20 000: 4 Deficient numbers up to 20 000: 15043
AppleScript
<lang applescript>on aliquotSum(n)
if (n < 2) then return 0 set sum to 1 set sqrt to n ^ 0.5 set limit to sqrt div 1 if (limit = sqrt) then set sum to sum + limit set limit to limit - 1 end if repeat with i from 2 to limit if (n mod i is 0) then set sum to sum + i + n div i end repeat return sum
end aliquotSum
on task()
set {deficient, perfect, abundant} to {0, 0, 0} repeat with n from 1 to 20000 set s to aliquotSum(n) if (s < n) then set deficient to deficient + 1 else if (s > n) then set abundant to abundant + 1 else set perfect to perfect + 1 end if end repeat return {deficient:deficient, perfect:perfect, abundant:abundant}
end task
task()</lang>
- Output:
<lang applescript>{deficient:15043, perfect:4, abundant:4953}</lang>
ARM Assembly
<lang ARM Assembly> /* ARM assembly Raspberry PI */ /* program numberClassif.s */
/* REMARK 1 : this program use routines in a include file see task Include a file language arm assembly for the routine affichageMess conversion10 see at end of this program the instruction include */
/* for constantes see task include a file in arm assembly */ /************************************/ /* Constantes */ /************************************/ .include "../constantes.inc"
.equ NBDIVISORS, 1000
/*******************************************/ /* Initialized data */ /*******************************************/ .data szMessStartPgm: .asciz "Program start \n" szMessEndPgm: .asciz "Program normal end.\n" szMessErrorArea: .asciz "\033[31mError : area divisors too small.\n" szMessError: .asciz "\033[31mError !!!\n" szMessErrGen: .asciz "Error end program.\n" szMessNbPrem: .asciz "This number is prime !!!.\n" szMessResultFact: .asciz "@ "
szCarriageReturn: .asciz "\n"
/* datas message display */ szMessResult: .asciz "Number déficients : @ perfects : @ abundants : @ \n"
/*******************************************/ /* UnInitialized data */ /*******************************************/ .bss .align 4 sZoneConv: .skip 24 tbZoneDecom: .skip 4 * NBDIVISORS // facteur 4 octets /*******************************************/ /* code section */ /*******************************************/ .text .global main main: @ program start
ldr r0,iAdrszMessStartPgm @ display start message bl affichageMess
mov r4,#1 mov r3,#0 mov r6,#0 mov r7,#0 mov r8,#0 ldr r9,iNBMAX
1:
mov r0,r4 @ number //================================= ldr r1,iAdrtbZoneDecom bl decompFact @ create area of divisors cmp r0,#0 @ error ? blt 2f lsl r5,r4,#1 @ number * 2 cmp r5,r1 @ compare number and sum addeq r7,r7,#1 @ perfect addgt r6,r6,#1 @ deficient addlt r8,r8,#1 @ abundant
2:
add r4,r4,#1 cmp r4,r9 ble 1b //================================
mov r0,r6 @ deficient ldr r1,iAdrsZoneConv bl conversion10 @ convert ascii string ldr r0,iAdrszMessResult ldr r1,iAdrsZoneConv bl strInsertAtCharInc @ and put in message mov r5,r0 mov r0,r7 @ perfect ldr r1,iAdrsZoneConv bl conversion10 @ convert ascii string mov r0,r5 ldr r1,iAdrsZoneConv bl strInsertAtCharInc @ and put in message mov r5,r0 mov r0,r8 @ abundant ldr r1,iAdrsZoneConv bl conversion10 @ convert ascii string mov r0,r5 ldr r1,iAdrsZoneConv bl strInsertAtCharInc @ and put in message bl affichageMess
ldr r0,iAdrszMessEndPgm @ display end message bl affichageMess b 100f
99: @ display error message
ldr r0,iAdrszMessError bl affichageMess
100: @ standard end of the program
mov r0, #0 @ return code mov r7, #EXIT @ request to exit program svc 0 @ perform system call
iAdrszMessStartPgm: .int szMessStartPgm iAdrszMessEndPgm: .int szMessEndPgm iAdrszMessError: .int szMessError iAdrszCarriageReturn: .int szCarriageReturn iAdrtbZoneDecom: .int tbZoneDecom
iAdrszMessResult: .int szMessResult iAdrsZoneConv: .int sZoneConv
iNBMAX: .int 20000
/******************************************************************/
/* factor decomposition */
/******************************************************************/
/* r0 contains number */
/* r1 contains address of divisors area */
/* r0 return divisors items in table */
/* r1 return the sum of divisors */
decompFact:
push {r3-r12,lr} @ save registers cmp r0,#1 moveq r1,#1 beq 100f mov r5,r1 mov r8,r0 @ save number bl isPrime @ prime ? cmp r0,#1 beq 98f @ yes is prime mov r1,#1 str r1,[r5] @ first factor mov r12,#1 @ divisors sum mov r10,#1 @ indice divisors table mov r9,#2 @ first divisor mov r6,#0 @ previous divisor mov r7,#0 @ number of same divisors /* division loop */
2:
mov r0,r8 @ dividende mov r1,r9 @ divisor bl division @ r2 quotient r3 remainder cmp r3,#0 beq 3f @ if remainder zero -> divisor /* not divisor -> increment next divisor */ cmp r9,#2 @ if divisor = 2 -> add 1 addeq r9,#1 addne r9,#2 @ else add 2 b 2b /* divisor compute the new factors of number */
3:
mov r8,r2 @ else quotient -> new dividende cmp r9,r6 @ same divisor ? beq 4f @ yes mov r0,r5 @ table address mov r1,r10 @ number factors in table mov r2,r9 @ divisor mov r3,r12 @ somme mov r4,#0 bl computeFactors mov r10,r1 mov r12,r0 mov r6,r9 @ new divisor b 7f
4: @ same divisor
sub r7,r10,#1
5: @ search in table the first use of divisor
ldr r3,[r5,r7,lsl #2 ] cmp r3,r9 subne r7,#1 bne 5b @ and compute new factors after factors sub r4,r10,r7 @ start indice mov r0,r5 mov r1,r10 mov r2,r9 @ divisor mov r3,r12 bl computeFactors mov r12,r0 mov r10,r1
/* divisor -> test if new dividende is prime */
7:
cmp r8,#1 @ dividende = 1 ? -> end beq 10f mov r0,r8 @ new dividende is prime ? mov r1,#0 bl isPrime @ the new dividende is prime ? cmp r0,#1 bne 10f @ the new dividende is not prime
cmp r8,r6 @ else dividende is same divisor ? beq 8f @ yes mov r0,r5 mov r1,r10 mov r2,r8 mov r3,r12 mov r4,#0 bl computeFactors mov r12,r0 mov r10,r1 mov r7,#0 b 11f
8:
sub r7,r10,#1
9:
ldr r3,[r5,r7,lsl #2 ] cmp r3,r8 subne r7,#1 bne 9b mov r0,r5 mov r1,r10 sub r4,r10,r7 mov r2,r8 mov r3,r12 bl computeFactors mov r12,r0 mov r10,r1 b 11f
10:
cmp r9,r8 @ current divisor > new dividende ? ble 2b @ no -> loop /* end decomposition */
11:
mov r0,r10 @ return number of table items mov r1,r12 @ return sum mov r3,#0 str r3,[r5,r10,lsl #2] @ store zéro in last table item b 100f
98: @ prime number
//ldr r0,iAdrszMessNbPrem //bl affichageMess add r1,r8,#1 mov r0,#0 @ return code b 100f
99:
ldr r0,iAdrszMessError bl affichageMess mov r0,#-1 @ error code b 100f
100:
pop {r3-r12,lr} @ restaur registers bx lr
iAdrszMessNbPrem: .int szMessNbPrem
/* r0 table factors address */ /* r1 number factors in table */ /* r2 new divisor */ /* r3 sum */ /* r4 start indice */ /* r0 return sum */ /* r1 return number factors in table */ computeFactors:
push {r2-r6,lr} @ save registers mov r6,r1 @ number factors in table
1:
ldr r5,[r0,r4,lsl #2 ] @ load one factor mul r5,r2,r5 @ multiply str r5,[r0,r1,lsl #2] @ and store in the table
add r3,r5 add r1,r1,#1 @ and increment counter add r4,r4,#1 cmp r4,r6 blt 1b mov r0,r3
100: @ fin standard de la fonction
pop {r2-r6,lr} @ restaur des registres bx lr @ retour de la fonction en utilisant lr
/***************************************************/ /* check if a number is prime */ /***************************************************/ /* r0 contains the number */ /* r0 return 1 if prime 0 else */ @2147483647 @4294967297 @131071 isPrime:
push {r1-r6,lr} @ save registers cmp r0,#0 beq 90f cmp r0,#17 bhi 1f cmp r0,#3 bls 80f @ for 1,2,3 return prime cmp r0,#5 beq 80f @ for 5 return prime cmp r0,#7 beq 80f @ for 7 return prime cmp r0,#11 beq 80f @ for 11 return prime cmp r0,#13 beq 80f @ for 13 return prime cmp r0,#17 beq 80f @ for 17 return prime
1:
tst r0,#1 @ even ? beq 90f @ yes -> not prime mov r2,r0 @ save number sub r1,r0,#1 @ exposant n - 1 mov r0,#3 @ base bl moduloPuR32 @ compute base power n - 1 modulo n cmp r0,#1 bne 90f @ if <> 1 -> not prime mov r0,#5 bl moduloPuR32 cmp r0,#1 bne 90f mov r0,#7 bl moduloPuR32 cmp r0,#1 bne 90f mov r0,#11 bl moduloPuR32 cmp r0,#1 bne 90f mov r0,#13 bl moduloPuR32 cmp r0,#1 bne 90f mov r0,#17 bl moduloPuR32 cmp r0,#1 bne 90f
80:
mov r0,#1 @ is prime b 100f
90:
mov r0,#0 @ no prime
100: @ fin standard de la fonction
pop {r1-r6,lr} @ restaur des registres bx lr @ retour de la fonction en utilisant lr
/********************************************************/ /* Calcul modulo de b puissance e modulo m */ /* Exemple 4 puissance 13 modulo 497 = 445 */ /* */ /********************************************************/ /* r0 nombre */ /* r1 exposant */ /* r2 modulo */ /* r0 return result */ moduloPuR32:
push {r1-r7,lr} @ save registers cmp r0,#0 @ verif <> zero beq 100f cmp r2,#0 @ verif <> zero beq 100f @ TODO: v鲩fier les cas d erreur
1:
mov r4,r2 @ save modulo mov r5,r1 @ save exposant mov r6,r0 @ save base mov r3,#1 @ start result
mov r1,#0 @ division de r0,r1 par r2 bl division32R mov r6,r2 @ base <- remainder
2:
tst r5,#1 @ exposant even or odd beq 3f umull r0,r1,r6,r3 mov r2,r4 bl division32R mov r3,r2 @ result <- remainder
3:
umull r0,r1,r6,r6 mov r2,r4 bl division32R mov r6,r2 @ base <- remainder
lsr r5,#1 @ left shift 1 bit cmp r5,#0 @ end ? bne 2b mov r0,r3
100: @ fin standard de la fonction
pop {r1-r7,lr} @ restaur des registres bx lr @ retour de la fonction en utilisant lr
/***************************************************/ /* division number 64 bits in 2 registers by number 32 bits */ /***************************************************/ /* r0 contains lower part dividende */ /* r1 contains upper part dividende */ /* r2 contains divisor */ /* r0 return lower part quotient */ /* r1 return upper part quotient */ /* r2 return remainder */ division32R:
push {r3-r9,lr} @ save registers mov r6,#0 @ init upper upper part remainder !! mov r7,r1 @ init upper part remainder with upper part dividende mov r8,r0 @ init lower part remainder with lower part dividende mov r9,#0 @ upper part quotient mov r4,#0 @ lower part quotient mov r5,#32 @ bits number
1: @ begin loop
lsl r6,#1 @ shift upper upper part remainder lsls r7,#1 @ shift upper part remainder orrcs r6,#1 lsls r8,#1 @ shift lower part remainder orrcs r7,#1 lsls r4,#1 @ shift lower part quotient lsl r9,#1 @ shift upper part quotient orrcs r9,#1 @ divisor sustract upper part remainder subs r7,r2 sbcs r6,#0 @ and substract carry bmi 2f @ n駡tive ? @ positive or equal orr r4,#1 @ 1 -> right bit quotient b 3f
2: @ negative
orr r4,#0 @ 0 -> right bit quotient adds r7,r2 @ and restaur remainder adc r6,#0
3:
subs r5,#1 @ decrement bit size bgt 1b @ end ? mov r0,r4 @ lower part quotient mov r1,r9 @ upper part quotient mov r2,r7 @ remainder
100: @ function end
pop {r3-r9,lr} @ restaur registers bx lr
/***************************************************/ /* ROUTINES INCLUDE */ /***************************************************/ .include "../affichage.inc" </lang>
- Output:
Program start Number déficients : 15043 perfects : 4 abundants : 4953 Program normal end.
Arturo
<lang rebol>properDivisors: function [n]->
(factors n) -- n
abundant: new 0 deficient: new 0 perfect: new 0
loop 1..20000 'x [
s: sum properDivisors x
case [s] when? [<x] -> inc 'deficient when? [>x] -> inc 'abundant else -> inc 'perfect
]
print ["Found" abundant "abundant,"
deficient "deficient and" perfect "perfect numbers."]</lang>
- Output:
Found 4953 abundant, 15043 deficient and 4 perfect numbers.
