Count the coins
You are encouraged to solve this task according to the task description, using any language you may know.
There are four types of common coins in US currency: quarters (25 cents), dimes (10), nickels (5) and pennies (1). There are 6 ways to make change for 15 cents:
- A dime and a nickel;
- A dime and 5 pennies;
- 3 nickels;
- 2 nickels and 5 pennies;
- A nickel and 10 pennies;
- 15 pennies.
How many ways are there to make change for a dollar using these common coins? (1 dollar = 100 cents).
Optional:
Less common are dollar coins (100 cents); very rare are half dollars (50 cents). With the addition of these two coins, how many ways are there to make change for $1000? (note: the answer is larger than 232).
Algorithm: See here.
Ada
<lang Ada>with Ada.Text_IO;
procedure Count_The_Coins is
type Counter_Type is range 0 .. 2**63-1; -- works with gnat type Coin_List is array(Positive range <>) of Positive;
function Count(Goal: Natural; Coins: Coin_List) return Counter_Type is Cnt: array(0 .. Goal) of Counter_Type := (0 => 1, others => 0); -- 0 => we already know one way to choose (no) coins that sum up to zero -- 1 .. Goal => we do not (yet) other ways to choose coins begin for C in Coins'Range loop for Amount in 1 .. Cnt'Last loop if Coins(C) <= Amount then Cnt(Amount) := Cnt(Amount) + Cnt(Amount-Coins(C)); -- Amount-Coins(C) plus Coins(C) sums up to Amount; end if; end loop; end loop; return Cnt(Goal); end Count;
procedure Print(C: Counter_Type) is begin Ada.Text_IO.Put_Line(Counter_Type'Image(C)); end Print;
begin
Print(Count( 1_00, (25, 10, 5, 1))); Print(Count(1000_00, (100, 50, 25, 10, 5, 1)));
end Count_The_Coins;</lang>
Output:
242 13398445413854501
ALGOL 68
This corresponds to a "naive" Haskell version; to do the larger problem will require a better approach.
<lang Algol68>
Rosetta Code "Count the coins" This is a direct translation of a Haskell version, using an array rather than a list. LWB, UPB, and array slicing makes the mapping very simple: LWB > UPB <=> [] LWB = UPB <=> [x] a[LWB a] <=> head xs a[LWB a + 1:] <=> tail xs
BEGIN
PROC ways to make change = ([] INT denoms, INT amount) INT : BEGIN IF amount = 0 THEN 1 ELIF LWB denoms > UPB denoms THEN 0 ELIF LWB denoms = UPB denoms THEN (amount MOD denoms[LWB denoms] = 0 | 1 | 0) ELSE INT sum := 0; FOR i FROM 0 BY denoms[LWB denoms] TO amount DO sum +:= ways to make change(denoms[LWB denoms + 1:], amount - i) OD; sum FI END; [] INT denoms = (25, 10, 5, 1); print((ways to make change(denoms, 100), newline))
END </lang>
Output:
+242
AutoHotkey
<lang AHK>countChange(amount){ return cc(amount, 4) }
cc(amount, kindsOfCoins){ if ( amount == 0 ) return 1 if ( amount < 0 ) || ( kindsOfCoins == 0 ) return 0 return cc(amount, kindsOfCoins-1) + cc(amount - firstDenomination(kindsOfCoins), kindsOfCoins) }
firstDenomination(kindsOfCoins){ return [1, 5, 10, 25][kindsOfCoins] } MsgBox % countChange(100)</lang>
AWK
Iterative implementation, derived from Run BASIC:
<lang awk>#!/usr/bin/awk -f
BEGIN {
print cc(100) exit
}
function cc(amount, coins, numPennies, numNickles, numQuarters, p, n, d, q, s, count) {
numPennies = amount numNickles = int(amount / 5) numDimes = int(amount / 10) numQuarters = int(amount / 25) count = 0 for (p = 0; p <= numPennies; p++) { for (n = 0; n <= numNickles; n++) { for (d = 0; d <= numDimes; d++) { for (q = 0; q <= numQuarters; q++) { s = p + n * 5 + d * 10 + q * 25; if (s == 100) count++; } } } } return count;
} </lang>
Run time:
time ./change-itr.awk 242 real 0m0.065s user 0m0.063s sys 0m0.002s
Recursive implementation (derived from Scheme example):
<lang awk>#!/usr/bin/awk -f
BEGIN {
COINSEP = ", " coins = 1 COINSEP 5 COINSEP 10 COINSEP 25 print cc(100, coins) exit
}
function cc(amt, coins) {
if (length(coins) == 0) return 0 if (amt < 0) return 0 if (amt == 0) return 1 return cc(amt, tail(coins)) + cc(amt - head(coins), coins)
}
function tail(coins, koins, s, c) {
split(coins, koins, COINSEP) s = "" for (c = 2; c <= length(koins); c++) s = s (s == "" ? "" : COINSEP) koins[c] return s;
}
function head(coins, koins) {
split(coins, koins, COINSEP) return koins[1]
} </lang>
Run time:
time ./change-rec.awk 242 real 0m0.081s user 0m0.079s sys 0m0.002s
While the recursive version is slower for small amounts, about 2 bucks it gets faster than the iterative version, at least until is segfaults from exhausting the stack.