AutoHotkey
<lang autohotkey>Loop {
m := A_index ; getting factors===================== loop % floor(sqrt(m)) { if ( mod(m, A_index) == "0" ) { if ( A_index ** 2 == m ) { list .= A_index . ":" sum := sum + A_index continue } if ( A_index != 1 ) { list .= A_index . ":" . m//A_index . ":" sum := sum + A_index + m//A_index } if ( A_index == "1" ) { list .= A_index . ":" sum := sum + A_index } } } ; Factors obtained above=============== if ( sum == m ) && ( sum != 1 ) { result := "perfect" perfect++ } if ( sum > m ) { result := "Abundant" Abundant++ } if ( sum < m ) or ( m == "1" ) { result := "Deficient" Deficient++ } if ( m == 20000 ) { MsgBox % "number: " . m . "`nFactors:`n" . list . "`nSum of Factors: " . Sum . "`nResult: " . result . "`n_______________________`nTotals up to: " . m . "`nPerfect: " . perfect . "`nAbundant: " . Abundant . "`nDeficient: " . Deficient ExitApp } list := "" sum := 0
}
esc::ExitApp </lang>
- Output:
number: 20000 Factors: 1:2:10000:4:5000:5:4000:8:2500:10:2000:16:1250:20:1000:25:800:32:625:40:500:50:400:80:250:100:200:125:160: Sum of Factors: 29203 Result: Abundant _______________________ Totals up to: 20000 Perfect: 4 Abundant: 4953 Deficient: 15043
AWK
works with GNU Awk 3.1.5 and with BusyBox v1.21.1 <lang AWK>
- !/bin/gawk -f
function sumprop(num, i,sum,root) { if (num == 1) return 0 sum=1 root=sqrt(num) for ( i=2; i < root; i++) {
if (num % i == 0 ) { sum = sum + i + num/i } }
if (num % root == 0)
{ sum = sum + root }
return sum }
BEGIN{ limit = 20000 abundant = 0 defiecient =0 perfect = 0
for (j=1; j < limit+1; j++)
{ sump = sumprop(j) if (sump < j) deficient = deficient + 1 if (sump == j) perfect = perfect + 1 if (sump > j) abundant = abundant + 1 }
print "For 1 through " limit print "Perfect: " perfect print "Abundant: " abundant print "Deficient: " deficient } </lang>
- Output:
For 1 through 20000 Perfect: 4 Abundant: 4953 Deficient: 15043
Batch File
As batch files aren't particularly well-suited to increasingly large arrays of data, this code will chew through processing power. <lang dos> @echo off setlocal enabledelayedexpansion
- _main
for /l %%i in (1,1,20000) do (
echo Processing %%i call:_P %%i set Pn=!errorlevel! if !Pn! lss %%i set /a deficient+=1 if !Pn!==%%i set /a perfect+=1 if !Pn! gtr %%i set /a abundant+=1 cls
)
echo Deficient - %deficient% ^| Perfect - %perfect% ^| Abundant - %abundant% pause>nul
- _P
setlocal enabledelayedexpansion set sumdivisers=0
set /a upperlimit=%1-1
for /l %%i in (1,1,%upperlimit%) do (
set /a isdiviser=%1 %% %%i if !isdiviser!==0 set /a sumdivisers+=%%i
)
exit /b %sumdivisers% </lang>
BASIC
<lang BASIC>10 DEFINT A-Z: LM=20000 20 DIM P(LM) 30 FOR I=1 TO LM: P(I)=-32767: NEXT 40 FOR I=1 TO LM/2: FOR J=I+I TO LM STEP I: P(J)=P(J)+I: NEXT: NEXT 50 FOR I=1 TO LM 60 X=I-32767 70 IF P(I)<X THEN D=D+1 ELSE IF P(I)=X THEN P=P+1 ELSE A=A+1 80 NEXT 90 PRINT "DEFICIENT:";D 100 PRINT "PERFECT:";P 110 PRINT "ABUNDANT:";A</lang>
- Output:
DEFICIENT: 15043 PERFECT: 4 ABUNDANT: 4953
BCPL
<lang bcpl>get "libhdr" manifest $( maximum = 20000 $)
let calcpdivs(p, max) be $( for i=0 to max do p!i := 0
for i=1 to max/2 $( let j = i+i while 0 < j <= max $( p!j := p!j + i j := j + i $) $)
$)
let classify(p, n, def, per, ab) be $( let z = 0<=p!n<n -> def, p!n=n -> per, ab
!z := !z + 1
$)
let start() be $( let p = getvec(maximum)
let def, per, ab = 0, 0, 0 calcpdivs(p, maximum) for i=1 to maximum do classify(p, i, @def, @per, @ab) writef("Deficient numbers: %N*N", def) writef("Perfect numbers: %N*N", per) writef("Abundant numbers: %N*N", ab) freevec(p)
$)</lang>
- Output:
Deficient numbers: 15043 Perfect numbers: 4 Abundant numbers: 4953
Befunge
This is not a particularly efficient implementation, so unless you're using a compiler, you can expect it to take a good few minutes to complete. But you can always test with a shorter range of numbers by replacing the 20000 ("2":*8*) near the start of the first line.
<lang befunge>p0"2":*8*>::2/\:2/\28*:*:**+>::28*:*:*/\28*:*:*%%#v_\:28*:*:*%v>00p:0`\0\`-1v ++\1-:1`#^_$:28*:*:*/\28*vv_^#<<<!%*:*:*82:-1\-1\<<<\+**:*:*82<+>*:*:**\2-!#+ v"There are "0\g00+1%*:*:<>28*:*:*/\28*:*:*/:0\`28*:*:**+-:!00g^^82!:g01\p01< >:#,_\." ,tneicifed">:#,_\." dna ,tcefrep">:#,_\.55+".srebmun tnadnuba">:#,_@</lang>
- Output:
There are 15043 deficient, 4 perfect, and 4953 abundant numbers.
Bracmat
Two solutions are given. The first solution first decomposes the current number into a multiset of prime factors and then constructs the proper divisors. The second solution finds proper divisors by checking all candidates from 1 up to the square root of the given number. The first solution is a few times faster, because establishing the prime factors of a small enough number (less than 2^32 or less than 2^64, depending on the bitness of Bracmat) is fast. <lang bracmat>( clk$:?t0 & ( multiples
= prime multiplicity . !arg:(?prime.?multiplicity) & !multiplicity:0 & 1 | !prime^!multiplicity*(.!multiplicity) + multiples$(!prime.-1+!multiplicity) )
& ( P
= primeFactors prime exp poly S . !arg^1/67:?primeFactors & ( !primeFactors:?^1/67&0 | 1:?poly & whl ' ( !primeFactors:%?prime^?exp*?primeFactors & !poly*multiples$(!prime.67*!exp):?poly ) & -1+!poly+1:?poly & 1:?S & ( !poly : ? + (#%@?s*?&!S+!s:?S&~) + ? | 1/2*!S ) ) )
& 0:?deficient:?perfect:?abundant & 0:?n & whl
' ( 1+!n:~>20000:?n & P$!n : ( <!n&1+!deficient:?deficient | !n&1+!perfect:?perfect | >!n&1+!abundant:?abundant ) )
& out$(deficient !deficient perfect !perfect abundant !abundant) & clk$:?t1 & out$(flt$(!t1+-1*!t0,2) sec) & clk$:?t2 & ( P
= f h S . 0:?f & 0:?S & whl ' ( 1+!f:?f & !f^2:~>!n & ( !arg*!f^-1:~/:?g & !S+!f:?S & ( !g:~!f&!S+!g:?S | ) | ) ) & 1/2*!S )
& 0:?deficient:?perfect:?abundant & 0:?n & whl
' ( 1+!n:~>20000:?n & P$!n : ( <!n&1+!deficient:?deficient | !n&1+!perfect:?perfect | >!n&1+!abundant:?abundant ) )
& out$(deficient !deficient perfect !perfect abundant !abundant) & clk$:?t3 & out$(flt$(!t3+-1*!t2,2) sec) );</lang> Output:
deficient 15043 perfect 4 abundant 4953 4,27*10E0 sec deficient 15043 perfect 4 abundant 4953 1,63*10E1 sec
C
<lang c>
- include<stdio.h>
- define de 0
- define pe 1
- define ab 2
int main(){ int sum = 0, i, j; int try_max = 0; //1 is deficient by default and can add it deficient list int count_list[3] = {1,0,0}; for(i=2; i <= 20000; i++){ //Set maximum to check for proper division try_max = i/2; //1 is in all proper division number sum = 1; for(j=2; j<try_max; j++){ //Check for proper division if (i % j) continue; //Pass if not proper division //Set new maximum for divisibility check try_max = i/j; //Add j to sum sum += j; if (j != try_max) sum += try_max; } //Categorize summation if (sum < i){ count_list[de]++; continue; } if (sum > i){ count_list[ab]++; continue; } count_list[pe]++; } printf("\nThere are %d deficient," ,count_list[de]); printf(" %d perfect," ,count_list[pe]); printf(" %d abundant numbers between 1 and 20000.\n" ,count_list[ab]); return 0; } </lang>
- Output:
There are 15043 deficient, 4 perfect, 4953 abundant numbers between 1 and 20000.
C#
Three algorithms presented, the first is fast, but can be a memory hog when tabulating to larger limits. The second is slower, but doesn't have any memory issue. The third is quite a bit slower, but the code may be easier to follow.
First method:
- Initializes a large queue, uses a double nested loop to populate it, and a third loop to interrogate the queue.
Second method:
- Uses a double nested loop with the inner loop only reaching to sqrt(i), as it adds both divisors at once, later correcting the sum when the divisor is a perfect square.
Third method:
- Uses a loop with a inner Enumerable.Range reaching to i / 2, only adding one divisor at a time.
<lang csharp>using System; using System.Linq;
public class Program {
public static void Main() { int abundant, deficient, perfect; var sw = System.Diagnostics.Stopwatch.StartNew(); ClassifyNumbers.UsingSieve(20000, out abundant, out deficient, out perfect); sw.Stop(); Console.WriteLine($"Abundant: {abundant}, Deficient: {deficient}, Perfect: {perfect} {sw.Elapsed.TotalMilliseconds} ms"); sw.Restart(); ClassifyNumbers.UsingOptiDivision(20000, out abundant, out deficient, out perfect); Console.WriteLine($"Abundant: {abundant}, Deficient: {deficient}, Perfect: {perfect} {sw.Elapsed.TotalMilliseconds} ms"); sw.Restart(); ClassifyNumbers.UsingDivision(20000, out abundant, out deficient, out perfect); Console.WriteLine($"Abundant: {abundant}, Deficient: {deficient}, Perfect: {perfect} {sw.Elapsed.TotalMilliseconds} ms"); }
}
public static class ClassifyNumbers {
//Fastest way, but uses memory public static void UsingSieve(int bound, out int abundant, out int deficient, out int perfect) { abundant = perfect = 0; //For very large bounds, this array can get big. int[] sum = new int[bound + 1]; for (int divisor = 1; divisor <= bound >> 1; divisor++) for (int i = divisor << 1; i <= bound; i += divisor) sum[i] += divisor; for (int i = 1; i <= bound; i++) { if (sum[i] > i) abundant++; else if (sum[i] == i) perfect++; } deficient = bound - abundant - perfect; }
//Slower, optimized, but doesn't use storage public static void UsingOptiDivision(int bound, out int abundant, out int deficient, out int perfect) { abundant = perfect = 0; int sum = 0; for (int i = 2, d, r = 1; i <= bound; i++) { if ((d = r * r - i) < 0) r++; for (int x = 2; x < r; x++) if (i % x == 0) sum += x + i / x; if (d == 0) sum += r; switch (sum.CompareTo(i)) { case 0: perfect++; break; case 1: abundant++; break; } sum = 1; } deficient = bound - abundant - perfect; }
//Much slower, doesn't use storage and is un-optimized public static void UsingDivision(int bound, out int abundant, out int deficient, out int perfect) { abundant = perfect = 0; for (int i = 2; i <= bound; i++) { int sum = Enumerable.Range(1, (i + 1) / 2) .Where(div => i % div == 0).Sum(); switch (sum.CompareTo(i)) { case 0: perfect++; break; case 1: abundant++; break; } } deficient = bound - abundant - perfect; }
}</lang>
- Output @ Tio.run:
We see the second method is about 10 times slower than the first method, and the third method more than 120 times slower than the second method.
Abundant: 4953, Deficient: 15043, Perfect: 4 0.7277 ms Abundant: 4953, Deficient: 15043, Perfect: 4 7.3458 ms Abundant: 4953, Deficient: 15043, Perfect: 4 1048.9541 ms
C++
<lang cpp>#include <iostream>
- include <algorithm>
- include <vector>
std::vector<int> findProperDivisors ( int n ) {
std::vector<int> divisors ; for ( int i = 1 ; i < n / 2 + 1 ; i++ ) { if ( n % i == 0 )
divisors.push_back( i ) ;
} return divisors ;
}
int main( ) {
std::vector<int> deficients , perfects , abundants , divisors ; for ( int n = 1 ; n < 20001 ; n++ ) { divisors = findProperDivisors( n ) ; int sum = std::accumulate( divisors.begin( ) , divisors.end( ) , 0 ) ; if ( sum < n ) {
deficients.push_back( n ) ;
} if ( sum == n ) {
perfects.push_back( n ) ;
} if ( sum > n ) {
abundants.push_back( n ) ;
} } std::cout << "Deficient : " << deficients.size( ) << std::endl ; std::cout << "Perfect : " << perfects.size( ) << std::endl ; std::cout << "Abundant : " << abundants.size( ) << std::endl ; return 0 ;
}</lang>
- Output:
Deficient : 15043 Perfect : 4 Abundant : 4953
Ceylon
<lang ceylon>shared void run() {
function divisors(Integer int) => if(int <= 1) then {} else (1..int / 2).filter((Integer element) => element.divides(int));
function classify(Integer int) => sum {0, *divisors(int)} <=> int;
value counts = (1..20k).map(classify).frequencies();
print("deficient: ``counts[smaller] else "none"``"); print("perfect: ``counts[equal] else "none"``"); print("abundant: ``counts[larger] else "none"``"); }</lang>
- Output:
deficient: 15043 perfect: 4 abundant: 4953
Clojure
<lang clojure>(defn pad-class
[n] (let [divs (filter #(zero? (mod n %)) (range 1 n)) divs-sum (reduce + divs)] (cond (< divs-sum n) :deficient (= divs-sum n) :perfect (> divs-sum n) :abundant)))
(def pad-classes (map pad-class (map inc (range))))
(defn count-classes
[n] (let [classes (take n pad-classes)] {:perfect (count (filter #(= % :perfect) classes)) :abundant (count (filter #(= % :abundant) classes)) :deficient (count (filter #(= % :deficient) classes))}))</lang>
Example:
<lang clojure>(count-classes 20000)
- => {
- perfect 4,
- abundant 4953,
- deficient 15043}</lang>
CLU
<lang clu>% Generate proper divisors from 1 to max proper_divisors = proc (max: int) returns (array[int])
divs: array[int] := array[int]$fill(1, max, 0) for i: int in int$from_to(1, max/2) do for j: int in int$from_to_by(i*2, max, i) do divs[j] := divs[j] + i end end return(divs)
end proper_divisors
% Classify all the numbers for which we have divisors classify = proc (divs: array[int]) returns (int, int, int)
def, per, ab: int def, per, ab := 0, 0, 0 for i: int in array[int]$indexes(divs) do if divs[i]i then ab := ab + 1 end end return(def, per, ab)
end classify
% Find amount of deficient, perfect, and abundant numbers up to 20000 start_up = proc ()
max = 20000 po: stream := stream$primary_output() def, per, ab: int := classify(proper_divisors(max)) stream$putl(po, "Deficient: " || int$unparse(def)) stream$putl(po, "Perfect: " || int$unparse(per)) stream$putl(po, "Abundant: " || int$unparse(ab))
end start_up</lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
Common Lisp
<lang lisp>(defun number-class (n)
(let ((divisor-sum (sum-divisors n))) (cond ((< divisor-sum n) :deficient) ((= divisor-sum n) :perfect) ((> divisor-sum n) :abundant))))
(defun sum-divisors (n)
(loop :for i :from 1 :to (/ n 2) :when (zerop (mod n i)) :sum i))
(defun classification ()
(loop :for n :from 1 :to 20000 :for class := (number-class n) :count (eq class :deficient) :into deficient :count (eq class :perfect) :into perfect :count (eq class :abundant) :into abundant :finally (return (values deficient perfect abundant))))</lang>
Output:
CL-USER> (classification) 15043 4 4953
Cowgol
<lang cowgol>include "cowgol.coh";
const MAXIMUM := 20000;
var p: uint16[MAXIMUM+1]; var i: uint16; var j: uint16;
MemZero(&p as [uint8], @bytesof p); i := 1; while i <= MAXIMUM/2 loop
j := i+i; while j <= MAXIMUM loop p[j] := p[j]+i; j := j+i; end loop; i := i+1;
end loop;
var def: uint16 := 0; var per: uint16 := 0; var ab: uint16 := 0; i := 1; while i <= MAXIMUM loop
if p[i]<i then def := def + 1; elseif p[i]==i then per := per + 1; else ab := ab + 1; end if; i := i + 1;
end loop;
print_i16(def); print(" deficient numbers.\n"); print_i16(per); print(" perfect numbers.\n"); print_i16(ab); print(" abundant numbers.\n");</lang>
- Output:
15043 deficient numbers. 4 perfect numbers. 4953 abundant numbers.
D
<lang d>void main() /*@safe*/ {
import std.stdio, std.algorithm, std.range;
static immutable properDivs = (in uint n) pure nothrow @safe /*@nogc*/ => iota(1, (n + 1) / 2 + 1).filter!(x => n % x == 0 && n != x);
enum Class { deficient, perfect, abundant }
static Class classify(in uint n) pure nothrow @safe /*@nogc*/ { immutable p = properDivs(n).sum; with (Class) return (p < n) ? deficient : ((p == n) ? perfect : abundant); }
enum rangeMax = 20_000; //iota(1, 1 + rangeMax).map!classify.hashGroup.writeln; iota(1, 1 + rangeMax).map!classify.array.sort().group.writeln;
}</lang>
- Output:
[Tuple!(Class, uint)(deficient, 15043), Tuple!(Class, uint)(perfect, 4), Tuple!(Class, uint)(abundant, 4953)]
Delphi
See #Pascal.
Draco
<lang draco>/* Fill a given array such that for each N,
* P[n] is the sum of proper divisors of N */
proc nonrec propdivs([*] word p) void:
word i, j, max; max := dim(p,1)-1; for i from 0 upto max do p[i] := 0 od; for i from 1 upto max/2 do for j from i*2 by i upto max do p[j] := p[j] + i od od
corp
proc nonrec main() void:
word MAX = 20000; word def, per, ab, i; /* Find all required proper divisor sums */ [MAX+1] word p; propdivs(p); def := 0; per := 0; ab := 0; /* Check each number */ for i from 1 upto MAX do if p[i]i then ab := ab + 1 fi od; writeln("Deficient: ", def:5); writeln("Perfect: ", per:5); writeln("Abundant: ", ab:5)
corp</lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
Dyalect
<lang dyalect>func sieve(bound) {
var (a, d, p) = (0, 0, 0) var sum = Array.Empty(bound + 1, 0) for divisor in 1..(bound / 2) { var i = divisor + divisor while i <= bound { sum[i] += divisor i += divisor } } for i in 1..bound { if sum[i] < i { d += 1 } else if sum[i] > i { a += 1 } else { p += 1 } } (abundant: a, deficient: d, perfect: p)
}
func Iterator.Where(fn) {
for x in this { if fn(x) { yield x } }
}
func Iterator.Sum() {
var sum = 0 for x in this { sum += x } sum
}
func division(bound) {
var (a, d, p) = (0, 0, 0) for i in 1..20000 { var sum = ( 1 .. ((i + 1) / 2) ) .Where(div => div != i && i % div == 0) .Sum() if sum < i { d += 1 } else if sum > i { a += 1 } else { p += 1 } } (abundant: a, deficient: d, perfect: p)
}
func out(res) {
print("Abundant: \(res.abundant), Deficient: \(res.deficient), Perfect: \(res.perfect)");
}
out( sieve(20000) ) out( division(20000) )</lang>
- Output:
Abundant: 4953, Deficient: 15043, Perfect: 4 Abundant: 4953, Deficient: 15043, Perfect: 4
EchoLisp
<lang scheme> (lib 'math) ;; sum-divisors function
(define-syntax-rule (++ a) (set! a (1+ a)))
(define (abondance (N 20000))
(define-values (delta abondant deficient perfect) '(0 0 0 0)) (for ((n (in-range 1 (1+ N))))
(set! delta (- (sum-divisors n) n)) (cond ((< delta 0) (++ deficient)) ((> delta 0) (++ abondant)) (else (writeln 'perfect→ n) (++ perfect))))
(printf "In range 1.. %d" N) (for-each (lambda(x) (writeln x (eval x))) '(abondant deficient perfect)))
(abondance)
perfect→ 6 perfect→ 28 perfect→ 496 perfect→ 8128 In range 1.. 20000 abondant 4953 deficient 15043 perfect 4
</lang>
Ela
<lang ela>open monad io number list
divisors n = filter ((0 ==) << (n `mod`)) [1 .. (n `div` 2)] classOf n = compare (sum $ divisors n) n
do
let classes = map classOf [1 .. 20000] let printRes w c = putStrLn $ w ++ (show << length $ filter (== c) classes) printRes "deficient: " LT printRes "perfect: " EQ printRes "abundant: " GT</lang>
- Output:
deficient: 15043 perfect: 4 abundant: 4953
Elena
ELENA 4.x : <lang elena>import extensions;
classifyNumbers(int bound, ref int abundant, ref int deficient, ref int perfect) {
int a := 0; int d := 0; int p := 0; int[] sum := new int[](bound + 1); for(int divisor := 1, divisor <= bound / 2, divisor += 1) { for(int i := divisor + divisor, i <= bound, i += divisor) { sum[i] := sum[i] + divisor } }; for(int i := 1, i <= bound, i += 1) { int t := sum[i]; if (sum[i]<i) { d += 1 } else { if (sum[i]>i) { a += 1 } else { p += 1 } } }; abundant := a; deficient := d; perfect := p
}
public program() {
int abundant := 0; int deficient := 0; int perfect := 0; classifyNumbers(20000, ref abundant, ref deficient, ref perfect); console.printLine("Abundant: ",abundant,", Deficient: ",deficient,", Perfect: ",perfect)
}</lang>
- Output:
Abundant: 4953, Deficient: 15043, Perfect: 4
Elixir
<lang elixir>defmodule Proper do
def divisors(1), do: [] def divisors(n), do: [1 | divisors(2,n,:math.sqrt(n))] |> Enum.sort defp divisors(k,_n,q) when k>q, do: [] defp divisors(k,n,q) when rem(n,k)>0, do: divisors(k+1,n,q) defp divisors(k,n,q) when k * k == n, do: [k | divisors(k+1,n,q)] defp divisors(k,n,q) , do: [k,div(n,k) | divisors(k+1,n,q)]
end
{abundant, deficient, perfect} = Enum.reduce(1..20000, {0,0,0}, fn n,{a, d, p} ->
sum = Proper.divisors(n) |> Enum.sum cond do n < sum -> {a+1, d, p} n > sum -> {a, d+1, p} true -> {a, d, p+1} end
end) IO.puts "Deficient: #{deficient} Perfect: #{perfect} Abundant: #{abundant}"</lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
Erlang
<lang erlang> -module(properdivs). -export([divs/1,sumdivs/1,class/1]).
divs(0) -> []; divs(1) -> []; divs(N) -> lists:sort(divisors(1,N)).
divisors(1,N) ->
divisors(2,N,math:sqrt(N),[1]).
divisors(K,_N,Q,L) when K > Q -> L; divisors(K,N,_Q,L) when N rem K =/= 0 ->
divisors(K+1,N,_Q,L);
divisors(K,N,_Q,L) when K * K =:= N ->
divisors(K+1,N,_Q,[K|L]);
divisors(K,N,_Q,L) ->
divisors(K+1,N,_Q,[N div K, K|L]).
sumdivs(N) -> lists:sum(divs(N)).
class(Limit) -> class(0,0,0,sumdivs(2),2,Limit).
class(D,P,A,_Sum,Acc,L) when Acc > L +1->
io:format("Deficient: ~w, Perfect: ~w, Abundant: ~w~n", [D,P,A]);
class(D,P,A,Sum,Acc,L) when Acc < Sum ->
class(D,P,A+1,sumdivs(Acc+1),Acc+1,L);
class(D,P,A,Sum,Acc,L) when Acc == Sum ->
class(D,P+1,A,sumdivs(Acc+1),Acc+1,L);
class(D,P,A,Sum,Acc,L) when Acc > Sum ->
class(D+1,P,A,sumdivs(Acc+1),Acc+1,L).
</lang>
- Output:
24> c(properdivs). {ok,properdivs} 25> properdivs:class(20000). Deficient: 15043, Perfect: 4, Abundant: 4953 ok
The above divisors method was slightly rewritten to satisfy the observation below but preserve the different programming style. Now has comparable performance.
Erlang 2
The version above is not tail-call recursive, and so cannot classify large ranges. Here is a more optimal solution. <lang erlang> -module(proper_divisors). -export([classify_range/2]).
classify_range(Start, Stop) ->
lists:foldl(fun (X, A) -> Class = classify(X), A#{Class => maps:get(Class, A, 0)+1} end, #{}, lists:seq(Start, Stop)).
classify(N) ->
SumPD = lists:sum(proper_divisors(N)), if SumPD < N -> deficient; SumPD =:= N -> perfect; SumPD > N -> abundant end.
proper_divisors(1) -> []; proper_divisors(N) when N > 1, is_integer(N) ->
proper_divisors(2, math:sqrt(N), N, [1]).
proper_divisors(I, L, _, A) when I > L -> lists:sort(A); proper_divisors(I, L, N, A) when N rem I =/= 0 ->
proper_divisors(I+1, L, N, A);
proper_divisors(I, L, N, A) when I * I =:= N ->
proper_divisors(I+1, L, N, [I|A]);
proper_divisors(I, L, N, A) ->
proper_divisors(I+1, L, N, [N div I, I|A]).
</lang>
- Output:
8>proper_divisors:classify_range(1,20000). #{abundant => 4953,deficient => 15043,perfect => 4}
F#
<lang F#> let mutable a=0 let mutable b=0 let mutable c=0 let mutable d=0 let mutable e=0 let mutable f=0 for i=1 to 20000 do
b <- 0 f <- i/2 for j=1 to f do if i%j=0 then b <- b+i if b<i then c <- c+1 if b=i then d <- d+1 if b>i then e <- e+1
printfn " deficient %i"c printfn "perfect %i"d printfn "abundant %i"e </lang>
An immutable solution. <lang fsharp> let deficient, perfect, abundant = 0,1,2
let classify n = ([1..n/2] |> List.filter (fun x->n % x = 0) |> List.sum) |> function
| x when x<n -> deficient | x when x>n -> abundant | _ -> perfect
let incClass xs n =
let cn = n |> classify xs |> List.mapi (fun i x->if i=cn then x + 1 else x)
[1..20000] |> List.fold incClass [0;0;0] |> List.zip [ "deficient"; "perfect"; "abundant" ] |> List.iter (fun (label, count) -> printfn "%s: %d" label count) </lang>
Factor
<lang factor> USING: fry math.primes.factors math.ranges ;
- psum ( n -- m ) divisors but-last sum ;
- pcompare ( n -- <=> ) dup psum swap <=> ;
- classify ( -- seq ) 20,000 [1,b] [ pcompare ] map ;
- pcount ( <=> -- n ) '[ _ = ] count ;
classify [ +lt+ pcount "Deficient: " write . ]
[ +eq+ pcount "Perfect: " write . ] [ +gt+ pcount "Abundant: " write . ] tri
</lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
Forth
<lang Forth>CREATE A 0 ,
- SLOT ( x y -- 0|1|2) OVER OVER < -ROT > - 1+ ;
- CLASSIFY ( n -- n') \ 0 == deficient, 1 == perfect, 2 == abundant
DUP A ! \ we'll be accessing this often, so save somewhere convenient 2 / >R \ upper bound 1 \ starting sum, 1 is always a divisor 2 \ current check BEGIN DUP R@ < WHILE A @ OVER /MOD SWAP ( s c d m) IF DROP ELSE R> DROP DUP >R ( R: d n) OVER TUCK OVER <> * - ( s c c+?d) ROT + SWAP ( s' c) THEN 1+ REPEAT DROP R> DROP A @ ( sum n) SLOT ;
CREATE COUNTS 0 , 0 , 0 ,
- INIT COUNTS 3 CELLS ERASE 1 COUNTS ! ;
- CLASSIFY-NUMBERS ( n --) INIT
BEGIN DUP WHILE 1 OVER CLASSIFY CELLS COUNTS + +! 1- REPEAT DROP ;
- .COUNTS
." Deficient : " [ COUNTS ]L @ . CR ." Perfect : " [ COUNTS 1 CELLS + ]L @ . CR ." Abundant : " [ COUNTS 2 CELLS + ]L @ . CR ;
20000 CLASSIFY-NUMBERS .COUNTS BYE</lang>
- Output:
Deficient : 15043 Perfect : 5 Abundant : 4953
Fortran
Although Fortran offers an intrinsic function SIGN(a,b) which returns the absolute value of a with the sign of b, it does not recognise zero as a special case, instead distinguishing only the two conditions b < 0 and b >= 0. Rather than a mess such as SIGN(a*b,b), a suitable SIGN3 function is needed. For it to be acceptable in whole-array expressions, it must have the PURE attribute asserted (signifying that it it may be treated as having a value dependent only on its explicit parameters) and further, that parameters must be declared with the (verbose) new protocol that enables the use of INTENT(IN) as further assurance to the compiler. Finally, such a function must be associated with INTERFACE arrangements, easily done here merely by placing it within a MODULE.
Alternatively, an explicit DO-loop could simply inspect the KnownSum array and maintain three counts, moreover, doing so in a single pass rather than the three passes needed for the three COUNT statements.
Output:
Inspecting sums of proper divisors for 1 to 20000 Deficient 15043 Perfect! 4 Abundant 4953
<lang Fortran>
MODULE FACTORSTUFF !This protocol evades the need for multiple parameters, or COMMON, or one shapeless main line...
Concocted by R.N.McLean, MMXV.
INTEGER LOTS !The span.. PARAMETER (LOTS = 20000)!Nor is computer storage infinite. INTEGER KNOWNSUM(LOTS) !Calculate these once. CONTAINS !Assistants. SUBROUTINE PREPARESUMF !Initialise the KNOWNSUM array.
Convert the Sieve of Eratoshenes to have each slot contain the sum of the proper divisors of its slot number. Changes to instead count the number of factors, or prime factors, etc. would be simple enough.
INTEGER F !A factor for numbers such as 2F, 3F, 4F, 5F, ... KNOWNSUM(1) = 0 !Proper divisors of N do not include N. KNOWNSUM(2:LOTS) = 1 !So, although 1 divides all N without remainder, 1 is excluded for itself. DO F = 2,LOTS/2 !Step through all the possible divisors of numbers not exceeding LOTS. FORALL(I = F + F:LOTS:F) KNOWNSUM(I) = KNOWNSUM(I) + F !And augment each corresponding slot. END DO !Different divisors can hit the same slot. For instance, 6 by 2 and also by 3. END SUBROUTINE PREPARESUMF !Could alternatively generate all products of prime numbers. PURE INTEGER FUNCTION SIGN3(N) !Returns -1, 0, +1 according to the sign of N.
Confounded by the intrinsic function SIGN distinguishing only two states: < 0 from >= 0. NOT three-way.
INTEGER, INTENT(IN):: N !The number. IF (N) 1,2,3 !A three-way result calls for a three-way test. 1 SIGN3 = -1 !Negative. RETURN 2 SIGN3 = 0 !Zero. RETURN 3 SIGN3 = +1 !Positive. END FUNCTION SIGN3 !Rather basic. END MODULE FACTORSTUFF !Enough assistants. PROGRAM THREEWAYS !Classify N against the sum of proper divisors of N, for N up to 20,000. USE FACTORSTUFF !This should help. INTEGER I !Stepper. INTEGER TEST(LOTS) !Assesses the three states in one pass. WRITE (6,*) "Inspecting sums of proper divisors for 1 to",LOTS CALL PREPARESUMF !Values for every N up to the search limit will be called for at least once. FORALL(I = 1:LOTS) TEST(I) = SIGN3(KNOWNSUM(I) - I) !How does KnownSum(i) compare to i? WRITE (6,*) "Deficient",COUNT(TEST .LT. 0) !This means one pass through the array WRITE (6,*) "Perfect! ",COUNT(TEST .EQ. 0) !For each of three types. WRITE (6,*) "Abundant ",COUNT(TEST .GT. 0) !Alternatively, make one pass with three counts. END !Done.