BBC BASIC
Non-recursive solution: <lang bbcbasic> DIM uscoins%(3)
uscoins%() = 1, 5, 10, 25 PRINT FNchange(100, uscoins%()) " ways of making $1" PRINT FNchange(1000, uscoins%()) " ways of making $10" DIM ukcoins%(7) ukcoins%() = 1, 2, 5, 10, 20, 50, 100, 200 PRINT FNchange(100, ukcoins%()) " ways of making £1" PRINT FNchange(1000, ukcoins%()) " ways of making £10" END DEF FNchange(sum%, coins%()) LOCAL C%, D%, I%, N%, P%, Q%, S%, table() C% = 0 N% = DIM(coins%(),1) + 1 FOR I% = 0 TO N% - 1 D% = coins%(I%) IF D% <= sum% IF D% >= C% C% = D% + 1 NEXT C% *= N% DIM table(C%-1) FOR I% = 0 TO N%-1 : table(I%) = 1 : NEXT P% = N% FOR S% = 1 TO sum% FOR I% = 0 TO N% - 1 IF I% = 0 IF P% >= C% P% = 0 IF coins%(I%) <= S% THEN Q% = P% - coins%(I%) * N% IF Q% >= 0 table(P%) = table(Q%) ELSE table(P%) = table(Q% + C%) ENDIF IF I% table(P%) += table(P% - 1) P% += 1 NEXT NEXT = table(P%-1)
</lang> Output (BBC BASIC does not have large enough integers for the optional task):
242 ways of making $1 142511 ways of making $10 4563 ways of making £1 321335886 ways of making £10
C
Using some crude 128-bit integer type. <lang c>#include <stdio.h>
- include <stdlib.h>
- include <stdint.h>
// ad hoc 128 bit integer type; faster than using GMP because of low // overhead typedef struct { uint64_t x[2]; } i128;
// display in decimal void show(i128 v) { uint32_t x[4] = {v.x[0], v.x[0] >> 32, v.x[1], v.x[1] >> 32}; int i, j = 0, len = 4; char buf[100]; do { uint64_t c = 0; for (i = len; i--; ) { c = (c << 32) + x[i]; x[i] = c / 10, c %= 10; }
buf[j++] = c + '0'; for (len = 4; !x[len - 1]; len--); } while (len);
while (j--) putchar(buf[j]); putchar('\n'); }
i128 count(int sum, int *coins) { int n, i, k; for (n = 0; coins[n]; n++);
i128 **v = malloc(sizeof(int*) * n); int *idx = malloc(sizeof(int) * n);
for (i = 0; i < n; i++) { idx[i] = coins[i]; // each v[i] is a cyclic buffer v[i] = calloc(sizeof(i128), coins[i]); }
v[0][coins[0] - 1] = (i128) Template:1, 0;
for (k = 0; k <= sum; k++) { for (i = 0; i < n; i++) if (!idx[i]--) idx[i] = coins[i] - 1;
i128 c = v[0][ idx[0] ];
for (i = 1; i < n; i++) { i128 *p = v[i] + idx[i];
// 128 bit addition p->x[0] += c.x[0]; p->x[1] += c.x[1]; if (p->x[0] < c.x[0]) // carry p->x[1] ++; c = *p; } }
i128 r = v[n - 1][idx[n-1]];
for (i = 0; i < n; i++) free(v[i]); free(v); free(idx);
return r; }
// simple recursive method; slow int count2(int sum, int *coins) { if (!*coins || sum < 0) return 0; if (!sum) return 1; return count2(sum - *coins, coins) + count2(sum, coins + 1); }
int main(void) { int us_coins[] = { 100, 50, 25, 10, 5, 1, 0 }; int eu_coins[] = { 200, 100, 50, 20, 10, 5, 2, 1, 0 };
show(count( 100, us_coins + 2)); show(count( 1000, us_coins));
show(count( 1000 * 100, us_coins)); show(count( 10000 * 100, us_coins)); show(count(100000 * 100, us_coins));
putchar('\n');
show(count( 1 * 100, eu_coins)); show(count( 1000 * 100, eu_coins)); show(count( 10000 * 100, eu_coins)); show(count(100000 * 100, eu_coins));
return 0; }</lang>output (only the first two lines are required by task):<lang>242 13398445413854501 1333983445341383545001 133339833445334138335450001
4563 10056050940818192726001 99341140660285639188927260001 992198221207406412424859964272600001</lang>
Clojure
<lang lisp>(def denomination-kind [1 5 10 25])
(defn- cc [amount denominations]
(cond (= amount 0) 1 (or (< amount 0) (empty? denominations)) 0 :else (+ (cc amount (rest denominations)) (cc (- amount (first denominations)) denominations))))
(defn count-change
"Calculates the number of times you can give change with the given denominations." [amount denominations] (cc amount denominations))
(count-change 15 denomination-kind) ; = 6 </lang>
Coco
<lang coco>changes = (amount, coins) ->
ways = [1].concat [0] * amount for coin of coins for j from coin to amount ways[j] += ways[j - coin] ways[amount]
console.log changes 100, [1 5 10 25]</lang>
Common Lisp
<lang lisp>(defun count-change (amount coins)
(let ((cache (make-array (list (1+ amount) (length coins))
:initial-element nil)))
(macrolet ((h () `(aref cache n l))) (labels
((recur (n coins &optional (l (1- (length coins)))) (cond ((< l 0) 0) ((< n 0) 0) ((= n 0) 1) (t (if (h) (h) ; cached (setf (h) ; or not (+ (recur (- n (car coins)) coins l) (recur n (cdr coins) (1- l)))))))))
;; enable next line if recursions too deep ;(loop for i from 0 below amount do (recur i coins)) (recur amount coins)))))
- (compile 'count-change) ; for CLISP
(print (count-change 100 '(25 10 5 1))) ; = 242 (print (count-change 100000 '(100 50 25 10 5 1))) ; = 13398445413854501 (terpri)</lang>
D
Basic Version
<lang d>import std.stdio, std.bigint;
auto changes(int amount, int[] coins) {
auto ways = new BigInt[amount + 1]; ways[0] = 1; foreach (coin; coins) foreach (j; coin .. amount + 1) ways[j] += ways[j - coin]; return ways[$ - 1];
}
void main() {
changes( 1_00, [25, 10, 5, 1]).writeln; changes(1000_00, [100, 50, 25, 10, 5, 1]).writeln;
}</lang>
- Output:
242 13398445413854501
Safe Ulong Version
This version is very similar to the precedent, but it uses a faster ulong type, and performs a checked sum to detect overflows at run-time. <lang d>import std.stdio, core.checkedint;
auto changes(int amount, int[] coins, ref bool overflow) {
auto ways = new ulong[amount + 1]; ways[0] = 1; foreach (coin; coins) foreach (j; coin .. amount + 1) ways[j] = ways[j].addu(ways[j - coin], overflow); return ways[amount];
}
void main() {
bool overflow = false; changes( 1_00, [25, 10, 5, 1], overflow).writeln; if (overflow) "Overflow".puts; overflow = false; changes( 1000_00, [100, 50, 25, 10, 5, 1], overflow).writeln; if (overflow) "Overflow".puts;
}</lang> The output is the same.