</lang>
FreeBASIC
<lang freebasic> ' FreeBASIC v1.05.0 win64
Function SumProperDivisors(number As Integer) As Integer
If number < 2 Then Return 0 Dim sum As Integer = 0 For i As Integer = 1 To number \ 2 If number Mod i = 0 Then sum += i Next Return sum
End Function
Dim As Integer sum, deficient, perfect, abundant
For n As Integer = 1 To 20000
sum = SumProperDivisors(n) If sum < n Then deficient += 1 ElseIf sum = n Then perfect += 1 Else abundant += 1 EndIf
Next
Print "The classification of the numbers from 1 to 20,000 is as follows : " Print Print "Deficient = "; deficient Print "Perfect = "; perfect Print "Abundant = "; abundant Print Print "Press any key to exit the program" Sleep End </lang>
- Output:
The classification of the numbers from 1 to 20,000 is as follows : Deficient = 15043 Perfect = 4 Abundant = 4953
Frink
<lang frink> d = new dict for n = 1 to 20000 {
s = sum[allFactors[n, true, false, true], 0] rel = s <=> n d.increment[rel, 1]
}
println["Deficient: " + d@(-1)] println["Perfect: " + d@0] println["Abundant: " + d@1] </lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
GFA Basic
<lang> num_deficient%=0 num_perfect%=0 num_abundant%=0 ' FOR current%=1 TO 20000
sum_divisors%=@sum_proper_divisors(current%) IF sum_divisors%<current% num_deficient%=num_deficient%+1 ELSE IF sum_divisors%=current% num_perfect%=num_perfect%+1 ELSE ! sum_divisors%>current% num_abundant%=num_abundant%+1 ENDIF
NEXT current% ' ' Display results on a window ' OPENW 1 CLEARW 1 PRINT "Number deficient ";num_deficient% PRINT "Number perfect ";num_perfect% PRINT "Number abundant ";num_abundant% ~INP(2) CLOSEW 1 ' ' Compute the sum of proper divisors of given number ' FUNCTION sum_proper_divisors(n%)
LOCAL i%,sum%,root% ' IF n%>1 ! n% must be 2 or higher sum%=1 ! start with 1 root%=SQR(n%) ! note that root% is an integer ' check possible factors, up to sqrt FOR i%=2 TO root% IF n% MOD i%=0 sum%=sum%+i% ! i% is a factor IF i%*i%<>n% ! check i% is not actual square root of n% sum%=sum%+n%/i% ! so n%/i% will also be a factor ENDIF ENDIF NEXT i% ENDIF RETURN sum%
ENDFUNC </lang>
Output is:
Number deficient 15043 Number perfect 4 Number abundant 4953
Go
<lang go>package main
import "fmt"
func pfacSum(i int) int {
sum := 0 for p := 1; p <= i/2; p++ { if i%p == 0 { sum += p } } return sum
}
func main() {
var d, a, p = 0, 0, 0 for i := 1; i <= 20000; i++ { j := pfacSum(i) if j < i { d++ } else if j == i { p++ } else { a++ } } fmt.Printf("There are %d deficient numbers between 1 and 20000\n", d) fmt.Printf("There are %d abundant numbers between 1 and 20000\n", a) fmt.Printf("There are %d perfect numbers between 1 and 20000\n", p)
}</lang>
- Output:
There are 15043 deficient numbers between 1 and 20000 There are 4953 abundant numbers between 1 and 20000 There are 4 perfect numbers between 1 and 20000
Groovy
Solution:
Uses the "factorize" closure from Factors of an integer <lang Groovy>def dpaCalc = { factors ->
def n = factors.pop() def fSum = factors.sum() fSum < n ? 'deficient' : fSum > n ? 'abundant' : 'perfect'
}
(1..20000).inject([deficient:0, perfect:0, abundant:0]) { map, n ->
map[dpaCalc(factorize(n))]++ map
} .each { e -> println e }</lang>
- Output:
deficient=15043 perfect=4 abundant=4953
Haskell
<lang Haskell>divisors :: (Integral a) => a -> [a] divisors n = filter ((0 ==) . (n `mod`)) [1 .. (n `div` 2)]
classOf :: (Integral a) => a -> Ordering classOf n = compare (sum $ divisors n) n
main :: IO () main = do
let classes = map classOf [1 .. 20000 :: Int] printRes w c = putStrLn $ w ++ (show . length $ filter (== c) classes) printRes "deficient: " LT printRes "perfect: " EQ printRes "abundant: " GT</lang>
- Output:
deficient: 15043 perfect: 4 abundant: 4953
Or, a little faster and more directly, as a single fold:
<lang haskell>import Data.Numbers.Primes (primeFactors) import Data.List (group, sort)
deficientPerfectAbundantCountsUpTo :: Int -> (Int, Int, Int) deficientPerfectAbundantCountsUpTo = foldr go (0, 0, 0) . enumFromTo 1
where go x (deficient, perfect, abundant) | divisorSum < x = (succ deficient, perfect, abundant) | divisorSum > x = (deficient, perfect, succ abundant) | otherwise = (deficient, succ perfect, abundant) where divisorSum = sum $ properDivisors x
properDivisors :: Int -> [Int] properDivisors = init . sort . foldr go [1] . group . primeFactors
where go = flip ((<*>) . fmap (*)) . scanl (*) 1
main :: IO () main = print $ deficientPerfectAbundantCountsUpTo 20000</lang>
- Output:
(15043,4,4953)
J
<lang J>factors=: [: /:~@, */&>@{@((^ i.@>:)&.>/)@q:~&__ properDivisors=: factors -. ]</lang>
We can subtract the sum of a number's proper divisors from itself to classify the number:
<lang J> (- +/@properDivisors&>) 1+i.10 1 1 2 1 4 0 6 1 5 2</lang>
Except, we are only concerned with the sign of this difference:
<lang J> *(- +/@properDivisors&>) 1+i.30 1 1 1 1 1 0 1 1 1 1 1 _1 1 1 1 1 1 _1 1 _1 1 1 1 _1 1 1 1 0 1 _1</lang>
Also, we do not care about the individual classification but only about how many numbers fall in each category:
<lang J> #/.~ *(- +/@properDivisors&>) 1+i.20000 15043 4 4953</lang>
So: 15043 deficient, 4 perfect and 4953 abundant numbers in this range.
How do we know which is which? We look at the unique values (which are arranged by their first appearance, scanning the list left to right):
<lang J> ~. *(- +/@properDivisors&>) 1+i.20000 1 0 _1</lang>
The sign of the difference is negative for the abundant case - where the sum is greater than the number. And we rely on order being preserved in sequences (this happens to be a fundamental property of computer memory, also).
Java
<lang java>import java.util.stream.LongStream;
public class NumberClassifications {
public static void main(String[] args) { int deficient = 0; int perfect = 0; int abundant = 0; for (long i = 1; i <= 20_000; i++) { long sum = properDivsSum(i); if (sum < i) deficient++; else if (sum == i) perfect++; else abundant++; } System.out.println("Deficient: " + deficient); System.out.println("Perfect: " + perfect); System.out.println("Abundant: " + abundant); } public static long properDivsSum(long n) { return LongStream.rangeClosed(1, (n + 1) / 2).filter(i -> n != i && n % i == 0).sum(); }
}</lang>
Deficient: 15043 Perfect: 4 Abundant: 4953
JavaScript
ES5
<lang Javascript>for (var dpa=[1,0,0], n=2; n<=20000; n+=1) {
for (var ds=0, d=1, e=n/2+1; d<e; d+=1) if (n%d==0) ds+=d dpa[ds<n ? 0 : ds==n ? 1 : 2]+=1
}
document.write('Deficient:',dpa[0], ', Perfect:',dpa[1], ', Abundant:',dpa[2], '
' )</lang>
Or:
<lang Javascript>for (var dpa=[1,0,0], n=2; n<=20000; n+=1) {
for (var ds=1, d=2, e=Math.sqrt(n); d<e; d+=1) if (n%d==0) ds+=d+n/d if (n%e==0) ds+=e dpa[ds<n ? 0 : ds==n ? 1 : 2]+=1
}
document.write('Deficient:',dpa[0], ', Perfect:',dpa[1], ', Abundant:',dpa[2], '
' )</lang>
Or:
<lang Javascript>function primes(t) {
var ps = {2:true, 3:true} next: for (var n=5, i=2; n<=t; n+=i, i=6-i) { var s = Math.sqrt( n ) for ( var p in ps ) { if ( p > s ) break if ( n % p ) continue continue next } ps[n] = true } return ps
}
function factorize(f, t) {
var cs = {}, ps = primes(t) for (var n=f; n<=t; n++) if (!ps[n]) cs[n] = factors(n) return cs function factors(n) { for ( var p in ps ) if ( n % p == 0 ) break var ts = {} ts[p] = 1 if ( ps[n /= p] ) { if ( !ts[n]++ ) ts[n]=1 } else { var fs = cs[n] if ( !fs ) fs = cs[n] = factors(n) for ( var e in fs ) ts[e] = fs[e] + (e==p) } return ts }
}
function pContrib(p, e) {
for (var pc=1, n=1, i=1; i<=e; i+=1) pc+=n*=p; return pc
}
for (var dpa=[1,0,0], t=20000, cs=factorize(2,t), n=2; n<=t; n+=1) {
var ds=1, fs=cs[n] if (fs) { for (var p in fs) ds *= pContrib(p, fs[p]) ds -= n } dpa[ds<n ? 0 : ds==n ? 1 : 2]+=1
}
document.write('Deficient:',dpa[0], ', Perfect:',dpa[1], ', Abundant:',dpa[2], '
' )</lang>
- Output:
Deficient:15043, Perfect:4, Abundant:4953
ES6
<lang JavaScript>(() => {
'use strict';
const // divisors :: (Integral a) => a -> [a] divisors = n => range(1, Math.floor(n / 2)) .filter(x => n % x === 0),
// classOf :: (Integral a) => a -> Ordering classOf = n => compare(divisors(n) .reduce((a, b) => a + b, 0), n),
classTypes = { deficient: -1, perfect: 0, abundant: 1 };
// GENERIC FUNCTIONS const // compare :: Ord a => a -> a -> Ordering compare = (a, b) => a < b ? -1 : (a > b ? 1 : 0),
// range :: Int -> Int -> [Int] range = (m, n) => Array.from({ length: Math.floor(n - m) + 1 }, (_, i) => m + i);
// TEST
// classes :: [Ordering] const classes = range(1, 20000) .map(classOf);
return Object.keys(classTypes) .map(k => k + ": " + classes .filter(x => x === classTypes[k]) .length.toString()) .join('\n');
})();</lang>
- Output:
deficient: 15043 perfect: 4 abundant: 4953
jq
The definition of proper_divisors is taken from Proper_divisors#jq: <lang jq># unordered def proper_divisors:
. as $n | if $n > 1 then 1, ( range(2; 1 + (sqrt|floor)) as $i | if ($n % $i) == 0 then $i, (($n / $i) | if . == $i then empty else . end)
else empty end)
else empty end;</lang>
The task: <lang jq>def sum(stream): reduce stream as $i (0; . + $i);
def classify:
. as $n | sum(proper_divisors) | if . < $n then "deficient" elif . == $n then "perfect" else "abundant" end;
reduce (range(1; 20001) | classify) as $c ({}; .[$c] += 1 )</lang>
- Output:
<lang sh>$ jq -n -c -f AbundantDeficientPerfect.jq {"deficient":15043,"perfect":4,"abundant":4953}</lang>
Jsish
From Javascript ES5 entry.
<lang javascript>/* Classify Deficient, Perfect and Abdundant integers */ function classifyDPA(stop:number, start:number=0, step:number=1):array {
var dpa = [1, 0, 0]; for (var n=start; n<=stop; n+=step) { for (var ds=0, d=1, e=n/2+1; d<e; d+=1) if (n%d == 0) ds += d; dpa[ds < n ? 0 : ds==n ? 1 : 2] += 1; } return dpa;
}
var dpa = classifyDPA(20000, 2); printf('Deficient: %d, Perfect: %d, Abundant: %d\n', dpa[0], dpa[1], dpa[2]);</lang>
- Output:
prompt$ jsish classifyDPA.jsi Deficient: 15043, Perfect: 4, Abundant: 4953
Julia
This post was created with Julia
version 0.3.6
. The code uses no exotic features and should work for a wide range of Julia
versions.
The Math
A natural number can be written as a product of powers of its prime factors,
. Handily Julia
has the factor
function, which provides these parameters. The sum of n's divisors (n inclusive) is
.
Functions
divisorsum
calculates the sum of aliquot divisors. It uses pcontrib
to calculate the contribution of each prime factor.
<lang Julia> function pcontrib(p::Int64, a::Int64)
n = one(p) pcon = one(p) for i in 1:a n *= p pcon += n end return pcon
end
function divisorsum(n::Int64)
dsum = one(n) for (p, a) in factor(n) dsum *= pcontrib(p, a) end dsum -= n
end
</lang>
Perhaps pcontrib
could be made more efficient by caching results to avoid repeated calculations.
Main
Use a three element array, iclass
, rather than three separate variables to tally the classifications. Take advantage of the fact that the sign of divisorsum(n) - n
depends upon its class to increment iclass
. 1 is a difficult case, it is deficient by convention, so I manually add its contribution and start the accumulation with 2. All primes are deficient, so I test for those and tally accordingly, bypassing divisorsum
.
<lang Julia> const L = 2*10^4 iclasslabel = ["Deficient", "Perfect", "Abundant"] iclass = zeros(Int64, 3) iclass[1] = one(Int64) #by convention 1 is deficient
for n in 2:L
if isprime(n) iclass[1] += 1 else iclass[sign(divisorsum(n)-n)+2] += 1 end
end
println("Classification of integers from 1 to ", L) for i in 1:3
println(" ", iclasslabel[i], ", ", iclass[i])
end </lang>
- Output:
Classification of integers from 1 to 20000
Deficient, 15043
Perfect, 4
Abundant, 4953
K
<lang K> /Classification of numbers into abundant, perfect and deficient / numclass.k
/return 0,1 or -1 if perfect or abundant or deficient respectively numclass: {s:(+/&~x!'!1+x)-x; :[s>x;:1;:[s<x;:-1;:0]]} /classify numbers from 1 to 20000 into respective groups c: =numclass' 1+!20000 /print statistics `0: ,"Deficient = ", $(#c[0]) `0: ,"Perfect = ", $(#c[1]) `0: ,"Abundant = ", $(#c[2]) </lang>
- Output:
Deficient = 15043 Perfect = 4 Abundant = 4953
Kotlin
<lang scala>// version 1.1
fun sumProperDivisors(n: Int) =
if (n < 2) 0 else (1..n / 2).filter { (n % it) == 0 }.sum()
fun main(args: Array<String>) {
var sum: Int var deficient = 0 var perfect = 0 var abundant = 0
for (n in 1..20000) { sum = sumProperDivisors(n) when { sum < n -> deficient++ sum == n -> perfect++ sum > n -> abundant++ } }
println("The classification of the numbers from 1 to 20,000 is as follows:\n") println("Deficient = $deficient") println("Perfect = $perfect") println("Abundant = $abundant")
}</lang>
- Output:
The classification of the numbers from 1 to 20,000 is as follows: Deficient = 15043 Perfect = 4 Abundant = 4953
Liberty BASIC
<lang lb> print "ROSETTA CODE - Abundant, deficient and perfect number classifications" print for x=1 to 20000
x$=NumberClassification$(x) select case x$ case "deficient": de=de+1 case "perfect": pe=pe+1: print x; " is a perfect number" case "abundant": ab=ab+1 end select select case x case 2000: print "Checking the number classifications of 20,000 integers..." case 4000: print "Please be patient." case 7000: print "7,000" case 10000: print "10,000" case 12000: print "12,000" case 14000: print "14,000" case 16000: print "16,000" case 18000: print "18,000" case 19000: print "Almost done..." end select
next x print "Deficient numbers = "; de print "Perfect numbers = "; pe print "Abundant numbers = "; ab print "TOTAL = "; pe+de+ab [Quit] print "Program complete." end
function NumberClassification$(n)
x=ProperDivisorCount(n) for y=1 to x PDtotal=PDtotal+ProperDivisor(y) next y if PDtotal=n then NumberClassification$="perfect": exit function if PDtotal<n then NumberClassification$="deficient": exit function if PDtotal>n then NumberClassification$="abundant": exit function
end function
function ProperDivisorCount(n)
n=abs(int(n)): if n=0 or n>20000 then exit function dim ProperDivisor(100) for y=2 to n if (n mod y)=0 then ProperDivisorCount=ProperDivisorCount+1 ProperDivisor(ProperDivisorCount)=n/y end if next y
end function </lang>
- Output:
ROSETTA CODE - Abundant, deficient and perfect number classifications 6 is a perfect number 28 is a perfect number 496 is a perfect number Checking the number classifications of 20,000 integers... Please be patient. 7,000 8128 is a perfect number 10,000 12,000 14,000 16,000 18,000 Almost done... Deficient numbers = 15043 Perfect numbers = 4 Abundant numbers = 4953 TOTAL = 20000 Program complete.