Faster Version
<lang d>import std.stdio, std.bigint;
BigInt countChanges(in int amount, in int[] coins) pure /*nothrow*/ {
immutable n = coins.length; int cycle; foreach (immutable c; coins) if (c <= amount && c >= cycle) cycle = c + 1; cycle *= n; auto table = new BigInt[cycle]; table[0 .. n] = 1.BigInt;
int pos = n; foreach (immutable s; 1 .. amount + 1) { foreach (immutable i; 0 .. n) { if (i == 0 && pos >= cycle) pos = 0; if (coins[i] <= s) { immutable int q = pos - (coins[i] * n); table[pos] = (q >= 0) ? table[q] : table[q + cycle]; } if (i) table[pos] += table[pos - 1]; pos++; } }
return table[pos - 1];
}
void main() {
immutable usCoins = [100, 50, 25, 10, 5, 1]; immutable euCoins = [200, 100, 50, 20, 10, 5, 2, 1];
foreach (immutable coins; [usCoins, euCoins]) { countChanges( 1_00, coins[2 .. $]).writeln; countChanges( 1000_00, coins).writeln; countChanges( 10000_00, coins).writeln; countChanges(100000_00, coins).writeln; writeln; }
}</lang>
- Output:
242 13398445413854501 1333983445341383545001 133339833445334138335450001 4562 10056050940818192726001 99341140660285639188927260001 992198221207406412424859964272600001
128-bit Version
A much faster version that mixes high-level and low-level style programming. This version uses basic 128-bit unsigned integers, like the C version. The output is the same as the second D version.
<lang d>import std.stdio, std.bigint, std.algorithm, std.conv, std.functional;
struct Ucent { /// Simplified 128-bit integer (like ucent).
ulong hi, lo; static immutable one = Ucent(0, 1);
void opOpAssign(string op="+")(in ref Ucent y) pure nothrow @nogc { this.hi += y.hi; if (this.lo >= ~y.lo) this.hi++; this.lo += y.lo; }
const string toString() const /*pure nothrow*/ { return text((this.hi.BigInt << 64) + this.lo); }
}
Ucent countChanges(in int amount, in int[] coins) pure nothrow {
immutable n = coins.length;
// Points to a cyclic buffer of length coins[i] auto p = new Ucent*[n]; auto q = new Ucent*[n]; // iterates it. auto buf = new Ucent[coins.sum];
p[0] = buf.ptr; foreach (immutable i; 0 .. n) { if (i) p[i] = coins[i - 1] + p[i - 1]; *p[i] = Ucent.one; q[i] = p[i]; }
Ucent prev; foreach (immutable j; 1 .. amount + 1) foreach (immutable i; 0 .. n) { q[i]--; if (q[i] < p[i]) q[i] = p[i] + coins[i] - 1; if (i) *q[i] += prev; prev = *q[i]; }
return prev;
}
void main() {
immutable usCoins = [100, 50, 25, 10, 5, 1]; immutable euCoins = [200, 100, 50, 20, 10, 5, 2, 1];
foreach (immutable coins; [usCoins, euCoins]) { countChanges( 1_00, coins[2 .. $]).writeln; countChanges( 1000_00, coins).writeln; countChanges( 10000_00, coins).writeln; countChanges(100000_00, coins).writeln; writeln; }
}</lang>
Printing Version
This version prints all the solutions (so it can be used on the smaller input): <lang d>import std.stdio, std.conv, std.string, std.algorithm, std.range;
void printChange(in uint tot, in uint[] coins) in {
assert(coins.isSorted);
} body {
auto freqs = new uint[coins.length];
void inner(in uint curTot, in size_t start) { if (curTot == tot) return writefln("%-(%s %)", zip(coins, freqs) .filter!(cf => cf[1] != 0) .map!(cf => format("%u:%u", cf[])));
foreach (immutable i; start .. coins.length) { immutable ci = coins[i]; for (auto v = (freqs[i] + 1) * ci; v <= tot; v += ci) if (curTot + v <= tot) { freqs[i] += v / ci; inner(curTot + v, i + 1); freqs[i] -= v / ci; } } }
inner(0, 0);
}
void main() {
printChange(1_00, [1, 5, 10, 25]);
}</lang>
- Output:
1:5 5:1 10:4 25:2 1:5 5:1 10:9 1:5 5:2 10:1 25:3 1:5 5:2 10:6 25:1 1:5 5:3 10:3 25:2 1:5 5:3 10:8 1:5 5:4 10:5 25:1 1:5 5:4 25:3 1:5 5:5 10:2 25:2 1:5 5:5 10:7 1:5 5:6 10:4 25:1 1:5 5:7 10:1 25:2 ... 5:11 10:2 25:1 5:12 10:4 5:13 10:1 25:1 5:14 10:3 5:15 25:1 5:16 10:2 5:18 10:1 5:20 10:5 25:2 10:10 25:4
Erlang
<lang erlang> -module(coins). -compile(export_all).
count(Amount, Coins) ->
{N,_C} = count(Amount, Coins, dict:new()), N.
count(0,_,Cache) ->
{1,Cache};
count(N,_,Cache) when N < 0 ->
{0,Cache};
count(_N,[],Cache) ->
{0,Cache};
count(N,[C|Cs]=Coins,Cache) ->
case dict:is_key({N,length(Coins)},Cache) of true -> {dict:fetch({N,length(Coins)},Cache), Cache}; false -> {N1,C1} = count(N-C,Coins,Cache), {N2,C2} = count(N,Cs,C1), {N1+N2,dict:store({N,length(Coins)},N1+N2,C2)} end.
print(Amount, Coins) ->
io:format("~b ways to make change for ~b cents with ~p coins~n",[count(Amount,Coins),Amount,Coins]).
test() ->
A1 = 100, C1 = [25,10,5,1], print(A1,C1), A2 = 100000, C2 = [100, 50, 25, 10, 5, 1], print(A2,C2).