Lua
<lang Lua>function sumDivs (n)
if n < 2 then return 0 end local sum, sr = 1, math.sqrt(n) for d = 2, sr do if n % d == 0 then sum = sum + d if d ~= sr then sum = sum + n / d end end end return sum
end
local a, d, p, Pn = 0, 0, 0 for n = 1, 20000 do
Pn = sumDivs(n) if Pn > n then a = a + 1 end if Pn < n then d = d + 1 end if Pn == n then p = p + 1 end
end print("Abundant:", a) print("Deficient:", d) print("Perfect:", p)</lang>
- Output:
Abundant: 4953 Deficient: 15043 Perfect: 4
MAD
<lang MAD> NORMAL MODE IS INTEGER
DIMENSION P(20000) MAX = 20000 THROUGH INIT, FOR I=1, 1, I.G.MAX
INIT P(I) = 0
THROUGH CALC, FOR I=1, 1, I.G.MAX/2 THROUGH CALC, FOR J=I+I, I, J.G.MAX
CALC P(J) = P(J)+I
DEF = 0 PER = 0 AB = 0 THROUGH CLSFY, FOR N=1, 1, N.G.MAX WHENEVER P(N).L.N, DEF = DEF+1 WHENEVER P(N).E.N, PER = PER+1
CLSFY WHENEVER P(N).G.N, AB = AB+1
PRINT FORMAT FDEF,DEF PRINT FORMAT FPER,PER PRINT FORMAT FAB,AB VECTOR VALUES FDEF = $I5,S1,9HDEFICIENT*$ VECTOR VALUES FPER = $I5,S1,7HPERFECT*$ VECTOR VALUES FAB = $I5,S1,8HABUNDANT*$ END OF PROGRAM </lang>
- Output:
15043 DEFICIENT 4 PERFECT 4953 ABUNDANT
Maple
<lang Maple> classify_number := proc(n::posint);
if evalb(NumberTheory:-SumOfDivisors(n) < 2*n) then return "Deficient"; elif evalb(NumberTheory:-SumOfDivisors(n) = 2*n) then return "Perfect"; else return "Abundant"; end if; end proc:
classify_sequence := proc(k::posint) local num_list; num_list := map(classify_number, [seq(1..k)]); return Statistics:-Tally(num_list) end proc:</lang>
- Output:
["Perfect" = 4, "Abundant" = 4953, "Deficient" = 15043]
Mathematica / Wolfram Language
<lang Mathematica>classify[n_Integer] := Sign[Total[Most@Divisors@n] - n]
StringJoin[
Flatten[Tally[ Table[classify[n], {n, 20000}]] /. {-1 -> "deficient: ", 0 -> " perfect: ", 1 -> " abundant: "}] /. n_Integer :> ToString[n]]</lang>
- Output:
deficient: 15043 perfect: 4 abundant: 4953
MatLab
<lang Matlab> abundant=0; deficient=0; perfect=0; p=[]; for N=2:20000
K=1:ceil(N/2); D=K(~(rem(N, K))); sD=sum(D); if sD<N deficient=deficient+1; elseif sD==N perfect=perfect+1; else abundant=abundant+1; end
end disp(table([deficient;perfect;abundant],'RowNames',{'Deficient','Perfect','Abundant'},'VariableNames',{'Quantities'})) </lang>
- Output:
Quantities __________ Deficient 15042 Perfect 4 Abundant 4953
ML
mLite
<lang ocaml>fun proper (number, count, limit, remainder, results) where (count > limit) = rev results | (number, count, limit, remainder, results) = proper (number, count + 1, limit, number rem (count+1), if remainder = 0 then count :: results else results) | number = (proper (number, 1, number div 2, 0, []))
fun is_abundant number = number < (fold (op +, 0) ` proper number); fun is_deficient number = number > (fold (op +, 0) ` proper number); fun is_perfect number = number = (fold (op +, 0) ` proper number);
val one_to_20000 = iota 20000;
print "Abundant numbers between 1 and 20000: "; println ` fold (op +, 0) ` map ((fn n = if n then 1 else 0) o is_abundant) one_to_20000;
print "Deficient numbers between 1 and 20000: "; println ` fold (op +, 0) ` map ((fn n = if n then 1 else 0) o is_deficient) one_to_20000;
print "Perfect numbers between 1 and 20000: "; println ` fold (op +, 0) ` map ((fn n = if n then 1 else 0) o is_perfect) one_to_20000; </lang> Output
Abundant numbers between 1 and 20000: 4953 Deficient numbers between 1 and 20000: 15043 Perfect numbers between 1 and 20000: 4
Modula-2
<lang modula2>MODULE ADP; FROM FormatString IMPORT FormatString; FROM Terminal IMPORT WriteString,WriteLn,ReadChar;
PROCEDURE ProperDivisorSum(n : INTEGER) : INTEGER; VAR i,sum : INTEGER; BEGIN
sum := 0; IF n<2 THEN RETURN 0 END; FOR i:=1 TO (n DIV 2) DO IF n MOD i = 0 THEN INC(sum,i) END END; RETURN sum
END ProperDivisorSum;
VAR
buf : ARRAY[0..63] OF CHAR; n : INTEGER; d,p,a : INTEGER = 0; sum : INTEGER;
BEGIN
FOR n:=1 TO 20000 DO sum := ProperDivisorSum(n); IF sum<n THEN INC(d) ELSIF sum=n THEN INC(p) ELSIF sum>n THEN INC(a) END END;
WriteString("The classification of the numbers from 1 to 20,000 is as follows:"); WriteLn;
FormatString("Deficient = %i\n", buf, d); WriteString(buf); FormatString("Perfect = %i\n", buf, p); WriteString(buf); FormatString("Abundant = %i\n", buf, a); WriteString(buf); ReadChar
END ADP.</lang>
NewLisp
<lang NewLisp>
- The list (1 .. n-1) of integers is generated
- then each non-divisor of n is replaced by 0
- finally all these numbers are summed.
- fn defines an anonymous function inline.
(define (sum-divisors n) (apply + (map (fn (x) (if (> (% n x) 0) 0 x)) (sequence 1 (- n 1)))))
- Returns the symbols -, p or + for deficient, perfect or abundant numbers respectively.
(define (number-type n) (let (sum (sum-divisors n)) (if (< sum n) '- (= sum n) 'p true '+)))
- Tallies the types from 2 to n.
(define (count-types n) (count '(- p +) (map number-type (sequence 2 n))))
- Running
(println (count-types 20000)) </lang>
- Output:
(15042 4 4953)
Nim
<lang nim> proc sumProperDivisors(number: int) : int =
if number < 2 : return 0 for i in 1 .. number div 2 : if number mod i == 0 : result += i
var
sum : int deficient = 0 perfect = 0 abundant = 0
for n in 1 .. 20000 :
sum = sumProperDivisors(n) if sum < n : inc(deficient) elif sum == n : inc(perfect) else : inc(abundant)
echo "The classification of the numbers between 1 and 20,000 is as follows :\n" echo " Deficient = " , deficient echo " Perfect = " , perfect echo " Abundant = " , abundant </lang>
- Output:
The classification of the numbers between 1 and 20,000 is as follows : Deficient = 15043 Perfect = 4 Abundant = 4953
Oforth
<lang Oforth>import: mapping
Integer method: properDivs -- []
self 2 / seq filter( #[ self swap mod 0 == ] ) ;
- numberClasses
| i deficient perfect s |
0 0 ->deficient ->perfect 0 20000 loop: i [ 0 #+ i properDivs apply ->s s i < ifTrue: [ deficient 1+ ->deficient continue ] s i == ifTrue: [ perfect 1+ ->perfect continue ] 1+ ] "Deficients :" . deficient .cr "Perfects :" . perfect .cr "Abundant :" . .cr
- </lang>
- Output:
numberClasses Deficients : 15043 Perfects : 4 Abundant : 4953
PARI/GP
<lang parigp>classify(k)= {
my(v=[0,0,0],t); for(n=1,k, t=sigma(n,-1); if(t<2,v[1]++,t>2,v[3]++,v[2]++) ); v;
} classify(20000)</lang>
- Output:
%1 = [15043, 4, 4953]
Pascal
using the slightly modified http://rosettacode.org/wiki/Amicable_pairs#Alternative <lang pascal>program AmicablePairs; {find amicable pairs in a limited region 2..MAX beware that >both< numbers must be smaller than MAX there are 455 amicable pairs up to 524*1000*1000 correct up to
- 437 460122410
} //optimized for freepascal 2.6.4 32-Bit {$IFDEF FPC}
{$MODE DELPHI} {$OPTIMIZATION ON,peephole,cse,asmcse,regvar} {$CODEALIGN loop=1,proc=8}
{$ELSE}
{$APPTYPE CONSOLE}
{$ENDIF}
uses
sysutils;
const
MAX = 20000;
//{$IFDEF UNIX} MAX = 524*1000*1000;{$ELSE}MAX = 499*1000*1000;{$ENDIF} type
tValue = LongWord; tpValue = ^tValue; tPower = array[0..31] of tValue; tIndex = record idxI, idxS : tValue; end; tdpa = array[0..2] of LongWord;
var
power : tPower; PowerFac : tPower; DivSumField : array[0..MAX] of tValue; Indices : array[0..511] of tIndex; DpaCnt : tdpa;
procedure Init; var
i : LongInt;
begin
DivSumField[0]:= 0; For i := 1 to MAX do DivSumField[i]:= 1;
end;
procedure ProperDivs(n: tValue); //Only for output, normally a factorication would do var
su,so : string; i,q : tValue;
begin
su:= '1'; so:= ; i := 2; while i*i <= n do begin q := n div i; IF q*i -n = 0 then begin su:= su+','+IntToStr(i); IF q <> i then so:= ','+IntToStr(q)+so; end; inc(i); end; writeln(' [',su+so,']');
end;
procedure AmPairOutput(cnt:tValue); var
i : tValue; r : double;
begin
r := 1.0; For i := 0 to cnt-1 do with Indices[i] do begin writeln(i+1:4,IdxI:12,IDxS:12,' ratio ',IdxS/IDxI:10:7); if r < IdxS/IDxI then r := IdxS/IDxI; IF cnt < 20 then begin ProperDivs(IdxI); ProperDivs(IdxS); end; end; writeln(' max ratio ',r:10:4);
end;
function Check:tValue; var
i,s,n : tValue;
begin
fillchar(DpaCnt,SizeOf(dpaCnt),#0); n := 0; For i := 1 to MAX do begin //s = sum of proper divs (I) == sum of divs (I) - I s := DivSumField[i]-i; IF (s <=MAX) AND (s>i) then begin IF DivSumField[s]-s = i then begin With indices[n] do begin idxI := i; idxS := s; end; inc(n); end; end; inc(DpaCnt[Ord(s>=i)-Ord(s<=i)+1]); end; result := n;
end;
Procedure CalcPotfactor(prim:tValue); //PowerFac[k] = (prim^(k+1)-1)/(prim-1) == Sum (i=1..k) prim^i var
k: tValue; Pot, //== prim^k PFac : Int64;
begin
Pot := prim; PFac := 1; For k := 0 to High(PowerFac) do begin PFac := PFac+Pot; IF (POT > MAX) then BREAK; PowerFac[k] := PFac; Pot := Pot*prim; end;
end;
procedure InitPW(prim:tValue); begin
fillchar(power,SizeOf(power),#0); CalcPotfactor(prim);
end;
function NextPotCnt(p: tValue):tValue;inline; //return the first power <> 0 //power == n to base prim var
i : tValue;
begin
result := 0; repeat i := power[result]; Inc(i); IF i < p then BREAK else begin i := 0; power[result] := 0; inc(result); end; until false; power[result] := i;
end;
function Sieve(prim: tValue):tValue; //simple version var
actNumber : tValue;
begin
while prim <= MAX do begin InitPW(prim); //actNumber = actual number = n*prim //power == n to base prim actNumber := prim; while actNumber < MAX do begin DivSumField[actNumber] := DivSumField[actNumber] *PowerFac[NextPotCnt(prim)]; inc(actNumber,prim); end; //next prime repeat inc(prim); until (DivSumField[prim] = 1); end; result := prim;
end;
var
T2,T1,T0: TDatetime; APcnt: tValue;
begin
T0:= time; Init; Sieve(2); T1:= time; APCnt := Check; T2:= time; //AmPairOutput(APCnt); writeln(Max:10,' upper limit'); writeln(DpaCnt[0]:10,' deficient'); writeln(DpaCnt[1]:10,' perfect'); writeln(DpaCnt[2]:10,' abundant'); writeln(DpaCnt[2]/Max:14:10,' ratio abundant/upper Limit '); writeln(DpaCnt[0]/Max:14:10,' ratio abundant/upper Limit '); writeln(DpaCnt[2]/DpaCnt[0]:14:10,' ratio abundant/deficient '); writeln('Time to calc sum of divs ',FormatDateTime('HH:NN:SS.ZZZ' ,T1-T0)); writeln('Time to find amicable pairs ',FormatDateTime('HH:NN:SS.ZZZ' ,T2-T1)); {$IFNDEF UNIX} readln; {$ENDIF}
end. </lang> output
20000 upper limit 15043 deficient 4 perfect 4953 abundant 0.2476500000 ratio abundant/upper Limit 0.7521500000 ratio abundant/upper Limit 0.3292561324 ratio abundant/deficient Time to calc sum of divs 00:00:00.000 Time to find amicable pairs 00:00:00.000 ... 524000000 upper limit 394250308 deficient 5 perfect 129749687 abundant 0.2476139065 ratio abundant/upper Limit 0.7523860840 ratio abundant/upper Limit 0.3291048463 ratio abundant/deficient Time to calc sum of divs 00:00:12.597 Time to find amicable pairs 00:00:04.064
Perl
Using a module
Use the <=> operator to return a comparison of -1, 0, or 1, which classifies the results. 1 is classified as a deficient number, 6 is a perfect number, 12 is an abundant number. As per task spec, also showing the totals for the first 20,000 numbers.
<lang perl>use ntheory qw/divisor_sum/; my @type = <Perfect Abundant Deficient>; say join "\n", map { sprintf "%2d %s", $_, $type[divisor_sum($_)-$_ <=> $_] } 1..12; my %h; $h{divisor_sum($_)-$_ <=> $_}++ for 1..20000; say "Perfect: $h{0} Deficient: $h{-1} Abundant: $h{1}";</lang>
- Output:
1 Deficient 2 Deficient 3 Deficient 4 Deficient 5 Deficient 6 Perfect 7 Deficient 8 Deficient 9 Deficient 10 Deficient 11 Deficient 12 Abundant Perfect: 4 Deficient: 15043 Abundant: 4953
Not using a module
Everything as above, but done more slowly with div_sum
providing sum of proper divisors.
<lang perl>sub div_sum {
my($n) = @_; my $sum = 0; map { $sum += $_ unless $n % $_ } 1 .. $n-1; $sum;
}
my @type = <Perfect Abundant Deficient>; say join "\n", map { sprintf "%2d %s", $_, $type[div_sum($_) <=> $_] } 1..12; my %h; $h{div_sum($_) <=> $_}++ for 1..20000; say "Perfect: $h{0} Deficient: $h{-1} Abundant: $h{1}";</lang>
Phix
integer deficient=0, perfect=0, abundant=0, N for i=1 to 20000 do N = sum(factors(i))+(i!=1) if N=i then perfect += 1 elsif N<i then deficient += 1 else abundant += 1 end if end for printf(1,"deficient:%d, perfect:%d, abundant:%d\n",{deficient, perfect, abundant})
- Output:
deficient:15043, perfect:4, abundant:4953
Picat
<lang Picat>go =>
Classes = new_map([deficient=0,perfect=0,abundant=0]), foreach(N in 1..20_000) C = classify(N), Classes.put(C,Classes.get(C)+1) end, println(Classes), nl.
% Classify a number N classify(N) = Class =>
S = sum_divisors(N), if S < N then Class1 = deficient elseif S = N then Class1 = perfect elseif S > N then Class1 = abundant end, Class = Class1.
% Alternative (slightly slower) approach. classify2(N,S) = C, S < N => C = deficient. classify2(N,S) = C, S == N => C = perfect. classify2(N,S) = C, S > N => C = abundant.
% Sum of divisors sum_divisors(N) = Sum =>
sum_divisors(2,N,cond(N>1,1,0),Sum).
% Part 0: base case sum_divisors(I,N,Sum0,Sum), I > floor(sqrt(N)) =>
Sum = Sum0.
% Part 1: I is a divisor of N sum_divisors(I,N,Sum0,Sum), N mod I == 0 =>
Sum1 = Sum0 + I, (I != N div I -> Sum2 = Sum1 + N div I ; Sum2 = Sum1 ), sum_divisors(I+1,N,Sum2,Sum).
% Part 2: I is not a divisor of N. sum_divisors(I,N,Sum0,Sum) =>
sum_divisors(I+1,N,Sum0,Sum).
</lang>
- Output:
(map)[perfect = 4,deficient = 15043,abundant = 4953]
PicoLisp
<lang PicoLisp>(de accud (Var Key)
(if (assoc Key (val Var)) (con @ (inc (cdr @))) (push Var (cons Key 1)) ) Key )
(de **sum (L)
(let S 1 (for I (cdr L) (inc 'S (** (car L) I)) ) S ) )
(de factor-sum (N)
(if (=1 N) 0 (let (R NIL D 2 L (1 2 2 . (4 2 4 2 4 6 2 6 .)) M (sqrt N) N1 N S 1 ) (while (>= M D) (if (=0 (% N1 D)) (setq M (sqrt (setq N1 (/ N1 (accud 'R D)))) ) (inc 'D (pop 'L)) ) ) (accud 'R N1) (for I R (setq S (* S (**sum I))) ) (- S N) ) ) )
(bench
(let (A 0 D 0 P 0 ) (for I 20000 (setq @@ (factor-sum I)) (cond ((< @@ I) (inc 'D)) ((= @@ I) (inc 'P)) ((> @@ I) (inc 'A)) ) ) (println D P A) ) )
(bye)</lang>
- Output:
15043 4 4953 0.110 sec
PL/I
<lang pli>*process source xref;
apd: Proc Options(main); p9a=time(); Dcl (p9a,p9b) Pic'(9)9'; Dcl cnt(3) Bin Fixed(31) Init((3)0); Dcl x Bin Fixed(31); Dcl pd(300) Bin Fixed(31); Dcl sumpd Bin Fixed(31); Dcl npd Bin Fixed(31); Do x=1 To 20000; Call proper_divisors(x,pd,npd); sumpd=sum(pd,npd); Select; When(x<sumpd) cnt(1)+=1; /* abundant */ When(x=sumpd) cnt(2)+=1; /* perfect */ Otherwise cnt(3)+=1; /* deficient */ End; End;
Put Edit('In the range 1 - 20000')(Skip,a); Put Edit(cnt(1),' numbers are abundant ')(Skip,f(5),a); Put Edit(cnt(2),' numbers are perfect ')(Skip,f(5),a); Put Edit(cnt(3),' numbers are deficient')(Skip,f(5),a); p9b=time(); Put Edit((p9b-p9a)/1000,' seconds elapsed')(Skip,f(6,3),a); Return;
proper_divisors: Proc(n,pd,npd); Dcl (n,pd(300),npd) Bin Fixed(31); Dcl (d,delta) Bin Fixed(31); npd=0; If n>1 Then Do; If mod(n,2)=1 Then /* odd number */ delta=2; Else /* even number */ delta=1; Do d=1 To n/2 By delta; If mod(n,d)=0 Then Do; npd+=1; pd(npd)=d; End; End; End; End;
sum: Proc(pd,npd) Returns(Bin Fixed(31)); Dcl (pd(300),npd) Bin Fixed(31); Dcl sum Bin Fixed(31) Init(0); Dcl i Bin Fixed(31); Do i=1 To npd; sum+=pd(i); End; Return(sum); End;
End;</lang>
- Output:
In the range 1 - 20000 4953 numbers are abundant 4 numbers are perfect 15043 numbers are deficient 0.560 seconds elapsed
PL/M
<lang pli>100H: BDOS: PROCEDURE (FN, ARG); DECLARE FN BYTE, ARG ADDRESS; GO TO 5; END BDOS; EXIT: PROCEDURE; CALL BDOS(0,0); END EXIT; PRINT: PROCEDURE (S); DECLARE S ADDRESS; CALL BDOS(9,S); END PRINT;
PRINT$NUMBER: PROCEDURE (N);
DECLARE S (6) BYTE INITIAL ('.....$'); DECLARE (N, P) ADDRESS, C BASED P BYTE; P = .S(5);
DIGIT:
P = P - 1; C = N MOD 10 + '0'; N = N / 10; IF N > 0 THEN GO TO DIGIT; CALL PRINT(P);
END PRINT$NUMBER;
DECLARE LIMIT LITERALLY '20$000'; DECLARE (PBASE, P BASED PBASE) ADDRESS; DECLARE (I, J) ADDRESS; PBASE = .MEMORY; DO I=0 TO LIMIT; P(I)=0; END; DO I=1 TO LIMIT/2;
DO J=I+I TO LIMIT BY I; P(J) = P(J)+I; END;
END;
DECLARE (DEF, PER, AB) ADDRESS INITIAL (0, 0, 0); DO I=1 TO LIMIT;
IF P(I)I THEN AB = AB+1;
END;
CALL PRINT$NUMBER(DEF); CALL PRINT(.(' DEFICIENT',13,10,'$')); CALL PRINT$NUMBER(PER); CALL PRINT(.(' PERFECT',13,10,'$')); CALL PRINT$NUMBER(AB); CALL PRINT(.(' ABUNDANT',13,10,'$')); CALL EXIT; EOF</lang>
- Output:
15043 DEFICIENT 4 PERFECT 4953 ABUNDANT
PowerShell
<lang PowerShell> function Get-ProperDivisorSum ( [int]$N )
{ If ( $N -lt 2 ) { return 0 } $Sum = 1 If ( $N -gt 3 ) { $SqrtN = [math]::Sqrt( $N ) ForEach ( $Divisor in 2..$SqrtN ) { If ( $N % $Divisor -eq 0 ) { $Sum += $Divisor + $N / $Divisor } } If ( $N % $SqrtN -eq 0 ) { $Sum -= $SqrtN } } return $Sum }
$Deficient = $Perfect = $Abundant = 0
ForEach ( $N in 1..20000 )
{ Switch ( [math]::Sign( ( Get-ProperDivisorSum $N ) - $N ) ) { -1 { $Deficient++ } 0 { $Perfect++ } 1 { $Abundant++ } } }
"Deficient: $Deficient" "Perfect : $Perfect" "Abundant : $Abundant" </lang>
- Output:
Deficient: 15043 Perfect : 4 Abundant : 4953
As a single function
Using the Get-ProperDivisorSum
as a helper function in an advanced function:
<lang PowerShell>
function Get-NumberClassification
{
[CmdletBinding()] [OutputType([PSCustomObject])] Param ( [Parameter(Mandatory=$true, ValueFromPipeline=$true, ValueFromPipelineByPropertyName=$true, Position=0)] [int] $Number )
Begin { function Get-ProperDivisorSum ([int]$Number) { if ($Number -lt 2) {return 0}
$sum = 1
if ($Number -gt 3) { $sqrtNumber = [Math]::Sqrt($Number)
foreach ($divisor in 2..$sqrtNumber) { if ($Number % $divisor -eq 0) {$sum += $divisor + $Number / $divisor} }
if ($Number % $sqrtNumber -eq 0) {$sum -= $sqrtNumber} }
$sum }
[System.Collections.ArrayList]$numbers = @() } Process { switch ([Math]::Sign((Get-ProperDivisorSum $Number) - $Number)) { -1 { [void]$numbers.Add([PSCustomObject]@{Class="Deficient"; Number=$Number}) } 0 { [void]$numbers.Add([PSCustomObject]@{Class="Perfect" ; Number=$Number}) } 1 { [void]$numbers.Add([PSCustomObject]@{Class="Abundant" ; Number=$Number}) } } } End { $numbers | Group-Object -Property Class | Select-Object -Property Count, @{Name='Class' ; Expression={$_.Name}}, @{Name='Number'; Expression={$_.Group.Number}} }
} </lang> <lang PowerShell> 1..20000 | Get-NumberClassification </lang>
- Output:
Count Class Number ----- ----- ------ 15043 Deficient {1, 2, 3, 4...} 4 Perfect {6, 28, 496, 8128} 4953 Abundant {12, 18, 20, 24...}
Processing
<lang processing>void setup() {
int deficient = 0, perfect = 0, abundant = 0; for (int i = 1; i <= 20000; i++) { int sum_divisors = propDivSum(i); if (sum_divisors < i) { deficient++; } else if (sum_divisors == i) { perfect++; } else { abundant++; } } println("Deficient numbers less than 20000: " + deficient); println("Perfect numbers less than 20000: " + perfect); println("Abundant numbers less than 20000: " + abundant);
}
int propDivSum(int n) {
int sum = 0; for (int i = 1; i < n; i++) { if (n % i == 0) { sum += i; } } return sum;
}</lang>
- Output:
Deficient numbers less than 20000: 15043 Perfect numbers less than 20000: 4 Abundant numbers less than 20000: 4953
Prolog
<lang prolog> proper_divisors(1, []) :- !. proper_divisors(N, [1|L]) :- FSQRTN is floor(sqrt(N)), proper_divisors(2, FSQRTN, N, L).
proper_divisors(M, FSQRTN, _, []) :- M > FSQRTN, !. proper_divisors(M, FSQRTN, N, L) :- N mod M =:= 0, !, MO is N//M, % must be integer L = [M,MO|L1], % both proper divisors M1 is M+1, proper_divisors(M1, FSQRTN, N, L1). proper_divisors(M, FSQRTN, N, L) :- M1 is M+1, proper_divisors(M1, FSQRTN, N, L).
dpa(1, [1], [], []) :- !. dpa(N, D, P, A) :- N > 1, proper_divisors(N, PN), sum_list(PN, SPN), compare(VGL, SPN, N), dpa(VGL, N, D, P, A).
dpa(<, N, [N|D], P, A) :- N1 is N-1, dpa(N1, D, P, A). dpa(=, N, D, [N|P], A) :- N1 is N-1, dpa(N1, D, P, A). dpa(>, N, D, P, [N|A]) :- N1 is N-1, dpa(N1, D, P, A).
dpa(N) :-
T0 is cputime,
dpa(N, D, P, A),
Dur is cputime-T0,
length(D, LD),
length(P, LP),
length(A, LA),
format("deficient: ~d~n abundant: ~d~n perfect: ~d~n",
[LD, LA, LP]),
format("took ~f seconds~n", [Dur]).