</lang>
- Output:
42> coins:test(). 242 ways to make change for 100 cents with [25,10,5,1] coins 13398445413854501 ways to make change for 100000 cents with [100,50,25,10,5,1] coins ok
Factor
<lang factor>USING: combinators kernel locals math math.ranges sequences sets sorting ; IN: rosetta.coins
<PRIVATE ! recursive-count uses memoization and local variables. ! coins must be a sequence. MEMO:: recursive-count ( cents coins -- ways )
coins length :> types { ! End condition: 1 way to make 0 cents. { [ cents zero? ] [ 1 ] } ! End condition: 0 ways to make money without any coins. { [ types zero? ] [ 0 ] } ! Optimization: At most 1 way to use 1 type of coin. { [ types 1 number= ] [ cents coins first mod zero? [ 1 ] [ 0 ] if ] } ! Find all ways to use the first type of coin. [ ! f = first type, r = other types of coins. coins unclip-slice :> f :> r ! Loop for 0, f, 2*f, 3*f, ..., cents. 0 cents f <range> [ ! Recursively count how many ways to make remaining cents ! with other types of coins. cents swap - r recursive-count ] [ + ] map-reduce ! Sum the counts. ] } cond ;
PRIVATE>
! How many ways can we make the given amount of cents ! with the given set of coins?
- make-change ( cents coins -- ways )
members [ ] inv-sort-with ! Sort coins in descending order. recursive-count ;</lang>
From the listener:
USE: rosetta.coins ( scratchpad ) 100 { 25 10 5 1 } make-change . 242 ( scratchpad ) 100000 { 100 50 25 10 5 1 } make-change . 13398445413854501
This algorithm is slow. A test machine needed 1 minute to run 100000 { 100 50 25 10 5 1 } make-change . and get 13398445413854501. The same machine needed less than 1 second to run the Common Lisp (SBCL), Ruby (MRI) or Tcl (tclsh) programs and get the same answer.
Forth
<lang forth>\ counting change (SICP section 1.2.2)
- table create does> swap cells + @ ;
table coin-value 0 , 1 , 5 , 10 , 25 , 50 ,
- count-change ( total coin -- n )
over 0= if 2drop 1 else over 0< over 0= or if 2drop 0 else 2dup coin-value - over recurse >r 1- recurse r> + then then ;
100 5 count-change .</lang>
Go
A translation of the Lisp code referenced by the task description: <lang go>package main
import "fmt"
func main() {
amount := 100 fmt.Println("amount, ways to make change:", amount, countChange(amount))
}
func countChange(amount int) int64 {
return cc(amount, 4)
}
func cc(amount, kindsOfCoins int) int64 {
switch { case amount == 0: return 1 case amount < 0 || kindsOfCoins == 0: return 0 } return cc(amount, kindsOfCoins-1) + cc(amount - firstDenomination(kindsOfCoins), kindsOfCoins)
}
func firstDenomination(kindsOfCoins int) int {
switch kindsOfCoins { case 1: return 1 case 2: return 5 case 3: return 10 case 4: return 25 } panic(kindsOfCoins)
}</lang> Output:
amount, ways to make change: 100 242
Alternative algorithm, practical for the optional task. <lang go>package main
import "fmt"
func main() {
amount := 1000 * 100 fmt.Println("amount, ways to make change:", amount, countChange(amount))
}
func countChange(amount int) int64 {
ways := make([]int64, amount+1) ways[0] = 1 for _, coin := range []int{100, 50, 25, 10, 5, 1} { for j := coin; j <= amount; j++ { ways[j] += ways[j-coin] } } return ways[amount]
}</lang> Output:
amount, ways to make change: 100000 13398445413854501
Groovy
Intuitive Recursive Solution: <lang groovy>def ccR ccR = { BigInteger tot, List<BigInteger> coins ->
BigInteger n = coins.size() switch ([tot:tot, coins:coins]) { case { it.tot == 0 } : return 1g case { it.tot < 0 || coins == [] } : return 0g default: return ccR(tot, coins[1..<n]) + ccR(tot - coins[0], coins) }
}</lang>
Fast Iterative Solution: <lang groovy>def ccI = { BigInteger tot, List<BigInteger> coins ->
List<BigInteger> ways = [0g] * (tot+1) ways[0] = 1g coins.each { BigInteger coin -> (coin..tot).each { j -> ways[j] += ways[j-coin] } } ways[tot]
}</lang>
Test: <lang groovy>println '\nBase:' [iterative: ccI, recursive: ccR].each { label, cc ->
print "${label} " def start = System.currentTimeMillis() def ways = cc(100g, [25g, 10g, 5g, 1g]) def elapsed = System.currentTimeMillis() - start println ("answer: ${ways} elapsed: ${elapsed}ms")
}
print '\nExtra Credit:\niterative ' def start = System.currentTimeMillis() def ways = ccI(1000g * 100, [100g, 50g, 25g, 10g, 5g, 1g]) def elapsed = System.currentTimeMillis() - start println ("answer: ${ways} elapsed: ${elapsed}ms")</lang>
Output:
Base: iterative answer: 242 elapsed: 5ms recursive answer: 242 elapsed: 220ms Extra Credit: iterative answer: 13398445413854501 elapsed: 1077ms
Haskell
Naive implementation: <lang haskell>count 0 _ = 1 count _ [] = 0 count x (c:coins) = sum [ count (x - (n * c)) coins | n <- [0..(quot x c)] ]
main = print (count 100 [1, 5, 10, 25])</lang>
Much faster, probably harder to read, is to update results from bottom up: <lang haskell>count = foldr addCoin (1:repeat 0) where addCoin c oldlist = newlist where newlist = (take c oldlist) ++ zipWith (+) newlist (drop c oldlist)
main = do print (count [25,10,5,1] !! 100) print (count [100,50,25,10,5,1] !! 100000)</lang>
Icon and Unicon
<lang Icon>procedure main()
US_coins := [1, 5, 10, 25] US_allcoins := [1,5,10,25,50,100] EU_coins := [1, 2, 5, 10, 20, 50, 100, 200] CDN_coins := [1,5,10,25,100,200] CDN_allcoins := [1,5,10,25,50,100,200]
every trans := ![ [15,US_coins], [100,US_coins], [1000*100,US_allcoins] ] do printf("There are %i ways to count change for %i using %s coins.\n",CountCoins!trans,trans[1],ShowList(trans[2]))
end
procedure ShowList(L) # helper list to string every (s := "[ ") ||:= !L || " " return s || "]" end</lang>
This is a naive implementation and very slow.
<lang Icon>procedure CountCoins(amt,coins) # very slow, recurse by coin value local count static S
if type(coins) == "list" then {
S := sort(set(coins)) if *S < 1 then runerr(205,coins) return CountCoins(amt) }
else {
/coins := 1 if value := S[coins] then { every (count := 0) +:= CountCoins(amt - (0 to amt by value), coins + 1) return count } else return (amt ~= 0) | 1 }
end</lang>
printf.icn provides formatting
Output:
There are 6 ways to count change for 15 using [ 1 5 10 25 ] coins. There are 242 ways to count change for 100 using [ 1 5 10 25 ] coins. ^c
J
In this draft intermediate results are a two column array. The first column is tallies -- the number of ways we have for reaching the total represented in the second column, which is unallocated value (which we will assume are pennies). We will have one row for each different in-range value which can be represented using only nickles (0, 5, 10, ... 95, 100).
<lang j>merge=: ({:"1 (+/@:({."1),{:@{:)/. ])@; count=: {.@] <@,. {:@] - [ * [ i.@>:@<.@%~ {:@] init=: (1 ,. ,.)^:(0=#@$) nsplits=: 0 { [: +/ [: (merge@:(count"1) init)/ }.@/:~@~.@,</lang>
This implementation special cases the handling of pennies and assumes that the lowest coin value in the argument is 1. If I needed additional performance, I would next special case the handling of nickles/penny combinations...
Thus:
<lang j> 100 nsplits 1 5 10 25 242</lang>
And, on a 64 bit machine with sufficient memory:
<lang j> 100000 nsplits 1 5 10 25 50 100 13398445413854501</lang>
Java
<lang java5>import java.util.Arrays; import java.math.BigInteger;
class CountTheCoins {
private static BigInteger countChanges(int amount, int[] coins){ final int n = coins.length; int cycle = 0; for (int c : coins) if (c <= amount && c >= cycle) cycle = c + 1; cycle *= n; BigInteger[] table = new BigInteger[cycle]; Arrays.fill(table, 0, n, BigInteger.ONE); Arrays.fill(table, n, cycle, BigInteger.ZERO);
int pos = n; for (int s = 1; s <= amount; s++) { for (int i = 0; i < n; i++) { if (i == 0 && pos >= cycle) pos = 0; if (coins[i] <= s) { final int q = pos - (coins[i] * n); table[pos] = (q >= 0) ? table[q] : table[q + cycle]; } if (i != 0) table[pos] = table[pos].add(table[pos - 1]); pos++; } }
return table[pos - 1]; }
public static void main(String[] args) { final int[][] coinsUsEu = {{100, 50, 25, 10, 5, 1}, {200, 100, 50, 20, 10, 5, 2, 1}};
for (int[] coins : coinsUsEu) { System.out.println(countChanges( 100, Arrays.copyOfRange(coins, 2, coins.length))); System.out.println(countChanges( 100000, coins)); System.out.println(countChanges( 1000000, coins)); System.out.println(countChanges(10000000, coins) + "\n"); } }
}</lang> Output:
242 13398445413854501 1333983445341383545001 133339833445334138335450001 4562 10056050940818192726001 99341140660285639188927260001 992198221207406412424859964272600001
JavaScript
Iterative
Efficient iterative algorithm (cleverly calculates number of combinations without permuting them)
<lang Javascript> function countcoins(t, o) { 'use strict'; var targetsLength = t + 1; var operandsLength = o.length; t = [1];
for (var a = 0; a < operandsLength; a ++) { for (var b = 1; b < targetsLength; b ++) {
// initialise undefined target t[b] = t[b] ? t[b] : 0;
// accumulate target + operand ways t[b] += (b < o[a]) ? 0 : t[b - o[a]]; } }
return t[targetsLength - 1]; } </lang>
- Output:
JavaScript hits integer limit for optional task
<lang JavaScript> countcoins(100, [1,5,10,25]); 242 </lang>
Recursive
Inefficient recursive algorithm (naively calculates number of combinations by actually permuting them)
<lang Javascript> function countcoins(t, o) { 'use strict'; var operandsLength = o.length; var solutions = 0;
function permutate(a, x) {
// base case if (a === t) { solutions ++; }
// recursive case else if (a < t) { for (var i = 0; i < operandsLength; i ++) { if (i >= x) { permutate(o[i] + a, i); } } } }
permutate(0, 0); return solutions; } </lang>
- Output:
Too slow for optional task
<lang JavaScript> countcoins(100, [1,5,10,25]); 242 </lang>
jq
Currently jq uses IEEE 754 64-bit numbers. Large integers are approximated by floats, and therefore the answer that the following program provides for the optional task is only correct for the first 15 digits. <lang jq># How many ways are there to make "target" cents, given a list of coin
- denominations as input.
- The strategy is to record at total[n] the number of ways to make n cents.
def countcoins(target):
. as $coin | reduce range(0; length) as $a ( [1]; # there is 1 way to make 0 cents reduce range(1; target + 1) as $b (.; # total[] if $b < $coin[$a] then . else .[$b - $coin[$a]] as $count | if $count == 0 then . else .[$b] += $count end end ) ) | .[target] ;</lang>
Example:
[1,5,10,25] | countcoins(100)</lang>
- Output:
242
Lasso
Inspired by the javascript iterative example for the same task <lang Lasso>define cointcoins( target::integer, operands::array ) => {
local( targetlength = #target + 1, operandlength = #operands -> size, output = staticarray_join(#targetlength,0), outerloopcount )
#output -> get(1) = 1
loop(#operandlength) => { #outerloopcount = loop_count loop(#targetlength) => {
if(loop_count >= #operands -> get(#outerloopcount) and loop_count - #operands -> get(#outerloopcount) > 0) => { #output -> get(loop_count) += #output -> get(loop_count - #operands -> get(#outerloopcount)) } } }
return #output -> get(#targetlength) }
cointcoins(100, array(1,5,10,25,))
'
'
cointcoins(100000, array(1, 5, 10, 25, 50, 100))</lang>
Output:
242 13398445413854501
Mathematica
<lang Mathematica>CountCoins[amount_, coinlist_] := ( ways = ConstantArray[1, amount]; Do[For[j = coin, j <= amount, j++,
If[ j - coin == 0, waysj ++, waysj += waysj - coin
]] , {coin, coinlist}]; waysamount)</lang> Example usage:
CountCoins[100, {25, 10, 5}] -> 242 CountCoins[100000, {100, 50, 25, 10, 5}] -> 13398445413854501
Mercury
<lang Mercury>:- module coins.