</lang>
- Output:
?- dpa(20000). deficient: 15036 abundant: 4960 perfect: 4 took 0.802559 seconds
PureBasic
<lang PureBasic> EnableExplicit
Procedure.i SumProperDivisors(Number)
If Number < 2 : ProcedureReturn 0 : EndIf Protected i, sum = 0 For i = 1 To Number / 2 If Number % i = 0 sum + i EndIf Next ProcedureReturn sum
EndProcedure
Define n, sum, deficient, perfect, abundant
If OpenConsole()
For n = 1 To 20000 sum = SumProperDivisors(n) If sum < n deficient + 1 ElseIf sum = n perfect + 1 Else abundant + 1 EndIf Next PrintN("The breakdown for the numbers 1 to 20,000 is as follows : ") PrintN("") PrintN("Deficient = " + deficient) PrintN("Pefect = " + perfect) PrintN("Abundant = " + abundant) PrintN("") PrintN("Press any key to close the console") Repeat: Delay(10) : Until Inkey() <> "" CloseConsole()
EndIf </lang>
- Output:
The breakdown for the numbers 1 to 20,000 is as follows : Deficient = 15043 Pefect = 4 Abundant = 4953
Python
Python: Counter
Importing Proper divisors from prime factors: <lang python>>>> from proper_divisors import proper_divs >>> from collections import Counter >>> >>> rangemax = 20000 >>> >>> def pdsum(n): ... return sum(proper_divs(n)) ... >>> def classify(n, p): ... return 'perfect' if n == p else 'abundant' if p > n else 'deficient' ... >>> classes = Counter(classify(n, pdsum(n)) for n in range(1, 1 + rangemax)) >>> classes.most_common() [('deficient', 15043), ('abundant', 4953), ('perfect', 4)] >>> </lang>
- Output:
Between 1 and 20000: 4953 abundant numbers 15043 deficient numbers 4 perfect numbers
Python: Reduce
In terms of a single fold: <lang python>Abundant, deficient and perfect number classifications
from itertools import accumulate, chain, groupby, product from functools import reduce from math import floor, sqrt from operator import mul
- deficientPerfectAbundantCountsUpTo :: Int -> (Int, Int, Int)
def deficientPerfectAbundantCountsUpTo(n):
Counts of deficient, perfect, and abundant integers in the range [1..n]. def go(dpa, x): deficient, perfect, abundant = dpa divisorSum = sum(properDivisors(x)) return ( succ(deficient), perfect, abundant ) if x > divisorSum else ( deficient, perfect, succ(abundant) ) if x < divisorSum else ( deficient, succ(perfect), abundant ) return reduce(go, range(1, 1 + n), (0, 0, 0))
- --------------------------TEST--------------------------
- main :: IO ()
def main():
Size of each sub-class of integers drawn from [1..20000]:
print(main.__doc__) print( '\n'.join(map( lambda a, b: a.rjust(10) + ' -> ' + str(b), ['Deficient', 'Perfect', 'Abundant'], deficientPerfectAbundantCountsUpTo(20000) )) )
- ------------------------GENERIC-------------------------
- primeFactors :: Int -> [Int]
def primeFactors(n):
A list of the prime factors of n. def f(qr): r = qr[1] return step(r), 1 + r
def step(x): return 1 + (x << 2) - ((x >> 1) << 1)
def go(x): root = floor(sqrt(x))
def p(qr): q = qr[0] return root < q or 0 == (x % q)
q = until(p)(f)( (2 if 0 == x % 2 else 3, 1) )[0] return [x] if q > root else [q] + go(x // q)
return go(n)
- properDivisors :: Int -> [Int]
def properDivisors(n):
The ordered divisors of n, excluding n itself. def go(a, x): return [a * b for a, b in product( a, accumulate(chain([1], x), mul) )] return sorted( reduce(go, [ list(g) for _, g in groupby(primeFactors(n)) ], [1]) )[:-1] if 1 < n else []
- succ :: Int -> Int
def succ(x):
The successor of a value. For numeric types, (1 +). return 1 + x
- until :: (a -> Bool) -> (a -> a) -> a -> a
def until(p):
The result of repeatedly applying f until p holds. The initial seed value is x. def go(f, x): v = x while not p(v): v = f(v) return v return lambda f: lambda x: go(f, x)
- MAIN ---
if __name__ == '__main__':
main()</lang>
and the main function could be rewritten in terms of an nthArrow abstraction:
<lang python># nthArrow :: (a -> b) -> Tuple -> Int -> Tuple def nthArrow(f):
A simple function lifted to one which applies to a tuple, transforming only its nth value. def go(v, n): m = n - 1 return v if n > len(v) else [ x if m != i else f(x) for i, x in enumerate(v) ] return lambda tpl: lambda n: tuple(go(tpl, n))</lang>
as something like:
<lang python># deficientPerfectAbundantCountsUpTo :: Int -> (Int, Int, Int) def deficientPerfectAbundantCountsUpTo(n):
Counts of deficient, perfect, and abundant integers in the range [1..n]. def go(dpa, x): divisorSum = sum(properDivisors(x)) return nthArrow(succ)(dpa)( 1 if x > divisorSum else ( 3 if x < divisorSum else 2 ) ) return reduce(go, range(1, 1 + n), (0, 0, 0))</lang>
- Output:
Size of each sub-class of integers drawn from [1..20000]: Deficient -> 15043 Perfect -> 4 Abundant -> 4953
The Simple Way
<lang python>pn = 0 an = 0 dn = 0 tt = [] num = 20000 for n in range(1, num+1): for x in range(1,1+n//2): if n%x == 0: tt.append(x) if sum(tt) == n: pn += 1 elif sum(tt) > n: an += 1 elif sum(tt) < n: dn += 1 tt = []
print(str(pn) + " Perfect Numbers") print(str(an) + " Abundant Numbers") print(str(dn) + " Deficient Numbers")</lang>
- Output:
4 Perfect Numbers 4953 Abundant Numbers 15043 Deficient Numbers
Simple vs Optimized
A few changes:
- Instead of obtaining the remainder of n divided by every number halfway up to n, stop just short of the square root of n and add both factors to the running sum. And then in the case that n is a perfect square, add the square root of n to the sum.
- Don't compute the square root of each n, increment the square root as each n becomes a perfect square.
- Switch the summed list of factors to a single variable.
- Initialize the sum to 1 and start checking factors from 2 and up, which cuts one iteration from each factor checking loop, (a 19,999 iteration savings).
Resulting optimized code is thirty five times faster than the simplified code, and not nearly as complicated as the Counter or Reduce methods (as this optimized method requires no imports, other than time for the performance comparison to the simple way). <lang python>from time import time st = time() pn, an, dn = 0, 0, 0 tt = [] num = 20000 for n in range(1, num + 1): for x in range(1, 1 + n // 2): if n % x == 0: tt.append(x) if sum(tt) == n: pn += 1 elif sum(tt) > n: an += 1 elif sum(tt) < n: dn += 1 tt = [] et1 = time() - st print(str(pn) + " Perfect Numbers") print(str(an) + " Abundant Numbers") print(str(dn) + " Deficient Numbers") print(et1, "sec\n")
st = time() pn, an, dn = 0, 0, 1 sum = 1 r = 1 num = 20000 for n in range(2, num + 1): d = r * r - n if d < 0: r += 1 for x in range(2, r): if n % x == 0: sum += x + n // x if d == 0: sum += r if sum == n: pn += 1 elif sum > n: an += 1 elif sum < n: dn += 1 sum = 1 et2 = time() - st print(str(pn) + " Perfect Numbers") print(str(an) + " Abundant Numbers") print(str(dn) + " Deficient Numbers") print(et2 * 1000, "ms\n") print (et1 / et2,"times faster")</lang>
- Output @ Tio.run using Python 3 (PyPy):
4 Perfect Numbers 4953 Abundant Numbers 15043 Deficient Numbers 1.312887191772461 sec 4 Perfect Numbers 4953 Abundant Numbers 15043 Deficient Numbers 37.12296485900879 ms 35.365903471307924 times faster
Quackery
factors
is defined at Factors of an integer.
dpa
returns 0 if n is deficient, 1 if n is perfect and 2 if n is abundant.
<lang Quackery> [ 0 swap witheach + ] is sum ( [ --> n )
[ factors -1 pluck dip sum 2dup = iff [ 2drop 1 ] done < iff 0 else 2 ] is dpa ( n --> n )
0 0 0 20000 times [ i 1+ dpa [ table [ 1+ ] [ dip 1+ ] [ rot 1+ unrot ] ] do ] say "Deficient = " echo cr say " Perfect = " echo cr say " Abundant = " echo cr</lang>
- Output:
Deficient = 15043 Perfect = 4 Abundant = 4953
R
<lang r>
- Abundant, deficient and perfect number classifications. 12/10/16 aev
require(numbers); propdivcls <- function(n) {
V <- sapply(1:n, Sigma, proper = TRUE); c1 <- c2 <- c3 <- 0; for(i in 1:n){ if(V[i]<i){c1 = c1 +1} else if(V[i]==i){c2 = c2 +1} else{c3 = c3 +1} } cat(" *** Between 1 and ", n, ":\n"); cat(" * ", c1, "deficient numbers\n"); cat(" * ", c2, "perfect numbers\n"); cat(" * ", c3, "abundant numbers\n");
} propdivcls(20000); </lang>
- Output:
> require(numbers) Loading required package: numbers > propdivcls(20000); *** Between 1 and 20000 : * 15043 deficient numbers * 4 perfect numbers * 4953 abundant numbers >
Racket
<lang racket>#lang racket (require math) (define (proper-divisors n) (drop-right (divisors n) 1)) (define classes '(deficient perfect abundant)) (define (classify n)
(list-ref classes (add1 (sgn (- (apply + (proper-divisors n)) n)))))
(let ([N 20000])
(define t (make-hasheq)) (for ([i (in-range 1 (add1 N))]) (define c (classify i)) (hash-set! t c (add1 (hash-ref t c 0)))) (printf "The range between 1 and ~a has:\n" N) (for ([c classes]) (printf " ~a ~a numbers\n" (hash-ref t c 0) c)))</lang>
- Output:
The range between 1 and 20000 has: 15043 deficient numbers 4 perfect numbers 4953 abundant numbers
Raku
(formerly Perl 6)
<lang perl6>sub propdivsum (\x) {
my @l = 1 if x > 1; (2 .. x.sqrt.floor).map: -> \d { unless x % d { @l.push: d; my \y = x div d; @l.push: y if y != d } } sum @l
}
say bag (1..20000).map: { propdivsum($_) <=> $_ }</lang>
- Output:
Bag(Less(15043), More(4953), Same(4))
REXX
version 1
<lang rexx>/*REXX program counts the number of abundant/deficient/perfect numbers within a range.*/ parse arg low high . /*obtain optional arguments from the CL*/ high=word(high low 20000,1); low= word(low 1,1) /*obtain the LOW and HIGH values.*/ say center('integers from ' low " to " high, 45, "═") /*display a header.*/ !.= 0 /*define all types of sums to zero. */
do j=low to high; $= sigma(j) /*get sigma for an integer in a range. */ if $<j then !.d= !.d + 1 /*Less? It's a deficient number.*/ else if $>j then !.a= !.a + 1 /*Greater? " " abundant " */ else !.p= !.p + 1 /*Equal? " " perfect " */ end /*j*/ /* [↑] IFs are coded as per likelihood*/
say ' the number of perfect numbers: ' right(!.p, length(high) ) say ' the number of abundant numbers: ' right(!.a, length(high) ) say ' the number of deficient numbers: ' right(!.d, length(high) ) exit /*stick a fork in it, we're all done. */ /*──────────────────────────────────────────────────────────────────────────────────────*/ sigma: procedure; parse arg x; if x<2 then return 0; odd=x // 2 /* // ◄──remainder.*/
s= 1 /* [↓] only use EVEN or ODD integers.*/ do k=2+odd by 1+odd while k*k<x /*divide by all integers up to √x. */ if x//k==0 then s= s + k + x % k /*add the two divisors to (sigma) sum. */ end /*k*/ /* [↑] % is the REXX integer division*/ if k*k==x then return s + k /*Was X a square? If so, add √ x */ return s /*return (sigma) sum of the divisors. */</lang>
- output when using the default input:
═════════integers from 1 to 20000═════════ the number of perfect numbers: 4 the number of abundant numbers: 4953 the number of deficient numbers: 15043
version 1.5
This version is pretty much identical to the 1st version but uses an integer square root calculation to find the
limit of the do loop in the sigma function.
For 20k integers, it's approximately 15% faster. " 100k " " " 20% " " 1m " " " 30% "
<lang rexx>/*REXX program counts the number of abundant/deficient/perfect numbers within a range.*/ parse arg low high . /*obtain optional arguments from the CL*/ high=word(high low 20000,1); low=word(low 1, 1) /*obtain the LOW and HIGH values.*/ say center('integers from ' low " to " high, 45, "═") /*display a header.*/ !.= 0 /*define all types of sums to zero. */
do j=low to high; $= sigma(j) /*get sigma for an integer in a range. */ if $<j then !.d= !.d + 1 /*Less? It's a deficient number.*/ else if $>j then !.a= !.a + 1 /*Greater? " " abundant " */ else !.p= !.p + 1 /*Equal? " " perfect " */ end /*j*/ /* [↑] IFs are coded as per likelihood*/
say ' the number of perfect numbers: ' right(!.p, length(high) ) say ' the number of abundant numbers: ' right(!.a, length(high) ) say ' the number of deficient numbers: ' right(!.d, length(high) ) exit /*stick a fork in it, we're all done. */ /*──────────────────────────────────────────────────────────────────────────────────────*/ sigma: procedure; parse arg x 1 z; if x<5 then return max(0, x-1) /*sets X&Z to arg1.*/
q=1; do while q<=z; q= q * 4; end /* ◄──↓ compute integer sqrt of Z (=R)*/ r=0; do while q>1; q=q%4; _=z-r-q; r=r%2; if _>=0 then do; z=_; r=r+q; end; end odd= x//2 /* [↓] only use EVEN | ODD ints. ___*/ s= 1; do k=2+odd by 1+odd to r /*divide by all integers up to √ x */ if x//k==0 then s=s + k + x%k /*add the two divisors to (sigma) sum. */ end /*k*/ /* [↑] % is the REXX integer division*/ if r*r==x then return s - k /*Was X a square? If so, subtract √ x */ return s /*return (sigma) sum of the divisors. */</lang>
- output is identical to the 1st REXX version.
It is about 2,800% faster than the REXX version 2.
version 2
<lang rexx>/* REXX */ Call time 'R' cnt.=0 Do x=1 To 20000
pd=proper_divisors(x) sumpd=sum(pd) Select When x<sumpd Then cnt.abundant =cnt.abundant +1 When x=sumpd Then cnt.perfect =cnt.perfect +1 Otherwise cnt.deficient=cnt.deficient+1 End Select When npd>hi Then Do list.npd=x hi=npd End When npd=hi Then list.hi=list.hi x Otherwise Nop End End
Say 'In the range 1 - 20000' Say format(cnt.abundant ,5) 'numbers are abundant ' Say format(cnt.perfect ,5) 'numbers are perfect ' Say format(cnt.deficient,5) 'numbers are deficient ' Say time('E') 'seconds elapsed' Exit
proper_divisors: Procedure Parse Arg n Pd= If n=1 Then Return If n//2=1 Then /* odd number */
delta=2
Else /* even number */
delta=1
Do d=1 To n%2 By delta
If n//d=0 Then pd=pd d End
Return space(pd)
sum: Procedure Parse Arg list sum=0 Do i=1 To words(list)
sum=sum+word(list,i) End
Return sum</lang>
- Output:
In the range 1 - 20000 4953 numbers are abundant 4 numbers are perfect 15043 numbers are deficient 28.392000 seconds elapsed
Ring
<lang ring> n = 30 perfect(n)
func perfect n for i = 1 to n
sum = 0 for j = 1 to i - 1 if i % j = 0 sum = sum + j ok next see i if sum = i see " is a perfect number" + nl but sum < i see " is a deficient number" + nl else see " is a abundant number" + nl ok
next </lang>
Ruby
With proper_divisors#Ruby in place: <lang ruby>res = (1 .. 20_000).map{|n| n.proper_divisors.sum <=> n }.tally puts "Deficient: #{res[-1]} Perfect: #{res[0]} Abundant: #{res[1]}" </lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
Rust
With proper_divisors#Rust in place: <lang rust>fn main() {
// deficient starts at 1 because 1 is deficient but proper_divisors returns // and empty Vec let (mut abundant, mut deficient, mut perfect) = (0u32, 1u32, 0u32); for i in 1..20_001 { if let Some(divisors) = i.proper_divisors() { let sum: u64 = divisors.iter().sum(); if sum < i { deficient += 1 } else if sum > i { abundant += 1 } else { perfect += 1 } } } println!("deficient:\t{:5}\nperfect:\t{:5}\nabundant:\t{:5}", deficient, perfect, abundant);
} </lang>
- Output:
deficient: 15043 perfect: 4 abundant: 4953
Scala
<lang Scala>def properDivisors(n: Int) = (1 to n/2).filter(i => n % i == 0) def classifier(i: Int) = properDivisors(i).sum compare i val groups = (1 to 20000).groupBy( classifier ) println("Deficient: " + groups(-1).length) println("Abundant: " + groups(1).length) println("Perfect: " + groups(0).length + " (" + groups(0).mkString(",") + ")")</lang>
- Output:
Deficient: 15043 Abundant: 4953 Perfect: 4 (6,28,496,8128)
Scheme
<lang scheme> (define (classify n)
(define (sum_of_factors x) (cond ((= x 1) 1) ((= (remainder n x) 0) (+ x (sum_of_factors (- x 1)))) (else (sum_of_factors (- x 1))))) (cond ((or (= n 1) (< (sum_of_factors (floor (/ n 2))) n)) -1) ((= (sum_of_factors (floor (/ n 2))) n) 0) (else 1)))
(define n_perfect 0) (define n_abundant 0) (define n_deficient 0) (define (count n)
(cond ((= n 1) (begin (display "perfect ") (display n_perfect) (newline) (display "abundant") (display n_abundant) (newline) (display "deficinet") (display n_perfect) (newline))) ((equal? (classify n) 0) (begin (set! n_perfect (+ 1 n_perfect)) (display n) (newline) (count (- n 1)))) ((equal? (classify n) 1) (begin (set! n_abundant (+ 1 n_abundant)) (count (- n 1)))) ((equal? (classify n) -1) (begin (set! n_deficient (+ 1 n_deficient)) (count (- n 1))))))
</lang>
Seed7
<lang seed7>$ include "seed7_05.s7i";
const func integer: sumProperDivisors (in integer: number) is func
result var integer: sum is 0; local var integer: num is 0; begin if number >= 2 then for num range 1 to number div 2 do if number rem num = 0 then
sum +:= num; end if;
end for; end if; end func;
const proc: main is func
local var integer: sum is 0; var integer: deficient is 0; var integer: perfect is 0; var integer: abundant is 0; var integer: number is 0; begin for number range 1 to 20000 do sum := sumProperDivisors(number); if sum < number then incr(deficient); elsif sum = number then incr(perfect); else incr(abundant); end if; end for; writeln("Deficient: " <& deficient); writeln("Perfect: " <& perfect); writeln("Abundant: " <& abundant); end func;</lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
Sidef
<lang ruby>func propdivsum(n) { n.sigma - n }
var h = Hash()
say "Perfect: #{h{0}} Deficient: #{h{-1}} Abundant: #{h{1}}"</lang>- Output:
Perfect: 4 Deficient: 15043 Abundant: 4953
Swift
<lang swift>var deficients = 0 // sumPd < n var perfects = 0 // sumPd = n var abundants = 0 // sumPd > n
// 1 is deficient (no proper divisor) deficients++
for i in 2...20000 {
var sumPd = 1 // 1 is a proper divisor of all integer above 1 var maxPdToTest = i/2 // the max divisor to test
for var j = 2; j < maxPdToTest; j++ { if (i%j) == 0 { // j is a proper divisor sumPd += j // New maximum for divisibility check maxPdToTest = i / j // To add to sum of proper divisors unless already done if maxPdToTest != j { sumPd += maxPdToTest } } } // Select type according to sum of Proper divisors if sumPd < i { deficients++ } else if sumPd > i { abundants++ } else { perfects++ }
}
println("There are \(deficients) deficient, \(perfects) perfect and \(abundants) abundant integers from 1 to 20000.")</lang>
- Output:
There are 15043 deficient, 4 perfect and 4953 abundant integers from 1 to 20000.