- - interface.
- - import_module int, io.
- - type coin ---> quarter; dime; nickel; penny.
- - type purse ---> purse(int, int, int, int).
- - pred sum_to(int::in, purse::out) is nondet.
- - pred main(io::di, io::uo) is det.
- - implementation.
- - import_module solutions, list, string.
- - func value(coin) = int.
value(quarter) = 25. value(dime) = 10. value(nickel) = 5. value(penny) = 1.
- - pred supply(coin::in, int::in, int::out) is multi.
supply(C, Target, N) :- upto(Target div value(C), N).
- - pred upto(int::in, int::out) is multi.
upto(N, R) :- ( nondet_int_in_range(0, N, R0) -> R = R0 ; R = 0 ).
sum_to(To, Purse) :- Purse = purse(Q, D, N, P), sum(Purse) = To, supply(quarter, To, Q), supply(dime, To, D), supply(nickel, To, N), supply(penny, To, P).
- - func sum(purse) = int.
sum(purse(Q, D, N, P)) = value(quarter) * Q + value(dime) * D + value(nickel) * N + value(penny) * P.
main(!IO) :- solutions(sum_to(100), L), show(L, !IO), io.format("There are %d ways to make change for a dollar.\n",
[i(length(L))], !IO).
- - pred show(list(purse)::in, io::di, io::uo) is det.
show([], !IO). show([P|T], !IO) :- io.write(P, !IO), io.nl(!IO), show(T, !IO).</lang>
Nimrod
<lang nimrod>proc changes(amount, coins): int =
var ways = @[1] ways.setLen(amount+1) for coin in coins: for j in coin..amount: ways[j] += ways[j-coin] ways[amount]
echo changes(100, [1, 5, 10, 25]) echo changes(100000, [1, 5, 10, 25, 50, 100])</lang> Output:
242 13398445413854501
OCaml
Translation of the D minimal version:
<lang ocaml>let changes amount coins =
let ways = Array.make (amount + 1) 0L in ways.(0) <- 1L; List.iter (fun coin -> for j = coin to amount do ways.(j) <- Int64.add ways.(j) ways.(j - coin) done ) coins; ways.(amount)
let () =
Printf.printf "%Ld\n" (changes 1_00 [25; 10; 5; 1]); Printf.printf "%Ld\n" (changes 1000_00 [100; 50; 25; 10; 5; 1]);
- </lang>
Output:
$ ocaml coins.ml 242 13398445413854501
PARI/GP
<lang parigp>coins(v)=prod(i=1,#v,1/(1-'x^v[i])); ways(v,n)=polcoeff(coins(v)+O('x^(n+1)),n); ways([1,5,10,25],100) ways([1,5,10,25,50,100],100000)</lang> Output:
%1 = 242 %2 = 13398445413854501
Perl
<lang perl>use 5.01; use Memoize;
sub cc {
my $amount = shift; return 0 if !@_ || $amount < 0; return 1 if $amount == 0; my $first = shift; cc( $amount, @_ ) + cc( $amount - $first, $first, @_ );
} memoize 'cc';
- Make recursive algorithm run faster by sorting coins descending by value:
sub cc_optimized {
my $amount = shift; cc( $amount, sort { $b <=> $a } @_ );
}
say 'Ways to change $ 1 with common coins: ',
cc_optimized( 100, 1, 5, 10, 25 );
say 'Ways to change $ 1000 with addition of less common coins: ',
cc_optimized( 1000 * 100, 1, 5, 10, 25, 50, 100 );
</lang>
- Output:
Ways to change $ 1 with common coins: 242 Ways to change $ 1000 with addition of less common coins: 13398445413854501
Perl 6
Recursive (cached)
<lang perl6>sub ways-to-make-change($amount, @coins) {
my @cache = [1 xx @coins];
multi ways($n where $n >= 0, @now [$coin,*@later]) { @cache[$n][+@later] //= ways($n - $coin, @now) + ways($n, @later); } multi ways($,@) { 0 }
ways($amount, @coins.sort(-*)); # sort descending
}
say ways-to-make-change 1_00, [1,5,10,25]; say ways-to-make-change 1000_00, [1,5,10,25,50,100];</lang>
- Output:
242 13398445413854501
Iterative
<lang perl6>sub ways-to-make-change-slowly(\n, @coins) {
my @table = [1 xx @coins], [0 xx @coins] xx n; for 1..n X ^@coins -> \i, \j { my \c = @coins[j]; @table[i][j] = [+] @table[i - c][j ] // 0, @table[i ][j - 1] // 0; } @table[*-1][*-1];
}
say ways-to-make-change-slowly 1_00, [1,5,10,25]; say ways-to-make-change-slowly 1000_00, [1,5,10,25,50,100];</lang>
PicoLisp
<lang PicoLisp>(de coins (Sum Coins)
(let (Buf (mapcar '((N) (cons 1 (need (dec N) 0))) Coins) Prev) (do Sum (zero Prev) (for L Buf (inc (rot L) Prev) (setq Prev (car L)) ) ) Prev ) )</lang>
Test: <lang PicoLisp>(for Coins '((100 50 25 10 5 1) (200 100 50 20 10 5 2 1))
(println (coins 100 (cddr Coins))) (println (coins (* 1000 100) Coins)) (println (coins (* 10000 100) Coins)) (println (coins (* 100000 100) Coins)) (prinl) )</lang>
Output:
242 13398445413854501 1333983445341383545001 133339833445334138335450001 4562 10056050940818192726001 99341140660285639188927260001 992198221207406412424859964272600001
Python
Simple version
<lang python>def changes(amount, coins):
ways = [0] * (amount + 1) ways[0] = 1 for coin in coins: for j in xrange(coin, amount + 1): ways[j] += ways[j - coin] return ways[amount]
print changes(100, [1, 5, 10, 25]) print changes(100000, [1, 5, 10, 25, 50, 100])</lang> Output:
242 13398445413854501
Fast version
<lang python>try:
import psyco psyco.full()
except ImportError:
pass
def count_changes(amount_cents, coins):
n = len(coins) # max([]) instead of max() for Psyco cycle = max([c+1 for c in coins if c <= amount_cents]) * n table = [0] * cycle for i in xrange(n): table[i] = 1