Tcl
<lang Tcl>proc ProperDivisors {n} {
if {$n == 1} {return 0} set divs 1 set sum 1 for {set i 2} {$i*$i <= $n} {incr i} { if {! ($n % $i)} { lappend divs $i incr sum $i if {$i*$i<$n} { lappend divs [set d [expr {$n / $i}]] incr sum $d } } } list $sum $divs
}
proc cmp {i j} { ;# analogous to [string compare], but for numbers
if {$i == $j} {return 0} if {$i > $j} {return 1} return -1
}
proc classify {k} {
lassign [ProperDivisors $k] p ;# we only care about the first part of the result dict get { 1 abundant 0 perfect -1 deficient } [cmp $k $p]
}
puts "Classifying the integers in \[1, 20_000\]:" set classes {} ;# this will be a dict
for {set i 1} {$i <= 20000} {incr i} {
set class [classify $i] dict incr classes $class
}
- using [lsort] to order the dictionary by value:
foreach {kind count} [lsort -stride 2 -index 1 -integer $classes] {
puts "$kind: $count"
}</lang>
- Output:
Classifying the integers in [1, 20_000]: perfect: 4 deficient: 4953 abundant: 15043
TypeScript
function integer_classification(){ var sum:number=0, i:number,j:number; var try:number=0; var number_list:number[]={1,0,0}; for(i=2;i<=20000;i++){ try=i/2; sum=1; for(j=2;j<try;j++){ if (i%j) continue; try=i/j; sum+=j; if (j!=try) sum+=try; } if (sum<i){ number_list[d]++; continue; } else if (sum>i){ number_list[a]++; continue; } number_list[p]++; } console.log('There are '+number_list[d]+ ' deficient , ' + 'number_list[p] + ' perfect and '+ number_list[a]+ ' abundant numbers between 1 and 20000'); }
uBasic/4tH
This is about the limit of what is feasible with uBasic/4tH performance wise, since a full run takes over 5 minutes. <lang>P = 0 : D = 0 : A = 0
For n= 1 to 20000
s = FUNC(_SumDivisors(n))-n If s = n Then P = P + 1 If s < n Then D = D + 1 If s > n Then A = A + 1
Next
Print "Perfect: ";P;" Deficient: ";D;" Abundant: ";A End
' Return the least power of a@ that does not divide b@
_LeastPower Param(2)
Local(1)
c@ = a@ Do While (b@ % c@) = 0 c@ = c@ * a@ Loop
Return (c@)
' Return the sum of the proper divisors of a@
_SumDivisors Param(1)
Local(4)
b@ = a@ c@ = 1
' Handle two specially
d@ = FUNC(_LeastPower (2,b@)) c@ = c@ * (d@ - 1) b@ = b@ / (d@ / 2)
' Handle odd factors
For e@ = 3 Step 2 While (e@*e@) < (b@+1) d@ = FUNC(_LeastPower (e@,b@)) c@ = c@ * ((d@ - 1) / (e@ - 1)) b@ = b@ / (d@ / e@) Loop
' At this point, t must be one or prime
If (b@ > 1) c@ = c@ * (b@+1)
Return (c@)</lang>
- Output:
Perfect: 4 Deficient: 15043 Abundant: 4953 0 OK, 0:210
Vala
<lang vala>enum Classification {
DEFICIENT, PERFECT, ABUNDANT
}
void main() {
var i = 0; var j = 0; var sum = 0; var try_max = 0; int[] count_list = {1, 0, 0}; for (i = 2; i <= 20000; i++) { try_max = i / 2; sum = 1; for (j = 2; j < try_max; j++) { if (i % j != 0) continue; try_max = i / j; sum += j; if (j != try_max) sum += try_max; } if (sum < i) { count_list[Classification.DEFICIENT]++; continue; } if (sum > i) { count_list[Classification.ABUNDANT]++; continue; } count_list[Classification.PERFECT]++; } print(@"There are $(count_list[Classification.DEFICIENT]) deficient,"); print(@" $(count_list[Classification.PERFECT]) perfect,"); print(@" $(count_list[Classification.ABUNDANT]) abundant numbers between 1 and 20000.\n");
}</lang>
- Output:
There are 15043 deficient, 4 perfect, 4953 abundant numbers between 1 and 20000.
VBA
<lang VB> Option Explicit
Public Sub Nb_Classifications() Dim A As New Collection, D As New Collection, P As New Collection Dim n As Long, l As Long, s As String, t As Single
t = Timer 'Start For n = 1 To 20000 l = SumPropers(n): s = CStr(n) Select Case n Case Is > l: D.Add s, s Case Is < l: A.Add s, s Case l: P.Add s, s End Select Next 'End. Return : Debug.Print "Execution Time : " & Timer - t & " seconds." Debug.Print "-------------------------------------------" Debug.Print "Deficient := " & D.Count Debug.Print "Perfect := " & P.Count Debug.Print "Abundant := " & A.Count
End Sub
Private Function SumPropers(n As Long) As Long 'returns the sum of the proper divisors of n Dim j As Long
For j = 1 To n \ 2 If n Mod j = 0 Then SumPropers = j + SumPropers Next
End Function</lang>
- Output:
Execution Time : 2,6875 seconds. ------------------------------------------- Deficient := 15043 Perfect := 4 Abundant := 4953
VBScript
<lang VBScript>Deficient = 0 Perfect = 0 Abundant = 0 For i = 1 To 20000 sum = 0 For n = 1 To 20000 If n < i Then If i Mod n = 0 Then sum = sum + n End If End If Next If sum < i Then Deficient = Deficient + 1 ElseIf sum = i Then Perfect = Perfect + 1 ElseIf sum > i Then Abundant = Abundant + 1 End If Next WScript.Echo "Deficient = " & Deficient & vbCrLf &_ "Perfect = " & Perfect & vbCrLf &_ "Abundant = " & Abundant</lang>
- Output:
Deficient = 15043 Perfect = 4 Abundant = 4953
Visual Basic .NET
<lang vbnet>Module Module1
Function SumProperDivisors(number As Integer) As Integer If number < 2 Then Return 0 Dim sum As Integer = 0 For i As Integer = 1 To number \ 2 If number Mod i = 0 Then sum += i Next Return sum End Function
Sub Main() Dim sum, deficient, perfect, abundant As Integer
For n As Integer = 1 To 20000 sum = SumProperDivisors(n) If sum < n Then deficient += 1 ElseIf sum = n Then perfect += 1 Else abundant += 1 End If Next
Console.WriteLine("The classification of the numbers from 1 to 20,000 is as follows : ") Console.WriteLine() Console.WriteLine("Deficient = {0}", deficient) Console.WriteLine("Perfect = {0}", perfect) Console.WriteLine("Abundant = {0}", abundant) End Sub
End Module</lang>
- Output:
The classification of the numbers from 1 to 20,000 is as follows : Deficient = 15043 Perfect = 4 Abundant = 4953
Vlang
<lang vlang>fn p_fac_sum(i int) int {
mut sum := 0 for p := 1; p <= i/2; p++ { if i%p == 0 { sum += p } } return sum
}
fn main() {
mut d := 0 mut a := 0 mut p := 0 for i := 1; i <= 20000; i++ { j := p_fac_sum(i) if j < i { d++ } else if j == i { p++ } else { a++ } } println("There are $d deficient numbers between 1 and 20000") println("There are $a abundant numbers between 1 and 20000") println("There are $p perfect numbers between 1 and 20000")
}</lang>
- Output:
There are 15043 deficient numbers between 1 and 20000 There are 4953 abundant numbers between 1 and 20000 There are 4 perfect numbers between 1 and 20000
VTL-2
<lang VTL2>10 M=20000 20 I=1 30 :I)=0 40 I=I+1 50 #=M>I*30 60 I=1 70 J=I*2 80 :J)=:J)+I 90 J=J+I 100 #=M>J*80 110 I=I+1 120 #=M/2>I*70 130 D=0 140 P=0 150 A=0 160 I=1 170 #=:I)<I*230 180 #=:I)=I*210 190 A=A+1 200 #=240 210 P=P+1 220 #=240 230 D=D+1 240 I=I+1 250 #=M>I*170 260 ?=D 270 ?=" deficient" 280 ?=P 290 ?=" perfect" 300 ?=A 310 ?=" abundant"</lang>
- Output:
15043 deficient 4 perfect 4953 abundant
Wren
<lang ecmascript>import "/math" for Int, Nums
var d = 0 var a = 0 var p = 0 for (i in 1..20000) {
var j = Nums.sum(Int.properDivisors(i)) if (j < i) { d = d + 1 } else if (j == i) { p = p + 1 } else { a = a + 1 }
} System.print("There are %(d) deficient numbers between 1 and 20000") System.print("There are %(a) abundant numbers between 1 and 20000") System.print("There are %(p) perfect numbers between 1 and 20000")</lang>
- Output:
There are 15043 deficient numbers between 1 and 20000 There are 4953 abundant numbers between 1 and 20000 There are 4 perfect numbers between 1 and 20000
XPL0
<lang XPL0>int CntD, CntP, CntA, Num, Div, Sum; [CntD:= 0; CntP:= 0; CntA:= 0; for Num:= 1 to 20000 do
[Sum:= if Num = 1 then 0 else 1; for Div:= 2 to Num-1 do if rem(Num/Div) = 0 then Sum:= Sum + Div; case of Sum < Num: CntD:= CntD+1; Sum > Num: CntA:= CntA+1 other CntP:= CntP+1; ];
Text(0, "Deficient: "); IntOut(0, CntD); CrLf(0); Text(0, "Perfect: "); IntOut(0, CntP); CrLf(0); Text(0, "Abundant: "); IntOut(0, CntA); CrLf(0); ]</lang>
- Output:
Deficient: 15043 Perfect: 4 Abundant: 4953
Yabasic
<lang Yabasic>clear screen
Deficient = 0 Perfect = 0 Abundant = 0 For j=1 to 20000 sump = sumprop(j) If sump < j Then Deficient = Deficient + 1 ElseIf sump = j Then Perfect = Perfect + 1 ElseIf sump > j Then Abundant = Abundant + 1 End If Next j
PRINT "Number deficient: ",Deficient PRINT "Number perfect: ",Perfect PRINT "Number abundant: ",Abundant
sub sumprop(num) local i, sum, root
if num>1 then sum=1 root=sqrt(num) for i=2 to root if mod(num,i) = 0 then sum=sum+i if (i*i)<>num sum=sum+num/i end if next i end if return sum end sub</lang>
zkl
<lang zkl>fcn properDivs(n){ [1.. (n + 1)/2 + 1].filter('wrap(x){ n%x==0 and n!=x }) }
fcn classify(n){
p:=properDivs(n).sum(); return(if(p<n) -1 else if(p==n) 0 else 1);
}
const rangeMax=20_000; classified:=[1..rangeMax].apply(classify); perfect :=classified.filter('==(0)).len(); abundant :=classified.filter('==(1)).len(); println("Deficient=%d, perfect=%d, abundant=%d".fmt(
classified.len()-perfect-abundant, perfect, abundant));</lang>
- Output:
Deficient=15043, perfect=4, abundant=4953
ZX Spectrum Basic
Solution 1: <lang zxbasic> 10 LET nd=1: LET np=0: LET na=0
20 FOR i=2 TO 20000 30 LET sum=1 40 LET max=i/2 50 LET n=2: LET l=max-1 60 IF n>l THEN GO TO 90 70 IF i/n=INT (i/n) THEN LET sum=sum+n: LET max=i/n: IF max<>n THEN LET sum=sum+max: LET l=max-1 80 LET n=n+1: GO TO 60 90 IF sum<i THEN LET nd=nd+1: GO TO 120 100 IF sum=i THEN LET np=np+1: GO TO 120 110 LET na=na+1 120 NEXT i 130 PRINT "Number deficient: ";nd 140 PRINT "Number perfect: ";np 150 PRINT "Number abundant: ";na</lang>
Solution 2 (more efficient): <lang zxbasic> 10 LET abundant=0: LET deficient=0: LET perfect=0
20 FOR j=1 TO 20000 30 GO SUB 120 40 IF sump<j THEN LET deficient=deficient+1: GO TO 70 50 IF sump=j THEN LET perfect=perfect+1: GO TO 70 60 LET abundant=abundant+1 70 NEXT j 80 PRINT "Perfect: ";perfect 90 PRINT "Abundant: ";abundant 100 PRINT "Deficient: ";deficient 110 STOP 120 IF j=1 THEN LET sump=0: RETURN 130 LET sum=1 140 LET root=SQR j 150 FOR i=2 TO root 160 IF j/i=INT (j/i) THEN LET sum=sum+i: IF (i*i)<>j THEN LET sum=sum+j/i 170 NEXT i 180 LET sump=sum 190 RETURN</lang>