pos = n for s in xrange(1, amount_cents + 1): for i in xrange(n): if i == 0 and pos >= cycle: pos = 0 if coins[i] <= s: q = pos - coins[i] * n table[pos]= table[q] if (q >= 0) else table[q + cycle] if i: table[pos] += table[pos - 1] pos += 1 return table[pos - 1]
def main():
us_coins = [100, 50, 25, 10, 5, 1] eu_coins = [200, 100, 50, 20, 10, 5, 2, 1]
for coins in (us_coins, eu_coins): print count_changes( 100, coins[2:]) print count_changes( 100000, coins) print count_changes( 1000000, coins) print count_changes(10000000, coins), "\n"
main()</lang> Output:
242 13398445413854501 1333983445341383545001 133339833445334138335450001 4562 10056050940818192726001 99341140660285639188927260001 992198221207406412424859964272600001
Racket
This is the basic recursive way: <lang Racket>#lang racket (define (ways-to-make-change cents coins)
(cond ((null? coins) 0) ((negative? cents) 0) ((zero? cents) 1) (else (+ (ways-to-make-change cents (cdr coins)) (ways-to-make-change (- cents (car coins)) coins)))))
(ways-to-make-change 100 '(25 10 5 1)) ; -> 242 </lang> This works for the small numbers, but the optional task is just too slow with this solution, so with little change to the code we can use memoization: <lang Racket>#lang racket
(define memos (make-hash)) (define (ways-to-make-change cents coins)
(cond [(or (empty? coins) (negative? cents)) 0] [(zero? cents) 1] [else (define (answerer-for-new-arguments) (+ (ways-to-make-change cents (rest coins)) (ways-to-make-change (- cents (first coins)) coins))) (hash-ref! memos (cons cents coins) answerer-for-new-arguments)]))
(time (ways-to-make-change 100 '(25 10 5 1))) (time (ways-to-make-change 100000 '(100 50 25 10 5 1))) (time (ways-to-make-change 1000000 '(200 100 50 20 10 5 2 1)))
- | Times in milliseconds, and results:
cpu time: 1 real time: 1 gc time: 0 242
cpu time: 524 real time: 553 gc time: 163 13398445413854501
cpu time: 20223 real time: 20673 gc time: 10233 99341140660285639188927260001 |#</lang>
REXX
recursive
The recursive calls to the subroutine have been unrolled somewhat,
this reduces the number of recursive calls substantially.
<lang rexx>/*REXX program makes change from some amount with various specie (coins)*/
parse arg N $ /*obtain optional args from C.L. */
if N= then N=100 /*Not specified? Use $1 default.*/
if $= then $=1 5 10 25 /*Use penny/nickel/dime/quarter ?*/
coins=words($) /*count number of coins specified*/
do j=1 for coins /*create a fast way of accessing.*/ $.j=word($,j) /*define a stemmed array element.*/ end /*j*/
say 'with an amount of ' N " cents, there are " kaChing(N, coins) say 'ways to make change with coins of the following denominations: ' $ exit /*stick a fork in it, we're done.*/ /*──────────────────────────────────KACHING subroutine──────────────────*/ kaChing: procedure expose $.; parse arg a,k /*sub is recursive. */ if a==0 then return 1 /*unroll special case*/ if k==1 then return 1 /* " " " */ if k==2 then f=1 /*handle special case*/
else f=kaChing(a, k-1) /*recurse the amount.*/
if a==$.k then return f + 1 /*handle special case*/ if a <$.k then return f /* " " " */
return f + kaChing(a-$.k, k) /*use diminished $. */</lang>
output when using the default input:
with an amount of 100 cents, there are 242 ways to make change with coins of the following denominations: 1 5 10 25
recursive with memoization
This REXX version is about a dozen times faster than the above version. <lang rexx>/*REXX program makes change from some amount with various specie (coins)*/ numeric digits 20 /*be able to handle large amounts*/ parse arg N $ /*obtain optional args from C.L. */ if N= then N=100 /*Not specified? Use $1 default.*/ if $= then $=1 5 10 25 /*Use penny/nickel/dime/quarter ?*/ coins=words($) /*count number of coins specified*/ !.=. /*used for memoization for A & K.*/
do j=1 for coins /*create a fast way of accessing.*/ $.j=word($,j) /*define a stemmed array element.*/ end /*j*/
say 'with an amount of ' N " cents, there are " kaChing(N, coins) say 'ways to make change with coins of the following denominations: ' $ exit /*stick a fork in it, we're done.*/ /*──────────────────────────────────KACHING subroutine──────────────────*/ kaChing: procedure expose $. !.; parse arg a,k /*sub is recursive. */ if a==0 then return 1 /*unroll special case*/ if k==1 then return 1 /* " " " */ if k==2 then f=1 /*handle special case*/
else f=kaChing(a,k-1) /*recurse the amount.*/
if !.a.k\==. then return !.a.k /*found A & K before?*/
if a==$.k then do; !.a.k=f+1; return f+1; end /*handle special case*/
if a <$.k then do; !.a.k=f; return f; end /* " " " */
!.a.k=f + kaChing(a-$.k, k); return !.a.k /*compute,set,return.*/</lang>
output is the same as the 1st version.
Ruby
The algorithm also appears here
Recursive, with caching
<lang ruby>def make_change(amount, coins)
@cache = Array.new(amount+1){|i| Array.new(coins.size, i.zero? ? 1 : nil)} @coins = coins do_count(amount, @coins.length - 1)
end
def do_count(n, m)
if n < 0 || m < 0 0 elsif @cache[n][m] @cache[n][m] else @cache[n][m] = do_count(n-@coins[m], m) + do_count(n, m-1) end
end
p make_change( 1_00, [1,5,10,25]) p make_change(1000_00, [1,5,10,25,50,100])</lang>
outputs
242 13398445413854501
Iterative
<lang ruby>def make_change2(amount, coins)
n, m = amount, coins.size table = Array.new(n+1){|i| Array.new(m, i.zero? ? 1 : nil)} for i in 1..n for j in 0...m table[i][j] = (i<coins[j] ? 0 : table[i-coins[j]][j]) + (j<1 ? 0 : table[i][j-1]) end end table[-1][-1]
end
p make_change2( 1_00, [1,5,10,25]) p make_change2(1000_00, [1,5,10,25,50,100])</lang> outputs
242 13398445413854501
Run BASIC
<lang runbasic>for penny = 0 to 100
for nickel = 0 to 20 for dime = 0 to 10 for quarter = 0 to 4 if penny + nickel * 5 + dime * 10 + quarter * 25 = 100 then print penny;" pennies ";nickel;" nickels "; dime;" dimes ";quarter;" quarters" count = count + 1 end if next quarter next dime next nickel
next penny print count;" ways to make a buck"</lang>Output:
0 pennies 0 nickels 0 dimes 4 quarters 0 pennies 0 nickels 5 dimes 2 quarters 0 pennies 0 nickels 10 dimes 0 quarters 0 pennies 1 nickels 2 dimes 3 quarters ...... 65 pennies 5 nickels 1 dimes 0 quarters 65 pennies 7 nickels 0 dimes 0 quarters 70 pennies 0 nickels 3 dimes 0 quarters 70 pennies 1 nickels 0 dimes 1 quarters ..... 242 ways to make a buck
Scala
<lang scala>def countChange(amount: Int, coins:List[Int]) = { val ways = Array.fill(amount + 1)(0) ways(0) = 1 coins.foreach (coin => for (j<-coin to amount) ways(j) = ways(j) + ways(j - coin) ) ways(amount)
}
countChange (15, List(1, 5, 10, 25)) </lang> Output:
res0: Int = 6
Scheme
A simple recursive implementation: <lang scheme>(define ways-to-make-change
(lambda (x coins) (cond [(null? coins) 0] [(< x 0) 0] [(zero? x) 1] [else (+ (ways-to-make-change x (cdr coins)) (ways-to-make-change (- x (car coins)) coins))])))
(ways-to-make-change 100)</lang> Output:
242
Seed7
<lang seed7>$ include "seed7_05.s7i";
include "bigint.s7i";
const func bigInteger: changeCount (in integer: amountCents, in array integer: coins) is func
result var bigInteger: waysToChange is 0_; local var array bigInteger: t is 0 times 0_; var integer: pos is 0; var integer: s is 0; var integer: i is 0; begin t := length(coins) times 1_ & (length(coins) * amountCents) times 0_; pos := length(coins) + 1; for s range 1 to amountCents do if coins[1] <= s then t[pos] := t[pos - (length(coins) * coins[1])]; end if; incr(pos); for i range 2 to length(coins) do if coins[i] <= s then t[pos] := t[pos - (length(coins) * coins[i])]; end if; t[pos] +:= t[pos - 1]; incr(pos); end for; end for; waysToChange := t[pos - 1]; end func;
const proc: main is func
local const array integer: usCoins is [] (1, 5, 10, 25, 50, 100); const array integer: euCoins is [] (1, 2, 5, 10, 20, 50, 100, 200); begin writeln(changeCount( 100, usCoins[.. 4])); writeln(changeCount( 100000, usCoins)); writeln(changeCount(1000000, usCoins)); writeln(changeCount( 100000, euCoins)); writeln(changeCount(1000000, euCoins)); end func;</lang>
Output:
242 13398445413854501 1333983445341383545001 10056050940818192726001 99341140660285639188927260001
Tcl
<lang tcl>package require Tcl 8.5
proc makeChange {amount coins} {
set table [lrepeat [expr {$amount+1}] [lrepeat [llength $coins] {}]] lset table 0 [lrepeat [llength $coins] 1] for {set i 1} {$i <= $amount} {incr i} {
for {set j 0} {$j < [llength $coins]} {incr j} { set k [expr {$i - [lindex $coins $j]}] lset table $i $j [expr { ($k < 0 ? 0 : [lindex $table $k $j]) + ($j < 1 ? 0 : [lindex $table $i [expr {$j-1}]]) }] }
} return [lindex $table end end]
}
puts [makeChange 100 {1 5 10 25}] puts [makeChange 100000 {1 5 10 25 50 100}]
- Making change with the EU coin set:
puts [makeChange 100 {1 2 5 10 20 50 100 200}] puts [makeChange 100000 {1 2 5 10 20 50 100 200}]</lang> Output:
242 13398445413854501 4563 10056050940818192726001
zkl
<lang zkl>fcn ways_to_make_change(x, coins=T(25,10,5,1)){
if(not coins) return(0); if(x<0) return(0); if(x==0) return(1); ways_to_make_change(x, coins[1,*]) + ways_to_make_change(x - coins[0], coins)
} ways_to_make_change(100).println();</lang>
- Output:
242
Blows the stack on the optional part, so try this:
<lang zkl>fcn make_change2(amount, coins){
n, m := amount, coins.len(); table := (0).pump(n+1,List, (0).pump(m,List().write,1).copy); foreach i,j in ([1..n],[0..m-1]){ table[i][j] = (if(i<coins[j]) 0 else table[i-coins[j]][j]) + (if(j<1) 0 else table[i][j-1]) } table[-1][-1]
}
println(make_change2( 100, T(1,5,10,25))); make_change2(0d1000_00, T(1,5,10,25,50,100)) : "%,d".fmt(_).println();</lang>
- Output:
242 13,398,445,413,854,501
- Programming Tasks
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